Search is not available for this dataset
name
stringlengths 2
88
| description
stringlengths 31
8.62k
| public_tests
dict | private_tests
dict | solution_type
stringclasses 2
values | programming_language
stringclasses 5
values | solution
stringlengths 1
983k
|
|---|---|---|---|---|---|---|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
import java.io.*;import java.util.*;import java.math.*;
public class Main
{
static long mod=1000000007l;
static int max=Integer.MAX_VALUE,min=Integer.MIN_VALUE;
static long maxl=Long.MAX_VALUE,minl=Long.MIN_VALUE;
static BufferedReader br=new BufferedReader(new InputStreamReader(System.in));
static StringTokenizer st;
static public void main(String[] args)throws Exception
{
st=new StringTokenizer(br.readLine());
int n=i();
int m=i();
int k=i();
int ar[][]=ari(n,3);
Integer a[][]=new Integer[n][2];
Integer b[][]=new Integer[n][2];
Integer c[][]=new Integer[n][2];
Integer dd[][]=new Integer[n][2];
for(int x=0;x<n;x++)a[x][0]=b[x][0]=c[x][0]=dd[x][0]=1000000;
int i=-1;
int j=-1;
int kk=-1;
int kkk=-1;
int c1=0;
int c2=0;
int ii=0;
for(int q[]:ar)
{
ii++;
Integer qq[]=new Integer[2];
qq[0]=q[0];
qq[1]=ii;
if((q[1]==1&&q[2]==1))
{
c[++kk]=qq;
c1++;
c2++;
}
else if(q[1]==1&&q[2]==0)
{
a[++i]=qq;
c1++;
}
else if(q[1]==0&&q[2]==1)
{
b[++j]=qq;
c2++;
}
else
{
dd[++kkk]=qq;
}
}
if(c1<k||c2<k)pl(-1);
else
{
try {
Arrays.sort(c,(aa,bb)->(aa[0]-bb[0]));
Arrays.sort(a,(aa,bb)->(aa[0]-bb[0]));
Arrays.sort(b,(aa,bb)->(aa[0]-bb[0]));
Arrays.sort(dd,(aa,bb)->(aa[0]-bb[0]));
// pl(Arrays.toString(a));
// pl(Arrays.toString(b));
// pl(Arrays.toString(c));
i=0;
j=0;
int de=0;
kk=0;
c1=k;
c2=k;
int bb[]=new int[m];
int p=0;
int jj=-1;
long cc=0l;
while(c1>0&&c2>0)
{
//jj++;
if(a[i][0]+b[i][0]>=c[kk][0]||p==m-1)
{
cc+=c[kk][0];
//pl(" "+kk);
bb[++jj]=c[kk++][1];
p++;
}
else
{
//pl(jj+" "+p);
cc+=a[i][0]+b[i][0];
bb[++jj]=a[i][1];
bb[++jj]=b[i++][1];
p+=2;
}
c1--;
c2--;
//p++;
// pl(cc);
}
while(c1>0)
{
if(a[i][0]>=c[kk][0])
{
bb[++jj]=c[kk][1];
cc+=c[kk++][0];
}
else
{
bb[++jj]=a[i][1];
cc+=a[i++][0];
}
c1--;
p++;
}
if(c2>0)
{
j=i;
while(c2>0)
{
if(b[j][0]>=c[kk][0])
{
bb[++jj]=c[kk][1];
cc+=c[kk++][0];
}
else
{
bb[++jj]=b[j][1];
cc+=b[j++][0];
}
c2--;
p++;
}
}
p=m-p;
if(p<0)
{
pl(-1);
System.exit(0);
}
// p(jj+" "+p);
while(p>0)
{
PriorityQueue<Integer[]> pp=new PriorityQueue<>(4,(aa,bbb)->aa[0]-bbb[0]);
pp.add(c[kk]);
pp.add(a[i]);
pp.add(b[j]);
pp.add(dd[de]);
Integer w[]=pp.poll();
bb[++jj]=w[1];
if(w[0]==c[kk][0])kk++;
else if(w[0]==a[i][0])i++;
else if(w[0]==b[j][0])j++;
else de++;
p--;
}
p(bb);
}
catch(Exception e){pl(-1);}
}
}
static int max(int a,int b){return a>b?a:b;}
static int min(int a,int b){return a<b?a:b;}
static int abs(int a){return Math.abs(a);}
static long max(long a,long b){return a>b?a:b;}
static long min(long a,long b){return a<b?a:b;}
static long abs(long a){return Math.abs(a);}
static int sq(int a){return (int)Math.sqrt(a);}
static long sq(long a){return (long)Math.sqrt(a);}
static int gcd(int a,int b){return b==0?a:gcd(b,a%b);}
// static void g(int i)
// {
// for(int e:ar[i])
// {
// if(e==i)continue;
// al[i].add(e);
// g(e);
// }
// }
static boolean pa(String s,int i,int j)
{
while(i<j)if(s.charAt(i++)!=s.charAt(j--))return false;
return true;
}
static int ncr(int n,int c,long m)
{
long a=1l;
for(int x=n-c+1;x<=n;x++)a=((a*x)%m);
long b=1l;
for(int x=2;x<=c;x++)b=((b*x)%m);
return (int)((a*(div((int)b,m-2,m)%m))%m);
}
static boolean[] sieve(int n)
{
boolean bo[]=new boolean[n+1];
bo[0]=true;bo[1]=true;
for(int x=4;x<=n;x+=2)bo[x]=true;
for(int x=3;x*x<=n;x+=2)if(!bo[x])for(int y=x*x;y<=n;y+=x)bo[y]=true;
return bo;
}
static int[] fac(int n)
{
int bo[]=new int[n+1];
for(int x=1;x<=n;x++)for(int y=x;y<=n;y+=x)bo[y]++;
return bo;
}
static long div(long a,long b,long m)
{
long r=1l;
a%=m;
while(b>0)
{
if((b&1)==1)r=(r*a)%m;
b>>=1;
a=(a*a)%m;
}
return r;
}
static int i()throws IOException
{
if(!st.hasMoreTokens()) st=new StringTokenizer(br.readLine());
return Integer.parseInt(st.nextToken());
}
static long l()throws IOException
{
if(!st.hasMoreTokens())st=new StringTokenizer(br.readLine());
return Long.parseLong(st.nextToken());
}
static String s()throws IOException
{
if(!st.hasMoreTokens())st=new StringTokenizer(br.readLine());
return st.nextToken();
}
static double d()throws IOException
{
if(!st.hasMoreTokens())st=new StringTokenizer(br.readLine());
return Double.parseDouble(st.nextToken());
}
static void p(Object p){System.out.print(p);}
static void p(String p){System.out.print(p);}
static void p(int p){System.out.print(p);}
static void p(double p){System.out.print(p);}
static void p(long p){System.out.print(p);}
static void p(char p){System.out.print(p);}
static void p(boolean p){System.out.print(p);}
static void pl(Object p){System.out.println(p);}
static void pl(String p){System.out.println(p);}
static void pl(int p){System.out.println(p);}
static void pl(char p){System.out.println(p);}
static void pl(double p){System.out.println(p);}
static void pl(long p){System.out.println(p);}
static void pl(boolean p){System.out.println(p);}
static void pl(){System.out.println();}
static int[] ari(int n)throws IOException
{
int ar[]=new int[n];
if(!st.hasMoreTokens())st=new StringTokenizer(br.readLine());
for(int x=0;x<n;x++)ar[x]=Integer.parseInt(st.nextToken());
return ar;
}
static int[][] ari(int n,int m)throws IOException
{
int ar[][]=new int[n][m];
for(int x=0;x<n;x++)
{
if(!st.hasMoreTokens())st=new StringTokenizer(br.readLine());
for(int y=0;y<m;y++)ar[x][y]=Integer.parseInt(st.nextToken());
}
return ar;
}
static long[] arl(int n)throws IOException
{
long ar[]=new long[n];
if(!st.hasMoreTokens())st=new StringTokenizer(br.readLine());
for(int x=0;x<n;x++) ar[x]=Long.parseLong(st.nextToken());
return ar;
}
static long[][] arl(int n,int m)throws IOException
{
long ar[][]=new long[n][m];
for(int x=0;x<n;x++)
{
if(!st.hasMoreTokens())st=new StringTokenizer(br.readLine());
for(int y=0;y<m;y++)ar[x][y]=Long.parseLong(st.nextToken());
}
return ar;
}
static String[] ars(int n)throws IOException
{
String ar[]=new String[n];
if(!st.hasMoreTokens())st=new StringTokenizer(br.readLine());
for(int x=0;x<n;x++) ar[x]=st.nextToken();
return ar;
}
static double[] ard(int n)throws IOException
{
double ar[]=new double[n];
if(!st.hasMoreTokens())st=new StringTokenizer(br.readLine());
for(int x=0;x<n;x++)ar[x]=Double.parseDouble(st.nextToken());
return ar;
}
static double[][] ard(int n,int m)throws IOException
{
double ar[][]=new double[n][m];
for(int x=0;x<n;x++)
{
if(!st.hasMoreTokens())st=new StringTokenizer(br.readLine());
for(int y=0;y<m;y++)ar[x][y]=Double.parseDouble(st.nextToken());
}
return ar;
}
static char[] arc(int n)throws IOException
{
char ar[]=new char[n];
if(!st.hasMoreTokens())st=new StringTokenizer(br.readLine());
for(int x=0;x<n;x++)ar[x]=st.nextToken().charAt(0);
return ar;
}
static char[][] arc(int n,int m)throws IOException
{
char ar[][]=new char[n][m];
for(int x=0;x<n;x++)
{
String s=br.readLine();
for(int y=0;y<m;y++)ar[x][y]=s.charAt(y);
}
return ar;
}
static void p(int ar[])
{
StringBuilder sb=new StringBuilder(11*ar.length);
for(int a:ar)
{
sb.append(a);
sb.append(' ');
}
System.out.println(sb);
}
static void p(int ar[][])
{
StringBuilder sb;
for(int a[]:ar)
{
sb=new StringBuilder(2*a.length);
for(int aa:a)
{
sb.append(aa);
sb.append(' ');
}
System.out.println(sb);
}
}
static void p(long ar[])
{
StringBuilder sb=new StringBuilder(20*ar.length);
for(long a:ar)
{
sb.append(a);
sb.append(' ');
}
System.out.println(sb);
}
static void p(long ar[][])
{
StringBuilder sb;
for(long a[]:ar)
{
sb=new StringBuilder(2*a.length);
for(long aa:a)
{
sb.append(aa);
sb.append(' ');
}
System.out.println(sb);
}
}
static void p(String ar[])
{
StringBuilder sb=new StringBuilder(2*ar.length);
for(String a:ar)
{
sb.append(a);
sb.append(' ');
}
System.out.println(sb);
}
static void p(double ar[])
{
StringBuilder sb=new StringBuilder(20*ar.length);
for(double a:ar)
{
sb.append(a);
sb.append(' ');
}
System.out.println(sb);
}
static void p(double ar[][])
{
StringBuilder sb;
for(double a[]:ar)
{
sb=new StringBuilder(4*a.length);
for(double aa:a)
{
sb.append(aa);
sb.append(' ');
}
System.out.println(sb);
}
}
static void p(char ar[])
{
StringBuilder sb=new StringBuilder(2*ar.length);
for(char aa:ar)
{
sb.append(aa);
sb.append(' ');
}
System.out.println(sb);
}
static void p(char ar[][])
{
StringBuilder sb;
for(char a[]:ar)
{
sb=new StringBuilder(2*a.length);
for(char aa:a)
{
sb.append(aa);
sb.append(' ');
}
System.out.println(sb);
}
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
import java.util.*;
public class CF_653_E {
public static void main(String[] args) {
// TODO Auto-generated method stub
Scanner s = new Scanner(System.in);
int n = s.nextInt();
int k = s.nextInt();
int arr[][] = new int[n][3];
PriorityQueue<Integer> p1 = new PriorityQueue<>();
PriorityQueue<Integer> p2 = new PriorityQueue<>();
int count = 0;
for(int i = 0;i<arr.length;++i)
{
arr[i][0] = s.nextInt();
arr[i][1] = s.nextInt();
arr[i][2] = s.nextInt();
if(arr[i][1] == 1 && arr[i][2] == 0)
{
p1.add(arr[i][0]);
}
else if(arr[i][1] == 0 && arr[i][2] == 1)
{
p2.add(arr[i][0]);
}
else if(arr[i][1] == 1 && arr[i][2] == 1)
{
count++;
}
}
long tmp1[] = new long[Math.min(p1.size(), p2.size())];
int tmp2[] = new int[count];
int w = 0;
for(int i = 0;i<arr.length;++i)
{
if(arr[i][1] == 1 && arr[i][2] == 1)
{
tmp2[w++] = arr[i][0];
}
}
int u = 0;
while(p1.size()>0 && p2.size()>0)
{
tmp1[u++]=(long)p1.poll()+p2.poll();
}
int i = 0,j = 0;
long ans = 0;
u=0;
// System.out.println(tmp1.length + " " + tmp2.length);
if(tmp1.length + tmp2.length < k)
{
System.out.println(-1);
return;
}
while(i<tmp1.length && j<tmp2.length && u<k)
{
if(tmp1[i] < tmp2[j])
{
ans+=(long)tmp1[i];
i++;
u++;
}
else
{
ans+=(long)tmp2[j];
j++;
u++;
}
}
while(i<tmp1.length && u<k)
{
ans+=(long)tmp1[i];
i++;
u++;
}
while(j<tmp2.length && u<k)
{
ans+=(long)tmp2[j];
j++;
u++;
}
System.out.println(ans);
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
cpp
|
#include <bits/stdc++.h>
using namespace std;
int xx[] = {0, 0, -1, 1}, yy[] = {-1, 1, 0, 0};
using ll = long long;
using ppi = pair<int, int>;
using ppl = pair<ll, ll>;
vector<int> L, R, M;
int main() {
ios::sync_with_stdio(false);
cin.tie(0);
int N, K;
cin >> N >> K;
for (long long i = (0); i < (N); ++i) {
int time, l, r;
cin >> time >> l >> r;
if (l + r == 2) {
M.push_back(time);
} else {
if (l)
L.push_back(time);
else
R.push_back(time);
}
}
sort(L.begin(), L.end());
sort(R.begin(), R.end());
sort(M.begin(), M.end());
if (((int)(L.size())) + ((int)(M.size())) < K ||
((int)(R.size())) + ((int)(M.size())) < K) {
cout << -1;
} else {
ll tt = 0;
int l = 0, r = 0, m = 0;
while (K--) {
if (l < ((int)(L.size())) && r < ((int)(R.size()))) {
if (m < ((int)(M.size())) && M[m] <= L[l] + R[r]) {
tt += M[m++];
} else {
tt += L[l++];
tt += R[r++];
}
} else {
tt += M[m++];
}
}
cout << tt;
}
return 0;
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
import java.io.*;
import java.util.*;
public class tr1 {
static PrintWriter out;
static StringBuilder sb;
static int n, m, id, max;
static long mod = 998244353;
static Boolean[][] memo;
static String s;
static int[][] ad;
static long inf = Long.MAX_VALUE;
static int[] color;
static ArrayList<Integer> o;
static char[][] g;
static boolean[] vis, vis1;
static boolean f;
static int[] ar, a;
public static void main(String[] args) throws Exception {
Scanner sc = new Scanner(System.in);
out = new PrintWriter(System.out);
int n = sc.nextInt();
int m = sc.nextInt();
int k = sc.nextInt();
ArrayList<pair> all = new ArrayList<>();
ArrayList<pair> left = new ArrayList<>();
ArrayList<pair> right = new ArrayList<>();
ArrayList<pair> o = new ArrayList<>();
sb = new StringBuilder();
for (int i = 0; i < n; i++) {
int a = sc.nextInt();
int l = sc.nextInt();
int r = sc.nextInt();
if (l == 1 && r == 1)
all.add(new pair(a, i + 1));
else if (l == 1)
left.add(new pair(a, i + 1));
else if (r == 1)
right.add(new pair(a, i + 1));
else
o.add(new pair(a, i + 1));
}
Collections.sort(right);
Collections.sort(left);
long ans = 0;
if (all.size() + Math.min(right.size(), left.size()) < k) {
System.out.println(-1);
return;
}
int can = m - k;
if (all.size() + can < k) {
System.out.println(-1);
return;
}
for (int i = 0; i < Math.min(right.size(), left.size()); i++) {
pair cur = new pair(right.get(i).x + left.get(i).x, right.get(i).y);
cur.ext = left.get(i).y;
cur.rev = left.get(i).x;
all.add(cur);
}
for (int i = Math.min(right.size(), left.size()); i < Math.max(right.size(), left.size()); i++) {
if (right.size() > left.size()) {
o.add(new pair(right.get(i).x, right.get(i).y));
} else {
o.add(new pair(left.get(i).x, left.get(i).y));
}
}
Collections.sort(all);
boolean[] tk = new boolean[all.size()];
int cc = m;
int kk = k;
for (int i = 0; i < all.size(); i++) {
if (cc <= 0 || kk <= 0)
break;
if (all.get(i).ext != -1) {
if (can == 0 || cc == 1) {
continue;
}
tk[i] = true;
cc -= 2;
ans += all.get(i).x;
sb.append(all.get(i).y + " ");
sb.append(all.get(i).ext + " ");
can--;
kk--;
} else {
tk[i] = true;
ans += all.get(i).x;
sb.append(all.get(i).y + " ");
cc--;
kk--;
}
}
for (int i = 0; i < all.size(); i++) {
if (tk[i])
continue;
if (all.get(i).ext != -1) {
o.add(new pair(all.get(i).rev, all.get(i).ext));
o.add(new pair(all.get(i).x - all.get(i).rev, all.get(i).y));
} else {
o.add(new pair(all.get(i).x, all.get(i).y));
}
}
Collections.sort(o);
for (int i = 0; i < cc; i++) {
ans += o.get(i).x;
sb.append(o.get(i).y + " ");
}
out.println(ans);
out.print(sb);
out.flush();
}
static class pair implements Comparable<pair> {
int x;
int y;
int ext = -1;
int rev = -1;
pair(int x, int y) {
this.x = x;
this.y = y;
}
public String toString() {
return x + " " + y + " " + ext + " " + rev;
}
@Override
public int compareTo(pair o) {
return x - o.x;
}
}
static class Scanner {
StringTokenizer st;
BufferedReader br;
public Scanner(InputStream system) {
br = new BufferedReader(new InputStreamReader(system));
}
public Scanner(String file) throws Exception {
br = new BufferedReader(new FileReader(file));
}
public String next() throws IOException {
while (st == null || !st.hasMoreTokens())
st = new StringTokenizer(br.readLine());
return st.nextToken();
}
public String nextLine() throws IOException {
return br.readLine();
}
public int nextInt() throws IOException {
return Integer.parseInt(next());
}
public double nextDouble() throws IOException {
return Double.parseDouble(next());
}
public char nextChar() throws IOException {
return next().charAt(0);
}
public Long nextLong() throws IOException {
return Long.parseLong(next());
}
public int[] nextArrInt(int n) throws IOException {
int[] a = new int[n];
for (int i = 0; i < n; i++)
a[i] = nextInt();
return a;
}
public long[] nextArrLong(int n) throws IOException {
long[] a = new long[n];
for (int i = 0; i < n; i++)
a[i] = nextLong();
return a;
}
public boolean ready() throws IOException {
return br.ready();
}
public void waitForInput() throws InterruptedException {
Thread.sleep(3000);
}
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
cpp
|
#include <bits/stdc++.h>
const long long MAX = 200009, MOD = 1000000007, BASE = 311, inf = 1e17;
using namespace std;
struct node {
long long t;
long long a;
long long b;
};
long long n, k, res, cnt, f, g, m;
priority_queue<pair<long long, long long>, vector<pair<long long, long long>>,
greater<pair<long long, long long>>>
a, b, c, d;
vector<long long> q;
int main() {
cin >> n >> m >> k;
for (long long i = 1; i <= n; i++) {
long long u, v, w;
cin >> u >> v >> w;
if (v && w)
a.push({u, i});
else if (v)
b.push({u, i});
else if (w)
c.push({u, i});
else
d.push({u, i});
}
while (1) {
long long t1 = inf, t2 = inf;
if (b.size())
t1 = b.top().first;
else
t1 = inf;
if (c.size())
t1 += c.top().first;
else
t1 += inf;
if (a.size()) t2 = a.top().first;
if (a.size() && (t2 < t1 || cnt == m - 1)) {
res += t2;
q.push_back(a.top().second);
if (a.size()) a.pop(), f++, g++;
cnt++;
} else {
res += t1;
if (b.size()) cnt++, g++, q.push_back(b.top().second), b.pop();
if (c.size()) q.push_back(c.top().second), c.pop(), cnt++, f++;
}
if (f >= k && g >= k) break;
if (a.empty() && b.empty() && c.empty()) break;
}
if (res < inf) {
while (cnt < m && f >= k && g >= k) {
vector<pair<long long, long long>> t(5, make_pair(inf, -1));
if (a.size()) t[1] = a.top();
if (b.size()) t[2] = b.top();
if (c.size()) t[3] = c.top();
if (d.size()) t[4] = d.top();
sort(t.begin() + 1, t.begin() + 1 + 4);
res += t[1].first, cnt++, q.push_back(t[1].second);
if (a.size() && a.top().second == t[1].second)
a.pop();
else if (b.size() && b.top().second == t[1].second)
b.pop();
else if (c.size() && c.top().second == t[1].second)
c.pop();
else if (d.size() && d.top().second == t[1].second)
d.pop();
if (a.empty() && b.empty() && c.empty() && d.empty()) break;
}
if (f < k) {
while (cnt < m) {
pair<long long, long long> t[5];
if (a.size()) t[1] = a.top();
if (c.size()) t[2] = c.top();
if (t[1].first < t[2].first)
q.push_back(t[1].second), res += t[1].first, cnt++, a.pop(), f++;
else
q.push_back(t[2].second), res += t[2].first, cnt++, c.pop(), f++;
if (a.empty() && c.empty()) break;
}
} else if (g < k) {
while (cnt < m) {
pair<long long, long long> t[5];
if (a.size()) t[1] = a.top();
if (b.size()) t[2] = b.top();
if (t[1].first < t[2].first)
q.push_back(t[1].second), res += t[1].first, cnt++, a.pop(), g++;
else
q.push_back(t[2].second), res += t[2].first, cnt++, b.pop(), g++;
if (a.empty() && b.empty()) break;
}
}
if (res >= inf || cnt < m || f < k || g < k)
cout << -1 << endl;
else {
cout << res << endl;
for (auto e : q) cout << e << " ";
}
} else
cout << -1 << endl;
return 0;
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
cpp
|
#include <bits/stdc++.h>
using namespace std;
void solve() {
long long n, k;
cin >> n >> k;
vector<long long> v1, v2;
vector<long long> v;
for (long long i = 0; i < n; i++) {
long long t1, a, b;
cin >> t1 >> a >> b;
if (a == 1) {
if (b == 1)
v.push_back(t1);
else
v1.push_back(t1);
} else if (b == 1) {
v2.push_back(t1);
}
}
if ((v1.size() + v.size() < k) || (v2.size() + v.size() < k)) {
cout << "-1";
return;
}
sort(v1.begin(), v1.end());
sort(v2.begin(), v2.end());
sort(v.begin(), v.end());
long long t = 0, cnt = 0, i = 0, j = 0;
while (cnt < k) {
if (i < v1.size() && i < v2.size()) {
if (v1[i] + v2[i] >= v[j]) {
t += v[j];
cnt++;
j++;
} else {
t += v1[i];
t += v2[i];
cnt++;
i++;
}
} else {
while (cnt < k) {
t += v[j];
cnt++;
j++;
}
}
}
cout << t;
}
signed main() {
ios_base::sync_with_stdio(false);
cin.tie(0);
cout.tie(0);
long long t = 1;
while (t--) {
solve();
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
import sys
n, m, k = input().split(' ')
n, m, k = int(n), int(m), int(k)
A = []
B = []
C = []
D = []
Ainmax = 0
Binmax = 0
Cinmax = 0
Dinmax = 0
for i in range(n):
entry = input().split(' ')
if entry[1] == '1' and entry[2] == '1':
C.append([int(entry[0]), i + 1])
Cinmax += 1
elif entry[1] == '1' and entry[2] == '0':
A.append([int(entry[0]), i + 1])
Ainmax += 1
elif entry[1] == '0' and entry[2] == '1':
B.append([int(entry[0]), i + 1])
Binmax += 1
else:
D.append([int(entry[0]), i + 1])
Dinmax += 1
A.sort(key=lambda x: x[0])
B.sort(key=lambda x: x[0])
C.sort(key=lambda x: x[0])
D.sort(key=lambda x: x[0])
Alice = A
Bob = B
Both = C
none = D
if k == 254:
mi = min(Ainmax, Binmax)
if len(C) + mi < k:
print(-1)
elif len(C) < k and 2 * k - len(C) > m:
print(-1)
else:
time = 0
Ain = 0
Bin = 0
Cin = 0
Din = 0
ABinmax = min(mi, m - k)
for i in range(k):
if Ain == ABinmax:
Cin += 1
elif Cin == Cinmax or A[Ain][0] + B[Bin][0] <= C[Cin][0]:
Ain += 1
Bin += 1
else:
Cin += 1
for i in range(m - Ain - Bin - Cin):
pot = []
if Ain < Ainmax:
pot.append([A[Ain][0], 'Ain+=1'])
if Bin < Binmax:
pot.append([B[Bin][0], 'Bin+=1'])
if Cin < Cinmax:
pot.append([C[Cin][0], 'Cin+=1'])
if Din < Dinmax:
pot.append([D[Din][0], 'Din+=1'])
if Ain < Ainmax and Bin < Binmax and Cin != 0:
pot.append([A[Ain][0] + B[Bin][0] - C[Cin - 1][0], 'Ain+=1;Bin+=1;Cin-=1'])
minpot = 0
for j in range(len(pot) - 1):
if pot[minpot][0] > pot[j + 1][0]:
minpot = j + 1
exec(pot[minpot][1])
for i in range(Ain):
time += A[i][0]
for i in range(Bin):
time += B[i][0]
for i in range(Cin):
time += C[i][0]
for i in range(Din):
time += D[i][0]
print(time)
sss = " "
for i in range(Ain):
sss = sss + " " + str(A[i][1])
for i in range(Bin):
sss = " " + sss + " " + str(B[i][1])
for i in range(Cin):
sss = " " + sss + " " + str(C[i][1])
for i in range(Din):
sss = " " + sss + " " + str(D[i][1])
ssl = sss.split()
ssl = list(map(int, ssl))
ssl.append(102)
ssl.append(103)
ssl.append(104)
Alice.sort(key=lambda x: x[0])
Bob.sort(key=lambda x: x[0])
Both.sort(key=lambda x: x[0])
none.sort(key=lambda x: x[0])
tresult = []
if 2 * k > m:
l = 2 * k - m
if len(Both) >= l:
tresult = Both[:l]
Both = Both[l:]
All = Alice + Both + Bob + none
m = 2 * (m - k)
k = k - l
else:
print(-1)
exit()
else:
tresult = []
tresult1 = []
if min(len(Alice), len(Bob)) == len(Alice):
if len(Alice) < k:
k1 = k - len(Alice)
if len(Both) < k1:
print(-1)
exit()
else:
tresult1 = Both[:k1]
Both = Both[k1:]
k = k - k1
else:
if len(Bob) < k:
k1 = k - len(Bob)
if len(Both) < k1:
print(-1)
exit()
else:
tresult1 = Both[:k1]
Both = Both[k1:]
k = k - k1
Alice1 = Alice[:k]
Bob1 = Bob[:k]
Alice = Alice[k:]
Bob = Bob[k:]
corr = []
elev = False
while len(Alice1) > 0 and len(Bob1) > 0 and len(Both) > 0 and len(none) > 0 and Alice1[-1][0] + Bob1[-1][0] >= Both[0][0]:
Alice.append(Alice1[-1])
Bob.append(Bob1[-1])
corr.append(Both[0])
Alice1.pop(-1)
Bob1.pop(-1)
Both.pop(0)
q = len(tresult1) + len(corr) + len(Alice1) + len(Bob1)
q = m - q
All = Alice + Bob + Both + none
All.sort(key=lambda x: x[0])
result2 = tresult + tresult1 + corr + Alice1 + Bob1
result = All[:q]
result = result + tresult + tresult1 + corr + Alice1 + Bob1
sum1 = 0
for row in result:
sum1 = sum1 + row[0]
print(sum1)
if sum1 == 0:
print(sum(row[1] for row in result2))
print(sum(row[2] for row in result2))
result.sort(key=lambda x: x[0])
print(result[-1])
print(result[-2])
chk = result[-1][0] - 1
for row in All:
if row[0] == chk:
print(row)
if sum1 == 0:
print(len(corr))
result.sort(key=lambda x: x[0])
print(sum(row[1] for row in result))
print(sum(row[2] for row in result))
print(All[q-2])
print(All[q-1])
print(All[q])
All = All[q:]
print(q)
print(result[-1])
print(All[0])
print(len(result))
print(len(All))
if sum1 == 82207:
resulttt = ' '.join([str(row[1]) for row in result])
resulttt = resulttt.split()
resulttt = list(map(int, resulttt))
resulttt.append(100)
resulttt.append(101)
ttt = resulttt + ssl
mine = set(ttt) - set(ssl)
his = set(ttt) - set(resulttt)
print(mine)
print(his)
print(' '.join([str(row[1]) for row in result]))
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
// Main Code at the Bottom
import java.util.*;
import java.lang.*;
import java.io.*;
import java.math.BigInteger;
public class Main {
//Fast IO class
static class FastReader {
BufferedReader br;
StringTokenizer st;
public FastReader() {
boolean env=System.getProperty("ONLINE_JUDGE") != null;
if(!env) {
try {
br=new BufferedReader(new FileReader("src\\input.txt"));
} catch (FileNotFoundException e) {
e.printStackTrace();
}
}
else br = new BufferedReader(new InputStreamReader(System.in));
}
String next() {
while (st == null || !st.hasMoreElements()) {
try {
st = new StringTokenizer(br.readLine());
}
catch (IOException e) {
e.printStackTrace();
}
}
return st.nextToken();
}
int nextInt() {
return Integer.parseInt(next());
}
long nextLong() {
return Long.parseLong(next());
}
double nextDouble() {
return Double.parseDouble(next());
}
String nextLine() {
String str = "";
try {
str = br.readLine();
}
catch (IOException e) {
e.printStackTrace();
}
return str;
}
}
static long MOD=1000000000+7;
//debug
static void debug(Object... o) {
System.out.println(Arrays.deepToString(o));
}
// Pair
static class pair{
long x,y;
pair(long a,long b){
this.x=a;
this.y=b;
}
public boolean equals(Object obj) {
if(obj == null || obj.getClass()!= this.getClass()) return false;
pair p = (pair) obj;
return (this.x==p.x && this.y==p.y);
}
public int hashCode() {
return Objects.hash(x,y);
}
}
static FastReader sc=new FastReader();
static PrintWriter out=new PrintWriter(System.out);
//Main function(The main code starts from here)
static class obj{
long t,a,b;
obj(long x,long y,long z){
t=x;
a=y;
b=z;
}
}
static int n,m,k;
static obj books[];
static Comparator<Integer> cmp=new Comparator<Integer>() {
public int compare(Integer i1,Integer i2) {
if(books[i1].t==books[i2].t) return i1-i2;
return (int)(books[i1].t-books[i2].t);
}
};
public static void main (String[] args) throws java.lang.Exception {
int test=1;
//test=sc.nextInt();
while(test-->0){
n=sc.nextInt();m=sc.nextInt();k=sc.nextInt();
books=new obj[n];
for(int i=0;i<n;i++) books[i]=new obj(sc.nextLong(),sc.nextLong(),sc.nextLong());
TreeSet<Integer> s1=new TreeSet<>(cmp),s2=new TreeSet<>(cmp),s3=new TreeSet<>(cmp),s4=new TreeSet<>(cmp);
for(int i=0;i<n;i++) {
if(books[i].a==1 && books[i].b==1) s1.add(i);
else if(books[i].a==1 && books[i].b==0) s2.add(i);
else if(books[i].a==0 && books[i].b==1) s3.add(i);
else s4.add(i);
}
long ans=0;
TreeSet<Integer> a1=new TreeSet<>(cmp),a2=new TreeSet<>(cmp),a3=new TreeSet<>(cmp);
for(int i=0;i<k;i++) {
if(s1.isEmpty() && (s2.isEmpty() || s3.isEmpty())) {
ans=-1;
break;
}
long v1=Long.MAX_VALUE,v2=Long.MAX_VALUE;
if(!s1.isEmpty()) v1=books[s1.first()].t;
if(!s2.isEmpty() && !s3.isEmpty()) v2=books[s2.first()].t+books[s3.first()].t;
if(v1<=v2) {
ans+=v1;
a1.add(s1.pollFirst());
}
else {
ans+=v2;
a2.add(s2.pollFirst());
a3.add(s3.pollFirst());
}
}
int len=a1.size()+a2.size()+a3.size();
TreeSet<Integer> tmp=new TreeSet<>(cmp);
if(len<=m) {
while(len<m) {
if(s1.isEmpty() && s2.isEmpty() && s3.isEmpty() && s4.isEmpty()) break;
long v1=Long.MAX_VALUE,v2=Long.MAX_VALUE,v3=Long.MAX_VALUE,v4=Long.MAX_VALUE;
if(!s1.isEmpty()) v1=books[s1.first()].t;
if(!s2.isEmpty()) v2=books[s2.first()].t;
if(!s3.isEmpty()) v3=books[s3.first()].t;
if(!s4.isEmpty()) v4=books[s4.first()].t;
if(v1<v2 && v1<v3 && v1<v4) {
ans+=v1;
tmp.add(s1.pollFirst());
}
else if(v2<v3 && v3<v1 && v2<v4) {
ans+=v2;
tmp.add(s2.pollFirst());
}
else if(v3<v1 && v3<v2 && v3<v4){
ans+=v3;
tmp.add(s3.pollFirst());
}
else {
ans+=v4;
tmp.add(s4.pollFirst());
}
len++;
}
if(len!=m) {
out.println(-1);
continue;
}
}
else {
if(len-a2.size()>m) {
out.println(-1);
continue;
}
while(len>m) {
if(s1.isEmpty()) break;
int x1=a2.pollLast(),x2=a3.pollLast(),x3=s1.pollFirst();
ans=ans+books[x3].t-books[x1].t-books[x2].t;
a1.add(x3);
len--;
}
if(len!=m) {
out.println(-1);
continue;
}
}
out.println(ans);
for(int x: a1) out.print((x+1)+" ");
for(int x: a2) out.print((x+1)+" ");
for(int x: a3) out.print((x+1)+" ");
for(int x: tmp) out.print((x+1)+" ");
}
out.flush();
out.close();
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
import collections as cc
import math as mt
import sys
input=sys.stdin.readline
I=lambda:list(map(int,input().split()))
n,k=I()
a=[]
for i in range(n):
a.append(I())
a.sort()
both=[]
bs=0
f=0
for i in range(n):
if a[i][1] and a[i][2]:
both.append(a[i][0])
al=[]
bo=[]
for i in range(n):
if a[i][1] and not a[i][2]:
al.append(a[i][0])
elif a[i][2] and not a[i][1]:
bo.append(a[i][0])
su=[]
for i in range(min(len(al),len(bo))):
su.append(al[i]+bo[i])
for i in range(1,len(both)):
both[i]+=both[i-1]
for i in range(1,len(su)):
su[i]+=su[i-1]
if both and not su:
if len(both)>=k:
print(both[k-1])
else:
print(-1)
elif su and not both:
if len(su)>=k:
print(su[k-1])
else:
print(-1)
else:
if len(both)+len(su)<k:
print(-1)
elif len(both)<k and len(su)<k:
xx=k-len(both)
yy=k-len(su)
print(min(both[-1]+su[xx-1],su[-1]+both[yy-1]))
else:
aa=mt.inf
bb=mt.inf
for i in range(len(both)):
try:
aa=min(aa,both[i]+su[(k-(i+1))-1])
except :
break
for i in range(len(su)):
try:
bb=min(bb,su[i]+both[(k-(i+1))-1])
except:
break
print(min(aa,bb))
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
cpp
|
#include <bits/stdc++.h>
using namespace std;
long long int n, m;
void solve() {
cin >> n;
vector<long long int> both, alice, bob;
long long int z;
cin >> m;
z = m;
long long int t, x, y;
for (long long int i = 0; i < n; i++) {
cin >> t >> x >> y;
if (x && y)
both.push_back(t);
else if (x && !y)
alice.push_back(t);
else if (!x && y)
bob.push_back(t);
}
sort(both.begin(), both.end());
sort(alice.begin(), alice.end());
sort(bob.begin(), bob.end());
long long int ans = 0;
long long int i = 0, j = 0, k = 0;
while (i < both.size() && j < alice.size() && k < bob.size()) {
if (alice[j] + bob[k] <= both[i]) {
ans += alice[j] + bob[k];
j++;
k++;
m--;
} else {
ans += both[i];
i++;
m--;
}
if (m == 0) break;
}
if (m == 0) {
cout << ans << "\n";
return;
}
if (i == both.size()) {
while (m--) {
ans += alice[j] + bob[k];
j++;
k++;
}
if (j > alice.size() || k > bob.size()) ans = -1;
} else if (j == alice.size()) {
if (z <= both.size()) {
ans = 0;
for (auto x : both) {
ans += x;
z--;
if (z == 0) break;
}
} else {
ans = -1;
}
} else if (k == bob.size()) {
if (z <= both.size()) {
ans = 0;
for (auto x : both) {
ans += x;
z--;
if (z == 0) break;
}
} else {
ans = -1;
}
}
cout << ans << "\n";
}
signed main() {
ios_base::sync_with_stdio(false);
cin.tie(0);
cout.tie(0);
solve();
return 0;
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
from bisect import bisect_left as bl
from bisect import bisect_right as br
from heapq import heappush,heappop
import math
from collections import *
from functools import reduce,cmp_to_key
import sys
input = sys.stdin.readline
M = mod = 998244353
def factors(n):return sorted(set(reduce(list.__add__, ([i, n//i] for i in range(1, int(n**0.5) + 1) if n % i == 0))))
def inv_mod(n):return pow(n, mod - 2, mod)
def li():return [int(i) for i in input().rstrip('\n').split()]
def st():return input().rstrip('\n')
def val():return int(input().rstrip('\n'))
def li2():return [i for i in input().rstrip('\n')]
def li3():return [int(i) for i in input().rstrip('\n')]
n,m,k = li()
alice = []
bob = []
both = []
rem = []
for i in range(n):
a,b,c = li()
if b and c:
both.append([a,i])
elif b:alice.append([a,i])
elif c:bob.append([a,i])
else:rem.append([a,i])
alice.sort()
bob.sort()
rem.sort()
both.sort()
l = set()
k1 = k
k2 = k
ind = time = 0
for i in both:
ind += 1
time += i[0]
l.add(i[1])
m -= 1
k1 -= 1
k2 -= 1
if not m:
if not k1 and not k2:
print(time)
for i in l:print(i + 1,end = ' ')
else:
print(-1)
exit()
rem.extend(both[ind:])
both = both[:ind]
i = 0
n1 = min(len(alice),len(bob))
# print(l,m,k1,k2)
while i < n1 and k1:
time += alice[i][0] + bob[i][0]
l.add(alice[i][1])
l.add(bob[i][1])
k1 -= 1
k2 -= 1
m -= 2
i += 1
if not m or not k1:break
# print(l,m,k1,k2)
while i < n1 and len(both) and m:
if alice[i][0] + bob[i][0] < both[-1][0]:
l.remove(both[-1][1])
time -= both[-1][0]
rem.append(both.pop())
l.add(alice[i][1])
l.add(bob[i][1])
time += alice[i][0] + bob[i][0]
m -= 1
else:break
i += 1
# print(l,m,k1,k2)
rem.extend(alice[i:])
rem.extend(bob[i:])
rem.sort()
rem.reverse()
while m > 0 and len(rem):
l.add(rem[-1][1])
time += rem.pop()[0]
m -= 1
if not m and not k1 and not k2:
print(time)
for i in l:print(i + 1,end = ' ')
else:print(-1)
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
import java.io.BufferedReader;
import java.io.IOException;
import java.io.InputStreamReader;
import java.io.PrintWriter;
import java.math.BigInteger;
import java.util.ArrayList;
import java.util.Arrays;
import java.util.Collections;
import java.util.Comparator;
import java.util.HashMap;
import java.util.HashSet;
import java.util.Iterator;
import java.util.NoSuchElementException;
import java.util.PriorityQueue;
import java.util.Random;
import java.util.Set;
import java.util.Stack;
import java.util.StringTokenizer;
import java.util.TreeMap;
import java.util.TreeSet;
// CFPS -> CodeForcesProblemSet
public final class CFPS {
static FastReader fr = new FastReader();
static PrintWriter out = new PrintWriter(System.out);
static final int gigamod = 1000000007;
static int t = 1;
static double epsilon = 0.00000001;
public static void main(String[] args) {
OUTER:
for (int tc = 0; tc < t; tc++) {
int n = fr.nextInt(), k = fr.nextInt();
PriorityQueue<Integer> oneonePQ = new PriorityQueue<>();
PriorityQueue<Integer> zeroonePQ = new PriorityQueue<>();
PriorityQueue<Integer> onezeroPQ = new PriorityQueue<>();
for (int i = 0; i < n; i++) {
int ti = fr.nextInt(), ai = fr.nextInt(), bi = fr.nextInt();
if (ai == 1 && bi == 1) {
oneonePQ.add(ti);
} else if (ai == 1 && bi == 0) {
onezeroPQ.add(ti);
} else
zeroonePQ.add(ti);
}
long totTime = 0;
for (int p = 0; p < k; p++) {
Integer zot = zeroonePQ.peek();
Integer ozt = onezeroPQ.peek();
Integer oot = oneonePQ.peek();
if (zot == null) {
zot = gigamod;
}
if (ozt == null) {
ozt = gigamod;
}
if (oot != null && (oot <= zot + ozt)) {
totTime += oneonePQ.poll();
} else {
if (onezeroPQ.isEmpty() || zeroonePQ.isEmpty()) {
out.println(-1);
continue OUTER;
}
totTime += (onezeroPQ.poll() + zeroonePQ.poll());
}
}
out.println(totTime);
}
out.close();
}
static String reverse(String s) {
StringBuilder sb = new StringBuilder();
int n = s.length();
for (int i = n - 1; i > -1; i--) {
sb.append(s.charAt(i));
}
return sb.toString();
}
static long power(long x, int y)
{
// int p = 998244353;
int p = gigamod;
long res = 1; // Initialize result
x = x % p; // Update x if it is more than or
// equal to p
if (x == 0)
return 0; // In case x is divisible by p;
while (y > 0)
{
// If y is odd, multiply x with result
if ((y & 1) != 0)
res = (res * x) % p;
// y must be even now
y = y >> 1; // y = y/2
x = (x * x) % p;
}
return res;
}
// Maps elements in a 2D matrix serially to elements in
// a 1D array.
static int mapTo1D(int row, int col, int n, int m) {
return row * m + col;
}
// Inverse of what the one above does.
static int[] mapTo2D(int idx, int n, int m) {
int[] rnc = new int[2];
rnc[0] = idx / m;
rnc[1] = idx % m;
return rnc;
}
// Checks if s has subsequence t.
static boolean hasSubsequence(String s, String t) {
char[] schars = s.toCharArray();
char[] tchars = t.toCharArray();
int slen = schars.length, tlen = tchars.length;
int tctr = 0;
if (slen < tlen) return false;
for (int i = 0; i < slen || i < tlen; i++) {
if (tctr == tlen) break;
if (schars[i] == tchars[tctr]) {
tctr++;
}
}
if (tctr == tlen) return true;
return false;
}
// Returns the binary string of length at least bits.
static String toBinaryString(long num, int bits) {
StringBuilder sb = new StringBuilder(Long.toBinaryString(num));
sb.reverse();
for (int i = sb.length(); i < bits; i++)
sb.append('0');
return sb.reverse().toString();
}
static class CountMap extends TreeMap<Long, Integer>{
CountMap() {
}
CountMap(CountMap cm) {
}
public void removeTM(Long key) {
super.remove(key);
}
public void removeTM(Integer key) {
super.remove((long) key);
}
public Integer put(Long key) {
if (super.containsKey(key)) {
return super.put(key, super.get(key) + 1);
} else {
return super.put(key, 1);
}
}
public Integer put(int key) {
if (super.containsKey((long) key)) {
return super.put((long) key, super.get((long) key) + 1);
} else {
return super.put((long) key, 1);
}
}
public Integer remove(Long key) {
Integer count = super.get(key);
if (count == null) return -1;
if (count == 1)
return super.remove(key);
else
return super.put(key, super.get(key) - 1);
}
public Integer remove(int key) {
Integer count = super.get((long) key);
if (count == null) return -1;
if (count == 1)
return super.remove((long) key);
else
return super.put((long) key, super.get((long) key) - 1);
}
public Integer get(int key) {
Integer count = super.get((long) key);
if (count == null)
return 0;
return count;
}
public Integer get(long key) {
Integer count = super.get(key);
if (count == null)
return 0;
return count;
}
}
static class Point implements Comparable<Point> {
long x;
long y;
int id;
Point() {
x = y = id = 0;
}
Point(Point p) {
this.x = p.x;
this.y = p.y;
this.id = p.id;
}
Point(long a, long b, int id) {
this.x = a;
this.y = b;
this.id = id;
}
Point(long a, long b) {
this.x = a;
this.y = b;
}
@Override
public int compareTo(Point o) {
if (this.x > o.x)
return 1;
if (this.x < o.x)
return -1;
if (this.y > o.y)
return 1;
if (this.y < o.y)
return -1;
return 0;
}
public boolean equals(Point that) {
return this.compareTo(that) == 0;
}
}
static class PointComparator implements Comparator<Point> {
@Override
public int compare(Point o1, Point o2) {
long o1Len = o1.y - o1.x;
long o2Len = o2.y - o2.x;
if (o1Len > o2Len)
return -1;
if (o2Len > o1Len)
return 1;
if (o1.x > o2.x)
return 1;
if (o2.x > o1.x)
return -1;
return 0;
}
}
// Returns the largest power of k that fits into n.
static int largestFittingPower(long n, long k) {
int lo = 0, hi = logk(Long.MAX_VALUE, 3);
int largestPower = -1;
while (lo <= hi) {
int mid = lo + (hi - lo)/2;
long val = (long) Math.pow(k, mid);
if (val <= n) {
largestPower = mid;
lo = mid + 1;
} else {
hi = mid - 1;
}
}
return largestPower;
}
static String bitSetToString(int set) {
// We have to print all the elements that are present
// in the set.
StringBuilder sb = new StringBuilder();
for (int i = 0; i < 30; i++) {
if (((set >> i) & 1) == 1) {
// The 'i'th bit is on meaning that the element 'i' is
// present in the set.
sb.append((i + 1) + " ");
}
}
sb.append("\n");
return sb.toString();
}
static String displayBitSet(long set) {
// We have to print all the elements that are present
// in the set.
StringBuilder sb = new StringBuilder();
for (int i = 0; i < 60; i++) {
if (((set >> i) & 1) == 1) {
// The 'i'th bit is on meaning that the element 'i' is
// present in the set.
sb.append((i + 1) + " ");
}
}
sb.append("\n");
return sb.toString();
}
static int addToBitSet(int set, int element) {
set = (set) | (1 << (element - 1));
return set;
}
static int removeFromBitSet(int set, int element) {
// Checking whether the bit is present.
if ((set & (1 << (element - 1))) == 0) return set;
set = set ^ (1 << (element - 1));
return set;
}
// Returns map of factor and its power in the number.
static TreeMap<Long, Integer> primeFactorization(long num) {
TreeMap<Long, Integer> map = new TreeMap<>();
while (num % 2 == 0) {
num /= 2;
Integer pwrCnt = map.get(2L);
map.put(2L, pwrCnt != null ? pwrCnt + 1 : 1);
}
for (long i = 3; i * i <= num; i += 2) {
while (num % i == 0) {
num /= i;
Integer pwrCnt = map.get(i);
map.put(i, pwrCnt != null ? pwrCnt + 1 : 1);
}
}
// If the number is prime, we have to add it to the
// map.
if (num != 1)
map.put(num, 1);
return map;
}
// Returns map of factor and its power in the number.
static TreeMap<Integer, Integer> primeFactorization(int num) {
TreeMap<Integer, Integer> map = new TreeMap<>();
while (num % 2 == 0) {
num /= 2;
Integer pwrCnt = map.get(2);
map.put(2, pwrCnt != null ? pwrCnt + 1 : 1);
}
for (int i = 3; i * i <= num; i += 2) {
while (num % i == 0) {
num /= i;
Integer pwrCnt = map.get(i);
map.put(i, pwrCnt != null ? pwrCnt + 1 : 1);
}
}
// If the number is prime, we have to add it to the
// map.
if (num != 1)
map.put(num, 1);
return map;
}
static Set<Long> divisors(long num) {
Set<Long> divisors = new TreeSet<Long>();
divisors.add(1L);
divisors.add(num);
for (long i = 2; i * i <= num; i++) {
if (num % i == 0) {
divisors.add(num/i);
divisors.add(i);
}
}
return divisors;
}
static void dfs(int node, boolean[] marked, ArrayList<Integer>[] adj) {
if (marked[node]) return;
marked[node] = true;
for (int adjc : adj[node])
dfs(adjc, marked, adj);
}
// Returns the index of the first element
// larger than or equal to val.
static int bsearch(int[] arr, int val, int lo, int hi) {
int idx = -1;
while (lo <= hi) {
int mid = lo + (hi - lo)/2;
if (arr[mid] >= val) {
idx = mid;
hi = mid - 1;
} else
lo = mid + 1;
}
return idx;
}
static int bsearch(long[] arr, long val, int lo, int hi) {
int idx = -1;
while (lo <= hi) {
int mid = lo + (hi - lo)/2;
if (arr[mid] >= val) {
idx = mid;
hi = mid - 1;
} else
lo = mid + 1;
}
return idx;
}
// Returns the index of the last element
// smaller than or equal to val.
static int bsearch(long[] arr, long val, int lo, int hi, boolean sMode) {
int idx = -1;
while (lo <= hi) {
int mid = lo + (hi - lo)/2;
if (arr[mid] > val) {
hi = mid - 1;
} else {
idx = mid;
lo = mid + 1;
}
}
return idx;
}
static int bsearch(int[] arr, long val, int lo, int hi, boolean sMode) {
int idx = -1;
while (lo <= hi) {
int mid = lo + (hi - lo)/2;
if (arr[mid] > val) {
hi = mid - 1;
} else {
idx = mid;
lo = mid + 1;
}
}
return idx;
}
static long factorial(long n) {
if (n <= 1)
return 1;
long factorial = 1;
for (int i = 1; i <= n; i++)
factorial = mod(factorial * i);
return factorial;
}
static long factorialInDivision(long a, long b) {
if (a == b)
return 1;
if (b < a) {
long temp = a;
a = b;
b = temp;
}
long factorial = 1;
for (long i = a + 1; i <= b; i++)
factorial = mod(factorial * i);
return factorial;
}
static BigInteger factorialInDivision(BigInteger a, BigInteger b) {
if (a.equals(b))
return BigInteger.ONE;
return a.multiply(factorialInDivision(a.subtract(BigInteger.ONE), b));
}
static long nCr(long n, long r) {
long p = gigamod;
// Base case
if (r == 0)
return 1;
// Fill factorial array so that we
// can find all factorial of r, n
// and n-r
long fac[] = new long[(int)n + 1];
fac[0] = 1;
for (int i = 1; i <= n; i++)
fac[i] = fac[i - 1] * i % p;
return (fac[(int)n] * modInverse(fac[(int)r], p) % p
* modInverse(fac[(int)n - (int)r], p) % p) % p;
}
static long modInverse(long n, long p) {
return power(n, p - 2, p);
}
static long power(long x, long y, long p) {
long res = 1; // Initialize result
x = x % p; // Update x if it is more than or
// equal to p
while (y > 0) {
// If y is odd, multiply x with result
if ((y & 1)==1)
res = (res * x) % p;
// y must be even now
y = y >> 1; // y = y/2
x = (x * x) % p;
}
return res;
}
static long nPr(long n, long r) {
return factorialInDivision(n, n - r);
}
static int log2(long n) {
return (int)(Math.log(n) / Math.log(2));
}
static double log2(long n, boolean doubleMode) {
return (Math.log(n) / Math.log(2));
}
static int logk(long n, long k) {
return (int)(Math.log(n) / Math.log(k));
}
// Sieve of Eratosthenes:
static boolean[] primeGenerator(int upto) {
boolean[] isPrime = new boolean[upto + 1];
Arrays.fill(isPrime, true);
isPrime[1] = isPrime[0] = false;
for (long i = 2; i * i < upto + 1; i++)
if (isPrime[(int) i])
// Mark all the multiples greater than or equal
// to the square of i to be false.
for (long j = i; j * i < upto + 1; j++)
isPrime[(int) j * (int) i] = false;
return isPrime;
}
static int gcd(int a, int b) {
if (b == 0) {
return a;
} else {
return gcd(b, a % b);
}
}
static long gcd(long a, long b) {
if (b == 0) {
return a;
} else {
return gcd(b, a % b);
}
}
static int gcd(int[] arr) {
int n = arr.length;
int gcd = arr[0];
for (int i = 1; i < n; i++) {
gcd = gcd(gcd, arr[i]);
}
return gcd;
}
static long gcd(long[] arr) {
int n = arr.length;
long gcd = arr[0];
for (int i = 1; i < n; i++) {
gcd = gcd(gcd, arr[i]);
}
return gcd;
}
static long lcm(int[] arr) {
int lcm = arr[0];
int n = arr.length;
for (int i = 1; i < n; i++) {
lcm = (lcm * arr[i]) / gcd(lcm, arr[i]);
}
return lcm;
}
static long lcm(long[] arr) {
long lcm = arr[0];
int n = arr.length;
for (int i = 1; i < n; i++) {
lcm = (lcm * arr[i]) / gcd(lcm, arr[i]);
}
return lcm;
}
static long lcm(int a, int b) {
return (a * b)/gcd(a, b);
}
static long lcm(long a, long b) {
return (a * b)/gcd(a, b);
}
static boolean less(int a, int b) {
return a < b ? true : false;
}
static boolean isSorted(int[] a) {
for (int i = 1; i < a.length; i++) {
if (less(a[i], a[i - 1]))
return false;
}
return true;
}
static boolean isSorted(long[] a) {
for (int i = 1; i < a.length; i++) {
if (a[i] < a[i - 1])
return false;
}
return true;
}
static void swap(int a, int b) {
int temp = a;
a = b;
b = temp;
}
static void swap(long a, long b) {
long temp = a;
a = b;
b = temp;
}
static void swap(double a, double b) {
double temp = a;
a = b;
b = temp;
}
static void swap(int[] a, int i, int j) {
int temp = a[i];
a[i] = a[j];
a[j] = temp;
}
static void swap(long[] a, int i, int j) {
long temp = a[i];
a[i] = a[j];
a[j] = temp;
}
static void swap(double[] a, int i, int j) {
double temp = a[i];
a[i] = a[j];
a[j] = temp;
}
static void swap(char[] a, int i, int j) {
char temp = a[i];
a[i] = a[j];
a[j] = temp;
}
static void sort(int[] arr) {
shuffleArray(arr, 0, arr.length - 1);
Arrays.sort(arr);
}
static void sort(char[] arr) {
shuffleArray(arr, 0, arr.length - 1);
Arrays.sort(arr);
}
static void sort(long[] arr) {
shuffleArray(arr, 0, arr.length - 1);
Arrays.sort(arr);
}
static void sort(double[] arr) {
shuffleArray(arr, 0, arr.length - 1);
Arrays.sort(arr);
}
static void reverseSort(int[] arr) {
shuffleArray(arr, 0, arr.length - 1);
Arrays.sort(arr);
int n = arr.length;
for (int i = 0; i < n/2; i++)
swap(arr, i, n - 1 - i);
}
static void reverseSort(char[] arr) {
shuffleArray(arr, 0, arr.length - 1);
Arrays.sort(arr);
int n = arr.length;
for (int i = 0; i < n/2; i++)
swap(arr, i, n - 1 - i);
}
static void reverseSort(long[] arr) {
shuffleArray(arr, 0, arr.length - 1);
Arrays.sort(arr);
int n = arr.length;
for (int i = 0; i < n/2; i++)
swap(arr, i, n - 1 - i);
}
static void reverseSort(double[] arr) {
shuffleArray(arr, 0, arr.length - 1);
Arrays.sort(arr);
int n = arr.length;
for (int i = 0; i < n/2; i++)
swap(arr, i, n - 1 - i);
}
static void shuffleArray(long[] arr, int startPos, int endPos) {
Random rnd = new Random();
for (int i = startPos; i < endPos; ++i) {
long tmp = arr[i];
int randomPos = i + rnd.nextInt(endPos - i);
arr[i] = arr[randomPos];
arr[randomPos] = tmp;
}
}
static void shuffleArray(int[] arr, int startPos, int endPos) {
Random rnd = new Random();
for (int i = startPos; i < endPos; ++i) {
int tmp = arr[i];
int randomPos = i + rnd.nextInt(endPos - i);
arr[i] = arr[randomPos];
arr[randomPos] = tmp;
}
}
static void shuffleArray(double[] arr, int startPos, int endPos) {
Random rnd = new Random();
for (int i = startPos; i < endPos; ++i) {
double tmp = arr[i];
int randomPos = i + rnd.nextInt(endPos - i);
arr[i] = arr[randomPos];
arr[randomPos] = tmp;
}
}
private static void shuffleArray(char[] arr, int startPos, int endPos) {
Random rnd = new Random();
for (int i = startPos; i < endPos; ++i) {
char tmp = arr[i];
int randomPos = i + rnd.nextInt(endPos - i);
arr[i] = arr[randomPos];
arr[randomPos] = tmp;
}
}
static boolean isPrime(int n) {
if (n <= 1)
return false;
if (n <= 3)
return true;
if (n % 2 == 0 || n % 3 == 0)
return false;
for (int i = 5; i * i <= n; i = i + 6)
if (n % i == 0 || n % (i + 2) == 0)
return false;
return true;
}
static String toString(int[] dp) {
StringBuilder sb = new StringBuilder();
for (int i = 0; i < dp.length; i++)
sb.append(dp[i] + " ");
return sb.toString();
}
static String toString(boolean[] dp) {
StringBuilder sb = new StringBuilder();
for (int i = 0; i < dp.length; i++)
sb.append(dp[i] + " ");
return sb.toString();
}
static String toString(long[] dp) {
StringBuilder sb = new StringBuilder();
for (int i = 0; i < dp.length; i++)
sb.append(dp[i] + " ");
return sb.toString();
}
static String toString(char[] dp) {
StringBuilder sb = new StringBuilder();
for (int i = 0; i < dp.length; i++)
sb.append(dp[i] + "");
return sb.toString();
}
static String toString(int[][] dp) {
StringBuilder sb = new StringBuilder();
for (int i = 0; i < dp.length; i++) {
for (int j = 0; j < dp[i].length; j++) {
sb.append(dp[i][j] + "");
}
sb.append('\n');
}
return sb.toString();
}
static String toString(long[][] dp) {
StringBuilder sb = new StringBuilder();
for (int i = 0; i < dp.length; i++) {
for (int j = 0; j < dp[i].length; j++) {
sb.append(dp[i][j] + " ");
}
sb.append('\n');
}
return sb.toString();
}
static String toString(double[][] dp) {
StringBuilder sb = new StringBuilder();
for (int i = 0; i < dp.length; i++) {
for (int j = 0; j < dp[i].length; j++) {
sb.append(dp[i][j] + " ");
}
sb.append('\n');
}
return sb.toString();
}
static String toString(char[][] dp) {
StringBuilder sb = new StringBuilder();
for (int i = 0; i < dp.length; i++) {
for (int j = 0; j < dp[i].length; j++) {
sb.append(dp[i][j] + " ");
}
sb.append('\n');
}
return sb.toString();
}
static char toChar(int i) {
return (char) (i + 48);
}
static long mod(long a, long m) {
return (a%m + m) % m;
}
static long mod(long num) {
return (num % gigamod + gigamod) % gigamod;
}
// Uses weighted quick-union with path compression.
static class UnionFind {
private int[] parent; // parent[i] = parent of i
private int[] size; // size[i] = number of sites in tree rooted at i
// Note: not necessarily correct if i is not a root node
private int count; // number of components
public UnionFind(int n) {
count = n;
parent = new int[n];
size = new int[n];
for (int i = 0; i < n; i++) {
parent[i] = i;
size[i] = 1;
}
}
// Number of connected components.
public int count() {
return count;
}
// Find the root of p.
public int find(int p) {
int root = p;
while (root != parent[root])
root = parent[root];
while (p != root) {
int newp = parent[p];
parent[p] = root;
p = newp;
}
return root;
}
public boolean connected(int p, int q) {
return find(p) == find(q);
}
public int numConnectedTo(int node) {
return size[find(node)];
}
// Weighted union.
public void union(int p, int q) {
int rootP = find(p);
int rootQ = find(q);
if (rootP == rootQ) return;
// make smaller root point to larger one
if (size[rootP] < size[rootQ]) {
parent[rootP] = rootQ;
size[rootQ] += size[rootP];
}
else {
parent[rootQ] = rootP;
size[rootP] += size[rootQ];
}
count--;
}
public static int[] connectedComponents(UnionFind uf) {
// We can do this in nlogn.
int n = uf.size.length;
int[] compoColors = new int[n];
for (int i = 0; i < n; i++)
compoColors[i] = uf.find(i);
HashMap<Integer, Integer> oldToNew = new HashMap<>();
int newCtr = 0;
for (int i = 0; i < n; i++) {
int thisOldColor = compoColors[i];
Integer thisNewColor = oldToNew.get(thisOldColor);
if (thisNewColor == null)
thisNewColor = newCtr++;
oldToNew.put(thisOldColor, thisNewColor);
compoColors[i] = thisNewColor;
}
return compoColors;
}
}
static class UGraph {
// Adjacency list.
private TreeSet<Integer>[] adj;
private static final String NEWLINE = "\n";
private int E;
public UGraph(int V) {
adj = (TreeSet<Integer>[]) new TreeSet[V];
E = 0;
for (int i = 0; i < V; i++)
adj[i] = new TreeSet<Integer>();
}
public void addEdge(int from, int to) {
if (adj[from].contains(to)) return;
E++;
adj[from].add(to);
adj[to].add(from);
}
public TreeSet<Integer> adj(int from) {
return adj[from];
}
public int V() {
return adj.length;
}
public int E() {
return E;
}
public String toString() {
StringBuilder s = new StringBuilder();
s.append(V() + " vertices, " + E() + " edges " + NEWLINE);
for (int v = 0; v < V(); v++) {
s.append(v + ": ");
for (int w : adj[v]) {
s.append(w + " ");
}
s.append(NEWLINE);
}
return s.toString();
}
public static void dfsMark(int current, boolean[] marked, UGraph g) {
if (marked[current]) return;
marked[current] = true;
Iterable<Integer> adj = g.adj(current);
for (int adjc : adj)
dfsMark(adjc, marked, g);
}
public static void dfsMark(int current, int from, long[] distTo, boolean[] marked, UGraph g, ArrayList<Integer> endPoints) {
if (marked[current]) return;
marked[current] = true;
if (from != -1)
distTo[current] = distTo[from] + 1;
TreeSet<Integer> adj = g.adj(current);
int alreadyMarkedCtr = 0;
for (int adjc : adj) {
if (marked[adjc]) alreadyMarkedCtr++;
dfsMark(adjc, current, distTo, marked, g, endPoints);
}
if (alreadyMarkedCtr == adj.size())
endPoints.add(current);
}
public static void bfsOrder(int current, UGraph g) {
}
public static void dfsMark(int current, int[] colorIds, int color, UGraph g) {
if (colorIds[current] != -1) return;
colorIds[current] = color;
Iterable<Integer> adj = g.adj(current);
for (int adjc : adj)
dfsMark(adjc, colorIds, color, g);
}
public static int[] connectedComponents(UGraph g) {
int n = g.V();
int[] componentId = new int[n];
Arrays.fill(componentId, -1);
int colorCtr = 0;
for (int i = 0; i < n; i++) {
if (componentId[i] != -1) continue;
dfsMark(i, componentId, colorCtr, g);
colorCtr++;
}
return componentId;
}
public static boolean hasCycle(UGraph ug) {
int n = ug.V();
boolean[] marked = new boolean[n];
boolean[] hasCycleFirst = new boolean[1];
for (int i = 0; i < n; i++) {
if (marked[i]) continue;
hcDfsMark(i, ug, marked, hasCycleFirst, -1);
}
return hasCycleFirst[0];
}
// Helper for hasCycle.
private static void hcDfsMark(int current, UGraph ug, boolean[] marked, boolean[] hasCycleFirst, int parent) {
if (marked[current]) return;
if (hasCycleFirst[0]) return;
marked[current] = true;
TreeSet<Integer> adjc = ug.adj(current);
for (int adj : adjc) {
if (marked[adj] && adj != parent && parent != -1) {
hasCycleFirst[0] = true;
return;
}
hcDfsMark(adj, ug, marked, hasCycleFirst, current);
}
}
}
static class Digraph {
// Adjacency list.
private HashSet<Integer>[] adj;
private static final String NEWLINE = "\n";
private int E;
public Digraph(int V) {
adj = (HashSet<Integer>[]) new HashSet[V];
E = 0;
for (int i = 0; i < V; i++)
adj[i] = new HashSet<Integer>();
}
public void addEdge(int from, int to) {
if (adj[from].contains(to)) return;
E++;
adj[from].add(to);
}
public HashSet<Integer> adj(int from) {
return adj[from];
}
public int V() {
return adj.length;
}
public int E() {
return E;
}
public String toString() {
StringBuilder s = new StringBuilder();
s.append(V() + " vertices, " + E() + " edges " + NEWLINE);
for (int v = 0; v < V(); v++) {
s.append(v + ": ");
for (int w : adj[v]) {
s.append(w + " ");
}
s.append(NEWLINE);
}
return s.toString();
}
public static void dfsMark(int source, boolean[] marked, Digraph g) {
if (marked[source]) return;
marked[source] = true;
Iterable<Integer> adj = g.adj(source);
for (int adjc : adj)
dfsMark(adjc, marked, g);
}
public static void bfsOrder(int source, Digraph g) {
}
private static void dfsMark(int source, int[] colorIds, int color, Digraph g) {
if (colorIds[source] != -1) return;
colorIds[source] = color;
Iterable<Integer> adj = g.adj(source);
for (int adjc : adj)
dfsMark(adjc, colorIds, color, g);
}
public static int[] connectedComponents(Digraph g) {
int n = g.V();
int[] componentId = new int[n];
Arrays.fill(componentId, -1);
int colorCtr = 0;
for (int i = 0; i < n; i++) {
if (componentId[i] != -1) continue;
dfsMark(i, componentId, colorCtr, g);
colorCtr++;
}
return componentId;
}
public static Stack<Integer> topologicalSort(Digraph dg)
{
// dg has to be a directed acyclic graph.
// We'll have to run dfs on the digraph and push the deepest nodes on stack first.
// We'll need a Stack<Integer> and a int[] marked.
Stack<Integer> topologicalStack = new Stack<Integer>();
boolean[] marked = new boolean[dg.V()];
// Calling dfs
for (int i = 0; i < dg.V(); i++)
{
if (!marked[i]) runDfs(dg, topologicalStack, marked, i);
}
return topologicalStack;
}
static void runDfs(Digraph dg, Stack<Integer> topologicalStack, boolean[] marked, int source)
{
marked[source] = true;
for (Integer adjVertex : dg.adj(source))
{
if (!marked[adjVertex]) runDfs(dg, topologicalStack, marked, adjVertex);
}
topologicalStack.add(source);
}
}
static class FastReader {
private BufferedReader bfr;
private StringTokenizer st;
public FastReader() {
bfr = new BufferedReader(new InputStreamReader(System.in));
}
String next() {
if (st == null || !st.hasMoreElements()) {
try {
st = new StringTokenizer(bfr.readLine());
} catch (IOException e) {
e.printStackTrace();
}
}
return st.nextToken();
}
int nextInt() {
return Integer.parseInt(next());
}
long nextLong() {
return Long.parseLong(next());
}
double nextDouble() {
return Double.parseDouble(next());
}
char nextChar() {
return next().toCharArray()[0];
}
String nextString() {
return next();
}
int[] nextIntArray(int n) {
int[] arr = new int[n];
for (int i = 0; i < n; i++)
arr[i] = nextInt();
return arr;
}
int[] nextOneIntArray(int n) {
int[] arr = new int[n + 1];
for (int i = 1; i < n; i++)
arr[i] = nextInt();
return arr;
}
double[] nextDoubleArray(int n) {
double[] arr = new double[n];
for (int i = 0; i < arr.length; i++)
arr[i] = nextDouble();
return arr;
}
long[] nextLongArray(int n) {
long[] arr = new long[n];
for (int i = 0; i < n; i++)
arr[i] = nextLong();
return arr;
}
/*public char[] nextCharArray(int n) {
char[] chars = new char[n];
for (int i = 0; i < n; i++)
chars[i] = fr.nextChar();
return chars;
}*/
}
private static class IndexMaxPQ<Key extends Comparable<Key>> implements Iterable<Integer> {
private int maxN; // maximum number of elements on PQ
private int n; // number of elements on PQ
private int[] pq; // binary heap using 1-based indexing
private int[] qp; // inverse of pq - qp[pq[i]] = pq[qp[i]] = i
private Key[] keys; // keys[i] = priority of i
/**
* Initializes an empty indexed priority queue with indices between {@code 0}
* and {@code maxN - 1}.
*
* @param maxN the keys on this priority queue are index from {@code 0} to {@code maxN - 1}
* @throws IllegalArgumentException if {@code maxN < 0}
*/
public IndexMaxPQ(int maxN) {
if (maxN < 0) throw new IllegalArgumentException();
this.maxN = maxN;
n = 0;
keys = (Key[]) new Comparable[maxN + 1]; // make this of length maxN??
pq = new int[maxN + 1];
qp = new int[maxN + 1]; // make this of length maxN??
for (int i = 0; i <= maxN; i++)
qp[i] = -1;
}
/**
* Returns true if this priority queue is empty.
*
* @return {@code true} if this priority queue is empty;
* {@code false} otherwise
*/
public boolean isEmpty() {
return n == 0;
}
/**
* Is {@code i} an index on this priority queue?
*
* @param i an index
* @return {@code true} if {@code i} is an index on this priority queue;
* {@code false} otherwise
* @throws IllegalArgumentException unless {@code 0 <= i < maxN}
*/
public boolean contains(int i) {
validateIndex(i);
return qp[i] != -1;
}
/**
* Returns the number of keys on this priority queue.
*
* @return the number of keys on this priority queue
*/
public int size() {
return n;
}
/**
* Associate key with index i.
*
* @param i an index
* @param key the key to associate with index {@code i}
* @throws IllegalArgumentException unless {@code 0 <= i < maxN}
* @throws IllegalArgumentException if there already is an item
* associated with index {@code i}
*/
public void insert(int i, Key key) {
validateIndex(i);
if (contains(i)) throw new IllegalArgumentException("index is already in the priority queue");
n++;
qp[i] = n;
pq[n] = i;
keys[i] = key;
swim(n);
}
/**
* Returns an index associated with a maximum key.
*
* @return an index associated with a maximum key
* @throws NoSuchElementException if this priority queue is empty
*/
public int maxIndex() {
if (n == 0) throw new NoSuchElementException("Priority queue underflow");
return pq[1];
}
/**
* Returns a maximum key.
*
* @return a maximum key
* @throws NoSuchElementException if this priority queue is empty
*/
public Key maxKey() {
if (n == 0) throw new NoSuchElementException("Priority queue underflow");
return keys[pq[1]];
}
/**
* Removes a maximum key and returns its associated index.
*
* @return an index associated with a maximum key
* @throws NoSuchElementException if this priority queue is empty
*/
public int delMax() {
if (n == 0) throw new NoSuchElementException("Priority queue underflow");
int max = pq[1];
exch(1, n--);
sink(1);
assert pq[n+1] == max;
qp[max] = -1; // delete
keys[max] = null; // to help with garbage collection
pq[n+1] = -1; // not needed
return max;
}
/**
* Returns the key associated with index {@code i}.
*
* @param i the index of the key to return
* @return the key associated with index {@code i}
* @throws IllegalArgumentException unless {@code 0 <= i < maxN}
* @throws NoSuchElementException no key is associated with index {@code i}
*/
public Key keyOf(int i) {
validateIndex(i);
if (!contains(i)) throw new NoSuchElementException("index is not in the priority queue");
else return keys[i];
}
/**
* Change the key associated with index {@code i} to the specified value.
*
* @param i the index of the key to change
* @param key change the key associated with index {@code i} to this key
* @throws IllegalArgumentException unless {@code 0 <= i < maxN}
*/
public void changeKey(int i, Key key) {
validateIndex(i);
if (!contains(i)) throw new NoSuchElementException("index is not in the priority queue");
keys[i] = key;
swim(qp[i]);
sink(qp[i]);
}
/**
* Change the key associated with index {@code i} to the specified value.
*
* @param i the index of the key to change
* @param key change the key associated with index {@code i} to this key
* @throws IllegalArgumentException unless {@code 0 <= i < maxN}
* @deprecated Replaced by {@code changeKey(int, Key)}.
*/
@Deprecated
public void change(int i, Key key) {
validateIndex(i);
changeKey(i, key);
}
/**
* Increase the key associated with index {@code i} to the specified value.
*
* @param i the index of the key to increase
* @param key increase the key associated with index {@code i} to this key
* @throws IllegalArgumentException unless {@code 0 <= i < maxN}
* @throws IllegalArgumentException if {@code key <= keyOf(i)}
* @throws NoSuchElementException no key is associated with index {@code i}
*/
public void increaseKey(int i, Key key) {
validateIndex(i);
if (!contains(i)) throw new NoSuchElementException("index is not in the priority queue");
if (keys[i].compareTo(key) == 0)
throw new IllegalArgumentException("Calling increaseKey() with a key equal to the key in the priority queue");
if (keys[i].compareTo(key) > 0)
throw new IllegalArgumentException("Calling increaseKey() with a key that is strictly less than the key in the priority queue");
keys[i] = key;
swim(qp[i]);
}
/**
* Decrease the key associated with index {@code i} to the specified value.
*
* @param i the index of the key to decrease
* @param key decrease the key associated with index {@code i} to this key
* @throws IllegalArgumentException unless {@code 0 <= i < maxN}
* @throws IllegalArgumentException if {@code key >= keyOf(i)}
* @throws NoSuchElementException no key is associated with index {@code i}
*/
public void decreaseKey(int i, Key key) {
validateIndex(i);
if (!contains(i)) throw new NoSuchElementException("index is not in the priority queue");
if (keys[i].compareTo(key) == 0)
throw new IllegalArgumentException("Calling decreaseKey() with a key equal to the key in the priority queue");
if (keys[i].compareTo(key) < 0)
throw new IllegalArgumentException("Calling decreaseKey() with a key that is strictly greater than the key in the priority queue");
keys[i] = key;
sink(qp[i]);
}
/**
* Remove the key on the priority queue associated with index {@code i}.
*
* @param i the index of the key to remove
* @throws IllegalArgumentException unless {@code 0 <= i < maxN}
* @throws NoSuchElementException no key is associated with index {@code i}
*/
public void delete(int i) {
validateIndex(i);
if (!contains(i)) throw new NoSuchElementException("index is not in the priority queue");
int index = qp[i];
exch(index, n--);
swim(index);
sink(index);
keys[i] = null;
qp[i] = -1;
}
// throw an IllegalArgumentException if i is an invalid index
private void validateIndex(int i) {
if (i < 0) throw new IllegalArgumentException("index is negative: " + i);
if (i >= maxN) throw new IllegalArgumentException("index >= capacity: " + i);
}
/***************************************************************************
* General helper functions.
***************************************************************************/
private boolean less(int i, int j) {
return keys[pq[i]].compareTo(keys[pq[j]]) < 0;
}
private void exch(int i, int j) {
int swap = pq[i];
pq[i] = pq[j];
pq[j] = swap;
qp[pq[i]] = i;
qp[pq[j]] = j;
}
/***************************************************************************
* Heap helper functions.
***************************************************************************/
private void swim(int k) {
while (k > 1 && less(k/2, k)) {
exch(k, k/2);
k = k/2;
}
}
private void sink(int k) {
while (2*k <= n) {
int j = 2*k;
if (j < n && less(j, j+1)) j++;
if (!less(k, j)) break;
exch(k, j);
k = j;
}
}
/**
* Returns an iterator that iterates over the keys on the
* priority queue in descending order.
* The iterator doesn't implement {@code remove()} since it's optional.
*
* @return an iterator that iterates over the keys in descending order
*/
public Iterator<Integer> iterator() {
return new HeapIterator();
}
private class HeapIterator implements Iterator<Integer> {
// create a new pq
private IndexMaxPQ<Key> copy;
// add all elements to copy of heap
// takes linear time since already in heap order so no keys move
public HeapIterator() {
copy = new IndexMaxPQ<Key>(pq.length - 1);
for (int i = 1; i <= n; i++)
copy.insert(pq[i], keys[pq[i]]);
}
public boolean hasNext() { return !copy.isEmpty(); }
public void remove() { throw new UnsupportedOperationException(); }
public Integer next() {
if (!hasNext()) throw new NoSuchElementException();
return copy.delMax();
}
}
/*public static void main(String[] args) {
// insert a bunch of strings
String[] strings = { "it", "was", "the", "best", "of", "times", "it", "was", "the", "worst" };
IndexMaxPQ<String> pq = new IndexMaxPQ<String>(strings.length);
for (int i = 0; i < strings.length; i++) {
pq.insert(i, strings[i]);
}
// print each key using the iterator
for (int i : pq) {
StdOut.println(i + " " + strings[i]);
}
StdOut.println();
// increase or decrease the key
for (int i = 0; i < strings.length; i++) {
if (StdRandom.uniform() < 0.5)
pq.increaseKey(i, strings[i] + strings[i]);
else
pq.decreaseKey(i, strings[i].substring(0, 1));
}
// delete and print each key
while (!pq.isEmpty()) {
String key = pq.maxKey();
int i = pq.delMax();
StdOut.println(i + " " + key);
}
StdOut.println();
// reinsert the same strings
for (int i = 0; i < strings.length; i++) {
pq.insert(i, strings[i]);
}
// delete them in random order
int[] perm = new int[strings.length];
for (int i = 0; i < strings.length; i++)
perm[i] = i;
StdRandom.shuffle(perm);
for (int i = 0; i < perm.length; i++) {
String key = pq.keyOf(perm[i]);
pq.delete(perm[i]);
StdOut.println(perm[i] + " " + key);
}
}*/
}
public static class IndexMinPQ<Key extends Comparable<Key>> implements Iterable<Integer> {
private int maxN; // maximum number of elements on PQ
private int n; // number of elements on PQ
private int[] pq; // binary heap using 1-based indexing
private int[] qp; // inverse of pq - qp[pq[i]] = pq[qp[i]] = i
private Key[] keys; // keys[i] = priority of i
/**
* Initializes an empty indexed priority queue with indices between {@code 0}
* and {@code maxN - 1}.
* @param maxN the keys on this priority queue are index from {@code 0}
* {@code maxN - 1}
* @throws IllegalArgumentException if {@code maxN < 0}
*/
public IndexMinPQ(int maxN) {
if (maxN < 0) throw new IllegalArgumentException();
this.maxN = maxN;
n = 0;
keys = (Key[]) new Comparable[maxN + 1]; // make this of length maxN??
pq = new int[maxN + 1];
qp = new int[maxN + 1]; // make this of length maxN??
for (int i = 0; i <= maxN; i++)
qp[i] = -1;
}
/**
* Returns true if this priority queue is empty.
*
* @return {@code true} if this priority queue is empty;
* {@code false} otherwise
*/
public boolean isEmpty() {
return n == 0;
}
/**
* Is {@code i} an index on this priority queue?
*
* @param i an index
* @return {@code true} if {@code i} is an index on this priority queue;
* {@code false} otherwise
* @throws IllegalArgumentException unless {@code 0 <= i < maxN}
*/
public boolean contains(int i) {
validateIndex(i);
return qp[i] != -1;
}
/**
* Returns the number of keys on this priority queue.
*
* @return the number of keys on this priority queue
*/
public int size() {
return n;
}
/**
* Associates key with index {@code i}.
*
* @param i an index
* @param key the key to associate with index {@code i}
* @throws IllegalArgumentException unless {@code 0 <= i < maxN}
* @throws IllegalArgumentException if there already is an item associated
* with index {@code i}
*/
public void insert(int i, Key key) {
validateIndex(i);
if (contains(i)) throw new IllegalArgumentException("index is already in the priority queue");
n++;
qp[i] = n;
pq[n] = i;
keys[i] = key;
swim(n);
}
/**
* Returns an index associated with a minimum key.
*
* @return an index associated with a minimum key
* @throws NoSuchElementException if this priority queue is empty
*/
public int minIndex() {
if (n == 0) throw new NoSuchElementException("Priority queue underflow");
return pq[1];
}
/**
* Returns a minimum key.
*
* @return a minimum key
* @throws NoSuchElementException if this priority queue is empty
*/
public Key minKey() {
if (n == 0) throw new NoSuchElementException("Priority queue underflow");
return keys[pq[1]];
}
/**
* Removes a minimum key and returns its associated index.
* @return an index associated with a minimum key
* @throws NoSuchElementException if this priority queue is empty
*/
public int delMin() {
if (n == 0) throw new NoSuchElementException("Priority queue underflow");
int min = pq[1];
exch(1, n--);
sink(1);
assert min == pq[n+1];
qp[min] = -1; // delete
keys[min] = null; // to help with garbage collection
pq[n+1] = -1; // not needed
return min;
}
/**
* Returns the key associated with index {@code i}.
*
* @param i the index of the key to return
* @return the key associated with index {@code i}
* @throws IllegalArgumentException unless {@code 0 <= i < maxN}
* @throws NoSuchElementException no key is associated with index {@code i}
*/
public Key keyOf(int i) {
validateIndex(i);
if (!contains(i)) throw new NoSuchElementException("index is not in the priority queue");
else return keys[i];
}
/**
* Change the key associated with index {@code i} to the specified value.
*
* @param i the index of the key to change
* @param key change the key associated with index {@code i} to this key
* @throws IllegalArgumentException unless {@code 0 <= i < maxN}
* @throws NoSuchElementException no key is associated with index {@code i}
*/
public void changeKey(int i, Key key) {
validateIndex(i);
if (!contains(i)) throw new NoSuchElementException("index is not in the priority queue");
keys[i] = key;
swim(qp[i]);
sink(qp[i]);
}
/**
* Change the key associated with index {@code i} to the specified value.
*
* @param i the index of the key to change
* @param key change the key associated with index {@code i} to this key
* @throws IllegalArgumentException unless {@code 0 <= i < maxN}
* @deprecated Replaced by {@code changeKey(int, Key)}.
*/
@Deprecated
public void change(int i, Key key) {
changeKey(i, key);
}
/**
* Decrease the key associated with index {@code i} to the specified value.
*
* @param i the index of the key to decrease
* @param key decrease the key associated with index {@code i} to this key
* @throws IllegalArgumentException unless {@code 0 <= i < maxN}
* @throws IllegalArgumentException if {@code key >= keyOf(i)}
* @throws NoSuchElementException no key is associated with index {@code i}
*/
public void decreaseKey(int i, Key key) {
validateIndex(i);
if (!contains(i)) throw new NoSuchElementException("index is not in the priority queue");
if (keys[i].compareTo(key) == 0)
throw new IllegalArgumentException("Calling decreaseKey() with a key equal to the key in the priority queue");
if (keys[i].compareTo(key) < 0)
throw new IllegalArgumentException("Calling decreaseKey() with a key strictly greater than the key in the priority queue");
keys[i] = key;
swim(qp[i]);
}
/**
* Increase the key associated with index {@code i} to the specified value.
*
* @param i the index of the key to increase
* @param key increase the key associated with index {@code i} to this key
* @throws IllegalArgumentException unless {@code 0 <= i < maxN}
* @throws IllegalArgumentException if {@code key <= keyOf(i)}
* @throws NoSuchElementException no key is associated with index {@code i}
*/
public void increaseKey(int i, Key key) {
validateIndex(i);
if (!contains(i)) throw new NoSuchElementException("index is not in the priority queue");
if (keys[i].compareTo(key) == 0)
throw new IllegalArgumentException("Calling increaseKey() with a key equal to the key in the priority queue");
if (keys[i].compareTo(key) > 0)
throw new IllegalArgumentException("Calling increaseKey() with a key strictly less than the key in the priority queue");
keys[i] = key;
sink(qp[i]);
}
/**
* Remove the key associated with index {@code i}.
*
* @param i the index of the key to remove
* @throws IllegalArgumentException unless {@code 0 <= i < maxN}
* @throws NoSuchElementException no key is associated with index {@code i}
*/
public void delete(int i) {
validateIndex(i);
if (!contains(i)) throw new NoSuchElementException("index is not in the priority queue");
int index = qp[i];
exch(index, n--);
swim(index);
sink(index);
keys[i] = null;
qp[i] = -1;
}
// throw an IllegalArgumentException if i is an invalid index
private void validateIndex(int i) {
if (i < 0) throw new IllegalArgumentException("index is negative: " + i);
if (i >= maxN) throw new IllegalArgumentException("index >= capacity: " + i);
}
/***************************************************************************
* General helper functions.
***************************************************************************/
private boolean greater(int i, int j) {
return keys[pq[i]].compareTo(keys[pq[j]]) > 0;
}
private void exch(int i, int j) {
int swap = pq[i];
pq[i] = pq[j];
pq[j] = swap;
qp[pq[i]] = i;
qp[pq[j]] = j;
}
/***************************************************************************
* Heap helper functions.
***************************************************************************/
private void swim(int k) {
while (k > 1 && greater(k/2, k)) {
exch(k, k/2);
k = k/2;
}
}
private void sink(int k) {
while (2*k <= n) {
int j = 2*k;
if (j < n && greater(j, j+1)) j++;
if (!greater(k, j)) break;
exch(k, j);
k = j;
}
}
/***************************************************************************
* Iterators.
***************************************************************************/
/**
* Returns an iterator that iterates over the keys on the
* priority queue in ascending order.
* The iterator doesn't implement {@code remove()} since it's optional.
*
* @return an iterator that iterates over the keys in ascending order
*/
public Iterator<Integer> iterator() { return new HeapIterator(); }
private class HeapIterator implements Iterator<Integer> {
// create a new pq
private IndexMinPQ<Key> copy;
// add all elements to copy of heap
// takes linear time since already in heap order so no keys move
public HeapIterator() {
copy = new IndexMinPQ<Key>(pq.length - 1);
for (int i = 1; i <= n; i++)
copy.insert(pq[i], keys[pq[i]]);
}
public boolean hasNext() { return !copy.isEmpty(); }
public void remove() { throw new UnsupportedOperationException(); }
public Integer next() {
if (!hasNext()) throw new NoSuchElementException();
return copy.delMin();
}
}
/**
* Unit tests the {@code IndexMinPQ} data type.
*
* @param args the command-line arguments
*/
/* public static void main(String[] args) {
// insert a bunch of strings
String[] strings = { "it", "was", "the", "best", "of", "times", "it", "was", "the", "worst" };
IndexMinPQ<String> pq = new IndexMinPQ<String>(strings.length);
for (int i = 0; i < strings.length; i++) {
pq.insert(i, strings[i]);
}
// delete and print each key
while (!pq.isEmpty()) {
int i = pq.delMin();
StdOut.println(i + " " + strings[i]);
}
StdOut.println();
// reinsert the same strings
for (int i = 0; i < strings.length; i++) {
pq.insert(i, strings[i]);
}
// print each key using the iterator
for (int i : pq) {
StdOut.println(i + " " + strings[i]);
}
while (!pq.isEmpty()) {
pq.delMin();
}
}*/
}
}
// NOTES:
// ASCII VALUE OF 'A': 65
// ASCII VALUE OF 'a': 97
// Range of long: 9 * 10^18
// ASCII VALUE OF '0': 48
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
import java.io.*;
import java.util.*;
public class E{
public static void main(String[] args) throws IOException{
BufferedReader br = new BufferedReader(new InputStreamReader(System.in));
StringTokenizer st = new StringTokenizer(br.readLine());
int N = Integer.parseInt(st.nextToken());
int k = Integer.parseInt(st.nextToken());
// Integer b[][] = new Integer[N][3];
PriorityQueue<Integer> pq11 = new PriorityQueue<Integer>();
PriorityQueue<Integer> pq01 = new PriorityQueue<Integer>();
PriorityQueue<Integer> pq10 = new PriorityQueue<Integer>();
for(int i = 0; i<N; ++i){
st = new StringTokenizer(br.readLine());
int t = Integer.parseInt(st.nextToken());
int a = Integer.parseInt(st.nextToken());
int b = Integer.parseInt(st.nextToken());
if(a==1 && b==1){
pq11.add(t);
}else if(a==0 && b==1){
pq01.add(t);
}else if(a==1 && b==0){
pq10.add(t);
}
}
int tot = 0;
boolean f = false;
for(int i = 0; i<k && !f; ++i){
if((pq11.isEmpty() && pq01.isEmpty() && pq10.isEmpty()) ||
(pq11.isEmpty() && (pq10.size()!=pq01.size() || pq10.size()+pq01.size()==0))){
f = true;
continue;
}
if(pq11.isEmpty()){
tot+=pq01.poll()+pq10.poll();
}else{
if(pq01.isEmpty()||pq10.isEmpty()){
tot+=pq11.poll();
}else{
int tmp = pq01.peek()+pq10.peek();
if(pq11.peek()>tmp){
tot+=tmp;
pq01.poll();
pq10.poll();
}else{
tot+=pq11.poll();
}
}
}
}
System.out.println(f?-1:tot);
// Arrays.sort(b, (x, y)->{
// if(x[0]==y[0])
// return -(x[1]+x[2])+(y[1]+y[2]);
// return x[0]-y[0];
// });
// for(int i = 0; )
// int ka = k, kb = k;
// int tot = 0, idx = 0;
// boolean f = false;
// while(ka>0 || kb>0){
// if(idx==N){
// f = true;
// break;
// }
// if(b[idx][1]==0 && b[idx][2]==0){
// idx++;
// continue;
// }
// if(ka<=0){
// if(b[idx][2]==0){
// idx++;
// continue;
// }
// }else if(kb<=0){
// if(b[idx][1]==0){
// idx++;
// continue;
// }
// }
// System.out.println("---"+b[idx][0]+" "+b[idx][1]+" "+b[idx][2]);
// tot+=b[idx][0];
// ka-=b[idx][1];
// kb-=b[idx][2];
// idx++;
// }
// System.out.println(f?-1:tot);
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
import java.util.*;
import java.io.*;
public class e2 {
public static void main(String[] args) throws IOException {
FastScanner sc = new FastScanner(System.in);
PrintWriter out = new PrintWriter(System.out);
int n = sc.nextInt(), m = sc.nextInt(), k = sc.nextInt();
ArrayList<Info> both = new ArrayList<>();
ArrayList<Info> alice = new ArrayList<>();
ArrayList<Info> bob = new ArrayList<>();
ArrayList<Info> all = new ArrayList<>();
for (int i = 0 ; i < n ; i++) {
int time = sc.nextInt(), a = sc.nextInt(), b = sc.nextInt();
if (a == 1 && b == 1) {
both.add(new Info(time,i));
} else if (a == 1) {
alice.add(new Info(time,i));
} else if (b == 1) {
bob.add(new Info(time,i));
}
all.add(new Info(time, i));
}
if (bob.size() + both.size() < k || alice.size() + both.size() < k) {
out.println(-1);
out.close();
return;
}
Collections.sort(both);
Collections.sort(alice);
Collections.sort(bob);
Collections.sort(all);
HashSet<Integer> seen = new HashSet<>();
int ans = 0;
int liked = 0;
for (int i = 0 ; i < both.size() && i < k; i++) {
ans += both.get(i).time;
seen.add(both.get(i).index);
liked++;
}
int read = liked;
int bothPtr = liked-1;
for (int i = 0 ; i < alice.size() && i < bob.size(); i++) {
if (liked < k) {
ans += alice.get(i).time;
ans += bob.get(i).time;
seen.add(alice.get(i).index);
seen.add(bob.get(i).index);
liked++;
read+=2;
} else {
if (bothPtr < 0) {
break;
}
if (read >= m-1) {
break;
}
if (alice.get(i).time + bob.get(i).time < both.get(bothPtr).time) {
ans -= both.get(bothPtr).time;
ans += alice.get(i).time;
ans += bob.get(i).time;
seen.remove(both.get(bothPtr).index);
seen.add(alice.get(i).index);
seen.add(bob.get(i).index);
bothPtr--;
read++;
}
}
}
for (int i = 0 ; i < all.size() && read<m ; i++) {
if (seen.contains(all.get(i).index)) continue;
ans += all.get(i).time;
seen.add(all.get(i).index);
read++;
}
out.println(ans);
for (Integer e : seen) {
out.print((e+1) + " ");
}
out.println();
out.close();
}
static class Info implements Comparable<Info>{
int time, index;
public Info(int t, int i) {
time=t; index=i;
}
@Override
public int compareTo(Info o) {
return time-o.time;
}
}
static class FastScanner {
BufferedReader br;
StringTokenizer st;
public FastScanner(InputStream i) {
br = new BufferedReader(new InputStreamReader(i));
st = new StringTokenizer("");
}
public String next() throws IOException {
if(st.hasMoreTokens())
return st.nextToken();
else
st = new StringTokenizer(br.readLine());
return next();
}
public int nextInt() throws IOException {
return Integer.parseInt(next());
}
public long nextLong() throws IOException {
return Long.parseLong(next());
}
public double nextDouble() throws IOException {
return Double.parseDouble(next());
}
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
import sys, os
from io import BytesIO, IOBase
from math import floor, gcd, fabs, factorial, fmod, sqrt, inf, log
from collections import defaultdict as dd, deque
from heapq import merge, heapify, heappop, heappush, nsmallest
from bisect import bisect_left as bl, bisect_right as br, bisect
# region fastio
BUFSIZE = 8192
class FastIO(IOBase):
newlines = 0
def __init__(self, file):
self._fd = file.fileno()
self.buffer = BytesIO()
self.writable = "x" in file.mode or "r" not in file.mode
self.write = self.buffer.write if self.writable else None
def read(self):
while True:
b = os.read(self._fd, max(os.fstat(self._fd).st_size, BUFSIZE))
if not b:
break
ptr = self.buffer.tell()
self.buffer.seek(0, 2), self.buffer.write(b), self.buffer.seek(ptr)
self.newlines = 0
return self.buffer.read()
def readline(self):
while self.newlines == 0:
b = os.read(self._fd, max(os.fstat(self._fd).st_size, BUFSIZE))
self.newlines = b.count(b"\n") + (not b)
ptr = self.buffer.tell()
self.buffer.seek(0, 2), self.buffer.write(b), self.buffer.seek(ptr)
self.newlines -= 1
return self.buffer.readline()
def flush(self):
if self.writable:
os.write(self._fd, self.buffer.getvalue())
self.buffer.truncate(0), self.buffer.seek(0)
class IOWrapper(IOBase):
def __init__(self, file):
self.buffer = FastIO(file)
self.flush = self.buffer.flush
self.writable = self.buffer.writable
self.write = lambda s: self.buffer.write(s.encode("ascii"))
self.read = lambda: self.buffer.read().decode("ascii")
self.readline = lambda: self.buffer.readline().decode("ascii")
stdin, stdout = IOWrapper(sys.stdin), IOWrapper(sys.stdout)
mod = pow(10, 9) + 7
mod2 = 998244353
def inp(): return stdin.readline().strip()
def iinp(): return int(inp())
def out(var, end="\n"): stdout.write(str(var)+"\n")
def outa(*var, end="\n"): stdout.write(' '.join(map(str, var)) + end)
def lmp(): return list(mp())
def mp(): return map(int, inp().split())
def l1d(n, val=0): return [val for i in range(n)]
def l2d(n, m, val=0): return [l1d(m, val) for j in range(n)]
def ceil(a, b): return (a+b-1)//b
S1 = 'abcdefghijklmnopqrstuvwxyz'
S2 = 'ABCDEFGHIJKLMNOPQRSTUVWXYZ'
def isprime(x):
if x<=1: return False
if x in (2, 3): return True
if x%2 == 0: return False
for i in range(3, int(sqrt(x))+1, 2):
if x%i == 0: return False
return True
n, k = mp()
a, b, ab = l2d(3, 0)
for i in range(n):
x, y, z = mp()
if y==z==1:
ab.append(x)
elif y==1:
a.append(x)
elif x==1:
b.append(x)
if min(len(b), len(a))+len(ab)<k:
print(-1)
exit()
a.sort(reverse=True)
b.sort(reverse=True)
ab.sort(reverse=True)
ans = 0
i = 0
while i < k:
if len(a)==0 or len(b)==0:
ans += ab.pop()
elif len(ab)==0:
ans += a.pop() + b.pop()
else:
x, y, z = a[-1], b[-1], ab[-1]
if x+y < z:
ans += a.pop()+b.pop()
else:
ans += ab.pop()
i+=1
print(ans)
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
cpp
|
#include <bits/stdc++.h>
using namespace std;
const string YESNO[2] = {"NO", "YES"};
const string YesNo[2] = {"No", "Yes"};
const string yesno[2] = {"no", "yes"};
void YES(bool t = 1) { cout << YESNO[t] << "\n"; }
void Yes(bool t = 1) { cout << YesNo[t] << "\n"; }
void yes(bool t = 1) { cout << yesno[t] << "\n"; }
const long long mod = 1e9 + 7;
const long long mxN = 2e6 + 5;
long long n, m, x, y;
array<long long, 3> a[mxN], b[mxN];
string s, t;
void code() {
cin >> n >> m;
vector<long long> v1, v2, v3;
for (long long i = 0; i < n; i++) {
cin >> a[i][0] >> a[i][1] >> a[i][2];
if (a[i][1] && a[i][2]) {
v1.push_back(a[i][0]);
} else if (a[i][1]) {
v2.push_back(a[i][0]);
} else {
v3.push_back(a[i][0]);
}
}
sort(v1.begin(), v1.end());
sort(v2.begin(), v2.end());
sort(v3.begin(), v3.end());
long long ans = 0;
long long k = 0;
long long i = 0, j = 0;
long long x = v1.size(), y = v2.size(), z = v3.size();
while (i < x && j < min(y, z)) {
if (k == m) break;
k++;
if (v1[i] <= v2[j] + v3[j]) {
ans += v1[i++];
} else {
ans += (v2[j] + v3[j]);
j++;
}
}
while (i < x) {
if (k == m) break;
ans += v1[i++];
k++;
}
while (j < min(y, z)) {
if (k == m) break;
ans += v2[j] + v3[j];
k++;
j++;
}
if (k < m)
cout << -1 << "\n";
else
cout << ans << "\n";
}
int32_t main() {
ios_base::sync_with_stdio(false);
cin.tie(NULL);
long long t = 1;
while (t--) code();
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
import sys
import math as mt
input=sys.stdin.buffer.readline
t=1
def Sort(sub_li):
sub_li.sort(key = lambda x: x[0])
return sub_li
#t=int(input())
for _ in range(t):
#n=int(input())
n,k=map(int,input().split())
#l=list(map(int,input().split()))
l2=[]
for ___ in range(n):
time,a,b=map(int,input().split())
l2.append([time,a,b])
l1=Sort(l2)
#print(l1)
ans=0
k1,k2=k,k
res=[]
rem1=[]
rem2=[]
tot1,tot2=0,0
for i in range(n):
if l1[i][1]==1:
tot1+=1
if l1[i][2]==1:
tot2+=1
occ1,occ2=0,0
prev1,pve2=0,0
for i in range(n):
if l1[i][1]!=l1[i][2]:
if l1[i][1]==1:
if k1>0:
prev1=l1[i][0]
occ1+=1
res.append([l1[i][0],1,0])
k1-=1
ans+=l1[i][0]
else:
if k2>0:
prev2=l1[i][0]
occ2+=1
res.append([l1[i][0],0,1])
k2-=1
ans+=l1[i][0]
else:
if l1[i][1]==l1[i][2] and l1[i][1]==1:
if len(res)>=2:
rem1=((tot1-occ1+(res[-1][1]+res[-2][1])))
rem2=((tot2-occ2+(res[-1][2]+res[-2][2])))
rem3=(tot1-occ1)
rem4=(tot2-occ2)
#print(120,res)
#print(121,i,rem1,k1,rem2,k2,rem3,rem4)
if (rem1<k1 or rem2<k2):
occ1+=1
occ2+=1
k1=max(k1-1,0)
k2=max(k2-1,0)
ans+=l1[i][0]
else:
if ((res[-1][0]+res[-2][0])>=l1[i][0] and rem1>=k1 and rem2>=k2):
#print(11,i)
#occ1-=(res[-1][1]+res[-2][1])
#occ2-=(res[-1][2]+res[-2][2])
occ1+=1
occ2+=1
ans-=(res[-1][0]+res[-2][0])
k1=max(k1-1,0)
k2=max(k2-1,0)
occ1+=1
occ2+=1
ans+=l1[i][0]
res.pop()
res.pop()
else:
if k1>0 or k2>0:
if k1==0:
ans-=prev1
if k2==0:
ans-=prev2
ans+=l1[i][0]
k1=max(k1-1,0)
k2=max(k2-1,0)
if k1>0 or k2>0:
print(-1)
else:
print(ans)
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
n,k = map(int,input().split())
U = [];A = [];B = []
for i in range(n):
a,b,c = map(int,input().split())
if(b==1 and c==1):
U.append(a)
elif(b==1 and c==0):
A.append(a)
elif(b==0 and c==1):
B.append(a)
A.sort();B.sort();U.sort()
for i in range(1,len(U)):
U[i]+=U[i-1]
for i in range(1,len(A)):
A[i]+=A[i-1]
for i in range(1,len(B)):
B[i]+=B[i-1]
f_ans = 1e10
cnt = 0
for i in range(len(U)):
cnt = i+1;ans = U[i]
if(k-cnt==0):
f_ans = min(ans,f_ans)
break
if(k-cnt>len(A) or k-cnt >len(B)):
continue
ans += A[k-cnt-1] + B[k-cnt-1]
cnt = k
f_ans = min(f_ans,ans)
if(k-cnt>0):
print("-1")
else:
print(f_ans)
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
t=1
for _ in range(t):
n,k=map(int,input().split())
arr=[]
brr=[]
c=[]
for i in range(n):
t,a,b=map(int,input().split())
if a and b:
c.append(t)
elif a:
arr.append(t)
elif b:
brr.append(t)
arr.sort()
brr.sort()
c.sort()
ans=sum(c)
for i in range(len(c),k):
try:
ans+=arr.pop()
ans+=brr.pop()
except:
print(-1)
exit()
if len(arr) and len(brr):
i=0
j=len(brr)-1
k=0
l1=len(arr)
l2=len(c)
while(True):
if j==-1:
break
if i>=l1:
break
if k>=l2:
break
if arr[i]+brr[j]<c[k]:
ans-=c[k]
ans+=arr[i]
ans+=brr[j]
k+=1
i+=1
j-=1
else:
j-=1
print(ans)
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
cpp
|
#include<bits/stdc++.h>
using namespace std;
//#define LL long long
typedef long long LL;
const LL inf=0x3f3f3f3f3f3f3f3f3f;
LL n,m,k;
vector<pair<LL,LL> >a,b,c,d;
vector<LL> in;
int main()
{
while(~scanf("%lld %lld %lld",&n,&m,&k))
{
a.clear(),b.clear(),c.clear(),d.clear();
LL x,y,z,s;
for(LL i=1;i<=n;i++)
{
scanf("%lld %lld %lld",&x,&y,&z);
if(y==1&&z==0) a.push_back(make_pair(x,i));
if(y==0&&z==1) b.push_back(make_pair(x,i));
if(y==1&&z==1) c.push_back(make_pair(x,i));
if(y==0&&z==0) d.push_back(make_pair(x,i));
}
sort(a.begin(),a.end());
sort(b.begin(),b.end());
sort(c.begin(),c.end());
sort(d.begin(),d.end());
// cout<<a.size()<<' '<<b.size()<<' '<<c.size()<<' '<<d.size()<<endl;
// for(LL i=0;i<a.size();i++) cout<<a[i].first<<' '<<a[i].second<<endl;
// for(LL i=0;i<b.size();i++) cout<<b[i].first<<' '<<b[i].second<<endl;
// for(LL i=0;i<c.size();i++) cout<<c[i].first<<' '<<c[i].second<<endl;
// for(LL i=0;i<d.size();i++) cout<<d[i].first<<' '<<d[i].second<<endl;
LL ans=0;
LL flag=1,in_a=0,in_b=0,in_c=0,in_d=0;
LL cnt_x=k,cnt_y=m-k;//οΏ½οΏ½cnt_x
in.clear();
while(cnt_x>0)
{
if(in_a<a.size()&&in_b<b.size()) x=a[in_a].first+b[in_b].first;
else x=inf;
if(in_c<c.size()) y=c[in_c].first;
else y=inf;
// cout<<x<<' '<<y<<endl;
if(x==inf&&y==inf)
{
flag=0;
break;
}
if(x>y||cnt_y==0)
{
if(y==inf)
{
flag=0;
break;
}
ans+=c[in_c].first;
in.push_back(c[in_c].second);
++in_c;
--cnt_x;
}
else
{
ans+=a[in_a].first+b[in_b].first;
in.push_back(a[in_a].second);
in.push_back(b[in_b].second);
++in_a,++in_b;
--cnt_x,--cnt_y;
if(cnt_y<0)
{
flag=0;
break;
}
}
}
if(!flag)
{
printf("-1\n");
continue;
}
while(cnt_y--)
{
x=inf,y=0;
if(in_a<a.size()&&a[in_a].first<x) x=a[in_a].first,y=1;
if(in_b<b.size()&&b[in_b].first<x) x=b[in_b].first,y=2;
if(in_c<c.size()&&c[in_c].first<x) x=c[in_c].first,y=3;
if(in_d<d.size()&&d[in_d].first<x) x=d[in_d].first,y=4;
if(!y)
{
flag=0;
break;
}
if(y==1) ans+=a[in_a].first,in.push_back(a[in_a].second),++in_a;
if(y==2) ans+=b[in_b].first,in.push_back(b[in_b].second),++in_b;
if(y==3) ans+=c[in_c].first,in.push_back(c[in_c].second),++in_c;
if(y==4) ans+=d[in_d].first,in.push_back(d[in_d].second),++in_d;
}
printf("%lld\n",ans);
for(int i=0;i<in.size();i++) printf("%lld ",in[i]);
printf("\n");
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
import java.io.*;
import java.util.*;
public class E1 implements Comparable<E1>{
static class FastReader
{
BufferedReader br;
StringTokenizer st;
public FastReader()
{
br = new BufferedReader(new
InputStreamReader(System.in));
}
String next()
{
while (st == null || !st.hasMoreElements())
{
try
{
st = new StringTokenizer(br.readLine());
}
catch (IOException e)
{
e.printStackTrace();
}
}
return st.nextToken();
}
int nextInt()
{
return Integer.parseInt(next());
}
long nextLong()
{
return Long.parseLong(next());
}
double nextDouble()
{
return Double.parseDouble(next());
}
String nextLine()
{
String str = "";
try
{
str = br.readLine();
}
catch (IOException e)
{
e.printStackTrace();
}
return str;
}
}
public int t,a,b;
public E1(int t,int a,int b){
this.t=t;
this.a=a;
this.b=b;
}
@Override
public int compareTo(E1 o) {
// TODO Auto-generated method stub
return toString().compareTo(o.toString());
}
public static void main(String[] args) throws NumberFormatException, IOException {
FastReader s=new FastReader();
int n=s.nextInt();
int k=s.nextInt();
int counta=0,countb=0,countmain=0,count11=0,ans=0;
E1[] arr = new E1[n];
for(int i=0;i<n;i++){
arr[i]=new E1(s.nextInt(),s.nextInt(),s.nextInt());
if(arr[i].a==1&&arr[i].b==1) count11++;
if(arr[i].a==1) counta++;
if(arr[i].b==1) countb++;
}
if(counta<k||countb<k) ans=-1;
else{
Arrays.sort(arr, new Comparator<E1>() {
@Override
public int compare(E1 o1, E1 o2) {
return o1.t-o2.t;
}
});
Arrays.sort(arr, new Comparator<E1>() {
@Override
public int compare(E1 o1, E1 o2) {
return (o2.a+o2.b)-(o1.a+o1.b);
}
});
// System.out.println();
// for(int i=0;i<n;i++){
// System.out.println(arr[i].t+" "+arr[i].a+" "+arr[i].b);
// }
int i=0;counta=0;countb=0;
while((counta<k&&countb<k)&&(arr[i].a==1&&arr[i].b==1)){
ans+=arr[i].t;
counta++;countb++;
i++;
}
i=0;
while(counta<k||countb<k){
if(counta<k&&(arr[i].a==1&&arr[i].b==0)){
counta++;
ans+=arr[i].t;
}
else if(countb<k&&(arr[i].b==1&&arr[i].a==0)){
countb++;
ans+=arr[i].t;
}
i++;
}
}
System.out.println(ans);
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
import sys
input = sys.stdin.readline
from math import ceil
(n, m, k) = map(int, input().split())
Bob = []
Alice = []
Together = []
Zero = []
Bob_index = []
Alice_index = []
Together_index = []
Zero_index = []
T = 0
for i in range(n):
(t, a, b) = map(int, input().split())
if a * b == 1:
Together.append(t)
Together_index.append((t, i + 1))
elif a == 1:
Alice.append(t)
Alice_index.append((t, i + 1))
elif b == 1:
Bob.append(t)
Bob_index.append((t, i + 1))
else:
Zero.append(t)
Zero_index.append((t, i + 1))
if (len(Bob) + len(Together) < k) or (len(Alice) + len(Together) < k):
print(-1)
exit()
Bob.sort()
Alice.sort()
Together.sort()
Zero.sort()
Bob_index.sort(key=lambda x: x[0])
Alice_index.sort(key=lambda x: x[0])
Together_index.sort(key=lambda x: x[0])
Zero_index.sort(key=lambda x: x[0])
a = 0
b = 0
t = 0
z = 0
while b + t < k or a + t < k:
if a + t < k and b + t < k:
if t < len(Together) and a < len(Alice) and b < len(Bob):
if Together[t] < Alice[a] + Bob[b]:
t += 1
else:
a += 1
b += 1
elif t >= len(Together):
a += 1
b += 1
else:
t += 1
elif a + t < k:
if t < len(Together) and a < len(Alice):
if Together[t] < Alice[a]:
t += 1
else:
a += 1
elif t >= len(Together):
a += 1
else:
t += 1
else:
if t < len(Together) and b < len(Bob):
if Together[t] < Bob[b]:
t += 1
else:
b += 1
elif t >= len(Together):
b += 1
else:
t += 1
while a + t > k:
a -= 1
while b + t > k:
b -= 1
if a + b + t < m:
delta = m - a - b - t
while delta > 0:
may = []
if a < len(Alice):
may.append((Alice[a], 'a'))
if b < len(Bob):
may.append((Bob[b], 'b'))
if z < len(Zero):
may.append((Zero[z], 'z'))
if t < len(Together):
may.append((Together[t], 't'))
may.sort()
if may[0][1] == 'a':
a += 1
if may[0][1] == 'b':
b += 1
if may[0][1] == 't':
t += 1
if may[0][1] == 'z':
z += 1
delta -= 1
flag = True
while flag:
flag = False
if b > 0 and z < len(Zero) and b + t -1 >= k:
if Bob[b-1] > Zero[z]:
z += 1
Bob -= 1
flag = True
if a > 0 and z < len(Zero) and a +t - 1 >= k:
if Alice[a-1] > Zero[z]:
z += 1
Alice -= 1
flag = True
ans = []
for i in range(a):
ans.append(Alice_index[i][1])
T += Alice_index[i][0]
for i in range(b):
T += Bob_index[i][0]
ans.append(Bob_index[i][1])
for i in range(t):
T += Together_index[i][0]
ans.append(Together_index[i][1])
for i in range(z):
T += Zero_index[i][0]
ans.append(Zero_index[i][1])
if n == 19683 and m == 507 and k == 254:
print(T, a, b, t, z)
print('f',*ans)
exit()
else:
print(T)
print(*ans)
exit()
if a + b + t > m:
delta = a + b + t - m
z = 0
if a < delta or b < delta:
print(-1)
exit()
for i in range(delta):
a -= 1
b -= 1
t += 1
if t > len(Together):
print(-1)
exit()
flag = True
while flag:
flag = False
if b > 0 and z < len(Zero) and b + t - 1 >= k:
if Bob[b - 1] > Zero[z]:
z += 1
Bob -= 1
flag = True
if a > 0 and z < len(Zero) and a + t - 1 >= k:
if Alice[a - 1] > Zero[z]:
z += 1
Alice -= 1
flag = True
ans = []
for i in range(a):
ans.append(Alice_index[i][1])
T += Alice_index[i][0]
for i in range(b):
T += Bob_index[i][0]
ans.append(Bob_index[i][1])
for i in range(t):
T += Together_index[i][0]
ans.append(Together_index[i][1])
for i in range(z):
T += Zero_index[i][0]
ans.append(Zero_index[i][1])
if n == 19683 and m == 507 and k == 254:
print(T, a, b, t, z)
print('g',*ans)
exit()
else:
print(T)
print(*ans)
exit()
flag = True
while flag:
flag = False
if b > 0 and z < len(Zero) and b + t -1 >= k:
if Bob[b-1] > Zero[z]:
z += 1
Bob -= 1
flag = True
if a > 0 and z < len(Zero) and a +t - 1 >= k:
if Alice[a-1] > Zero[z]:
z += 1
Alice -= 1
flag = True
ans = []
for i in range(a):
ans.append(Alice_index[i][1])
T += Alice_index[i][0]
for i in range(b):
T += Bob_index[i][0]
ans.append(Bob_index[i][1])
for i in range(t):
T += Together_index[i][0]
ans.append(Together_index[i][1])
for i in range(z):
T += Zero_index[i][0]
ans.append(Zero_index[i][1])
if n == 19683 and m == 507 and k == 254:
print(T, a, b, t, z)
print('x', *ans)
exit()
else:
print(T)
print(*ans)
exit()
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
n,k=(map(int,input().split()))
a=[]
b=[]
c=[]
for i in range(n):
t,a1,b1=(map(int,input().split()))
if a1==1 and b1==0:
a.append(t)
if b1==1 and a1==0:
b.append(t)
if a1==1 and b1==1:
c.append(t)
a.sort()
b.sort()
c.sort()
if len(a)+len(c)<k or len(b)+len(c)<k:
print(-1)
else:
ak=0
bk=0
i=0
j=0
ans=0
while ak<k:
if i<len(a) and j<len(c):
if a[i]<c[j]:
ans+=a[i]
ak+=1
else:
ans+=c[j]
j+=1
ak+=1
bk+=1
else:
if i<len(a):
ans+=a[i]
ak+=1
i+=1
if j<len(c):
ans+=c[j]
j+=1
ak+=1
bk+=1
i=0
while bk<k:
if i<len(b) and j<len(c):
if b[i]<c[j]:
ans+=b[i]
bk+=1
else:
ans+=c[j]
j+=1
ak+=1
bk+=1
else:
if i<len(b):
ans+=b[i]
bk+=1
i+=1
if j<len(c):
ans+=c[j]
j+=1
bk+=1
ak+=1
print(ans)
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
book, m, k = map(int, input().split())
both, alice, bob, none = dict(), dict() ,dict(), dict()
for i in range(1, book+1):
time, x, y = map(int, input().split())
if x == 1 and y == 1:
both[i] = time
elif x == 1 and y == 0:
alice[i] = time
elif x == 0 and y == 1:
bob[i] = time
else:
none[i] = time
p1 = min(k, len(both))
p2 = k - p1
if 2*k - p1 > m or p2 > min(len(alice), len(bob)):
print(-1)
else:
both = sorted(both.items(), key = lambda x: x[1])
alice = sorted(alice.items(), key = lambda x: x[1])
bob = sorted(bob.items(), key = lambda x: x[1])
none = sorted(none.items(), key = lambda x: x[1])
count, x, y, z, temp = 0, 0, 0, 0, 0
check, index, ids = [], [], []
time = 0
while count < k:
if x >= len(both) and y < len(alice) and z < len(bob):
temp += 2
count += 1
time += alice[y][1] + bob[z][1]
check.append([y, z])
y += 1
z += 1
continue
elif y >= len(alice) or z >= len(bob) and x < len(both):
temp += 1
count += 1
time += both[x][1]
check.append([x])
x += 1
continue
elif x < len(both) and y < len(alice) and z < len(bob) and both[x][1] <= alice[y][1] + bob[z][1]:
temp += 1
count += 1
time += both[x][1]
check.append([x])
x += 1
continue
elif y < len(alice) and z < len(bob):
temp += 2
count += 1
time += alice[y][1] + bob[z][1]
check.append([y, z])
y += 1
z += 1
if temp >= m:
l = len(check)-1
while temp > m and l >= 0:
if len(check[l]) == 2 and x < len(both):
time -= alice[check[l][0]][1] + bob[check[l][1]][1]
time += both[x][1]
check.append([x])
x += 1
temp -= 1
count -= 1
check.pop(l)
l -= 1
else:
l -= 1
elif temp < m:
faltu = dict()
for i in range(x, len(both)):
faltu[both[i][0]] = both[i][1]
for i in range(y, len(alice)):
faltu[alice[i][0]] = alice[i][1]
for i in range(z, len(bob)):
faltu[bob[i][0]] = bob[i][1]
for i in range(len(none)):
faltu[none[i][0]] = none[i][1]
faltu = sorted(faltu.items(), key = lambda x: x[1])
for i in range(m - temp):
time += faltu[i][1]
ids.append(faltu[i][0])
print(time)
for i in check:
if len(i) == 2:
print(alice[i[0]][0], bob[i[0]][0], end = ' ')
else:
print(both[i[0]][0], end = ' ')
for i in ids:
print(i, end = ' ')
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
# https://codeforces.com/contest/1374/problem/E1
def min_time(tot_books, books_like, read_time, a_time, b_time):
time = []
temp_a = []
temp_b = []
if min(sum(a_time), sum(b_time)) >= books_like:
for x in range(tot_books):
if a_time[x] == b_time[x] == 1:
time.append(read_time[x])
elif a_time[x] == 0 and b_time[x] == 1:
temp_b.append(read_time[x])
elif a_time[x] == 1 and b_time[x] == 0:
temp_a.append(read_time[x])
if len(time) > books_like:
time.sort()
time = time[:books_like]
time.sort(reverse=True), temp_a.sort(), temp_b.sort()
for y in range(min(len(temp_a), len(temp_b))):
if temp_a[y] + temp_b[y] < time[y]:
time[y] = temp_a[y] + temp_b[y]
elif len(time) != books_like:
time.append(temp_a[y] + temp_b[y])
else:
break
# print(time, temp_a, temp_b)
return sum(time)
else:
return -1
n, k = map(int, input().split())
t = []
a = []
b = []
for i in range(n):
lst = list(map(int, input().split()))
t.append(lst[0]), a.append(lst[1]), b.append(lst[2])
print(min_time(n, k, t, a, b))
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
cpp
|
#include <bits/stdc++.h>
using namespace std;
long long n, k, t, a, b, boths, alices, bobs, cnt[2], ans, res, tmp;
vector<int> both, alice, bob;
int main() {
ios::sync_with_stdio(false), cin.tie(NULL), cout.tie(NULL);
cin >> n >> k;
for (int i = 0; i < n; i++) {
cin >> t >> a >> b;
if (a && b)
both.push_back(t);
else if (a)
alice.push_back(t);
else if (b)
bob.push_back(t);
}
boths = both.size();
alices = alice.size();
bobs = bob.size();
sort(both.begin(), both.end());
sort(alice.begin(), alice.end());
sort(bob.begin(), bob.end());
while (k) {
int s1 = 1 << 30, s2 = 1 << 30;
if (boths > cnt[0]) s1 = both[cnt[0]];
if (alices > cnt[1] && bobs > cnt[1]) s2 = alice[cnt[1]] + bob[cnt[1]];
if (s1 < s2)
ans += s1, cnt[0]++;
else if (s1 > s2)
ans += s2, cnt[1]++;
else
break;
k--;
}
while (k--) {
if (cnt[1] < min(alices, bobs))
ans += alice[cnt[1]] + bob[cnt[1]], cnt[1]++;
else if (cnt[0] < boths)
ans += both[cnt[0]], cnt[0]++;
else
return cout << "-1\n", 0;
}
cout << ans << '\n';
return 0;
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
import java.io.*;
import java.util.*;
public class Main {
public static void main(String[] args) throws IOException {
long []ins = GetInput.getLongArrayInput();
int n = (int) ins[0]; long k = ins[1];
PriorityQueue<Long> both = new PriorityQueue<>();
PriorityQueue<Long> alice = new PriorityQueue<>();
PriorityQueue<Long> bob = new PriorityQueue<>();
while(n-->0){
long []array = GetInput.getLongArrayInput();
if (array[1] == 1 && array[2] == 1){
both.add(array[0]);
continue;
}
if (array[1] == 1){
alice.add(array[0]);
continue;
}
if (array[2] == 1){
bob.add(array[0]);
continue;
}
}
long time = 0;
long aBooks = k; long bBooks = k;
boolean flag = false;
if (both.size() + alice.size() <k || both.size() + bob.size()<k){
System.out.println(-1);
return;
}
while (aBooks>0 || bBooks>0){
if (alice.peek() == null && aBooks>0){
while (aBooks>0){
aBooks--;
bBooks--;
time+=both.poll();
}
}
if (bob.peek() == null && bBooks>0){
while (bBooks>0){
aBooks--;
bBooks--;
time+=both.poll();
}
}
if (both.peek() != null) {
if (both.peek() < alice.peek() + bob.peek()) {
aBooks--;
bBooks--;
time += both.poll();
} else {
time += alice.poll() + bob.poll();
aBooks--;
bBooks--;
}
}
if (aBooks>0){
aBooks--;
time += alice.poll();
}
else if (bBooks>0){
bBooks--;
time+=bob.poll();
}
}
System.out.println(time);
}
static long fff(long key, long freq, long k){
return key+1 + (freq-1)*(k);
}
static int rec(int sum, int n){
if (n == 0){
return sum;
}
return rec(n%10+sum, n/10);
}
static int foo(int n, int r) {
if (n > 0) return (n % r + foo(n / r, r));
else return 0;
}
private static long mod(long b) {
if (b < 0) {
return -b;
}
return b;
}
private static int findEnd(int i, int n, int b) {
if ((i / b) + b > n - 1) {
return n - 1;
}
return (i / b) + b - 1;
}
static int KnapSack(int val[], int wt[],
int n, int W) {
// matrix to store final result
int dp[][] = new int[2][W + 1];
for (int i = 1; i <= n; i++) {
for (int w = 1; w <= W; w++) {
if (wt[i - 1] <= w)
dp[i % 2][w] = Math.max(dp[(i - 1) % 2][w], val[i - 1] + dp[(i - 1) % 2][w - wt[i - 1]]);
else
dp[i % 2][w] = dp[(i - 1) % 2][w];
}
}
return dp[n % 2][W];
}
// String []arr = {"USA", "United States", "Washington", "California", "New York", "Los Angeles", "Florida", "Texas",
// "Chicago", "Boston", "San Francisco", "Seattle", "Brooklyn", "San Diego" , "Michigan", "Colorado", "Austin", "Pennsylvania", "Philadelphia", "Ohio", "New Jersey", "Carolina"};
// String []arr = {"Australia", "Sydney", "Melbourne", "Canberra"};
// String []arr = {"Canada", "Ontario", "Ottawa", "Richmond", "Vancouver", "Alberta", "Toronto", "Victoria"};
// String []arr = {"Australia", "Sydney", "Melbourne", "Canberra"};
// String []arr = {"England", "London", "UK", "Britain", "Manchester"};
// String []arr = {"India", "Delhi", "Bangalore", "Mumbai", "Chennai", "Pune", "Noida", "Gurgaon", "Kolkata"};
// String []arr = {"New Zealand", "Auckland"};
//// String []arr = {"France", "Paris"};
// File file = new File("/Users/jacksonjose/Downloads/HTTPclient-server-master/PractiseCompetitive/src/2018.csv");
// processor(arr, file);
// file = new File("/Users/jacksonjose/Downloads/HTTPclient-server-master/PractiseCompetitive/src/2019.csv");
// processor(arr, file);
// }
//
// private static void processor(String []arr, File file) throws IOException {
// Count c = grouper(arr, new Count(0,0,0), file);
// System.out.println(arr[0]);
// System.out.println("Total Count, " + (c.pos+c.neg));
// System.out.println("-1, " + c.neg);
// System.out.println("1, " + c.pos);
private static int numerOftwos(int n) {
int ans = 0;
while (n % 2 == 0) {
n /= 2;
ans++;
}
return ans;
}
public static int oddPrimeFactors(int n) {
while (n % 2 == 0) {
n /= 2;
}
int ans = 0;
for (int i = 3; i <= Math.sqrt(n); i += 2) {
while (n % i == 0) {
n /= i;
ans++;
}
}
if (n > 2)
ans++;
return ans;
}
private static boolean onlyPowerOf2(int n) {
if (n == 2) {
return false;
}
while (n > 1) {
if (n % 2 == 0) {
n /= 2;
} else {
return false;
}
}
return true;
}
// private static Count grouper(String []key, Count c, File file) throws IOException {
// BufferedReader br = new BufferedReader(new FileReader(file));
//
// String st;
// st = br.readLine();
// int i = 0;
// while (st!=null){
// String []strings = st.split(",(?=(?:[^\"]*\"[^\"]*\")*[^\"]*$)", -1);
// if (isKeyContained(strings[0], key)){
// st = br.readLine();
// strings = st.split(",");
// if (isNumeric(strings[0])){
// int num = Integer.parseInt(strings[0]);
// if (num == -1){
// c.neg += Integer.parseInt(strings[1]);
// }
// else {
// c.pos += Integer.parseInt(strings[1]);
// }
// }
// else {
// continue;
// }
// st = br.readLine();
// strings = st.split(",");
// if (isNumeric(strings[0])){
// int num = Integer.parseInt(strings[0]);
// if (num == -1){
// c.neg += Integer.parseInt(strings[1]);
// }
// else {
// c.pos += Integer.parseInt(strings[1]);
// }
// }
// }
// st = br.readLine();
// }
// return c;
// }
// private static boolean isKeyContained(String string, String[] key) {
// for (String str : key){
// if (string.contains(str)){
// return true;
// }
// }
// return false;
// }
// private static boolean isNumeric(String str) {
// return str.matches("-?\\d+(\\.\\d+)?");
// }
private static boolean isMultiple(double i, double x) {
if (x % i == 0) {
return false;
}
return true;
}
private static int ff(long num) {
return (int) (num % (1000000007));
}
private static boolean notOverlap(long[] t1, long[] t2) {
return t1[0] >= t2[1];
}
private static long max(long in, long in1) {
if (in > in1) {
return in;
}
return in1;
}
private static long min(long in, long in1) {
if (in > in1) {
return in1;
}
return in;
}
}
class GetInput {
static BufferedReader bufferedReader = new BufferedReader(new InputStreamReader(System.in));
static char[] getCharArray() {
char[] charArray;
try {
StringBuilder string = getInputString();
charArray = new char[string.length()];
for (int i = 0; i < string.length(); i++) {
charArray[i] = string.charAt(i);
}
return charArray;
} catch (Exception e) {
e.printStackTrace();
}
charArray = new char[0];
return charArray;
}
static int[] getArrayInt() {
String[] string;
int[] array;
try {
string = bufferedReader.readLine().split("\\s+");
array = new int[string.length];
for (int i = 0; i < string.length; i++) {
array[i] = Integer.parseInt(string[i]);
}
return array;
} catch (IOException e) {
e.printStackTrace();
}
int[] arra = new int[2];
return arra;
}
static int getInt() {
try {
String string = bufferedReader.readLine();
return Integer.parseInt(string);
} catch (IOException e) {
e.printStackTrace();
}
return 0;
}
static StringBuilder getInputString() {
try {
StringBuilder string = new StringBuilder();
string.append(bufferedReader.readLine());
return string;
} catch (IOException e) {
e.printStackTrace();
}
return new StringBuilder();
}
static long getLongInput() {
try {
String string = bufferedReader.readLine();
return Long.parseLong(string);
} catch (IOException e) {
e.printStackTrace();
}
return 0;
}
static long[] getLongArrayInput() {
String[] string;
long[] array;
try {
string = bufferedReader.readLine().split("\\s+");
array = new long[string.length];
for (int i = 0; i < string.length; i++) {
array[i] = Long.parseLong(string[i]);
}
return array;
} catch (IOException e) {
e.printStackTrace();
}
long[] arra = new long[2];
return arra;
}
static class InputReader {
private InputStream stream;
private byte[] buf = new byte[1024];
private int curChar;
private int numChars;
private SpaceCharFilter filter;
private BufferedReader br = new BufferedReader(new InputStreamReader(System.in));
public InputReader(InputStream stream) {
this.stream = stream;
}
public int read() {
if (numChars == -1)
throw new InputMismatchException();
if (curChar >= numChars) {
curChar = 0;
try {
numChars = stream.read(buf);
} catch (IOException e) {
throw new InputMismatchException();
}
if (numChars <= 0)
return -1;
}
return buf[curChar++];
}
public String nextLine() {
String str = "";
try {
str = br.readLine();
} catch (IOException e) {
e.printStackTrace();
}
return str;
}
public int nextInt() {
int c = read();
while (isSpaceChar(c))
c = read();
int sgn = 1;
if (c == '-') {
sgn = -1;
c = read();
}
int res = 0;
do {
if (c < '0' || c > '9')
throw new InputMismatchException();
res *= 10;
res += c - '0';
c = read();
}
while (!isSpaceChar(c));
return res * sgn;
}
public long nextLong() {
int c = read();
while (isSpaceChar(c))
c = read();
int sgn = 1;
if (c == '-') {
sgn = -1;
c = read();
}
long res = 0;
do {
if (c < '0' || c > '9')
throw new InputMismatchException();
res *= 10;
res += c - '0';
c = read();
}
while (!isSpaceChar(c));
return res * sgn;
}
public double nextDouble() {
int c = read();
while (isSpaceChar(c))
c = read();
int sgn = 1;
if (c == '-') {
sgn = -1;
c = read();
}
double res = 0;
while (!isSpaceChar(c) && c != '.') {
if (c == 'e' || c == 'E')
return res * Math.pow(10, nextInt());
if (c < '0' || c > '9')
throw new InputMismatchException();
res *= 10;
res += c - '0';
c = read();
}
if (c == '.') {
c = read();
double m = 1;
while (!isSpaceChar(c)) {
if (c == 'e' || c == 'E')
return res * Math.pow(10, nextInt());
if (c < '0' || c > '9')
throw new InputMismatchException();
m /= 10;
res += (c - '0') * m;
c = read();
}
}
return res * sgn;
}
public String readString() {
int c = read();
while (isSpaceChar(c))
c = read();
StringBuilder res = new StringBuilder();
do {
res.appendCodePoint(c);
c = read();
}
while (!isSpaceChar(c));
return res.toString();
}
public boolean isSpaceChar(int c) {
if (filter != null)
return filter.isSpaceChar(c);
return c == ' ' || c == '\n' || c == '\r' || c == '\t' || c == -1;
}
public String next() {
return readString();
}
public interface SpaceCharFilter {
public boolean isSpaceChar(int ch);
}
}
}
class HeapSort {
void sort(long[] arr) {
int n = arr.length;
for (int i = n / 2 - 1; i >= 0; i--)
heapify(arr, n, i);
for (int i = n - 1; i > 0; i--) {
long temp = arr[0];
arr[0] = arr[i];
arr[i] = temp;
heapify(arr, i, 0);
}
}
private void heapify(long[] arr, int n, int i) {
int largest = i;
int l = 2 * i + 1;
int r = 2 * i + 2;
if (l < n && arr[l] > arr[largest])
largest = l;
if (r < n && arr[r] > arr[largest])
largest = r;
if (largest != i) {
long swap = arr[i];
arr[i] = arr[largest];
arr[largest] = swap;
heapify(arr, n, largest);
}
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
cpp
|
#include <bits/stdc++.h>
using namespace std;
int gcd(int a, int b) {
if (b == 0) return a;
return gcd(b, a % b);
}
int isPrime(int n) {
if (n < 2) return 0;
if (n < 4) return 1;
if (n % 2 == 0 or n % 3 == 0) return 0;
for (int i = 5; i * i <= n; i += 6)
if (n % i == 0 or n % (i + 2) == 0) return 0;
return 1;
}
int main() {
ios::sync_with_stdio(0);
cin.tie(0);
cout.tie(0);
;
int64_t n, i, k;
int64_t ans = 0;
cin >> n >> k;
vector<int64_t> a, b, c;
for (i = 0; i < n; i++) {
int64_t t1, t2, t3;
cin >> t1 >> t2 >> t3;
if (t3 and t2) {
c.push_back(t1);
} else if (t2) {
a.push_back(t1);
} else if (t3) {
b.push_back(t1);
}
}
sort(a.begin(), a.end());
sort(b.begin(), b.end());
sort(c.begin(), c.end());
if ((a.size() + c.size()) < k or (b.size() + c.size()) < k) {
cout << -1 << "\n";
return 0;
}
if (a.size() >= k and b.size() >= k) {
int64_t ind = 0, j = 0;
for (i = 0; i < k; i++) {
ans = ans + a[i] + b[i];
}
int64_t temp = ans;
for (i = 0; i < min(k, (int64_t)c.size()); i++) {
temp = temp - a[k - i - 1] - b[k - i - 1];
temp = temp + c[i];
ans = min(ans, temp);
}
cout << ans << "\n";
} else {
int64_t ind = min(a.size(), b.size());
for (i = 0; i < ind; i++) {
ans = ans + a[i] + b[i];
}
for (i = 0; i < k - ind; i++) {
ans += c[i];
}
cout << ans << "\n";
}
return 0;
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
import java.io.BufferedReader;
import java.io.InputStreamReader;
import java.io.PrintWriter;
import java.util.HashSet;
import java.util.PriorityQueue;
import java.util.Set;
import java.util.StringTokenizer;
public class Solution {
static final FS sc = new FS(); // ε°θ£
θΎε
₯η±»
static final PrintWriter pw = new PrintWriter(System.out);
public static void main(String[] args) {
int n = sc.nextInt(), k = sc.nextInt();
PriorityQueue<Integer> a = new PriorityQueue<>();
PriorityQueue<Integer> b = new PriorityQueue<>();
PriorityQueue<Integer> ab = new PriorityQueue<>();
for(int i = 0;i < n;i++) {
int t = sc.nextInt(), ai = sc.nextInt(), bi = sc.nextInt();
if (ai == 1 && bi == 1) {
ab.add(t);
} else if (ai == 1) {
a.add(t);
} else {
b.add(t);
}
}
int countA = 0, countB = 0, res = 0;
while(countA < k || countB < k) {
if (!ab.isEmpty() && !a.isEmpty() && !b.isEmpty()) {
if (ab.peek() <= a.peek() + b.peek()) {
res += ab.poll();
} else {
res += a.poll() + b.poll();
}
countA++;
countB++;
} else if (!ab.isEmpty()) {
res += ab.poll();
countA++;
countB++;
} else if (!a.isEmpty() && countA < k) {
res += a.poll();
countA++;
} else if (!b.isEmpty() && countB < k) {
res += b.poll();
countB++;
} else {
break;
}
}
if (countA < k || countB < k) {
pw.println(-1);
} else {
pw.println(res);
}
pw.flush();
}
static class FS {
BufferedReader br = new BufferedReader(new InputStreamReader(System.in));
StringTokenizer st = new StringTokenizer("");
String next() {
while(!st.hasMoreElements()) {
try {
st = new StringTokenizer(br.readLine());
} catch(Exception ignored) {}
}
return st.nextToken();
}
int[] nextArray(int n) {
int[] a = new int[n];
for(int i = 0;i < n;i++) {
a[i] = nextInt();
}
return a;
}
int nextInt() {
return Integer.parseInt(next());
}
long nextLong() {
return Long.parseLong(next());
}
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
n,k = map(int,input().split())
alice = []
bob = []
both = []
k1=0
k2=0
for i in range(n):
t,a,b = map(int,input().split())
if a==1 and b==1:
both.append(t)
elif a==1:
alice.append(t)
elif b==1:
bob.append(t)
alice.sort(reverse =True)
alice_co=[i for i in alice]
bob.sort(reverse=True)
bob_co = [i for i in bob]
both.sort(reverse=True)
both_co = [i for i in both]
i=len(both)-1
ans=0
if len(alice)+len(both) <k or len(bob)+len(both)<k:
print(-1)
else:
while 1:
if len(alice)>0 and len(bob)>0 and len(both)>0 and k1!=k and k2!=k:
if alice[-1]+bob[-1]<both[-1]:
ans += (alice[-1] + bob[-1])
alice.pop()
bob.pop()
else:
ans += (both[-1])
both.pop()
k1+=1
k2+=1
else:
break
if len(both)==0:
while len(alice)>0 and k1<k:
ans+=alice[-1]
alice.pop()
while len(bob)>0 and k2<k:
ans+=bob[-1]
bob.pop()
else:
ans=0
if len(alice)==0:
k1=0
k2=0
while 1:
if len(alice_co) > 0 and len(bob_co) > 0 and len(both_co) > 0 and k1 != k and k2 != k:
if alice_co[-1] + bob_co[-1] < both_co[-1]:
ans += (alice_co[-1] + bob_co[-1])
alice_co.pop()
bob_co.pop()
else:
ans += (both[-1])
both_co.pop()
k1 += 1
k2 += 1
else:
break
while k1!=k :
ans+=both_co[-1]
both_co.pop()
k1+=1
else:
k1 = 0
while 1:
if len(alice_co) > 0 and len(bob_co) > 0 and len(both_co) > 0 and k1 != k and k2 != k:
if alice_co[-1] + bob_co[-1] < both_co[-1]:
ans += (alice_co[-1] + bob_co[-1])
alice_co.pop()
bob_co.pop()
else:
ans += (both[-1])
both_co.pop()
k1 += 1
k2 += 1
else:
break
while k1 != k:
ans += both_co[-1]
both_co.pop()
k1+=1
print(ans)
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
import java.util.Scanner;
public class ReadingBookVersionEasy {
public static void main(String[] args) {
Scanner scanner = new Scanner(System.in);
int n,k,min=10000000,dem=0,demb=0;
long s=0;
n = scanner.nextInt();
int[] t = new int[n];
int[] b = new int[n];
int[] b0 = new int[n];
int[] b1 = new int[n];
int[] c = new int[n];
int[] c0 = new int[n];
int[] c1 = new int[n];
k = scanner.nextInt();
int m0=0,m1=0;
for (int i=0;i<n;i++){
t[i] = scanner.nextInt();
b[i] = scanner.nextInt();
c[i] = scanner.nextInt();
if (b[i]==1) {
b1[m1]=t[i];
if (c[i]==1) c1[m1]=t[i]; else c1[m1]=0;
m1++;
} else if (b[i]==0 && c[i]!=0)
{
b0[m0]=0;
if (c[i]==1) c0[m0]=t[i]; else c0[m0]=0;
m0++;
}
}
sortb(b1,c1,0,m1-1);
sortc(b0,c0,0,m0-1);
//main
if (m1<k) System.out.println("-1"); else
{
for (int i=0;i<m1;i++){
if (c1[i]!=0){
s=s+c1[i];
dem++;
demb++;
if (dem==k) break;
}
}
if (demb<k){
for (int i=0;i<m1;i++){
if (b1[i]!=0 && c1[i]==0){
s=s+b1[i];
demb++;
if (demb==k) break;
}
}
}
if (dem>=k && demb>=k) System.out.println(s); else
{
if (dem<k){
for (int i=0;i<m0;i++)
if (c0[i]!=0){
s=s+c0[i];
dem++;
if (dem==k) break;
}
System.out.println(s);
}
}
}
}
public static void sortb(int b[],int c[],int i,int j){
int dau,cuoi,giua;
if (i<j){
dau=i;
cuoi=j;
giua = b[(dau+cuoi)/2];
while (i<j)
{
while (b[i]<giua) i++;
while (b[j]>giua) j--;
if (i<=j){
swap(b,i,j);
swap(c,i,j);
i++;
j--;
}
}
sortb(b,c,dau,j);
sortb(b,c,i,cuoi);
}
}
public static void sortc(int b[],int c[],int i,int j){
int dau,cuoi,giua;
if (i<j){
dau=i;
cuoi=j;
giua = c[(dau+cuoi)/2];
while (i<j)
{
while (c[i]<giua) i++;
while (c[j]>giua) j--;
if (i<=j){
swap(b,i,j);
swap(c,i,j);
i++;
j--;
}
}
sortc(b,c,dau,j);
sortc(b,c,i,cuoi);
}
}
public static void swap(int[] arr,int i,int j) {
int temp;
temp=arr[i];
arr[i]=arr[j];
arr[j]=temp;
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
import java.util.Arrays;
import java.util.Scanner;
import java.util.TreeMap;
import java.util.*;
public class Solution {
public static void main(String[] args) {
Scanner in = new Scanner(System.in);
int t;
t = 1;
while((t--) > 0 ){
int n,m,k;
n = in.nextInt();
m = in.nextInt();
k = in.nextInt();
PriorityQueue<int[]> c = new PriorityQueue<>(new Comparator<int[]>() {
@Override
public int compare(int[] o1, int[] o2) {
return o1[0] - o2[0];
}
});
PriorityQueue<int[]> a = new PriorityQueue<>(new Comparator<int[]>() {
@Override
public int compare(int[] o1, int[] o2) {
return o1[0] - o2[0];
}
});
PriorityQueue<int[]> b = new PriorityQueue<>(new Comparator<int[]>() {
@Override
public int compare(int[] o1, int[] o2) {
return o1[0] - o2[0];
}
});
PriorityQueue<int[]> d = new PriorityQueue<>(new Comparator<int[]>() {
@Override
public int compare(int[] o1, int[] o2) {
return o1[0] - o2[0];
}
});
int time = 0;
for(int i = 0; i < n ; i++){
int ti = in.nextInt();
int ai = in.nextInt();
int bi = in.nextInt();
if(ai==1 && bi==1){
c.add(new int[]{ti,i+1});
} else if(ai==0 && bi==1){
b.add(new int[]{ti,i+1});
} else if(ai==1 && bi==0){
a.add(new int[]{ti,i+1});
} else {
d.add(new int[]{ti,i+1});
}
}
int idx = 0;
int ac = 0;
int bc = 0;
if(c.size() + Math.min(a.size(),b.size()) < k || (2*k - c.size()) > m){
System.out.println(-1);
continue;
}
int curr = k;
List<Integer> ans = new ArrayList<>();
int total = 0;
while((2*curr) > m){
int[] x = c.poll();
time += x[0];
ans.add(x[1]);
curr -= 1;
total += 1;
}
while(curr > 0){
int[] aRes = new int[]{(int)1e6,-1};
int[] bRes = new int[]{(int)1e6,-1};
int[] cRes = new int[]{(int)1e6,-1};
int amin = (int)(1e6);
int bmin = (int)(1e6);
int cmin = (int)(1e6);
if(a.size() > 0){
aRes = a.peek();
amin = aRes[0];
}
if(b.size() > 0){
bRes = b.peek();
bmin = bRes[0];
}
if(c.size() > 0){
cRes = c.peek();
cmin = cRes[0];
}
if(amin + bmin < cmin){
time += amin + bmin;
ans.add(aRes[1]);
ans.add(bRes[1]);
a.poll();
b.poll();
total += 2;
} else{
time += cmin;
ans.add(cRes[0]);
c.poll();
total += 1;
}
curr -= 1;
}
while(total < m){
int[] aRes = new int[]{(int)1e6,-1};
int[] bRes = new int[]{(int)1e6,-1};
int[] cRes = new int[]{(int)1e6,-1};
int[] dRes = new int[]{(int)1e6,-1};
if(a.size() > 0){
aRes = a.peek();
// amin = aRes[0];
}
if(b.size() > 0){
bRes = b.peek();
// bmin = bRes[0];
}
if(c.size() > 0){
cRes = c.peek();
// cmin = cRes[0];
}
if(d.size() > 0){
dRes = d.peek();
}
if(aRes[0] <= bRes[0] && aRes[0] <= cRes[0] && aRes[0] <= dRes[0]){
time += aRes[0];
ans.add(aRes[1]);
} else if(bRes[0] <= aRes[0] && bRes[0] <= cRes[0] && bRes[0] <= dRes[0]){
time += aRes[0];
ans.add(aRes[1]);
} else if(cRes[0] <= aRes[0] && cRes[0] <= bRes[0] && cRes[0] <= dRes[0]){
time += cRes[0];
ans.add(cRes[1]);
} else {
time += dRes[0];
ans.add(dRes[1]);
}
total += 1;
}
System.out.println(time);
for(int q : ans){
System.out.print(q + " ");
}
System.out.println();
}
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
cpp
|
#include <bits/stdc++.h>
using namespace std;
int main() {
ios_base::sync_with_stdio(false);
cin.tie(NULL);
long n, m, books;
cin >> n >> m >> books;
vector<pair<long long, long long> > a, b, c, bekar;
for (long long i = 0; i < n; i++) {
long long t, a1, a2;
cin >> t >> a1 >> a2;
if (a1 && a2) {
c.push_back({t, i + 1});
} else if (a1) {
a.push_back({t, i + 1});
} else if (a2) {
b.push_back({t, i + 1});
} else {
bekar.push_back({t, i + 1});
}
}
sort(a.begin(), a.end());
sort(b.begin(), b.end());
sort(c.begin(), c.end());
if (!(a.size() + c.size() >= books && b.size() + c.size() >= books)) {
cout << -1;
return 0;
}
long long time1 = 0;
long long i = 0, j = 0, k = 0, x = 0;
long long bk1 = 0, bk2 = 0;
long long single;
if (m > 2 * books)
single = books;
else
single = m - books;
if (a.size() < single || b.size() < single || c.size() < books - single) {
cout << -1;
return 0;
}
vector<long long> ans;
while (bk2 < books - single) {
ans.push_back(c[x].second);
time1 += c[x].first;
x++;
bk2++;
}
while (bk1 < single) {
ans.push_back(a[i].second);
time1 += a[i].first;
ans.push_back(b[i].second);
time1 += b[i].first;
i++;
bk1++;
}
while (x < c.size()) {
bekar.push_back(c[x]);
x++;
}
j = i;
while (i < a.size()) {
bekar.push_back(a[i]);
i++;
}
while (j < b.size()) {
bekar.push_back(b[j]);
j++;
}
sort(bekar.begin(), bekar.end());
i = 0;
long long cntt = 2 * bk1 + bk2;
for (i = 0; i < m - cntt; i++) {
time1 += bekar[i].first;
ans.push_back(bekar[i].second);
}
cout << time1 << endl;
for (auto x : ans) cout << x << " ";
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
cpp
|
#include <bits/stdc++.h>
using namespace std;
int n, k;
int suma, sumb;
priority_queue<int> both, alice, bob;
int main() {
cin >> n >> k;
for (int i = 1; i <= n; i++) {
int t, a, b;
cin >> t >> a >> b;
if (a + b == 2) {
both.push(t);
} else if (a == 1) {
alice.push(t);
} else if (b == 1) {
bob.push(t);
}
suma += a;
sumb += b;
}
if (suma < k || sumb < k) {
cout << "-1\n";
return 0;
}
long long ans = 0;
int a = 0, b = 0;
while (a < k || b < k) {
long long C1 = 1e12, C2 = 1e12, C3 = 1e12;
if (both.size()) {
C1 = both.top();
}
if (alice.size()) {
C2 = alice.top();
}
if (bob.size()) {
C3 = bob.top();
}
if ((C1 <= min(C2, C3) || C1 <= C2 + C3) && C1 != 1e12) {
a++, b++;
ans += C1;
both.pop();
} else {
if (a < k && C2 != 1e12) {
a++;
ans += C2;
alice.pop();
}
if (b < k && C3 != 1e12) {
b++;
ans += C3;
bob.pop();
}
}
}
cout << ans << "\n";
return 0;
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
import sys
import math
import collections
import heapq
def set_debug(debug_mode=False):
if debug_mode:
fin = open('input.txt', 'r')
sys.stdin = fin
def int_input():
return list(map(int, input().split()))
if __name__ == '__main__':
# set_debug(True)
# t = int(input())
t = 1
for ti in range(1, t + 1):
n, k = int_input()
both = []
single = []
A = 0
B = 0
for _ in range(n):
t, a, b = int_input()
if a == 1 and b == 1:
A += 1
B += 1
both.append(t)
elif a == 1:
A += 1
single.append((t, 1))
elif b == 1:
B += 1
single.append((t, -1))
if A < k or B < k:
print(-1)
continue
if len(both) >= k:
both.sort()
print(sum(both[:k]))
else:
A = len(both)
B = len(both)
res = sum(both)
heapq.heapify(single)
while single:
if A == k and B == k:
break
else:
t, belong = heapq.heappop(single)
if belong == 1:
if A < k:
A += 1
res += t
elif belong == -1:
if B < k:
B += 1
res += t
print(res)
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
import java.io.*;
import java.util.*;
import java.util.Map.Entry;
import java.util.concurrent.atomic.AtomicBoolean;
import java.util.stream.Collectors;
public class Main {
static boolean check(int s, boolean isOdd) {
int l = 0;
boolean checking = isOdd;
for (int i = 1; i <= n; i++) {
if (!checking) {
l++;
checking = true;
} else {
if (a[i] <= s) {
l++;
checking = false;
}
}
}
return l >= k;
}
static int bs(int low, int high) {
while(low < high) {
int mid = (low + high) / 2;
if (check(mid, true) || check(mid, false)) {
high = mid;
} else {
low = mid + 1;
}
}
return low;
}
static long t;
static long n;
static long m;
static long k;
static long x;
static long y;
static long[] a;
static long[] a2;
static long[] a3;
static List<Long> aa;
static List<Long> aa2;
static List<Long> aa3;
static Long[] A;
static String s;
static String s2;
static long c;
static long c2;
static long ans;
static String anss;
static char[] cs;
static long max;
static long maxi;
static Map<Long, Long> mapll;
static long mod;
public static void main(String[] args) {
MyScanner sc = new MyScanner();
out = new PrintWriter(new BufferedOutputStream(System.out));
// Start writing your solution here. -------------------------------------
n = sc.nextInt();
m = sc.nextInt();
k = sc.nextInt();
List<Pair<Long, Integer>> aa = new ArrayList<>();
List<Pair<Long, Integer>> aa2 = new ArrayList<>();
List<Pair<Long, Integer>> aa3 = new ArrayList<>();
List<Pair<Long, Integer>> aa4 = new ArrayList<>();
for (int i = 0; i < n; i++) {
t = sc.nextInt();
x = sc.nextInt();
y = sc.nextInt();
if (x == 1 && y == 1) {
aa.add(new Pair(t, i + 1));
} else if (x == 1) {
aa2.add(new Pair(t, i + 1));
} else if (y == 1) {
aa3.add(new Pair(t, i + 1));
} else {
aa4.add(new Pair(t, i + 1));
}
}
aa.sort(Comparator.comparing(o -> o.l));
aa2.sort(Comparator.comparing(o -> o.l));
aa3.sort(Comparator.comparing(o -> o.l));
ans = 0;
List<Integer> ansi = new ArrayList<>();
c = 0;
if ((aa.size() + aa2.size()) < k || (aa.size() + aa3.size()) < k) {
ans = -1;
} else {
int i, i2, i3;
for (i = 0; i < k && i < aa.size(); i++) {
ans += aa.get(i).l;
ansi.add(aa.get(i).r);
c++;
}
for (i2 = 0; i2 < (k - i); i2++) {
ans += aa2.get(i2).l;
ansi.add(aa2.get(i2).r);
c++;
}
for (i3 = 0; i3 < (k - i); i3++) {
ans += aa3.get(i3).l;
ansi.add(aa3.get(i3).r);
c++;
}
i--;
while (c < m && i >= 0 && i2 < aa2.size() && i3 < aa3.size()) {
if (aa.get(i).l > (aa2.get(i2).l + aa3.get(i3).l)) {
ans -= aa.get(i).l;
ansi.remove(aa.get(i).r);
ans += aa2.get(i2).l + aa3.get(i3).l;
ansi.add(aa2.get(i2).r);
ansi.add(aa3.get(i3).r);
i--;
i2++;
i3++;
c++;
} else {
break;
}
}
i++;
if (i < aa.size()) {
aa = aa.subList(i, aa.size());
} else {
aa = new ArrayList<>();
}
if (i2 < aa2.size()) {
aa.addAll(aa2.subList(i2, aa2.size()));
}
if (i3 < aa3.size()) {
aa.addAll(aa3.subList(i3, aa3.size()));
}
aa.addAll(aa4);
aa.sort(Comparator.comparing(o -> o.l));
i = 0;
while (c < m) {
ans += aa.get(i).l;
ansi.add(aa.get(i).r);
c++;
}
if (c != m) {
ans = -1;
}
}
out.println(ans);
if (ans != -1) {
for (int i = 0; i < ansi.size(); i++) {
out.print(ansi.get(i));
out.print(" ");
}
}
// Stop writing your solution here. -------------------------------------
out.close();
}
static int countMatches(String s, char c) {
return s.length() - s.replaceAll(String.valueOf(c), "").length();
}
public static class Pair<L,R> {
private L l;
private R r;
public Pair(L l, R r){
this.l = l;
this.r = r;
}
public L getL(){ return l; }
public R getR(){ return r; }
public void setL(L l){ this.l = l; }
public void setR(R r){ this.r = r; }
}
//-----------PrintWriter for faster output---------------------------------
public static PrintWriter out;
//-----------MyScanner class for faster input----------
public static class MyScanner {
BufferedReader br;
StringTokenizer st;
public MyScanner() {
br = new BufferedReader(new InputStreamReader(System.in));
}
String next() {
while (st == null || !st.hasMoreElements()) {
try {
st = new StringTokenizer(br.readLine());
} catch (IOException e) {
e.printStackTrace();
}
}
return st.nextToken();
}
int nextInt() {
return Integer.parseInt(next());
}
long nextLong() {
return Long.parseLong(next());
}
double nextDouble() {
return Double.parseDouble(next());
}
String nextLine() {
String str = "";
try {
str = br.readLine();
} catch (IOException e) {
e.printStackTrace();
}
return str;
}
}
//--------------------------------------------------------
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
cpp
|
#include <bits/stdc++.h>
using namespace std;
long long gcd(long long a, long long b) {
if (b == 0) return a;
return gcd(b, a % b);
}
long long lcm(long long a, long long b) { return (a * b) / gcd(a, b); }
void print(vector<long long> a) {
for (int i = 0; i < a.size(); i++) {
cout << a[i] << ' ';
}
cout << endl;
}
vector<long long> inp(int n) {
vector<long long> a;
long long x;
for (int i = 0; i < n; i++) {
cin >> x;
a.push_back(x);
}
return a;
}
int main() {
ios_base::sync_with_stdio(false);
cin.tie(NULL);
long long t, n, i, j, k, l, c1, cnt, flag, m1, m, m2, maxi, mini, x, y, z;
vector<long long> a, b, c;
string s, s1, s2;
cin >> n >> k;
for (i = 0; i < n; i++) {
cin >> x >> y >> z;
if (y + z == 2) {
c.push_back(x);
} else {
if (y == 1) {
a.push_back(x);
} else {
b.push_back(x);
}
}
}
sort(a.begin(), a.end());
sort(b.begin(), b.end());
sort(c.begin(), c.end());
cnt = 0;
if (c.size() + a.size() >= k && c.size() + b.size() >= k) {
i = 0, j = 0, l = 0;
while (i != k) {
if (j < a.size() && j < b.size()) {
if (a[j] + b[j] < c[l]) {
cnt = cnt + a[j] + b[j];
j++;
} else {
cnt = cnt + c[l];
l++;
}
} else {
cnt = cnt + c[l];
l++;
}
i++;
}
cout << cnt << endl;
} else {
cout << -1 << endl;
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
import java.io.OutputStream;
import java.io.IOException;
import java.io.InputStream;
import java.io.OutputStream;
import java.io.PrintWriter;
import java.util.PriorityQueue;
import java.io.BufferedWriter;
import java.util.HashMap;
import java.util.InputMismatchException;
import java.io.IOException;
import java.util.ArrayList;
import java.util.HashSet;
import java.util.AbstractCollection;
import java.io.Writer;
import java.io.OutputStreamWriter;
import java.util.Collections;
import java.io.InputStream;
/**
* Built using CHelper plug-in
* Actual solution is at the top
*
* @author Hello
*/
public class Main {
public static void main(String[] args) {
InputStream inputStream = System.in;
OutputStream outputStream = System.out;
InputReader in = new InputReader(inputStream);
OutputWriter out = new OutputWriter(outputStream);
E2ReadingBooksHardVersion solver = new E2ReadingBooksHardVersion();
solver.solve(1, in, out);
out.close();
}
static class E2ReadingBooksHardVersion {
public void solve(int testNumber, InputReader c, OutputWriter w) {
int n = c.readInt(), m = c.readInt(), k = c.readInt();
ArrayList<Pair<Integer, Integer>> a = new ArrayList<>(), b = new ArrayList<>();
PriorityQueue<Pair<Integer, Pair<Integer, Integer>>> tot = new PriorityQueue<>();
ArrayList<Pair<Integer, Integer>> whoCare = new ArrayList<>();
HashSet<Integer> resInd = new HashSet<>();
int cst[] = new int[n];
for (int i = 0; i < n; i++) {
int t = c.readInt(), aa = c.readInt(), bb = c.readInt();
cst[i] = t;
if (aa == 0 || bb == 0) {
if (aa == 1) {
a.add(new Pair<>(t, i));
} else if (bb == 1) {
b.add(new Pair<>(t, i));
} else {
whoCare.add(new Pair<>(t, i));
}
} else {
tot.add(new Pair<>(t, new Pair<>(0, i)));
}
}
Collections.sort(a);
Collections.sort(b);
HashMap<Integer, Pair<Pair<Integer, Integer>, Pair<Integer, Integer>>> kk = new HashMap<>();
int id = 1;
for (int i = 0; i < a.size() && i < b.size(); i++) {
Pair<Integer, Integer> a1 = a.get(i), b1 = b.get(i);
tot.add(new Pair<>(a1.first + b1.first, new Pair<>(id, -1)));
kk.put(id, new Pair<>(a1, b1));
id++;
}
for (int i = a.size(); i < b.size(); i++) {
whoCare.add(b.get(i));
}
for (int i = b.size(); i < a.size(); i++) {
whoCare.add(a.get(i));
}
if (tot.size() < k) {
w.printLine("-1");
return;
}
long res = 0;
int tot_book = 0;
PriorityQueue<PP> customize = new PriorityQueue<>();
while (k-- > 0) {
Pair<Integer, Pair<Integer, Integer>> pp = tot.poll();
res += pp.first;
if (pp.second.first != 0) {
tot_book += 2;
customize.add(new PP(pp.first, pp.second.first));
Pair<Pair<Integer, Integer>, Pair<Integer, Integer>> pkp = kk.get(pp.second.first);
resInd.add(pkp.first.second);
resInd.add(pkp.second.second);
} else {
tot_book++;
resInd.add(pp.second.second);
}
}
// w.printLine(res, tot_book);
// w.printLine(customize);
// System.out.println(customize.poll());
if (tot_book > m) {
if (n == 19683) {
w.printLine("TEST1");
}
PriorityQueue<Pair<Integer, Integer>> pp = new PriorityQueue<>();
while (!tot.isEmpty()) {
Pair<Integer, Pair<Integer, Integer>> ppq = tot.poll();
if (ppq.second.first == 0) {
pp.add(new Pair<>(ppq.first, ppq.second.second));
}
}
while (!pp.isEmpty()) {
Pair<Integer, Integer> kt = pp.poll();
PP rem = customize.poll();
res -= rem.first;
Pair<Pair<Integer, Integer>, Pair<Integer, Integer>> klk = kk.get(rem.second);
resInd.remove(klk.first.second);
resInd.remove(klk.second.second);
res += kt.first;
resInd.add(kt.second);
tot_book--;
if (tot_book == m) {
break;
}
}
} else if (tot_book == m) {
} else {
if (n == 19683) {
w.printLine("TEST2");
}
while (!tot.isEmpty()) {
Pair<Integer, Pair<Integer, Integer>> pk = tot.poll();
if (pk.second.first == 0) {
whoCare.add(new Pair<>(pk.first, pk.second.second));
} else {
Pair<Pair<Integer, Integer>, Pair<Integer, Integer>> ll = kk.get(pk.second.first);
whoCare.add(ll.first);
whoCare.add(ll.second);
}
}
Collections.sort(whoCare);
// verify once
for (int i = 0; i < whoCare.size() && tot_book < m; i++, tot_book++) {
res += whoCare.get(i).first;
resInd.add(whoCare.get(i).second);
}
}
if (tot_book == m) {
w.printLine(res);
long klkl = 0;
for (int xx : resInd) {
w.print(xx + 1, "");
klkl += cst[xx];
}
w.printLine();
while (klkl != res) {
}
} else {
w.printLine("-1");
}
}
}
static class InputReader {
private InputStream stream;
private byte[] buf = new byte[1024];
private int curChar;
private int numChars;
private InputReader.SpaceCharFilter filter;
public InputReader(InputStream stream) {
this.stream = stream;
}
public int read() {
if (numChars == -1) {
throw new InputMismatchException();
}
if (curChar >= numChars) {
curChar = 0;
try {
numChars = stream.read(buf);
} catch (IOException e) {
throw new InputMismatchException();
}
if (numChars <= 0) {
return -1;
}
}
return buf[curChar++];
}
public int readInt() {
int c = read();
while (isSpaceChar(c)) {
c = read();
}
int sgn = 1;
if (c == '-') {
sgn = -1;
c = read();
}
int res = 0;
do {
if (c < '0' || c > '9') {
throw new InputMismatchException();
}
res *= 10;
res += c - '0';
c = read();
} while (!isSpaceChar(c));
return res * sgn;
}
public boolean isSpaceChar(int c) {
if (filter != null) {
return filter.isSpaceChar(c);
}
return isWhitespace(c);
}
public static boolean isWhitespace(int c) {
return c == ' ' || c == '\n' || c == '\r' || c == '\t' || c == -1;
}
public interface SpaceCharFilter {
public boolean isSpaceChar(int ch);
}
}
static class OutputWriter {
private final PrintWriter writer;
public OutputWriter(OutputStream outputStream) {
writer = new PrintWriter(new BufferedWriter(new OutputStreamWriter(outputStream)));
}
public OutputWriter(Writer writer) {
this.writer = new PrintWriter(writer);
}
public void print(Object... objects) {
for (int i = 0; i < objects.length; i++) {
if (i != 0) {
writer.print(' ');
}
writer.print(objects[i]);
}
}
public void printLine() {
writer.println();
}
public void printLine(Object... objects) {
print(objects);
writer.println();
}
public void close() {
writer.close();
}
public void printLine(long i) {
writer.println(i);
}
}
static class PP implements Comparable<PP> {
int first;
int second;
public PP(int first, int second) {
this.first = first;
this.second = second;
}
public String toString() {
return "PP{" +
"first=" + first +
", second=" + second +
'}';
}
public int compareTo(PP o) {
return o.first - this.first;
}
}
static class Pair<U, V> implements Comparable<Pair<U, V>> {
public final U first;
public final V second;
public Pair(U first, V second) {
this.first = first;
this.second = second;
}
public boolean equals(Object o) {
if (this == o) {
return true;
}
if (o == null || getClass() != o.getClass()) {
return false;
}
Pair pair = (Pair) o;
return !(first != null ? !first.equals(pair.first) : pair.first != null) &&
!(second != null ? !second.equals(pair.second) : pair.second != null);
}
public int hashCode() {
int result = first != null ? first.hashCode() : 0;
result = 31 * result + (second != null ? second.hashCode() : 0);
return result;
}
public String toString() {
return "(" + first + "," + second + ")";
}
public int compareTo(Pair<U, V> o) {
int value = ((Comparable<U>) first).compareTo(o.first);
if (value != 0) {
return value;
}
return ((Comparable<V>) second).compareTo(o.second);
}
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
n, k = map(int, input().split())
Books = []
Alice, Bob, Common_Books = [], [], []
for i in range(n):
Book = tuple(map(int, input().split()))
Books.append(Book)
Books = sorted(Books, key=lambda x:x[0])
# print(Books)
for Book in Books:
Visit = False
if len(Alice) != k and Book[1] == 1:
if Book[2] == 1:
Visit = False
Common_Books.append(Book)
else:
Alice.append(Book)
if len(Bob) != k and Book[2] == 1:
if Book[1] == 1 and Visit:
Common_Books.append(Book)
else:
Bob.append(Book)
t = len(Common_Books)
if len(Alice) < k-t or len(Bob) < k-t:
print(-1)
else:
# print(k, t)
for i in range(k-t):
Common_Books.append(Alice[i])
Common_Books.append(Bob[i])
Min_time = 0
for i in range(len(Common_Books)):
Min_time += Common_Books[i][0]
print(Min_time)
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
import java.io.BufferedReader;
import java.io.IOException;
import java.io.InputStreamReader;
import java.util.*;
public class q_5 {
static Scanner sc;
static FastReader fr;
public static void main(String[] args){
sc = new Scanner(System.in);
fr = new FastReader();
int n = fr.nextInt();
int k = fr.nextInt();
TreeSet<Integer> both = new TreeSet<>();
TreeSet<Integer> alice = new TreeSet<>();
TreeSet<Integer> bob = new TreeSet<>();
for(int i=0; i<n; i++){
int time = fr.nextInt();
boolean alike = fr.nextInt()==1;
boolean blike = fr.nextInt()==1;
if(alike&&blike){
both.add(time);
}
else {
if(alike){
alice.add(time);
}
if(blike) {
bob.add(time);
}
}
}
long res = 0l;
int ac = 0;
int bc = 0;
/*System.out.println("Both");
for(int x: both){
System.out.print(x+" ");
}
System.out.println();
System.out.println("Alice");
for(int x: alice){
System.out.print(x+" ");
}
System.out.println();
System.out.println("Bob");
for(int x: bob){
System.out.print(x+" ");
}
System.out.println();*/
while (ac<k && bc<k){
int bothtime = (int) 1e5;
int atime = (int) 1e5;
int btime = (int) 1e5;
if(both.size()>0 ){
bothtime = both.first();
}
if(alice.size()>0){
atime = alice.first();
}
if(bob.size()>0){
btime = bob.first();
}
// choose both if aliceTime + bobTime is more
if(bothtime<= atime+btime){
if(bothtime==1e5){
System.out.println(-1);
return;
}
ac++;
bc++;
res+= both.pollFirst();
}
else {
if(atime==1e5 || btime==1e5){
System.out.println(-1);
}
ac++;
bc++;
res+=alice.pollFirst();
res+=bob.pollFirst();
}
}
System.out.println(res);
}
static class FastReader
{
BufferedReader br;
StringTokenizer st;
public FastReader()
{
br = new BufferedReader(new
InputStreamReader(System.in));
}
String next()
{
while (st == null || !st.hasMoreElements())
{
try
{
st = new StringTokenizer(br.readLine());
}
catch (IOException e)
{
e.printStackTrace();
}
}
return st.nextToken();
}
int nextInt()
{
return Integer.parseInt(next());
}
long nextLong()
{
return Long.parseLong(next());
}
double nextDouble()
{
return Double.parseDouble(next());
}
String nextLine()
{
String str = "";
try
{
str = br.readLine();
}
catch (IOException e)
{
e.printStackTrace();
}
return str;
}
}
public static Integer[] getIntArrayFromSingleLine(){
List<Integer> list = new LinkedList<>();
String[] str = fr.nextLine().split(" ");
for(String s: str){
list.add(Integer.parseInt(s));
}
Integer[] arr = new Integer[list.size()];
return list.toArray(arr);
}
public static Long[] getLongArrayFromSingleLine(){
List<Long> list = new LinkedList<>();
String[] str = fr.nextLine().split(" ");
for(String s: str){
list.add(Long.parseLong(s));
}
Long[] longs = new Long[list.size()];
return list.toArray(longs);
}
public static Double[] getDoubleArrayFromSingleLine(){
List<Double> list = new LinkedList<>();
String[] str= fr.nextLine().split(" ");
for(String s: str){
list.add(Double.parseDouble(s));
}
Double[] doubles = new Double[list.size()];
return list.toArray(doubles);
}
public static String[] getStringArrayFromSingleLine(){
return fr.nextLine().split(" ");
}
public static int[] getArray(int n){
int[] arr = new int[n];
for(int i=0; i<n; i++){
arr[i] = fr.nextInt();
}
return arr;
}
public static long[] getLongArray(int n){
long[] res = new long[n];
for(int i=0; i<n; i++){
res[i] = fr.nextLong();
}
return res;
}
public static double[] getDoubleArray(int n){
double[] arr = new double[n];
for(int i=0; i<n ; i++){
arr[i] = fr.nextDouble();
}
return arr;
}
public static char[] getCharArray(){
return fr.next().toCharArray();
}
public static String[] getStringArray(int n){
String[] strings = new String[n];
for(int i=0; i<n; i++){
strings[i] = fr.next();
}
return strings;
}
// Get GCD
public static int getGCD(int a, int b){
return (a==0 ? b : getGCD(b%a, a));
}
public static int getGCD(int[] arr){
int n = arr.length;
if(n==0){
return -1;
}
int res = arr[0];
for(int i=1; i<n; i++){
res = getGCD(res, arr[i]);
}
return res;
}
// Get all prime numbers till N using seive of Eratosthenes
public static List<Integer> getPrimesTill(int n){
boolean[] arr = new boolean[n+1];
List<Integer> primes = new LinkedList<>();
for(int i=2; i<=n; i++){
if(!arr[i]){
primes.add(i);
for(long j=(i*i); j<=n; j+=i){
arr[(int)j] = true;
}
}
}
return primes;
}
// This method returns list of PrimeFactors of a number in O(sqrt(N));
public static Map<Integer,Integer> getPrimeFactors(long n){
Map<Integer,Integer> res = new HashMap<>();
int sqrt = (int) Math.sqrt(n);
if(n%2 == 0){
int c = 0;
while(n%2==0){
c++;
n/=2;
}
res.put(2,c);
}
for(int i=3; i<=sqrt; i+=2){
if(n%i == 0) {
int c = 0;
while (n % i == 0) {
c++;
n /= i;
}
res.put(i,c);
}
}
if(n!=1){
res.put((int)n,1);
}
return res;
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
cpp
|
#include <bits/stdc++.h>
using namespace std;
long long n, m, k;
pair<long long, long long> cost[222222];
long long a[222222];
vector<pair<long long, long long>> b[4];
long long s[4][222222];
long long pos[4];
long long apos[4];
long long adel;
long long al;
long long ai;
long long get_cnt(long long t, long long x, long long y) {
for (long long i = 0; i < long long(4); ++i) {
pos[i] =
upper_bound(b[i].begin(), b[i].end(), make_pair(t, (long long)1e9)) -
b[i].begin();
if (i == 3)
pos[i] = max(pos[i], x);
else if (i)
pos[i] = max(pos[i], y);
}
return pos[0] + pos[1] + pos[2] + pos[3];
}
set<tuple<long long, long long, long long>> vec;
void solve() {
scanf("%lld%lld%lld", &n, &m, &k);
for (long long i = 0; i < long long(n); ++i) {
scanf("%lld", &cost[i].first);
cost[i].second = i;
long long an, bn;
scanf("%lld%lld", &an, &bn);
a[i] = 2 * an + bn;
}
for (long long i = 0; i < long long(n); ++i) {
b[a[i]].push_back(cost[i]);
}
for (long long i = 0; i < long long(4); ++i) sort(b[i].begin(), b[i].end());
for (long long i = 0; i < long long(4); ++i)
for (long long j = 1; j <= long long(b[i].size()); ++j)
s[i][j] = s[i][j - 1] + b[i][j - 1].first;
long long A = (long long)1e18;
for (long long i = 0; i <= k && i <= long long(b[3].size()); ++i) {
if (k - i > min(long long(b[1].size()), long long(b[2].size()))) continue;
if (k * 2 - i > m) continue;
long long l = 0, r = (long long)1e9;
while (l < r) {
long long mid = (l + r) / 2;
if (get_cnt(mid, i, k - i) >= m)
r = mid;
else
l = mid + 1;
}
long long cnt = get_cnt(l, i, k - i);
long long tmp = 0;
for (long long j = 0; j < long long(4); ++j) tmp += s[j][pos[j]];
tmp -= 1ll * (cnt - m) * l;
if (A > tmp) {
A = tmp;
long long del = cnt - m;
swap(apos, pos);
adel = del;
al = l;
ai = i;
}
}
vec.clear();
swap(pos, apos);
long long l = al;
long long del = adel;
long long i = ai;
for (long long q = 0; q < long long(4); ++q) {
for (long long j = 0; j < long long(pos[q]); ++j)
vec.insert(make_tuple(b[q][j].first, i, b[q][j].second));
}
long long c1 = pos[1];
long long c2 = pos[2];
long long c3 = pos[3];
set<tuple<long long, long long, long long>> rem;
for (auto& it : vec) {
if (del == 0) break;
long long c, type, idx;
tie(c, type, idx) = it;
if (c != l) continue;
if (type == 0) {
--del;
rem.insert(it);
continue;
}
if (type == 1 && c1 > k - i) {
--c1;
--del;
rem.insert(it);
continue;
}
if (type == 2 && c2 > k - i) {
--c2;
--del;
rem.insert(it);
continue;
}
if (c3 > i) {
--c3;
--del;
rem.insert(it);
continue;
}
}
for (auto& it : rem) vec.erase(it);
if (A > 1e17) {
puts("-1");
return;
}
printf("%lld\n", A);
for (auto& it : vec) {
printf("%lld ", get<2>(it) + 1);
}
puts("");
}
signed main() {
long long T = 1;
while (T--) solve();
return 0;
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
import java.io.OutputStream;
import java.io.IOException;
import java.io.InputStream;
import java.io.OutputStream;
import java.io.PrintWriter;
import java.io.BufferedWriter;
import java.io.IOException;
import java.io.InputStreamReader;
import java.util.ArrayList;
import java.util.StringTokenizer;
import java.io.Writer;
import java.io.OutputStreamWriter;
import java.io.BufferedReader;
import java.util.Collections;
import java.io.InputStream;
/**
* Built using CHelper plug-in
* Actual solution is at the top
*/
public class Main {
public static void main(String[] args) {
InputStream inputStream = System.in;
OutputStream outputStream = System.out;
InputReader in = new InputReader(inputStream);
OutputWriter out = new OutputWriter(outputStream);
E1ReadingBooksEasyVersion solver = new E1ReadingBooksEasyVersion();
solver.solve(1, in, out);
out.close();
}
static class E1ReadingBooksEasyVersion {
public void solve(int testNumber, InputReader in, OutputWriter out) {
int n = in.nextInt();
int k = in.nextInt();
ArrayList<E1ReadingBooksEasyVersion.Pair> list = new ArrayList<>();
int ca = 0, cb = 0;
for (int i = 0; i < n; i++) {
int t = in.nextInt();
int a = in.nextInt();
int b = in.nextInt();
if (a == 0 && b == 0) continue;
list.add(new E1ReadingBooksEasyVersion.Pair(t, a, b));
ca = Math.min(k, (a == 1 ? 1 : 0) + ca);
cb = Math.min(k, (b == 1 ? 1 : 0) + cb);
}
if (ca < k || cb < k) {
out.println(-1);
return;
}
Collections.sort(list);
int total = 0;
int i = 0;
boolean[] taken = new boolean[list.size()];
while (ca > 0 || cb > 0) {
E1ReadingBooksEasyVersion.Pair p = list.get(i);
if ((ca <= 0 && p.b == 0) || (cb <= 0 && p.a == 0)) {
i++;
continue;
}
taken[i] = true;
total += p.time;
ca -= p.a;
cb -= p.b;
i++;
}
i = list.size() - 1;
while (ca < 0 && i >= 0) {
E1ReadingBooksEasyVersion.Pair p = list.get(i);
if (p.a == 1 && p.b == 0 && taken[i]) {
total -= p.time;
ca++;
taken[i] = false;
}
i--;
}
i = list.size() - 1;
while (cb < 0 && i >= 0) {
E1ReadingBooksEasyVersion.Pair p = list.get(i);
if (p.b == 1 && p.a == 0 && taken[i]) {
total -= p.time;
cb++;
taken[i] = false;
}
i--;
}
out.println(total);
}
static class Pair implements Comparable<E1ReadingBooksEasyVersion.Pair> {
int time;
int a;
int b;
Pair(int time, int a, int b) {
this.time = time;
this.a = a;
this.b = b;
}
public int compareTo(E1ReadingBooksEasyVersion.Pair v) {
if (time == v.time) return Math.abs(a - b) - Math.abs(v.a - v.b);
return Integer.compare(time, v.time);
}
}
}
static class OutputWriter {
private final PrintWriter writer;
public OutputWriter(OutputStream outputStream) {
writer = new PrintWriter(new BufferedWriter(new OutputStreamWriter(outputStream)));
}
public OutputWriter(Writer writer) {
this.writer = new PrintWriter(writer);
}
public void close() {
writer.close();
}
public void println(int i) {
writer.println(i);
}
}
static class InputReader {
BufferedReader reader;
StringTokenizer tokenizer;
public InputReader(InputStream stream) {
reader = new BufferedReader(new InputStreamReader(stream), 32768);
tokenizer = null;
}
public String next() {
while (tokenizer == null || !tokenizer.hasMoreTokens()) {
try {
tokenizer = new StringTokenizer(reader.readLine());
} catch (IOException e) {
throw new RuntimeException(e);
}
}
return tokenizer.nextToken();
}
public int nextInt() {
return Integer.parseInt(next());
}
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
cpp
|
// _
// (_)
// _ __ ___ __ _ _ ___ _ __ _ __ ___
//| '_ ` _ \ / _` | |/ _ \| '__| '__/ _ \
//| | | | | | (_| | | (_) | | | | | (_) |
//|_| |_| |_|\__,_| |\___/|_| |_| \___/
// _/ |
// |__/
#define _CRT_SECURE_NO_WARNINGS
#include <bits/stdc++.h>
#include <ext/pb_ds/assoc_container.hpp>
#include <ext/pb_ds/tree_policy.hpp>
using namespace std;
using namespace __gnu_pbds;
typedef long long ll;
typedef unsigned long long ull;
typedef double dbl;
typedef long double ldbl;
typedef pair<int, int> pii;
typedef pair<ll, ll> pll;
typedef string str;
typedef vector<int> vi;
typedef vector<ll> vll;
typedef vector<bool> vbl;
typedef tree<
pll,
null_type,
less<pll>,
rb_tree_tag,
tree_order_statistics_node_update>
ordered_set;
#define majorro cout.precision(20); ios::sync_with_stdio(0); cin.tie(0); cout.tie(0);
#define pb push_back
#define forn(i, n) for(ll (i) = 0; (i) < (n); ++(i))
#define fornm(i, m, n) for(ll (i) = (m); (i) < (n); ++(i))
#define rfornm(i, m, n) for(ll (i) = (m); (i) >= (n); --(i))
#define readvec(vector, n) {ll temp_vec_val;forn(inc, n){cin >> temp_vec_val;vector.push_back(temp_vec_val);}}
#define printvec(vector, delimeter) {ll length_of_vector=vector.size();\
forn(elementvec, length_of_vector){cout << vector[elementvec] << delimeter;}}
#define printarr(arr, length, delimeter) {forn(elementarr, length){cout << arr[elementarr] << delimeter;}}
#define all(vector) (vector).begin(), (vector).end()
#define rall(vector) (vector).rbegin(), (vector).rend()
#define endl "\n"
struct pair_hash
{
template <class T1, class T2>
std::size_t operator() (const std::pair<T1, T2>& pair) const
{
return std::hash<T1>()(pair.first) ^ std::hash<T2>()(pair.second);
}
};
const ldbl EPS = 1e-6;
const ll MOD = 1000000007;
// const ll MOD = 998244353;
// const ll MOD = 3037000499;
// const ull MOD = 1000000000000000003;
const ll INF = 1e18;
const ldbl pi = 2 * acos(0.0);
ll n, m, k, p, q, t, sum = 0, cnt= 0;
ll mx = -INF;
ll mn = INF;
bool flag = 0;
vll v;
str s = "", s1, s2;
char c;
void bad_solve(){}
void solve() //set.merge() -> c++17
//DELET DEBUG OUTPUT!11!1
//"YES"/"NO" OUTPUT!!!!
//__builtin_popcountll() -> __popcnt64() from <intrin.h>
{
ll mm;
cin >> n >> mm >> k;
vector<pll> tw;
vector<pll> al, bb, ze;
set<ll> ans;
forn(i, n)
{
cin >> p >> q >> m;
if(q && !m) al.pb({p,i+1});
else if(!q && m) bb.pb({p,i+1});
else if(q&&m) tw.pb({p,i+1});
else ze.pb({p,i+1});
}
sort(all(al));sort(all(bb));sort(all(tw));
while((ll)al.size() > k)
{
ze.pb(al.back());
al.pop_back();
}
while((ll)bb.size() > k)
{
ze.pb(bb.back());
bb.pop_back();
}
forn(i, (ll)al.size())
{
sum += al[i].first;
ans.insert(al[i].second);
++cnt;
}
forn(i, (ll)bb.size())
{
sum += bb[i].first;
ans.insert(bb[i].second);
++cnt;
}
p = 0;
n = tw.size();
while(p < n && ((ll)al.size() < k || (ll)bb.size() < k))
{
sum += tw[p].first;
ans.insert(tw[p].second);
al.pb({-1,-1});
bb.pb({-1,-1});
++cnt;
++p;
}
if((ll)al.size() < k || (ll)bb.size() < k) cout << -1;
else
{
sort(all(al));sort(all(bb));
while((ll)al.size() > k)
{
sum -= al.back().first;
--cnt;
ans.erase(al.back().second);
ze.pb(al.back());
al.pop_back();
}
while((ll)bb.size() > k)
{
sum -= bb.back().first;
--cnt;
ans.erase(bb.back().second);
ze.pb(bb.back());
bb.pop_back();
}
ll pa = al.size()-1, pbb = bb.size()-1;
while(p < n && (pa >= 0 || pbb >= 0))
{
if(pa >= 0 && pbb >= 0)
{
if(al[pa].first+bb[pbb].first >= tw[p].first || (cnt > mm && al[pa].first != -1 && bb[pbb].first != -1))
{
sum -= al[pa].first+bb[pbb].first;
ans.erase(al[pa].second);
ans.erase(bb[pbb].second);
ze.pb(al[pa]);
ze.pb(bb[pbb]);
al[pa] = {-1,-1};
bb[pbb] = {-1,-1};
--cnt;
sum += tw[p].first;
ans.insert(tw[p].second);
--pa;
--pbb;
++p;
}
else break;
}
else if(pa >= 0)
{
if(al[pa] > tw[p])
{
sum -= al[pa].first;
ans.erase(al[pa].second);
sum += tw[p].first;
ans.insert(tw[p].second);
ze.pb(al[pa]);
al[pa] = {-1,-1};
--pa;
++p;
}
else break;
}
else if(pbb >= 0)
{
if(bb[pbb] > tw[p])
{
sum -= bb[pbb].first;
ans.erase(bb[pbb].second);
sum += tw[p].first;
ans.insert(tw[p].second);
ze.pb(bb[pbb]);
bb[pbb] = {-1,-1};
--pbb;
++p;
}
else break;
}
}
while(p < n)
{
ze.pb(tw[p]);
++p;
}
sort(all(ze));
forn(i, ze.size())
{
if(cnt >= mm) break;
++cnt;
ans.insert(ze[i].second);
sum += ze[i].first;
}
if(cnt != mm) cout << -1;
else
{
cout << sum << endl;
for(auto it : ans) cout << it << ' ';
}
}
}
int main()
{
#ifndef ONLINE_JUDGE
freopen("F:\\repos\\projects\\contests_vsc\\in.txt", "r", stdin);
freopen("F:\\repos\\projects\\contests_vsc\\out.txt", "w", stdout);
#endif
majorro
solve();
// freopen("test.txt", "w", stdout);
// bad_solve();
// memset(v, INT_MAX, 1000*2000*sizeof(int));
return 0;
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
cpp
|
#include <bits/stdc++.h>
using namespace std;
vector<string> split(const string& s, char c) {
vector<string> v;
stringstream ss(s);
string x;
while (getline(ss, x, c)) v.emplace_back(x);
return move(v);
}
template <typename T, typename... Args>
inline string arrStr(T arr, int n) {
stringstream s;
s << "[";
for (int i = 0; i < n - 1; i++) s << arr[i] << ",";
s << arr[n - 1] << "]";
return s.str();
}
inline void __evars_begin(int line) { cerr << "#" << line << ": "; }
template <typename T>
inline void __evars_out_var(vector<T> val) {
cerr << arrStr(val, val.size());
}
template <typename T>
inline void __evars_out_var(T* val) {
cerr << arrStr(val, 10);
}
template <typename T>
inline void __evars_out_var(T val) {
cerr << val;
}
inline void __evars(vector<string>::iterator it) { cerr << endl; }
template <typename T, typename... Args>
inline void __evars(vector<string>::iterator it, T a, Args... args) {
cerr << it->substr((*it)[0] == ' ', it->length()) << "=";
__evars_out_var(a);
cerr << "; ";
__evars(++it, args...);
}
int const LIM = 2e6 + 3;
int const N = 1e6;
int arr[LIM + 3];
long long inf = 1e18;
int par[LIM + 3];
map<int, long long> to;
int main() {
int tc;
tc = 1;
while (tc--) {
std::vector<int> A, B, C;
int n, k;
cin >> n >> k;
for (int i = 0; i < n; i++) {
int x, a, b;
scanf("%d %d %d", &x, &a, &b);
if (a + b == 2) C.push_back(x);
if (a == 1 && b == 0)
B.push_back(x);
else
A.push_back(x);
}
sort(B.begin(), B.end());
sort(A.begin(), A.end());
int sz1 = A.size(), sz2 = B.size();
for (int i = 0; i < min(sz1, sz2); i++) C.push_back(A[i] + B[i]);
sort(C.begin(), C.end());
if (C.size() < k)
puts("-1");
else {
long long Ans = 0;
for (auto x : C) Ans += x;
cout << Ans;
puts("");
}
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
import sys
s = sys.stdin.readline().split()
n, m, k = int(s[0]), int(s[1]), int(s[2])
elev = False
all = []
All = []
Alice = []
Bob = []
Both = []
none = []
z = 1
while n:
i = sys.stdin.readline().split()
x = 3
i.append(z)
while x:
i[x - 1] = int(i[x - 1])
x -= 1
all.append(i)
if i[1] == i[2]:
if i[1] == 0:
none.append(i)
else:
Both.append(i)
else:
if i[1] == 0:
Bob.append(i)
else:
Alice.append(i)
z += 1
n -= 1
Alice.sort(key=lambda x: x[0])
Bob.sort(key=lambda x: x[0])
Both.sort(key=lambda x: x[0])
none.sort(key=lambda x: x[0])
#print('Alice')
#print(Alice)
#print('Alice')
#print('Bob')
#print(Bob)
#print('Bob')
#print('Both')
#print(Both)
#print('Both')
#print('none')
#print(none)
#print('none')
if elev:
print('Alice1 = ' + str(len(Alice)))
print('Bob1 = ' + str(len(Bob)))
print('Both1 = ' + str(len(Both)))
print('none1 = ' + str(len(none)))
if 2 * k > m:
l = 2 * k - m
if len(Both) >= l:
tresult = Both[:l]
Both = Both[l:]
All = Alice + Both + Bob + none
m = 2 * (m - k)
k = k - l
else:
print(-1)
exit()
else:
tresult = []
if elev:
print('Both2 = ' + str(len(Both)))
print('tresult = ' + str(len(tresult)))
resulta = []
resultb = []
if k > 0:
aaa = Alice + Both
aaa.sort(key=lambda x: x[0])
if len(aaa) >= k:
resulta = aaa[:k]
else:
print(-1)
exit()
col_totals1 = [sum(x) for x in zip(*resulta)]
xx = col_totals1[2]
yy = k - xx
#Both = Both[xx:]
#Alice = Alice[yy:]
#k = k - xx
if elev:
print('xx, yy = ' + str(xx) + ', ' + str(yy))
print('resulta = ' + str(len(resulta)))
print('Both3 = ' + str(len(Both)))
print('Alice2 = ' + str(len(Alice)))
print('k = ' + str(k))
#if k > 0:
bbb = Bob + Both
bbb.sort(key=lambda x: x[0])
if len(bbb) >= k:
resultb = bbb[:k]
else:
print(-1)
exit()
col_totals2 = [sum(x) for x in zip(*resultb)]
xxx = col_totals2[1]
yyy = k - xxx
if elev:
print('xxx, xyy = ' + str(xxx) + ', ' + str(yyy))
print('resultb = ' + str(len(resultb)))
print('Both4 = ' + str(len(Both)))
print('Bob2 = ' + str(len(Bob)))
if max(xx, xxx) == xx:
resultb = []
Both = Both[xx:]
Alice = Alice[yy:]
k = k - xx
if k > 0:
bbb = Bob + Both
bbb.sort(key=lambda x: x[0])
if len(bbb) >= k:
resultb = bbb[:k]
else:
print(-1)
exit()
col_totals2 = [sum(x) for x in zip(*resultb)]
xxx = col_totals2[1]
yyy = k - xxx
Both = Both[xxx:]
Bob = Bob[yyy:]
else:
resulta = []
Both = Both[xxx:]
Bob = Bob[yyy:]
k = k -xxx
if k > 0:
aaa = Alice + Both
aaa.sort(key=lambda x: x[0])
if len(aaa) >= k:
resulta = aaa[:k]
else:
print(-1)
exit()
col_totals2 = [sum(x) for x in zip(*resultb)]
xx = col_totals2[1]
yy = k - xx
Both = Both[xx:]
Bob = Bob[yy:]
if elev:
print('xx, yy = ' + str(xx) + ', ' + str(yy))
print('xxx, yyy = ' + str(xxx)+', '+ str(yyy))
print('resultb = ' + str(len(resultb)))
print(resultb)
print('resulta = ' + str(len(resulta)))
print(resulta)
print('Bothf = ' + str(len(Both)))
print('Bobf = ' + str(len(Bob)))
print('Alicf = '+ str(len(Alice)))
q = len(resultb) + len(resulta)
q = m - q
All = Both + Alice + Bob + none
All.sort(key=lambda x: x[0])
if elev:
print('q = ' + str(q))
print('All = ' + str(len(All)))
result = All[:q]
result = resulta + resultb + result + tresult
result.sort(key=lambda x: x[0])
print(sum(row[0] for row in result))
print(' '.join([str(row[3]) for row in result]))
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
import java.io.*;
import java.util.*;
public class X {
public static void main(String[] args) {
FastScanner in=new FastScanner();
PrintWriter out=new PrintWriter(System.out);
int n=in.nextInt();
int k=in.nextInt();
int a[][]=new int[n][3];
for(int i=0;i<n;i++) {
a[i][0]=in.nextInt(); a[i][1]=in.nextInt(); a[i][2]=in.nextInt();
}
Arrays.sort(a,new Comparator<int[]>(){
public int compare(int a[],int b[]){
return a[0]-b[0];
}
});
ArrayList<Integer> ans=new ArrayList<>();
long a1=0,a2=0;
for(int i=0;i<n;i++){
if(a[i][1]==1) a1++;
if(a[i][2]==1) a2++;
ans.add(a[i][0]);
if(a1>=k&&a2>=k) break;
}
long as=0;
if(a1<k||a2<k) { out.println("-1"); return; }
for(int i=0;i<ans.size();i++){
as+=ans.get(i);
}
out.println(as);
out.close();
}
static void sort(int[] a) {
ArrayList<Integer> l=new ArrayList<>();
for (int i:a) l.add(i);
Collections.sort(l);
for (int i=0; i<a.length; i++) a[i]=l.get(i);
}
static class FastScanner {
BufferedReader br=new BufferedReader(new InputStreamReader(System.in));
StringTokenizer st=new StringTokenizer("");
String next() {
while (!st.hasMoreTokens())
try {
st=new StringTokenizer(br.readLine());
} catch (IOException e) {
e.printStackTrace();
}
return st.nextToken();
}
int nextInt() {
return Integer.parseInt(next());
}
int[] readArray(int n) {
int[] a=new int[n];
for (int i=0; i<n; i++) a[i]=nextInt();
return a;
}
long nextLong() {
return Long.parseLong(next());
}
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
import javafx.util.Pair;
import java.io.BufferedWriter;
import java.io.IOException;
import java.io.InputStream;
import java.io.OutputStream;
import java.io.OutputStreamWriter;
import java.io.PrintWriter;
import java.io.Writer;
import java.util.ArrayList;
import java.util.HashSet;
import java.util.InputMismatchException;
import java.util.List;
import java.util.Set;
public class CF1374 {
public void solve() {
InputReader in = new InputReader(System.in);
OutputWriter out = new OutputWriter(System.out);
int n = in.readInt();
long k = in.readLong();
ArrayList<Pair<Integer, Integer>> alice = new ArrayList<>();
ArrayList<Pair<Integer, Integer>> bob = new ArrayList<>();
HashSet<Integer> aliceLikes = new HashSet<>(), bobLikes = new HashSet<>();
for (int i = 0; i < n; i++) {
int ti = in.readInt(), ai = in.readInt(), bi = in.readInt();
if ( ai == 1 ) {
alice.add(new Pair(ti, i));
aliceLikes.add(i);
}
if ( bi == 1 ) {
bob.add(new Pair(ti, i));
bobLikes.add(i);
}
}
if ( aliceLikes.size() < k || bobLikes.size() < k ) {
out.printLine(-1);
out.flush();
System.exit(0);
}
alice.sort((t1, t2) -> (Integer.compare(t1.getKey(), t2.getKey())));
bob.sort((t1, t2) -> (Integer.compare(t1.getKey(), t2.getKey())));
HashSet<Integer> picked = new HashSet<>();
//picking smallest K elements of Alice
long ans = 0;
for (int i = 0; i < k; i++) {
ans += alice.get(i).getKey();
if ( bobLikes.contains(alice.get(i).getValue()) ) {
picked.add(alice.get(i).getValue());
}
}
for (Pair<Integer, Integer> aBob : bob) {
if ( picked.size() == k ) {
break;
}
if ( !picked.contains(aBob.getValue()) ) {
ans += aBob.getKey();
picked.add(aBob.getValue());
}
}
//picking smallest K elements of bob
long ans1 = 0;
picked = new HashSet<>();
for (int i = 0; i < k; i++) {
ans1 += bob.get(i).getKey();
if ( aliceLikes.contains(bob.get(i).getValue()) ) {
picked.add(bob.get(i).getValue());
}
}
for (Pair<Integer, Integer> anAlice : alice) {
if ( picked.size() == k ) {
break;
}
if ( !picked.contains(anAlice.getValue()) ) {
ans1 += anAlice.getKey();
picked.add(anAlice.getValue());
}
}
out.printLine(Math.min(ans, ans1));
out.flush();
}
public static void main(String[] args) {
CF1374 solver = new CF1374();
solver.solve();
}
static class InputReader {
private InputStream stream;
private byte[] buf = new byte[1024];
private int curChar;
private int numChars;
private SpaceCharFilter filter;
public InputReader(InputStream stream) {
this.stream = stream;
}
public int read() {
if ( numChars == -1 )
throw new InputMismatchException();
if ( curChar >= numChars ) {
curChar = 0;
try {
numChars = stream.read(buf);
} catch (IOException e) {
throw new InputMismatchException();
}
if ( numChars <= 0 )
return -1;
}
return buf[curChar++];
}
public int readInt() {
int c = read();
while (isSpaceChar(c))
c = read();
int sgn = 1;
if ( c == '-' ) {
sgn = -1;
c = read();
}
int res = 0;
do {
if ( c < '0' || c > '9' )
throw new InputMismatchException();
res *= 10;
res += c - '0';
c = read();
} while (!isSpaceChar(c));
return res * sgn;
}
public long readLong() {
int c = read();
while (isSpaceChar(c))
c = read();
int sgn = 1;
if ( c == '-' ) {
sgn = -1;
c = read();
}
long res = 0;
do {
if ( c < '0' || c > '9' )
throw new InputMismatchException();
res *= 10;
res += c - '0';
c = read();
} while (!isSpaceChar(c));
return res * sgn;
}
public String readString() {
int c = read();
while (isSpaceChar(c))
c = read();
StringBuilder res = new StringBuilder();
do {
res.appendCodePoint(c);
c = read();
} while (!isSpaceChar(c));
return res.toString();
}
public boolean isSpaceChar(int c) {
if ( filter != null )
return filter.isSpaceChar(c);
return c == ' ' || c == '\n' || c == '\r' || c == '\t' || c == -1;
}
public String next() {
return readString();
}
public interface SpaceCharFilter {
public boolean isSpaceChar(int ch);
}
}
static class OutputWriter {
private final PrintWriter writer;
public OutputWriter(OutputStream outputStream) {
writer = new PrintWriter(new BufferedWriter(new OutputStreamWriter(outputStream)));
}
public OutputWriter(Writer writer) {
this.writer = new PrintWriter(writer);
}
public void print(Object... objects) {
for (int i = 0; i < objects.length; i++) {
if ( i != 0 )
writer.print(' ');
writer.print(objects[i]);
}
}
public void printLine(Object... objects) {
print(objects);
writer.println();
}
public void close() {
writer.close();
}
public void flush() {
writer.flush();
}
}
static class IOUtils {
public static int[] readIntegerArray(InputReader in, int size) {
int[] array = new int[size];
for (int i = 0; i < size; i++) {
array[i] = in.readInt();
}
return array;
}
public static Long[] readLongArray(InputReader in, int size) {
Long[] array = new Long[size];
for (int i = 0; i < size; i++) {
array[i] = in.readLong();
}
return array;
}
public static List<Integer> readIntegerList(InputReader in, int size) {
List<Integer> set = new ArrayList<>();
for (int i = 0; i < size; i++) {
set.add(in.readInt());
}
return set;
}
public static Set<Integer> readIntegerSet(InputReader in, int size) {
Set<Integer> set = new HashSet<Integer>();
for (int i = 0; i < size; i++) {
set.add(in.readInt());
}
return set;
}
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
n,m,k = map(int, input().split())
oo = list()
oa = list()
ob = list()
zz = list()
for i in range(n):
t,a,b = map(int, input().split())
if a == 1 and b == 1:
oo.append((t,i))
elif a == 0 and b == 1:
ob.append((t,i))
elif a == 1 and b == 0:
oa.append((t,i))
else:
zz.append((t,i))
oo = sorted(oo)
oa = sorted(oa)
ob = sorted(ob)
oo_p = 0
oa_p = 0
ob_p = 0
ca = 0
cb = 0
ans = 0
ans_arr = list()
MAX = 23942034809238409823048
def condition(ko, loa, lob, loo, mo):
if max(0, max(ko-loa, ko-lob)) > loo or max(0, max(ko-loa, ko-lob)) > mo:
return False
return True
def get_first_elem_from_list(l, pos):
if pos < len(l):
return l[pos]
else:
return (MAX,-1)
def remove_first_elem_from_list(l, pos):
if len(l)>pos:
pos += 1
return pos
if not condition(k, len(oa), len(ob), len(oo), m):
print("-1")
exit(0)
c = 0
while ca < k or cb < k:
oo_f = get_first_elem_from_list(oo, oo_p)
oa_f = get_first_elem_from_list(oa, oa_p)
ob_f = get_first_elem_from_list(ob, ob_p)
c += 1
if ca < k and cb < k:
if oo_f[0] <= oa_f[0] + ob_f[0] or not condition(k-oo_p-oa_p-1, len(oa)-oa_p-1, len(ob) - ob_p -1, len(oo) - oo_p, m - oo_p - oa_p - ob_p - 2):
if oo_f[0] == MAX:
print("-1")
exit(0)
if n == 19683 and m == 507 and k == 254 and c > 200:
print(oo_f[0], oa_f[0], ob_f[0])
if n == 19683 and m == 507 and k == 254 and c < 200:
print(oo_f[0], oa_f[0], ob_f[0], "l")
ca += 1
cb += 1
ans+=oo_f[0]
ans_arr.append(oo_f[1])
oo_p = remove_first_elem_from_list(oo, oo_p)
elif oa_f[0] + ob_f[0] < oo_f[0]:
ca += 1
cb += 1
ans+=oa_f[0]+ob_f[0]
ans_arr.extend([oa_f[1], ob_f[1]])
oa_p = remove_first_elem_from_list(oa, oa_p)
ob_p = remove_first_elem_from_list(ob, ob_p)
elif ca < k:
if oo_f[0] <= oa_f[0]:
ca += 1
ans+=oo_f[0]
ans_arr.append(oo_f[1])
oo_p = remove_first_elem_from_list(oo, oo_p)
elif oa_f[0] < oo_f[0]:
ca += 1
ans+=oa_f[0]
ans_arr.append(oa_f[1])
oa_p = remove_first_elem_from_list(oa, oa_p)
else:
if oo_f[0] <= ob_f[0]:
cb += 1
ans+=oo_f[0]
ans_arr.append(oo_f[1])
oo_p = remove_first_elem_from_list(oo, oo_p)
elif ob_f[0] < oo_f[0]:
cb += 1
ans+=ob_f[0]
ans_arr.append(ob_f[1])
ob_p = remove_first_elem_from_list(ob, ob_p)
if len(ans_arr) < m:
zz.extend(oo[oo_p:])
zz.extend(oa[oa_p:])
zz.extend(ob[ob_p:])
zz = sorted(zz)
curr_size = len(ans_arr)
for i in range(m-curr_size):
ans += zz[i][0]
ans_arr.append(zz[i][1])
print(ans)
assert len(ans_arr) == m
for i in ans_arr:
print(i + 1, end =" ")
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
#dt = {} for i in x: dt[i] = dt.get(i,0)+1
import sys;input = sys.stdin.readline
inp,ip = lambda :int(input()),lambda :[int(w) for w in input().split()]
n,k = ip()
t,a,b = [0]*n,[0]*n,[0]*n
both = []
alice,bob = [],[]
for i in range(n):
t[i],a[i],b[i] = ip()
if a[i] and b[i]:
both.append(t[i])
elif a[i]:
alice.append(t[i])
elif b[i]:
bob.append(t[i])
if a.count(1) < k or b.count(1) < k:
print(-1)
exit()
both.sort()
alice.sort()
bob.sort()
m = min(len(alice),len(bob),k)
sa = sum(alice[:m])
sb = sum(bob[:m])
sboth = sum(both[:(k-m)])
ans = sa+sb+sboth
#print(m,sa,sb,sboth,ans)
for i in range(k-m,len(both)):
if m == 0:
break
sboth += both[i]
m -= 1
sa -= alice[m]
sb -= bob[m]
ans = max(ans,sa+sb+sboth)
print(ans)
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
import java.io.DataInputStream;
import java.io.FileInputStream;
import java.io.IOException;
import java.io.InputStreamReader;
import java.util.*;
public class HelloWorld{
public static void main(String []args) throws IOException{
Reader sc=new Reader();
int n=sc.nextInt(),k=sc.nextInt(),A=0,B=0;
int t[]=new int[n],a[]=new int[n],b[]=new int[n];
ArrayList<Long> sum[]=new ArrayList[4],times[]=new ArrayList[4];
for(int i=0;i<4;i++){
sum[i]=new ArrayList<Long>();
times[i]=new ArrayList<Long>();
sum[i].add(0l);
}
for(int i=0;i<n;i++){
t[i]=sc.nextInt();
a[i]=sc.nextInt();
b[i]=sc.nextInt();
A+=a[i];
B+=b[i];
int pos=a[i]*2+b[i];
times[pos].add(t[i]+0l);
}
if(A<k||B<k){
System.out.println("-1");
return;
}
for(int i=0;i<4;i++){
for(int j=0;j<times[i].size();j++){
long lastEle=sum[i].get(sum[i].size()-1);
sum[i].add(times[i].get(j)+lastEle);
}
}
long ans=Integer.MAX_VALUE;
for(int count=0;count<Integer.min(k+1,sum[3].size());count++){
int req=k-count;
if(req<sum[1].size()&&req<sum[2].size()){
ans=Math.min(ans,sum[3].get(count)+sum[1].get(req)+sum[2].get(req));
}
}
System.out.println(ans);
}
}
class Reader
{
final private int BUFFER_SIZE = 1 << 16;
private DataInputStream din;
private byte[] buffer;
private int bufferPointer, bytesRead;
public Reader()
{
din = new DataInputStream(System.in);
buffer = new byte[BUFFER_SIZE];
bufferPointer = bytesRead = 0;
}
public Reader(String file_name) throws IOException
{
din = new DataInputStream(new FileInputStream(file_name));
buffer = new byte[BUFFER_SIZE];
bufferPointer = bytesRead = 0;
}
public String readLine() throws IOException
{
byte[] buf = new byte[64]; // line length
int cnt = 0, c;
while ((c = read()) != -1)
{
if (c == '\n')
break;
buf[cnt++] = (byte) c;
}
return new String(buf, 0, cnt);
}
public int nextInt() throws IOException
{
int ret = 0;
byte c = read();
while (c <= ' ')
c = read();
boolean neg = (c == '-');
if (neg)
c = read();
do
{
ret = ret * 10 + c - '0';
} while ((c = read()) >= '0' && c <= '9');
if (neg)
return -ret;
return ret;
}
public long nextLong() throws IOException
{
long ret = 0;
byte c = read();
while (c <= ' ')
c = read();
boolean neg = (c == '-');
if (neg)
c = read();
do {
ret = ret * 10 + c - '0';
}
while ((c = read()) >= '0' && c <= '9');
if (neg)
return -ret;
return ret;
}
public double nextDouble() throws IOException
{
double ret = 0, div = 1;
byte c = read();
while (c <= ' ')
c = read();
boolean neg = (c == '-');
if (neg)
c = read();
do {
ret = ret * 10 + c - '0';
}
while ((c = read()) >= '0' && c <= '9');
if (c == '.')
{
while ((c = read()) >= '0' && c <= '9')
{
ret += (c - '0') / (div *= 10);
}
}
if (neg)
return -ret;
return ret;
}
private void fillBuffer() throws IOException
{
bytesRead = din.read(buffer, bufferPointer = 0, BUFFER_SIZE);
if (bytesRead == -1)
buffer[0] = -1;
}
private byte read() throws IOException
{
if (bufferPointer == bytesRead)
fillBuffer();
return buffer[bufferPointer++];
}
public void close() throws IOException
{
if (din == null)
return;
din.close();
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
n,k=map(int,input().split())
c=[]
c.sort()
for i in range(n):
t,a,b=map(int,input().split())
if a==1 or b==1:
c.append(t)
x=0
for i in range(k+1):
x+=c[i]
print(x)
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
from collections import Counter, defaultdict
BS="0123456789ABCDEFGHIJKLMNOPQRSTUVWXYZ"
def to_base(s, b):
res = ""
while s:
res+=BS[s%b]
s//= b
return res[::-1] or "0"
alpha = "abcdefghijklmnopqrstuvwxyz"
from math import floor, ceil,pi
primes = [2,3,5,7,11,13,17,19,23,29,31,37,41,43,47,53,59,61,67,71,73,79,83,89,97,101,103,107,109,113,127,131,137,139,149,151,157,163,167,173,179,181,191,193,197,199,211,223,227,229,233,239,241,251,257,263,269,271,277,281,283,293,307,311,313,317,331,337,347,349,353,359,367,373,379,383,389,397,401,409,419,421,431,433,439,443,449,457,461,463,467,479,487,491,499,503,509,521,523,541,547,557,563,569,571,577,587,593,599,601,607,613,617,619,631,641,643,647,653,659,661,673,677,683,691,701,709,719,727,733,739,743,751,757,761,769,773,787,797,809,811,821,823,827,829,839,853,857,859,863,877,881,883,887,907,911,919,929,937,941,947,953,967,971,977,983,991,997,1009,1013,1019,1021,1031,1033,1039,1049,1051,1061,1063,1069,1087,1091,1093,1097,1103,1109,1117,1123,1129,1151,1153,1163,1171,1181,1187,1193,1201,1213,1217,1223,1229,1231,1237,1249,1259,1277,1279,1283,1289,1291,1297,1301,1303,1307,1319,1321,1327,1361,1367,1373,1381,1399,1409,1423,1427,1429,1433,1439,1447,1451,1453,1459,1471,1481,1483,1487,1489,1493,1499,1511,1523,1531,1543,1549,1553,1559,1567,1571,1579,1583,1597,1601,1607,1609,1613,1619,1621,1627,1637,1657,1663,1667,1669,1693,1697,1699,1709,1721,1723,1733,1741,1747,1753,1759,1777,1783,1787,1789,1801,1811,1823,1831,1847,1861,1867,1871,1873,1877,1879,1889,1901,1907,1913,1931,1933,1949,1951,1973,1979,1987,1993,1997,1999,2003,2011,2017,2027,2029,2039,2053,2063,2069,2081,2083,2087,2089,2099,2111,2113,2129,2131,2137,2141,2143,2153,2161,2179,2203,2207,2213,2221,2237,2239,2243,2251,2267,2269,2273,2281,2287,2293,2297,2309,2311,2333,2339,2341,2347,2351,2357,2371,2377,2381,2383,2389,2393,2399,2411,2417,2423,2437,2441,2447,2459,2467,2473,2477,2503,2521,2531,2539,2543,2549,2551,2557,2579,2591,2593,2609,2617,2621,2633,2647,2657,2659,2663,2671,2677,2683,2687,2689,2693,2699,2707,2711,2713,2719,2729,2731,2741,2749,2753,2767,2777,2789,2791,2797,2801,2803,2819,2833,2837,2843,2851,2857,2861,2879,2887,2897,2903,2909,2917,2927,2939,2953,2957,2963,2969,2971,2999,3001,3011,3019,3023,3037,3041,3049,3061,3067,3079,3083,3089,3109,3119,3121,3137,3163,3167,3169,3181,3187,3191,3203,3209,3217,3221,3229,3251,3253,3257,3259,3271,3299,3301,3307,3313,3319,3323,3329,3331,3343,3347,3359,3361,3371,3373,3389,3391,3407,3413,3433,3449,3457,3461,3463,3467,3469,3491,3499,3511,3517,3527,3529,3533,3539,3541,3547,3557,3559,3571,3581,3583,3593,3607,3613,3617,3623,3631,3637,3643,3659,3671,3673,3677,3691,3697,3701,3709,3719,3727,3733,3739,3761,3767,3769,3779,3793,3797,3803,3821,3823,3833,3847,3851,3853,3863,3877,3881,3889,3907,3911,3917,3919,3923,3929,3931,3943,3947,3967,3989,4001,4003,4007,4013,4019,4021,4027,4049,4051,4057,4073,4079,4091,4093,4099,4111,4127,4129,4133,4139,4153,4157,4159,4177,4201,4211,4217,4219,4229,4231,4241,4243,4253,4259,4261,4271,4273,4283,4289,4297,4327,4337,4339,4349,4357,4363,4373,4391,4397,4409,4421,4423,4441,4447,4451,4457,4463,4481,4483,4493,4507,4513,4517,4519,4523,4547,4549,4561,4567,4583,4591,4597,4603,4621,4637,4639,4643,4649,4651,4657,4663,4673,4679,4691,4703,4721,4723,4729,4733,4751,4759,4783,4787,4789,4793,4799,4801,4813,4817,4831,4861,4871,4877,4889,4903,4909,4919,4931,4933,4937,4943,4951,4957,4967,4969,4973,4987,4993,4999,5003,5009,5011,5021,5023,5039,5051,5059,5077,5081,5087,5099,5101,5107,5113,5119,5147,5153,5167,5171,5179,5189,5197,5209,5227,5231,5233,5237,5261,5273,5279,5281,5297,5303,5309,5323,5333,5347,5351,5381,5387,5393,5399,5407,5413,5417,5419,5431,5437,5441,5443,5449,5471,5477,5479,5483,5501,5503,5507,5519,5521,5527,5531,5557,5563,5569,5573,5581,5591,5623,5639,5641,5647,5651,5653,5657,5659,5669,5683,5689,5693,5701,5711,5717,5737,5741,5743,5749,5779,5783,5791,5801,5807,5813,5821,5827,5839,5843,5849,5851,5857,5861,5867,5869,5879,5881,5897,5903,5923,5927,5939,5953,5981,5987,6007,6011,6029,6037,6043,6047,6053,6067,6073,6079,6089,6091,6101,6113,6121,6131,6133,6143,6151,6163,6173,6197,6199,6203,6211,6217,6221,6229,6247,6257,6263,6269,6271,6277,6287,6299,6301,6311,6317,6323,6329,6337,6343,6353,6359,6361,6367,6373,6379,6389,6397,6421,6427,6449,6451,6469,6473,6481,6491,6521,6529,6547,6551,6553,6563,6569,6571,6577,6581,6599,6607,6619,6637,6653,6659,6661,6673,6679,6689,6691,6701,6703,6709,6719,6733,6737,6761,6763,6779,6781,6791,6793,6803,6823,6827,6829,6833,6841,6857,6863,6869,6871,6883,6899,6907,6911,6917,6947,6949,6959,6961,6967,6971,6977,6983,6991,6997,7001,7013,7019,7027,7039,7043,7057,7069,7079,7103,7109,7121,7127,7129,7151,7159,7177,7187,7193,7207,7211,7213,7219,7229,7237,7243,7247,7253,7283,7297,7307,7309,7321,7331,7333,7349,7351,7369,7393,7411,7417,7433,7451,7457,7459,7477,7481,7487,7489,7499,7507,7517,7523,7529,7537,7541,7547,7549,7559,7561,7573,7577,7583,7589,7591,7603,7607,7621,7639,7643,7649,7669,7673,7681,7687,7691,7699,7703,7717,7723,7727,7741,7753,7757,7759,7789,7793,7817,7823,7829,7841,7853,7867,7873,7877,7879,7883,7901,7907,7919
]
def primef(n, plst = []):
if n==1:
return plst
else:
for m in primes:
if n%m==0:
return primef(n//m, plst+[m])
return primef(1, plst+[n])
def lmii():
return list(map(int, input().split()))
def ii():
return int(input())
def countOverlapping(string,sub):
count = start = 0
while True:
start = string.find(sub, start)+1
if start > 0:
count += 1
else:
return count
n,k = lmii()
gotA = []
gotB = []
got = []
for i in range(n):
a,b,c = lmii()
#print(a,b,c, gotA, gotB)
if b+c==2:
got.append(a)
elif b==0 and c==1:
if gotB:
aa,bb,cc = gotB.pop(0)
got.append(aa+a)
else:
gotA.append((a,b,c))
elif b==1 and c==0:
if gotA:
aa,bb,cc = gotA.pop(0)
got.append(aa+a)
else:
gotB.append((a,b,c))
got.sort()
if len(got) < k:
print(-1)
else:
print(sum(got))
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
import java.io.*;
import java.math.BigInteger;
import java.util.*;
public class E {
public static void main(String[] args) throws Exception {
Scanner sc = new Scanner(System.in);
PrintWriter pw = new PrintWriter(System.out);
int n = sc.nextInt();
int m = sc.nextInt();
int k = sc.nextInt();
PriorityQueue<Pair>a = new PriorityQueue<>();
PriorityQueue<Pair>b = new PriorityQueue<>();
PriorityQueue<Pair>both = new PriorityQueue<>();
PriorityQueue<Pair>garb = new PriorityQueue<>();
for(int i=0;i<n;i++){
int t = sc.nextInt();
int x = sc.nextInt();
int y = sc.nextInt();
if(x==1 && y==1){
both.add(new Pair(t,i+1));
}else if(x==1 && y!=1){
a.add(new Pair(t,i+1));
}else if(x!=1 && y==1){
b.add(new Pair(t,i+1));
}else{
garb.add(new Pair(t,i+1));
}
}
// System.out.println(a);
// System.out.println(b);
// System.out.println(both);
ArrayList<Integer>result = new ArrayList<>();
int c = 2*k-m;
boolean t = true;
long res = 0;
if(m<k)t = false;
while (!both.isEmpty() && c>0 && t){
if(both.isEmpty()){
t = false;break;}
Pair p = both.poll();
res+=p.a;
result.add(p.b);
c--;
k--;
m--;
}
while (k>0 && t){
int x = 1000000000;
int y = 1000000000;
int z = 1000000000;
if(!a.isEmpty()){
x=a.peek().a;
}
if(!b.isEmpty())y = b.peek().a;
if(!both.isEmpty())z = both.peek().a;
if(z<=x+y && !both.isEmpty()){
Pair p = both.poll();
res+=p.a;
result.add(p.b);
m--;
}
else if(!a.isEmpty() && !b.isEmpty() && m>1){
Pair p1 = a.poll();
Pair p2 = b.poll();
res+=p1.a;
res+=p2.a;
result.add(p1.b);
result.add(p2.b);
m-=2;
}else{
t = false;
break;
}
k--;
}
while (m>0){
int x = 1000000000;
int y = 1000000000;
int z = 1000000000;
int g = 1000000000;
if(!a.isEmpty()){
x=a.peek().a;
}
if(!b.isEmpty())y = b.peek().a;
if(!both.isEmpty())z = both.peek().a;
if(!garb.isEmpty())g = garb.peek().a;
if(z<=x&& z<=y && z<=g&& !both.isEmpty()){
Pair p = both.poll();
res+=p.a;
result.add(p.b);
m--;
}
else if(x<=y && x<=z && x<=g &&!a.isEmpty()){
Pair p1 = a.poll();
res+=p1.a;
result.add(p1.b);
m--;
}else if(y<=z && y<=x && y<=g&&!b.isEmpty()){
Pair p1 = b.poll();
res+=p1.a;
result.add(p1.b);
m--;
}else if(g<=z && g<=x && g<=y&&!garb.isEmpty()){
Pair p1 = garb.poll();
res+=p1.a;
result.add(p1.b);
m--;
}else{
t = false;
break;
}
}
if(t){
pw.println(res);
for(int i=0;i<result.size();i++)
pw.print(result.get(i)+" ");
pw.println();
}else{
pw.println(-1);
}
pw.flush();
pw.close();
}
static long power(long x, long y, long m) {
if (y == 0)
return 1;
long p = power(x, y / 2, m) % m;
p = (p * p) % m;
if (y % 2 == 0)
return p;
else
return (x * p) % m;
}
static class Node{
long a;
long b;
long c;
public Node(long a,long b,long c){
this.a= a;
this.b = b;
this.c = c;
}
}
static class Scanner {
StringTokenizer st;
BufferedReader br;
public Scanner(FileReader r) {
br = new BufferedReader(r);
}
public Scanner(InputStream s) {
br = new BufferedReader(new InputStreamReader(s));
}
public String next() throws IOException {
while (st == null || !st.hasMoreTokens())
st = new StringTokenizer(br.readLine());
return st.nextToken();
}
public int nextInt() throws IOException {
return Integer.parseInt(next());
}
public long nextLong() throws IOException {
return Long.parseLong(next());
}
public String nextLine() throws IOException {
return br.readLine();
}
public double nextDouble() throws IOException {
String x = next();
StringBuilder sb = new StringBuilder("0");
double res = 0, f = 1;
boolean dec = false, neg = false;
int start = 0;
if (x.charAt(0) == '-') {
neg = true;
start++;
}
for (int i = start; i < x.length(); i++)
if (x.charAt(i) == '.') {
res = Long.parseLong(sb.toString());
sb = new StringBuilder("0");
dec = true;
} else {
sb.append(x.charAt(i));
if (dec)
f *= 10;
}
res += Long.parseLong(sb.toString()) / f;
return res * (neg ? -1 : 1);
}
public boolean ready() throws IOException {
return br.ready();
}
}
static class Pair implements Comparable<Pair>{
int a;
int b;
public Pair(int a,int b){
this.a= a;
this.b = b;
}
public int compareTo(Pair o) {
if(this.a==o.a)return Integer.compare(b,o.b);
return Integer.compare(a,o.a);
}
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
import sys
reader = (s.rstrip() for s in sys.stdin)
input = reader.__next__
import math
from functools import reduce
n,k=list(map(int,input().split()))
temparry=[]
for i in range(3):
temparry.append([0]*10001)
for i in range(n):
t,a,b=list(map(int,input().split()))
if a and b:
temparry[0][t]+=1
elif a:
temparry[1][t]+=1
elif b:
temparry[2][t]+=1
ans=0
rema,remb=k,k
for i in range(10001):
if rema and remb:
freq=temparry[0][i]
if freq:
ans+=i
timus=min(rema,freq)
rema-=timus
remb-=timus
temparry[0][i]-=timus
#print(temparry[0][:20])
#print(temparry[1][:20])
#print(temparry[2][:20])
if rema or remb:
for i in range(10001):
#print(i,ans,temparry[0][i],rema,remb)
if rema:
freq0=temparry[0][i]
freq1=temparry[1][i]
tominus=min(freq0+freq1,rema)
if tominus:
rema-=tominus
ans+=i
if remb:
freq0=temparry[0][i]
freq2=temparry[2][i]
tominus=min(freq0+freq2,rema)
if tominus:
remb-=tominus
ans+=i
if rema==0 and remb==0:
break
if rema or remb:
print(-1)
else:
print(ans)
else:
print(ans)
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
n, k = map(int, input().split())
books = []
for _ in range(n):
t, a, b = map(int, input().split())
books.append((t, a, b))
books = sorted(books, key=lambda x: x[0])
a_l = []
b_l = []
t_l = []
a_cnt = 0
b_cnt = 0
for book in books:
if a_cnt >= k and b_cnt >= k:
break
else:
if book[1] == 1 and book[2] == 0:
if a_cnt < k:
a_l.append(book[0])
a_cnt += 1
elif book[1] == 0 and book[2] == 1:
if b_cnt < k:
b_l.append(book[0])
b_cnt += 1
elif book[1] == 1 and book[2] == 1:
if a_cnt >= k and len(a_l) != 0:
a_l.pop()
a_cnt = a_cnt - 1
if b_cnt >= k and len(b_l) != 0:
b_l.pop()
b_cnt = b_cnt - 1
t_l.append(book[0])
a_cnt += 1
b_cnt += 1
if a_cnt >= k and b_cnt >= k:
print(sum(a_l) + sum(b_l) + sum(t_l))
else:
print(-1)
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
# reading_books.py
from collections import defaultdict
n,k = map(int,input().split())
time = []
alice = []
bob = []
my_dick = {}
my_dick = defaultdict(lambda:list(),my_dick)
for i in range(n):
a,b,c = map(int,input().split())
if b+c==2:
my_dick[b+c].append(a)
elif b==0 and c == 1:
my_dick[b+3].append(a)
elif c==0 and b == 1:
my_dick[c+4].append(a)
if len(my_dick[2])>=k:
my_dick[2] = sorted(my_dick[2])
# ans =
# ans = 0
# k = k-len(my_dick[2])
if len(my_dick[3])>=k and len(my_dick[4])>=k:
print(max(sum(sorted(my_dick[3][:k])) + sum(sorted(my_dick[4][:k]))),sum(my_dick[2][:k]))
print()
else:
ans = sum(my_dick[2])
k = k-len(my_dick[2])
if len(my_dick[3])>=k and len(my_dick[4])>=k:
print(ans + sum(sorted(my_dick[3][:k])) + sum(sorted(my_dick[4][:k])))
else:
print("-1")
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
n, k = map(int, input().split())
both, a, b = [], [], []
for i in range(n):
t, al, bl = map(int, input().split())
if al&bl: both.append(t)
elif al: a.append(t)
else: b.append(t)
a.sort(); b.sort()
for i in range(min(len(a), len(b))):
both.append(a[i]+b[i])
print(-1 if len(both)<k else sum(sorted(both)[:k]))
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
cpp
|
#include <bits/stdc++.h>
using namespace std;
vector<pair<long long, int>> alice, bob, both, none;
vector<int> seq;
int main() {
long long n, k, i, j, m, p, q, a, b, t, ans, counter, book;
cin >> n >> m >> k;
for (i = 0; i < n; i++) {
cin >> t >> a >> b;
if (a == 1 and b == 1)
both.push_back(make_pair(t, i + 1));
else if (a == 1)
alice.push_back(make_pair(t, i + 1));
else if (b == 1)
bob.push_back(make_pair(t, i + 1));
else
none.push_back(make_pair(t, i + 1));
}
sort(both.begin(), both.end());
sort(alice.begin(), alice.end());
sort(bob.begin(), bob.end());
i = 0, j = 0, p = 0, q = 0, book = 0, counter = 0, ans = 0;
while (i < both.size() and j < alice.size() and p < bob.size() and
q < none.size() and counter < k) {
if (alice[j].first + bob[p].first <= both[i].first and book + 2 <= m) {
ans += alice[j].first + bob[p].first;
seq.push_back(alice[j].second);
seq.push_back(bob[p].second);
j++, p++, book += 2, counter++;
} else if (book + 1 <= m) {
ans += both[i].first;
seq.push_back(both[i].second);
i++, book++, counter++;
} else
break;
}
while (j < alice.size() and p < bob.size() and counter < k and
book + 2 <= m) {
ans += alice[j].first + bob[p].first;
seq.push_back(alice[j].second);
seq.push_back(bob[p].second);
j++, p++, book += 2, counter++;
}
while (counter < k and i < both.size() and book + 1 <= m) {
ans += both[i].first;
seq.push_back(both[i].second);
i++, book++, counter++;
}
while (i < both.size()) {
none.push_back(both[i]);
i++;
}
while (j < alice.size()) {
none.push_back(alice[j]);
j++;
}
while (p < bob.size()) {
none.push_back(bob[p]);
p++;
}
sort(none.begin(), none.end());
while (q < none.size() and book + 1 <= m) {
ans += none[q].first;
seq.push_back(none[q].second);
q++, book++;
}
if (counter < k or book < m) {
cout << -1 << endl;
} else {
cout << ans << endl;
for (i = 0; i < seq.size(); i++) {
cout << seq[i] << " ";
}
cout << endl;
}
return 0;
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
//package div3._1374;
import java.io.*;
import java.util.*;
public class ReadingBooksHardVersion {
private final FastReader fr = new FastReader();
public static void main(String[] args) {
new ReadingBooksHardVersion().solve();
}
private void solve() {
int n = fr.nextInt();
int m = fr.nextInt();
int k = fr.nextInt();
List<Book> groupA = new ArrayList<>();
List<Book> groupB = new ArrayList<>();
List<Book> groupAB = new ArrayList<>();
List<Book> groupNotAB = new ArrayList<>();
for (int i = 0; i < n; i++) {
int t = fr.nextInt(), a = fr.nextInt(), b = fr.nextInt();
Book book = new Book(i + 1, t);
if (a == 1 && b == 1) {
groupAB.add(book);
} else if (a == 1) {
groupA.add(book);
} else if (b == 1) {
groupB.add(book);
} else {
groupNotAB.add(book);
}
}
Collections.sort(groupA);
Collections.sort(groupB);
Collections.sort(groupAB);
Collections.sort(groupNotAB);
// System.out.println("size = " + groupNotAB.size() + " -> " + groupNotAB);
// System.out.println("size = " + groupA.size() + " -> " + groupA);
// System.out.println("size = " + groupB.size() + " -> " + groupB);
// System.out.println("size = " + groupAB.size() + " -> " + groupAB);
Set<Book> books = readingBooks(groupNotAB, groupA, groupB, groupAB, m, k);
if (books == null)
System.out.println(-1);
else {
int time = 0;
StringBuilder s = new StringBuilder();
for (Book b : books) {
time += b.time;
s.append(b.index + " ");
}
System.out.printf("%d\n%s\n", time, s);
}
}
private Set<Book> readingBooks(List<Book> groupNotAB, List<Book> groupA, List<Book> groupB, List<Book> groupAB, int m, int k) {
int ai = 0; // group A index
int bi = 0; // group B index
int abi = 0; // group AB index
int ni = 0; // group not AB index
Set<Book> books = new HashSet<>();
for (int i = 1; i <= k; i++) {
Integer both = (groupAB.size() > abi) ? groupAB.get(abi).time : null;
Integer separate = (groupA.size() > ai && groupB.size() > bi) ? groupA.get(ai).time + groupB.get(bi).time : null;
if (both == null && separate == null) return null;
if (beats(both, separate)) {
books.add(groupAB.get(abi++));
} else {
books.add(groupA.get(ai++));
books.add(groupB.get(bi++));
}
}
int bd = Math.abs(m - books.size()); // books difference
if (m < books.size()) {
// remove books
for (int i = 1; i <= bd; i++) {
if (ai == 0 || bi == 0 || groupAB.size() <= abi) return null;
books.remove(groupA.get(--ai));
books.remove(groupB.get(--bi));
books.add(groupAB.get(abi++));
}
} else { // add more books
for (int i = 1; i <= bd; i++) {
Integer swap = (groupA.size() > ai && groupB.size() > bi && abi > 0) ? groupA.get(ai).time + groupB.get(bi).time - groupAB.get(abi).time : null;
Integer none = (groupNotAB.size() > ni) ? groupNotAB.get(ni).time : null;
Integer a = (groupA.size() > ai) ? groupA.get(ai).time : null;
Integer b = (groupB.size() > bi) ? groupB.get(bi).time : null;
Integer ab = (groupAB.size() > abi) ? groupAB.get(abi).time : null;
if (swap == null && none == null && a == null && b == null && ab == null) {
return null;
}
if (beatsAll(swap, new ArrayList<Integer>() {{
add(none);
add(a);
add(b);
add(ab);
}})) {
books.remove(groupAB.get(--abi));
books.add(groupA.get(ai++));
books.add(groupB.get(bi++));
} else if (beatsAll(none, new ArrayList<Integer>() {{
add(a);
add(b);
add(ab);
}})) {
books.add(groupNotAB.get(ni++));
} else if (beatsAll(a, new ArrayList<Integer>() {{
add(b);
add(ab);
}})) {
books.add(groupA.get(ai++));
} else if (beats(b, ab)) {
books.add(groupB.get(bi++));
} else {
books.add(groupAB.get(abi++));
}
}
}
return books;
}
private boolean beats(Integer a, Integer b) {
return b == null || (a != null && a < b);
}
private boolean beatsAll(Integer a, List<Integer> list) {
return list.stream().allMatch(item -> beats(a, item));
}
private void sortTimes(List<Book>[] times) {
for (List l : times
) {
Collections.sort(l);
}
}
private void printArr(int[] arr) {
System.out.println(Arrays.toString(arr));
}
private void printListInArr(List[] lists) {
System.out.println("**********");
for (List l : lists
) {
System.out.println(l);
}
System.out.println("**********");
}
static class Book implements Comparable {
private final int index;
private final int time;
public Book(int index, int time) {
this.index = index;
this.time = time;
}
@Override
public String toString() {
return "Book{" +
"index=" + index +
", time=" + time +
'}';
}
public int getIndex() {
return index;
}
public int getTime() {
return time;
}
@Override
public int compareTo(Object o) {
return this.time - ((Book) o).time;
}
}
class FastReader {
private final BufferedReader br = new BufferedReader(new InputStreamReader(System.in));
private StringTokenizer st;
public String nextLine() {
try {
return br.readLine();
} catch (IOException ex) {
throw new RuntimeException(ex);
}
}
public String next() {
while (st == null || !st.hasMoreTokens()) {
st = new StringTokenizer(nextLine());
}
return st.nextToken();
}
public int nextInt() {
return Integer.parseInt(next());
}
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
n,k=map(int,input().split())
A,B,C=[],[],[]
for i in range(n):
t,x,y=map(int,input().split())
if(x==1 and y==1):C.append(t);continue
if(x==1):A.append(t);continue
if(y==1):B.append(t)
def fun(l):
pre=[0]
for i in l:
pre.append(pre[-1]+i)
return pre
A.sort()
B.sort()
C.sort()
a=fun(A)
b=fun(B)
c=fun(C)
if(len(A)+len(C)<k or len(B)+len(C)<k):print(-1)
else:
ans=999999999
for i in range(min(len(C),k)+1):
if(k-i<len(a) and k-i<len(b)):ans=min(ans,c[i]+a[k-i]+b[k-i])
print(ans)
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
import java.util.*;
import java.io.*;
public class Main{
public static void main(String[] args) throws IOException{
Scanner scan=new Scanner(System.in);
int n=scan.nextInt();
int k=scan.nextInt();
int time=0;
int count=0;
int aliceCount=0;
int bobCount=0;
while(n-->0)
{
int t=scan.nextInt();
int alice=scan.nextInt();
int bob=scan.nextInt();
if(alice==0 && bob==0)
continue;
else
{
if(alice==1)
aliceCount++;
if(bob==1)
bobCount++;
time+=t;
}
}
if(aliceCount>=k && bobCount>=k)
{
System.out.println(time);
}
else
System.out.println(-1);
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
cpp
|
#include <bits/stdc++.h>
using namespace std;
const long long INF = 1e18;
void solve() {
long long n, k;
cin >> n >> k;
vector<long long> a[3], pre[3];
for (long long i = 0; i < n; i++) {
long long x, y, z;
cin >> x >> y >> z;
if (y & z)
a[0].push_back(x);
else if (y)
a[1].push_back(x);
else
a[2].push_back(x);
}
auto get_pref = [&](vector<long long>& x, vector<long long>& y) {
y.resize(((long long)(x).size()) + 1);
for (long long i = 0; i < ((long long)(x).size()); i++) {
y[i + 1] = y[i] + x[i];
}
};
for (long long i = 0; i < 3; i++) {
sort((a[i]).begin(), (a[i]).end());
get_pref(a[i], pre[i]);
}
long long ans = INF;
for (long long i = 0; i <= k; i++) {
if (((long long)(a[0]).size()) >= i &&
((long long)(a[1]).size()) >= k - i &&
((long long)(a[2]).size()) >= k - i) {
ans = min(ans, pre[0][i] + pre[1][k - i] + pre[2][k - i]);
}
}
cout << (ans == INF ? -1 : ans);
}
int32_t main() {
ios_base::sync_with_stdio(false);
cin.tie(NULL);
cout.tie(NULL);
long long tt = 1;
while (tt--) {
solve();
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
import math
N, K = [int(i) for i in input().split()]
T, A, B = [], [], []
for i in range(N):
t, a, b = [int(j) for j in input().split()]
T.append(t)
A.append(a)
B.append(b)
S = []
for i in range(N):
if A[i] == 0 and B[i] == 0:
S.append(math.inf)
elif A[i] == 0 or B[i] == 0:
S.append(T[i])
else:
S.append(T[i]/2)
sorted_book_ids = [i[1] for i in sorted([(s, i) for i, s in enumerate(S)])]
ak = 0
bk = 0
i = 0
ans = 0
els = []
while ak < K or bk < K:
if i >= len(sorted_book_ids):
ans = -1
break
if A[sorted_book_ids[i]]:
ak += 1
if B[sorted_book_ids[i]]:
bk += 1
# print('use ', sorted_book_ids[i], T[sorted_book_ids[i]])
ans += T[sorted_book_ids[i]]
els.append(sorted_book_ids[i])
i += 1
if ans == -1:
print(ans)
else:
for el in els[::-1]:
if ak == K:
break
if A[el] and not B[el]:
ans -= T[el]
ak -= 1
for el in els[::-1]:
if bk == K:
break
if B[el] and not A[el]:
ans -= T[el]
bk -= 1
print(ans)
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
cpp
|
#include <bits/stdc++.h>
using namespace std;
double pi = acos(-1);
void OJ() {}
int main() {
ios_base::sync_with_stdio(false);
cin.tie(NULL);
cout.tie(NULL);
;
long long n, k, s = 0, s_ = 0, c = 0;
cin >> n >> k;
unordered_set<long long> s1, s2, s3;
priority_queue<pair<long long, long long>, vector<pair<long long, long long>>,
greater<pair<long long, long long>>>
pa, push_back;
for (long long i = 0; i < n; i++) {
long long a, b, c;
cin >> a >> b >> c;
if (b == 1) {
s1.insert(i);
pa.push({a, i});
}
if (c == 1) {
s2.insert(i);
push_back.push({a, i});
}
}
if (s1.size() < k or s2.size() < k) {
cout << "-1";
return 0;
}
if (pa.size() > push_back.size()) {
long long c = 0;
while (!push_back.empty() and c < k) {
c++;
s += (push_back.top().first);
s3.insert(push_back.top().second);
push_back.pop();
}
c = 0;
for (auto i : s3) {
if (s1.count(i)) c++;
}
if (c < k) {
while (!pa.empty() and c < k) {
if (s3.find(pa.top().second) == s3.end()) {
s_ += (pa.top().first);
}
c++;
pa.pop();
}
}
} else {
long long c = 0;
while (!pa.empty() and c < k) {
c++;
s += (pa.top().first);
s3.insert(pa.top().second);
pa.pop();
}
c = 0;
for (auto i : s3) {
if (s2.count(i)) c++;
}
if (c < k) {
while (!push_back.empty() and c < k) {
if (s3.find(push_back.top().second) == s3.end()) {
s_ += (push_back.top().first);
}
c++;
push_back.pop();
}
}
}
cout << s + s_;
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
import java.util.*;
import java.io.*;
public class File {
public static class FastScanner {
BufferedReader br;
StringTokenizer st;
public FastScanner() {
br = new BufferedReader(new InputStreamReader(System.in));
}
String next() {
while (st == null || !st.hasMoreElements()) {
try {
st = new StringTokenizer(br.readLine());
}
catch (IOException e) {
e.printStackTrace();
}
}
return st.nextToken();
}
int nextInt() {
return Integer.parseInt(next());
}
long nextLong() {
return Long.parseLong(next());
}
double nextDouble() {
return Double.parseDouble(next());
}
}
public static void main(String[] args) {
FastScanner sc = new FastScanner();
PrintWriter out = new PrintWriter(new BufferedOutputStream(System.out));
int n = sc.nextInt();
int k = sc.nextInt();
List<Long> both = new ArrayList();
List<Long> alice = new ArrayList();
List<Long> bob = new ArrayList();
// Sort by order of time, increasing order:
// Sort all books both like
// Sort all books alice likes
// Sort all books bob likes
// 3 pointers.
// If double book is faster than individual books, read double.
for (int i = 0; i < n; i++) {
long t = sc.nextLong();
int a = sc.nextInt();
int b = sc.nextInt();
if (a == 1 && b == 1) {
both.add(t);
}
else if (a == 1 && b == 0) {
alice.add(t);
}
else if (a == 0 && b == 1) {
bob.add(t);
}
}
boolean isPossible = true;
if ((both.size() + alice.size() < k) || (both.size() + bob.size() < k)) {
isPossible = false;
}
if (isPossible) {
Collections.sort(both);
Collections.sort(alice);
Collections.sort(bob);
long total = 0;
int kAlice = k;
int kBob = k;
int bothIndex = 0;
int aliceIndex = 0;
int bobIndex = 0;
while (kAlice > 0 && kBob > 0 && aliceIndex < alice.size() && bobIndex < bob.size() && bothIndex < both.size()) {
long bothTime = both.get(bothIndex);
long singleTime = alice.get(aliceIndex) + bob.get(bobIndex);
if (bothTime < singleTime) {
total += bothTime;
kAlice--;
kBob--;
bothIndex++;
}
else {
total += singleTime;
kAlice--;
kBob--;
aliceIndex++;
bobIndex++;
}
}
while (kAlice > 0) {
if (bothIndex == both.size()) {
total += alice.get(aliceIndex++);
}
else if (aliceIndex == alice.size()) {
total += both.get(bothIndex++);
kBob--;
}
else {
if (both.get(bothIndex) < alice.get(aliceIndex)) {
total += both.get(bothIndex++);
kBob--;
}
else {
total += alice.get(aliceIndex++);
}
}
kAlice--;
}
while (kBob > 0) {
if (bothIndex == both.size()) {
total += bob.get(bobIndex++);
}
else if (bobIndex == bob.size()) {
total += both.get(bothIndex++);
kAlice--;
}
else {
if (both.get(bothIndex) < bob.get(bobIndex)) {
total += both.get(bothIndex++);
kAlice--;
}
else {
total += bob.get(bobIndex++);
}
}
kBob--;
}
out.println(total);
}
else {
out.println(-1);
}
out.close();
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
cpp
|
#include <bits/stdc++.h>
using namespace std;
void f1(vector<long long>& a, vector<long long>& b) {
b.resize(a.size() + 1, 0);
for (long long i = 0; i < a.size(); i++) {
b[i + 1] = b[i] + a[i];
}
}
int32_t main() {
ios_base::sync_with_stdio(false);
cin.tie(NULL);
cout.tie(NULL);
long long n, k;
cin >> n >> k;
vector<long long> g11, g10, g01;
for (long long i = 0; i < n; i++) {
long long a, b, c;
cin >> a >> b >> c;
if (b & c) {
g11.push_back(a);
} else if (b) {
g10.push_back(a);
} else if (c) {
g01.push_back(c);
}
}
sort(g11.begin(), g11.end());
sort(g10.begin(), g10.end());
sort(g01.begin(), g01.end());
vector<long long> s1, s2, s3;
long long ans = -1;
f1(g11, s1);
f1(g10, s2);
f1(g01, s3);
for (long long i = 0; i <= k; i++) {
if (i <= s1.size() && (k - i) < s2.size() && (k - i) < s3.size()) {
long long temp = s1[i] + s2[k - i] + s3[k - i];
if (ans == -1 || ans > temp) {
ans = temp;
}
}
}
cout << ans << "\n";
return 0;
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
import java.io.*;
import java.util.*;
//import java.util.HashMap;
//import java.io.BufferedReader;
//import java.io.IOException;
//import java.io.InputStreamReader;
//import java.io.PrintWriter;
//import java.math.BigInteger;
//import java.util.ArrayList;
//import java.util.Arrays;
//import java.util.HashMap;
//import java.util.StringTokenizer;
public class Equal {
static ArrayList<Integer>[] tree;
static boolean[] vis;
static int dp[][];
// static boolean dfs(int u, int dest) {
// if (dp[u][dest] != 0) {
// if (dp[u][dest] == 1)
// return true;
// return false;
// }
// vis[u] = true;
// if (u == dest) {
// vis[u] = false;
// dp[u][dest] = 1;
// return true;
// }
// for (int i = 0; i < tree[u].size(); i++) {
// int v = tree[u].get(i);
// if (vis[v])
// continue;
// if (dfs(v, dest)) {
// vis[u] = false;
// dp[u][dest] = 1;
// dp[dest][u] = 1;
//
// return true;
// }
//
// }
// vis[u] = false;
// dp[u][dest] = -1;
// dp[dest][u] = -1;
// return false;
// }
static class pair implements Comparable<pair> {
int x;
int t;
public pair(int xx, int tt) {
x = xx;
t = tt;
}
@Override
public int compareTo(pair o) {
return t - o.t;
}
}
static boolean dif1(String x, String y) {
int dif = 0;
if (x.length() != y.length())
return false;
for (int i = 0; i < x.length(); i++) {
if (x.charAt(i) != y.charAt(i))
dif++;
}
return dif <= 1;
}
static int[] p;
static int[] rank;
static int findSet(int i) {
return (p[i] == i) ? i : (p[i] = findSet(p[i]));
}
static boolean isSameSet(int i, int j) {
return findSet(i) == findSet(j);
}
static void unionSet(int i, int j) {
if (!isSameSet(i, j)) {
int x = findSet(i);
int y = findSet(j);
if (rank[x] > rank[y]) {
p[y] = x;
} else {
p[x] = y;
if (rank[x] == rank[y])
rank[y]++;
}
}
}
public static void main(String[] args) throws IOException {
//BufferedReader br = new BufferedReader(new FileReader("name.in"));
BufferedReader br = new BufferedReader(new InputStreamReader(System.in));
StringTokenizer st;
PrintWriter out = new PrintWriter(System.out);
st = new StringTokenizer(br.readLine());
int n = Integer.parseInt(st.nextToken());
int m = Integer.parseInt(st.nextToken());
int k = Integer.parseInt(st.nextToken());
StringBuilder sb=new StringBuilder();
PriorityQueue<pair> notL = new PriorityQueue<>();
PriorityQueue<pair> AB = new PriorityQueue<>();
PriorityQueue<pair> B = new PriorityQueue<>();
PriorityQueue<pair> A = new PriorityQueue<>();
for (int i = 0; i < n; i++) {
st = new StringTokenizer(br.readLine());
pair t = new pair(i, Integer.parseInt(st.nextToken()));
int a = Integer.parseInt(st.nextToken());
int b = Integer.parseInt(st.nextToken());
if (a == 1 && b == 1)
AB.add(t);
if (a == 0 && b == 0)
notL.add(t);
if (a == 0 && b == 1)
B.add(t);
if (a == 1 && b == 0)
A.add(t);
}
long t = 0;
ArrayList<pair> M = new ArrayList<>();
ArrayList<pair> M2 = new ArrayList<>();
while (k > 0 && m > 0&&!AB.isEmpty()) {
M.add(AB.poll());
m--;
k--;
}
while (k > 0 && m > 1) {
if(A.isEmpty()||B.isEmpty())
break;
M2.add(A.poll());
M2.add(B.poll());
m-=2;
k--;
}
if (k != 0)
out.println(-1);
else {
int ii=M.size()-1;
while (true){
if(A.isEmpty()||B.isEmpty()||m<1||ii<0)
break;
if(M.get(ii).t<=A.peek().t+B.peek().t)
break;
M.set(ii,A.poll());
M.add(B.poll());
m--;
ii--;
}
while (!A.isEmpty())
notL.add(A.poll());
while (!B.isEmpty())
notL.add(B.poll());
while (!AB.isEmpty())
notL.add(AB.poll());
while (m > 0) {
if (notL.isEmpty())
break;
t += notL.peek().t;
M.add(notL.poll());
m--;
}
if (m != 0)
out.println(-1);
else {
t=0;
for (int i = 0; i <M.size() ; i++) {
t+=M.get(i).t;
sb.append(M.get(i).x+1);
if(i<M.size()-1||M2.size()>0)
sb.append(" ");
}
for (int i = 0; i <M2.size() ; i++) {
t+=M2.get(i).t;
sb.append(M2.get(i).x+1);
if(i<M2.size()-1)
sb.append(" ");
}
out.println(t);
out.print(sb);
}
}
out.flush();
out.close();
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
import sys
s = sys.stdin.readline().split()
n, m, k = int(s[0]), int(s[1]), int(s[2])
all = []
All = []
Alice = []
Bob = []
Both = []
none = []
z = 1
while n:
i = sys.stdin.readline().split()
x = 3
i.append(z)
while x:
i[x-1] = int(i[x - 1])
x -= 1
all.append(i)
if i[1] == i[2]:
if i[1] == 0:
none.append(i)
else:
Both.append(i)
else:
if i[1] == 0:
Bob.append(i)
else:
Alice.append(i)
z += 1
n -= 1
Alice.sort(key=lambda x: x[0])
Bob.sort(key=lambda x: x[0])
Both.sort(key=lambda x: x[0])
none.sort(key=lambda x: x[0])
tresult = []
if 2 * k > m:
l = 2 * k - m
if len(Both) >= l:
tresult = Both[:l]
Both = Both[l:]
All = Alice + Both + Bob + none
m = 2 * (m - k)
k = k - l
else:
print(-1)
exit()
else:
tresult = []
tresult1 = []
if min(len(Alice), len(Bob)) == len(Alice):
if len(Alice) < k:
k1 = k - len(Alice)
if len(Both) < k1:
print(-1)
exit()
else:
tresult1 = Both[:k1]
Both = Both[k1:]
k = k - k1
else:
if len(Bob) < k:
k1 = k - len(Bob)
if len(Both) < k1:
print(-1)
exit()
else:
tresult1 = Both[:k1]
Both = Both[k1:]
k = k - k1
Alice1 = Alice[:k]
Bob1 = Bob[:k]
Alice = Alice[k:]
Bob = Bob[k:]
corr = []
elev = False
while len(Alice1) > 0 and len(Bob1) > 0 and len(Both) > 0 and len(none) > 0 and Alice1[-1][0] + Bob1[-1][0] >= Both[0][0]:
Alice.append(Alice1[-1])
Bob.append(Bob1[-1])
corr.append(Both[0])
Alice1.pop(-1)
Bob1.pop(-1)
Both.pop(0)
q = len(tresult1) + len(corr) + len(Alice1) + len(Bob1)
q = m - q
All = Alice + Bob + Both + none
All.sort(key=lambda x: x[0])
result2 = tresult + tresult1 + corr + Alice1 + Bob1
result = All[:q]
result = result + tresult + tresult1 + corr + Alice1 + Bob1
sum1 = 0
for row in result:
sum1 = sum1 + row[0]
print(sum1)
if sum1 == 0:
print(sum(row[1] for row in result2))
print(sum(row[2] for row in result2))
result.sort(key=lambda x: x[0])
print(result[-1])
print(result[-2])
chk = result[-1][0] - 1
for row in All:
if row[0] == chk:
print(row)
if sum1 == 82207:
print(len(corr))
for i in result:
if i == 15430:
print('resultfault')
print(i)
result.sort(key=lambda x: x[0])
print(sum(row[1] for row in result))
print(sum(row[2] for row in result))
print(All[q-2])
print(All[q-1])
print(All[q])
All = All[q:]
print(q)
print(result[-1])
print(All[0])
print(len(result))
print(len(All))
if sum1 == 82207:
print(all[15429])
print(all[11655])
print(' '.join([str(row[3]) for row in result]))
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
import java.io.OutputStream;
import java.io.IOException;
import java.io.InputStream;
import java.io.OutputStream;
import java.io.PrintWriter;
import java.util.PriorityQueue;
import java.io.BufferedWriter;
import java.util.HashMap;
import java.util.InputMismatchException;
import java.io.IOException;
import java.util.ArrayList;
import java.util.HashSet;
import java.util.AbstractCollection;
import java.io.Writer;
import java.io.OutputStreamWriter;
import java.util.Collections;
import java.io.InputStream;
/**
* Built using CHelper plug-in
* Actual solution is at the top
*
* @author Hello
*/
public class Main {
public static void main(String[] args) {
InputStream inputStream = System.in;
OutputStream outputStream = System.out;
InputReader in = new InputReader(inputStream);
OutputWriter out = new OutputWriter(outputStream);
E2ReadingBooksHardVersion solver = new E2ReadingBooksHardVersion();
solver.solve(1, in, out);
out.close();
}
static class E2ReadingBooksHardVersion {
public void solve(int testNumber, InputReader c, OutputWriter w) {
int n = c.readInt(), m = c.readInt(), k = c.readInt();
ArrayList<Pair<Integer, Integer>> a = new ArrayList<>(), b = new ArrayList<>();
PriorityQueue<Pair<Integer, Pair<Integer, Integer>>> tot = new PriorityQueue<>();
ArrayList<Pair<Integer, Integer>> whoCare = new ArrayList<>();
HashSet<Integer> resInd = new HashSet<>();
for (int i = 0; i < n; i++) {
int t = c.readInt(), aa = c.readInt(), bb = c.readInt();
if (aa == 0 || bb == 0) {
if (aa == 1) {
a.add(new Pair<>(t, i));
} else if (bb == 1) {
b.add(new Pair<>(t, i));
} else {
whoCare.add(new Pair<>(t, i));
}
} else {
tot.add(new Pair<>(t, new Pair<>(0, i)));
}
}
Collections.sort(a);
Collections.sort(b);
HashMap<Integer, Pair<Pair<Integer, Integer>, Pair<Integer, Integer>>> kk = new HashMap<>();
int id = 1;
for (int i = 0; i < a.size() && i < b.size(); i++) {
Pair<Integer, Integer> a1 = a.get(i), b1 = b.get(i);
tot.add(new Pair<>(a1.first + b1.first, new Pair<>(id, -1)));
kk.put(id, new Pair<>(a1, b1));
id++;
}
for (int i = a.size(); i < b.size(); i++) {
whoCare.add(b.get(i));
}
for (int i = b.size(); i < a.size(); i++) {
whoCare.add(a.get(i));
}
if (tot.size() < k) {
w.printLine("-1");
return;
}
long res = 0;
int tot_book = 0;
PriorityQueue<PP> customize = new PriorityQueue<>();
while (k-- > 0) {
Pair<Integer, Pair<Integer, Integer>> pp = tot.poll();
res += pp.first;
if (pp.second.first != 0) {
tot_book += 2;
customize.add(new PP(pp.first, pp.second.first));
Pair<Pair<Integer, Integer>, Pair<Integer, Integer>> pkp = kk.get(pp.second.first);
resInd.add(pkp.first.second);
resInd.add(pkp.second.second);
} else {
tot_book++;
resInd.add(pp.second.second);
}
}
// w.printLine(res, tot_book);
// w.printLine(customize);
// System.out.println(customize.poll());
if (tot_book > m) {
PriorityQueue<Pair<Integer, Integer>> pp = new PriorityQueue<>();
while (!tot.isEmpty()) {
Pair<Integer, Pair<Integer, Integer>> ppq = tot.poll();
if (ppq.second.first == 0) {
pp.add(new Pair<>(ppq.first, ppq.second.second));
}
}
while (!pp.isEmpty()) {
Pair<Integer, Integer> kt = pp.poll();
PP rem = customize.poll();
res -= rem.first;
Pair<Pair<Integer, Integer>, Pair<Integer, Integer>> klk = kk.get(rem.second);
resInd.remove(klk.first.second);
resInd.remove(klk.second.second);
res += kt.first;
resInd.add(kt.second);
tot_book--;
if (tot_book == m) {
break;
}
}
} else if (tot_book == m) {
} else {
while (!tot.isEmpty()) {
Pair<Integer, Pair<Integer, Integer>> pk = tot.poll();
if (pk.second.first == 0) {
whoCare.add(new Pair<>(pk.first, pk.second.second));
} else {
Pair<Pair<Integer, Integer>, Pair<Integer, Integer>> ll = kk.get(pk.second.first);
whoCare.add(ll.first);
whoCare.add(ll.second);
}
}
Collections.sort(whoCare);
//verify once
for (int i = 0; i < whoCare.size() && tot_book < m; i++, tot_book++) {
res += whoCare.get(i).first;
resInd.add(whoCare.get(i).second);
}
}
if (tot_book == m) {
w.printLine(res);
for (int xx : resInd) {
w.print(xx + 1, "");
}
w.printLine();
} else {
w.printLine("-1");
}
}
}
static class InputReader {
private InputStream stream;
private byte[] buf = new byte[1024];
private int curChar;
private int numChars;
private InputReader.SpaceCharFilter filter;
public InputReader(InputStream stream) {
this.stream = stream;
}
public int read() {
if (numChars == -1) {
throw new InputMismatchException();
}
if (curChar >= numChars) {
curChar = 0;
try {
numChars = stream.read(buf);
} catch (IOException e) {
throw new InputMismatchException();
}
if (numChars <= 0) {
return -1;
}
}
return buf[curChar++];
}
public int readInt() {
int c = read();
while (isSpaceChar(c)) {
c = read();
}
int sgn = 1;
if (c == '-') {
sgn = -1;
c = read();
}
int res = 0;
do {
if (c < '0' || c > '9') {
throw new InputMismatchException();
}
res *= 10;
res += c - '0';
c = read();
} while (!isSpaceChar(c));
return res * sgn;
}
public boolean isSpaceChar(int c) {
if (filter != null) {
return filter.isSpaceChar(c);
}
return isWhitespace(c);
}
public static boolean isWhitespace(int c) {
return c == ' ' || c == '\n' || c == '\r' || c == '\t' || c == -1;
}
public interface SpaceCharFilter {
public boolean isSpaceChar(int ch);
}
}
static class OutputWriter {
private final PrintWriter writer;
public OutputWriter(OutputStream outputStream) {
writer = new PrintWriter(new BufferedWriter(new OutputStreamWriter(outputStream)));
}
public OutputWriter(Writer writer) {
this.writer = new PrintWriter(writer);
}
public void print(Object... objects) {
for (int i = 0; i < objects.length; i++) {
if (i != 0) {
writer.print(' ');
}
writer.print(objects[i]);
}
}
public void printLine() {
writer.println();
}
public void printLine(Object... objects) {
print(objects);
writer.println();
}
public void close() {
writer.close();
}
public void printLine(long i) {
writer.println(i);
}
}
static class PP implements Comparable<PP> {
int first;
int second;
public PP(int first, int second) {
this.first = first;
this.second = second;
}
public String toString() {
return "PP{" +
"first=" + first +
", second=" + second +
'}';
}
public int compareTo(PP o) {
return o.first - this.first;
}
}
static class Pair<U, V> implements Comparable<Pair<U, V>> {
public final U first;
public final V second;
public Pair(U first, V second) {
this.first = first;
this.second = second;
}
public boolean equals(Object o) {
if (this == o) {
return true;
}
if (o == null || getClass() != o.getClass()) {
return false;
}
Pair pair = (Pair) o;
return !(first != null ? !first.equals(pair.first) : pair.first != null) &&
!(second != null ? !second.equals(pair.second) : pair.second != null);
}
public int hashCode() {
int result = first != null ? first.hashCode() : 0;
result = 31 * result + (second != null ? second.hashCode() : 0);
return result;
}
public String toString() {
return "(" + first + "," + second + ")";
}
public int compareTo(Pair<U, V> o) {
int value = ((Comparable<U>) first).compareTo(o.first);
if (value != 0) {
return value;
}
return ((Comparable<V>) second).compareTo(o.second);
}
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
import java.util.*;
public class Codeforces{
public static void main(String args[])
{
Scanner sc=new Scanner(System.in);
int n=sc.nextInt();
int k=sc.nextInt();
int t[]=new int[n];
int a[]=new int[n];
int b[]=new int[n];
int ac=0;
int bc=0;
ArrayList<Integer> arr=new ArrayList<Integer>();
for(int i=0;i<n;i++)
{
t[i]=sc.nextInt();
a[i]=sc.nextInt();
b[i]=sc.nextInt();
if(a[i]==b[i] && a[i]==1)
{
arr.add(t[i]);
t[i]=-1;
}
if(a[i]==1)
{
ac++;
}
if(b[i]==1)
{
bc++;
}
}
if(ac<k || bc<k)
{
System.out.println("-1");
System.exit(0);
}
long sum=0;
Collections.sort(arr);
if(arr.size()>=k)
{
for(int i=0;i<k;i++)
{
sum+=arr.get(i);
}
System.out.println(sum);
}
else{
for(int i=0;i<arr.size();i++)
{
sum+=arr.get(i);
}
ArrayList<Integer> arra=new ArrayList<Integer>();
for(int i=0;i<n;i++)
{
if(a[i]==1 && t[i]!=-1)
{
arra.add(t[i]);
}
}
ArrayList<Integer> arrb=new ArrayList<Integer>();
for(int i=0;i<n;i++)
{
if(b[i]==1 && t[i]!=-1)
{
arrb.add(t[i]);
}
}
Collections.sort(arra);
Collections.sort(arrb);
for(int i=0;i<k-arr.size();i++)
{
sum+=arra.get(i)+arrb.get(i);
}
System.out.println(sum);
}
sc.close();
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
import sys
from collections import defaultdict as dd
from collections import deque
from fractions import Fraction as f
from copy import *
from bisect import *
from heapq import *
from math import *
from itertools import permutations
def eprint(*args):
print(*args, file=sys.stderr)
zz=1
#sys.setrecursionlimit(10**6)
if zz:
input=sys.stdin.readline
else:
sys.stdin=open('input.txt', 'r')
sys.stdout=open('all.txt','w')
def li():
return [int(x) for x in input().split()]
def fi():
return int(input())
def si():
return list(input().rstrip())
def mi():
return map(int,input().split())
def gh():
sys.stdout.flush()
def graph(n,m):
for i in range(m):
x,y=mi()
a[x].append(y)
a[y].append(x)
def bo(i):
return ord(i)-ord('a')
n,k=mi()
a=[]
for i in range(n):
p=li()
a.append(p)
a.sort()
c=d=ans=0
c1=[]
d1=[]
r=0
for i in range(n):
if a[i][1:]==[0,1]:
if d+r>=k:
continue
ans+=a[i][0]
d1.append(a[i][0])
d+=1
elif a[i][1:]==[1,0]:
if c+r>=k:
continue
ans+=a[i][0]
c1.append(a[i][0])
c+=1
elif a[i][1:]==[1,1]:
ans+=a[i][0]
r+=1
if c+r>k:
ans-=c1[-1]
c-=1
c1.pop()
if d+r>k:
ans-=d1[-1]
d-=1
d1.pop()
#print(c+r,d+r,r,ans,c1,d1)
if c+r>=k and d+r>=k:
break
print(ans if c+r>=k and d+r>=k else -1)
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
n, m, k = [int(i) for i in input().split()]
doub = []; a = []; b = []; dis = []
for i in range(n):
ti, ai, bi = [int(i) for i in input().split()]
if ai and bi:
doub.append((ti, i))
elif ai:
a.append((ti, i))
elif bi:
b.append((ti, i))
else:
dis.append((ti, i))
doub.sort(); a.sort(); b.sort()
# print(doub, a, b, sep="\n")
time = 0
i = 0; j = 0
while i+j < k:
if (i < len(doub)):
db = doub[i][0]
else:
db = 100000
if (j < len(a) and j < len(b) and (i+2*j) <= (m-2)):
sing = a[j][0] + b[j][0]
else:
sing = 100000
if (db <= sing):
time += db
i += 1
else:
time += sing
j += 1
used = doub[:i] + a[:j] + b[:j]
# print(used)
fim = doub[i:] + a[j:] + b[j:] + dis
fim.sort()
for i in range(m-2*k):
time += fim[i][0]
used.append(fim[i])
if (len(doub) + min(len(a), len(b))) >= k:
print(time)
#used.extend(fim[:m-2*k])
for i in used:
print(i[1]+1, end=" ")
print()
else:
print(-1)
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
n , m, k = map(int,input().split())
a = [list(map(int,input().split())) for i in range(n)]
b = sorted(a,key = lambda x : x[0])
l = [] ; n1 = k ;n2 = k
s = 0
t = m-2*k
for i in range(n) :
if m == 0 or (n1 == 0 and n2 == 0) : break
if b[i][1] == 0 and b[i][2] == 0 and t > 0 and m-1 >= max(n1,n2) :
l.append(a.index(b[i])+1)
s+= b[i][0]
m -= 1 ; t-= 1
elif b[i][1] == 1 and b[i][2] == 1 and m-1 >= max(n1-1,n2-2) :
l.append(a.index(b[i])+1)
s+= b[i][0]
m -= 1 ; n1 -= 1 ; n2 -= 1
elif b[i][1] == 0 and b[i][2] == 1 and m-1 >= max(n1,n2-1) :
l.append(a.index(b[i])+1)
s+= b[i][0]
m -= 1 ; n2 -= 1
elif b[i][1] == 1 and b[i][2] == 0 and m-1 >= max(n1-1,n2):
l.append(a.index(b[i])+1)
s+= b[i][0]
m -= 1 ; n1 -= 1
if n1 <= 0 and n2 <= 0 :
print(s ) ; print(*l)
else : print(-1)
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
cpp
|
#include <bits/stdc++.h>
using namespace std;
signed main() {
ios_base::sync_with_stdio(0);
cin.tie(0);
long long T;
T = 1;
while (T--) {
long long n, k;
cin >> n >> k;
vector<pair<long long, pair<long long, long long>>> v;
for (long long i = 0; i < n; i++) {
long long t, a, b;
cin >> t >> a >> b;
v.emplace_back(t, make_pair(a, b));
}
sort(v.begin(), v.end());
vector<long long> p(2, 0);
vector<long long> chosen(n, 0);
long long last = -1;
for (long long i = 0; i < n; i++) {
p[0] += v[i].second.first;
p[1] += v[i].second.second;
chosen[i] = 1;
last = i;
}
for (long long a = last; a >= 0; a--) {
if ((v[a].second.first != v[a].second.second) ||
v[a].second.second == 0) {
if (p[0] - v[a].second.first >= k && p[1] - v[a].second.second >= k) {
chosen[a] = 0;
p[0] -= v[a].second.first;
p[1] -= v[a].second.second;
}
}
}
for (long long a = last; a >= 0; a--) {
if ((v[a].second.first == v[a].second.second)) {
if (p[0] - v[a].second.first >= k && p[1] - v[a].second.second >= k) {
chosen[a] = 0;
p[0] -= v[a].second.first;
p[1] -= v[a].second.second;
}
}
}
if (p[0] < k || p[1] < k) {
cout << -1 << endl;
return 0;
}
long long ans = 0;
for (long long i = 0; i <= last; i++) {
if (chosen[i]) ans += v[i].first;
}
cout << ans << endl;
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
l=[]
n,k=str(input()).split(" ")
n=int(n)
k=int(k)
a1=[]
a2=[]
c1=0
c2=0
su=0
comm=0
for j in range(n):
t,a,b=str(input()).split(" ")
t=int(t)
a=int(a)
b=int(b)
if(a==1 and b==1):
c1+=1
c2+=1
comm+=1
su=t
continue
if(a==1):
c1+=1
a1.append(t)
if(b==1):
c2+=1
a2.append(t)
a1.sort()
a2.sort()
if(c1<k-comm and c2<k-comm):
print(-1)
else:
for j in range(k-comm):
su=su+a1[0]+a2[0]
print(su)
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
cpp
|
#include <bits/stdc++.h>
using namespace std;
const long long N = 2e5 + 5;
long long arr[N], n, k, alice[N], bob[N], prea[N], preb[N], prec[N], m;
vector<pair<long long, long long>> a, b, c, d;
void func() {
cin >> n >> m >> k;
for (long long i = 1; i < n + 1; i++) cin >> arr[i] >> alice[i] >> bob[i];
for (long long i = 1; i < n + 1; i++) {
if (alice[i] && bob[i])
c.push_back(make_pair(arr[i], i));
else if (alice[i])
a.push_back(make_pair(arr[i], i));
else if (bob[i])
b.push_back(make_pair(arr[i], i));
else
d.push_back(make_pair(arr[i], i));
}
if ((long long)c.size() + (long long)a.size() < k ||
(long long)c.size() + (long long)b.size() < k) {
cout << "-1\n";
return;
}
a.push_back(make_pair(0LL, 0LL));
b.push_back(make_pair(0LL, 0LL));
c.push_back(make_pair(0LL, 0LL));
d.push_back(make_pair(0LL, 0LL));
sort(a.begin(), a.end());
for (long long i = 1; i < (long long)a.size(); i++)
prea[i] = prea[i - 1] + a[i].first;
sort(b.begin(), b.end());
for (long long i = 1; i < (long long)b.size(); i++)
preb[i] = preb[i - 1] + b[i].first;
sort(c.begin(), c.end());
for (long long i = 1; i < (long long)c.size(); i++)
prec[i] = prec[i - 1] + c[i].first;
sort(d.begin(), d.end());
long long zz = min(m, (long long)c.size() - 1);
long long idx = -1;
for (long long i = 0; i < zz + 1; i++) {
long long rem = k - i;
if (rem >= 0 && rem <= (long long)a.size() - 1 &&
rem <= (long long)b.size() - 1 && i + 2 * rem <= m &&
i + (long long)a.size() - 1 + (long long)b.size() - 1 +
(long long)d.size() - 1 >=
m) {
idx = i;
break;
}
}
if (idx == -1) {
cout << "-1\n";
return;
}
long long rem = k - idx;
set<pair<long long, long long>, greater<pair<long long, long long>>> xx;
set<pair<long long, long long>> yy;
for (long long i = rem + 1; i < (long long)a.size(); i++)
yy.insert(make_pair(a[i].first, 0));
for (long long i = rem + 1; i < (long long)b.size(); i++)
yy.insert(make_pair(b[i].first, 1));
for (long long i = 1; i < (long long)d.size(); i++)
yy.insert(make_pair(d[i].first, 2));
long long extra = m - (idx + 2 * rem);
while (extra--) {
xx.insert(*yy.begin());
yy.erase(yy.begin());
}
long long sm1 = 0, sm2 = 0, sm3 = 0, pp = 0, qq = 0, rr = 0;
for (auto i : xx) {
if (i.second == 0) sm1 += i.first, pp++;
if (i.second == 1) sm2 += i.first, qq++;
if (i.second == 2) sm3 += i.first, rr++;
}
for (long long i = 1; i < rem + 1; i++) {
sm1 += a[i].first;
pp++;
sm2 += b[i].first;
qq++;
}
long long ans = LONG_LONG_MAX, cntc = -1, cnta = -1, cntb = -1, cntd = -1;
for (long long i = idx; i < zz + 1; i++) {
long long rem = k - i;
if (rem < 0 || rem > (long long)a.size() - 1 ||
rem > (long long)b.size() - 1)
continue;
if (i + 2 * rem <= m) {
if (i + (long long)a.size() - 1 + (long long)b.size() - 1 +
(long long)d.size() - 1 <
m)
continue;
if (prec[i] + sm1 + sm2 + sm3 < ans) {
ans = prec[i] + sm1 + sm2 + sm3;
cntc = i;
cnta = pp;
cntb = qq;
cntd = rr;
}
}
if ((long long)xx.size() != 0) {
pair<long long, long long> tt = *xx.begin();
if (tt.second == 0) {
pp--;
sm1 -= tt.first;
} else if (tt.second == 1) {
qq--;
sm2 -= tt.first;
} else if (tt.second == 2) {
rr--;
sm3 -= tt.first;
}
xx.erase(xx.begin());
}
}
if (ans == LONG_LONG_MAX) {
cout << "-1\n";
return;
}
cout << ans;
cout << "\n";
for (long long i = 1; i < cntc + 1; i++) cout << c[i].second << " ";
for (long long i = 1; i < cntb + 1; i++) cout << b[i].second << " ";
for (long long i = 1; i < cnta + 1; i++) cout << a[i].second << " ";
for (long long i = 1; i < cntd + 1; i++) cout << d[i].second << " ";
cout << "\n";
}
int main() {
{
ios ::sync_with_stdio(false);
cin.tie(0);
cout.tie(0);
}
long long ntc = 1;
for (long long i = 1; i < ntc + 1; i++) {
func();
}
return 0;
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
#!/usr/bin/pypy3
n, k = map(int, input().split())
x, y, z = [], [], []
for _ in range(n):
t, a, b = map(int, input().split())
if a & b:
z.append(t)
elif a:
x.append(t)
elif b:
y.append(t)
for i in range(min(len(x), len(y))):
z.append(x[i] + y[i])
z.sort()
if len(z) >= k:
print(sum(z[:k]))
else:
print(-1)
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
def prefixSum(array):
l = [array[0]]
for i in array[1:]:
l.append(i+array[-1])
return l
n, k = map(int, input().split())
alice = []
bob = []
both = []
for i in range(n):
t, a, b = map(int, input().split())
if a == 1 and b == 1:
both.append(t)
continue
if a == 1:
alice.append(t)
if b == 1:
bob.append(t)
alice.sort()
bob.sort()
both.sort()
if len(alice)+len(both)<k or len(bob)+len(both)<k:
print(-1)
else:
if len(alice) == 0 or len(bob) == 0:
s = sum(both[:k])
print(s)
else:
bothP = prefixSum(both)
aliceP = prefixSum(alice)
bobP = prefixSum(bob)
minTime = 10**18
# If all k are picked from individual
if len(alice)>=k and len(bob)>=k:
minTime = aliceP[k-1] + bob[k-1]
# If all are picked from both
if len(both) >= k:
minTime = min(minTime, bothP[k-1])
# If anywhere between 1 to k-1 are picked from both
for i in range(1, k):
# print(i)
# Remaining k-i books cannot be picked
if not (k-i <= len(alice) and k-i <= len(bob)):
# print("h1")
continue
# There are not i books in both
if i>len(both):
# print("h2")
minTime = min(minTime, bobP[i-1] + aliceP[i-1])
# Pick i common rest uncommon
elif bothP[i-1] + aliceP[k-i-1] + bobP[k-i-1] < minTime:
# print("h3")
minTime = bothP[i-1] + aliceP[k-i-1] + bobP[k-i-1]
print(minTime)
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
cpp
|
#include <bits/stdc++.h>
using namespace std;
int main() {
ios::sync_with_stdio(0);
cin.tie(0);
int n, m, k;
cin >> n >> m >> k;
vector<pair<int, int>> t[4];
vector<int> T(n), type(n);
for (int i = 0; i < n; ++i) {
int x, a, b;
cin >> x >> a >> b;
if (a && b)
t[2].push_back({x, i}), type[i] = 2;
else if (a)
t[0].push_back({x, i}), type[i] = 0;
else if (b)
t[1].push_back({x, i}), type[i] = 1;
else
t[3].push_back({x, i}), type[i] = 3;
T[i] = x;
}
if (t[2].size() + min(t[0].size(), t[1].size()) < k) {
cout << "-1\n";
return 0;
}
int X = t[2].size();
if (k > X &&
(t[0].size() < (k - X) || t[1].size() < (k - X) || 2 * (k - X) > m - X)) {
cout << "-1\n";
return 0;
}
for (int i = 0; i < 4; ++i) sort(t[i].rbegin(), t[i].rend());
int ans = 0;
vector<int> ind;
while (k--) {
if (t[0].size() == 0 || t[1].size() == 0 ||
(t[0].size() && t[1].size() &&
t[2].back().first < t[0].back().first + t[1].back().first)) {
ans += t[2].back().first;
ind.push_back(t[2].back().second);
t[2].pop_back();
} else {
ans += t[0].back().first + t[1].back().first;
ind.push_back(t[0].back().second);
ind.push_back(t[1].back().second);
t[0].pop_back();
t[1].pop_back();
}
}
while (ind.size() < m) {
int mn = 1000000000, I = -1;
for (int i = 0; i < 4; ++i)
if (t[i].size())
if (t[i].back().first < mn) mn = t[i].back().first, I = i;
ans += mn;
ind.push_back(t[I].back().second);
t[I].pop_back();
}
if (ind.size() > m) {
vector<int> fin;
int extra = ind.size() - m;
while (ind.size()) {
if (extra && type[ind.back()] != 2) {
extra -= 1;
ans -= T[ind.back()];
ind.pop_back();
ans -= T[ind.back()];
ind.pop_back();
ans += t[2].back().first;
ind.push_back(t[2].back().second);
t[2].pop_back();
}
fin.push_back(ind.back());
ind.pop_back();
}
swap(fin, ind);
}
cout << ans << '\n';
for (int i : ind) cout << i + 1 << ' ';
cout << '\n';
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
import java.lang.reflect.Array;
import java.util.Arrays;
import java.util.Scanner;
public class Main {
public static void main(String [] argv) {
int n, k;
Book [] books;
Scanner scanner = new Scanner(System.in);
n = scanner.nextInt();
k = scanner.nextInt();
books = new Book[n];
for(int i = 0; i < n; i++) {
int t, a, b;
t = scanner.nextInt();
a = scanner.nextInt();
b = scanner.nextInt();
books[i] = new Book(t, a, b);
}
Arrays.sort(books);
int pos = 0;
int k1 = 0, k2 = 0;
int sum = 0;
for(pos = 0; pos < n; pos++) {
if(books[pos].a == 1) k1++;
if(books[pos].b == 1) k2++;
sum += books[pos].t;
if(k1 >= k && k2 >= k) break;
}
if(k1 < k || k2 < k) {
System.out.println(-1);
return;
}
for(int i = pos; i >= 0; i--) {
if(k1 - books[i].a >= k && k2 - books[i].b >= k){
sum -= books[i].t;
k1 -= books[i].a;
k2 -= books[i].b;
}
}
System.out.println(sum);
return;
}
static class Book implements Comparable<Book>{
public int t, a, b;
public Book(int t, int a, int b) {
this.t = t;
this.a = a;
this.b = b;
}
@Override
public int compareTo(Book o) {
if(this.t < o.t) return -1;
if(this.t == o.t) return 0;
return 1;
}
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
import java.util.*;
import java.io.*;
public class ReadingBooksSorting {
static int n, k;
public static void main(String[] args) throws IOException {
Scanner sc = new Scanner(System.in);
PrintWriter pw = new PrintWriter(System.out);
n = sc.nextInt();
k = sc.nextInt();
ArrayList<Integer> aa = new ArrayList<Integer>();
ArrayList<Integer> bb = new ArrayList<Integer>();
ArrayList<Integer> both = new ArrayList<Integer>();
for (int i = 0; i < n; i++) {
int t = sc.nextInt();
int a = sc.nextInt();
int b = sc.nextInt();
if (a == 1 && b == 1)
both.add(t);
else if (a == 1)
aa.add(t);
else if (b == 1)
bb.add(t);
}
Collections.sort(aa);
Collections.sort(bb);
Collections.sort(both);
int remA = k;
int remB = k;
int total = 0;
int iA = 0;
int iB = 0;
int iboth = 0;
// pw.println(aa.size() + " " + bb.size());
while (remA > 0 && remB > 0 && iA < aa.size() && iB < bb.size() && iboth < both.size()) {
int a1 = aa.get(iA);
int b1 = bb.get(iB);
int bb1 = both.get(iboth);
if (a1 + b1 < bb1) {
total += (a1 + b1);
remA--;
remB--;
iA++;
iB++;
} else {
total += bb1;
remA--;
remB--;
iboth++;
}
}
if (remA > 0 || remB > 0) {
if (iA == aa.size() && iB == bb.size()) {
while (iboth < both.size() && (remA > 0 || remB > 0)) {
total += both.get(iboth);
remA--;
remB--;
iboth++;
}
} else {
if (iboth == both.size()) {
while (iA < aa.size() && remA > 0) {
total += aa.get(iA);
remA--;
iA++;
}
while (iB < bb.size() && remB > 0) {
total += bb.get(iB);
remB--;
iB++;
}
}
while ((remA==0 || remB==0) && iA < aa.size() && iboth < both.size()) {
int both1 = both.get(iboth);
int a1 = aa.get(iA);
if (remA > 0 && remB > 0 || both1 < a1) {
total += both1;
remB--;
remA--;
iboth++;
} else if (remA > 0) {
total += a1;
remA--;
iA++;
}
}
while ((remA==0 || remB==0) &&iB < bb.size() && iboth < both.size()) {
int both1 = both.get(iboth);
int b1 = bb.get(iB);
if (remB > 0 && remA > 0 || both1 < b1) {
total += both1;
remB--;
remA--;
iboth++;
} else if (remB > 0) {
total += b1;
remB--;
iB++;
}
}
}
}
if (remA > 0 || remB > 0)
pw.println(-1);
else {
pw.println(total);
}
pw.close();
}
static class Scanner {
BufferedReader br;
StringTokenizer st;
public Scanner(InputStream s) {
br = new BufferedReader(new InputStreamReader(s));
}
public String next() throws IOException {
while (st == null || !st.hasMoreTokens())
st = new StringTokenizer(br.readLine());
return st.nextToken();
}
public int nextInt() throws IOException {
return Integer.parseInt(next());
}
public long nextLong() throws IOException {
return Long.parseLong(next());
}
public double nextDouble() throws IOException {
return Double.parseDouble(next());
}
public int[] nextIntArr(int n) throws IOException {
int[] arr = new int[n];
for (int i = 0; i < n; i++) {
arr[i] = Integer.parseInt(next());
}
return arr;
}
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
def books(alice,bob,both,k,n):
if len(alice)+len(both)<k or len(both)+len(bob)<k:
return -1
if n==k :
return sum(both)+sum(alice)+sum(bob)
alice=sorted(alice)
bob=sorted(bob)
both=sorted(both)
ac,bc=0,0
s=0
while ac<k or bc<k:
if alice and bob:
if both and alice[0]+bob[0]>=both[0]:
ac+=1
bc+=1
s+=both.pop(0)
else:
ac+=1
bc+=1
s+=alice.pop(0)
s+=bob.pop(0)
elif alice and bob==[]:
if both and alice[0]>=both[0]:
ac+=1
bc+=1
s+=both.pop(0)
elif ac<k:
ac+=1
s+=alice.pop(0)
elif bob and alice==[]:
if both and bob[0]>=both[0]:
ac+=1
bc+=1
s+=both.pop(0)
elif bc<k:
bc+=1
s+=bob.pop(0)
if ac<k and alice==[]:
while ac<k:
s+=both.pop(0)
ac+=1
bc+=1
if bc<k and bob==[]:
while bc<k:
s+=both.pop(0)
ac+=1
bc+=1
return s
a,b,c=[],[],[]
x,y=map(int,input().strip().split())
for i in range(x):
t,alice,bob=map(int,input().strip().split())
if alice and bob:
c.append(t)
elif alice:
a.append(t)
elif bob:
b.append(t)
print(books(a,b,c,y,x))
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
cpp
|
#include <bits/stdc++.h>
using namespace std;
using ll = long long;
using ld = long double;
struct entry {
ll t, a, b, type, i;
bool operator<(const entry& o) const { return t < o.t; }
};
constexpr ll inf = 0x3FFFFFFFFFFF;
int main() {
ios_base::sync_with_stdio(false);
cin.tie(nullptr);
ll n, m, k;
cin >> n >> m >> k;
vector<deque<pair<ll, ll>>> in(4);
vector<entry> in2(n);
for (ll i = 0; i < n; i++) {
ll t, ai, bi;
cin >> t >> ai >> bi;
ll type;
if (ai != 0 && bi != 0) {
type = 0;
in[0].push_back({t, i});
} else if (ai != 0) {
type = 1;
in[1].push_back({t, i});
} else if (bi != 0) {
type = 2;
in[2].push_back({t, i});
} else {
type = 3;
in[3].push_back({t, i});
}
in2[i] = {t, ai, bi, type, i};
}
for (auto& v : in) sort(begin(v), end(v));
vector<priority_queue<pair<ll, ll>>> res(4);
while (k * 2 > m && !in[0].empty()) {
res[0].push(in[0][0]);
in[0].pop_front();
k--;
m--;
}
if (k * 2 > m) {
cout << -1 << endl;
return 0;
}
while ((!in[0].empty() || (!in[1].empty() && !in[2].empty())) && k > 0) {
if (in[1].empty() || in[2].empty() ||
(!in[0].empty() && in[0][0].first < in[1][0].first + in[2][0].first)) {
cout << boolalpha << in[0].empty() << endl;
res[0].push(in[0][0]);
in[0].pop_front();
k--;
m--;
} else {
cout << boolalpha << in[1].empty() << " " << in[2].empty() << endl;
res[1].push(in[1][0]);
in[1].pop_front();
res[2].push(in[2][0]);
in[2].pop_front();
k--;
m -= 2;
}
}
if (k > 0) {
cout << -1 << endl;
return 0;
}
deque<entry> missing;
for (auto& v : in) {
for (auto e : v) {
missing.push_back(in2[e.second]);
}
}
sort(begin(missing), end(missing));
ll extraA = 0;
ll extraB = 0;
while (m > 0) {
auto e = missing.front();
missing.pop_front();
if (e.a != 0) extraA++;
if (e.b != 0) extraB++;
res[e.type].push({e.t, e.i});
m--;
}
for (auto e : missing) {
if (e.type == 0) {
extraA++;
extraB++;
res[0].push({e.t, e.i});
} else if (e.type == 1) {
extraA++;
res[1].push({e.t, e.i});
} else if (e.type == 2) {
extraB++;
res[2].push({e.t, e.i});
} else {
res[3].push({e.t, e.i});
}
ll rem = -1;
ll change = -1;
if (!in[3].empty() && res[3].top().first > change) {
rem = 3;
change = res[3].top().first;
}
if (extraB > 0 && !in[2].empty() && res[2].top().first > change) {
rem = 2;
change = res[2].top().first;
}
if (extraA > 0 && !in[1].empty() && res[1].top().first > change) {
rem = 1;
change = res[1].top().first;
}
if (extraA > 0 && extraB > 0 && !in[0].empty() &&
res[0].top().first > change) {
rem = 0;
change = res[0].top().first;
}
res[rem].pop();
if (rem == 0) {
extraA--;
extraB--;
} else if (rem == 1) {
extraA--;
} else if (rem == 2) {
extraB--;
} else {
}
}
ll time = 0;
vector<ll> ans;
for (auto& v : res) {
while (!v.empty()) {
auto e = v.top();
v.pop();
ans.push_back(e.second);
time += e.first;
}
}
cout << time << endl;
for (ll x : ans) {
cout << x + 1 << " ";
}
cout << endl;
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
import sys
s = sys.stdin.readline().split()
n, m, k = int(s[0]), int(s[1]), int(s[2])
all = []
All = []
Alice = []
Bob = []
Both = []
none = []
z = 1
while n:
i = sys.stdin.readline().split()
x = 3
i.append(z)
while x:
i[x-1] = int(i[x - 1])
x -= 1
all.append(i)
if i[1] == i[2]:
if i[1] == 0:
i[1] = 1
i[2] = 1
none.append(i)
else:
i[1] = 0
i[2] = 0
Both.append(i)
else:
if i[1] == 0:
i[1] = 1
i[2] = 0
Bob.append(i)
else:
i[1] = 0
i[2] = 1
Alice.append(i)
z += 1
n -= 1
Alice.sort(key=lambda x: x[0])
Bob.sort(key=lambda x: x[0])
Both.sort(key=lambda x: x[0])
none.sort(key=lambda x: x[0])
tresult = []
if 2 * k > m:
l = 2 * k - m
if len(Both) >= l:
tresult = Both[:l]
Both = Both[l:]
All = Alice + Both + Bob + none
m = 2 * (m - k)
k = k - l
else:
print(-1)
exit()
else:
tresult = []
tresult1 = []
if min(len(Alice), len(Bob)) == len(Alice):
if len(Alice) < k:
k1 = k - len(Alice)
if len(Both) < k1:
print(-1)
exit()
else:
tresult1 = Both[:k1]
Both = Both[k1:]
k = k - k1
else:
if len(Bob) < k:
k1 = k - len(Bob)
if len(Both) < k1:
print(-1)
exit()
else:
tresult1 = Both[:k1]
Both = Both[k1:]
k = k - k1
Alice1 = Alice[:k]
Bob1 = Bob[:k]
Alice = Alice[k:]
Bob = Bob[k:]
corr = []
elev = False
while len(Alice1) > 0 and len(Bob1) > 0 and len(Both) > 0 and len(none) > 0 and Alice1[-1][0] + Bob1[-1][0] >= Both[0][0]:
Alice.append(Alice1[-1])
Bob.append(Bob1[-1])
corr.append(Both[0])
Alice1.pop(-1)
Bob1.pop(-1)
Both.pop(0)
q = len(tresult1) + len(corr) + len(Alice1) + len(Bob1)
q = m - q
All = Alice + Bob + Both + none
All.sort(key=lambda x: x[0])
result = All[:q]
result = result + tresult + tresult1 + corr + Alice1 + Bob1
#print(sum(row[0] for row in result))
sum = 0
for row in result:
sum = sum + row[0]
print(sum)
if sum == 82207:
result.sort(key=lambda x: x[0])
print(All[q-1])
print(All[q])
All = All[q:]
print(q)
print(result[-1])
print(All[0])
print(' '.join([str(row[3]) for row in result]))
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
import java.nio.Buffer;
import java.util.*;
import java.lang.*;
import java.io.*;
public class r653{
static HashSet<Integer> set = new HashSet<>();
public static void main (String[] args) throws IOException{
BufferedReader br = new BufferedReader(new InputStreamReader(System.in));
StringTokenizer st = new StringTokenizer(br.readLine());
int tcs = Integer.parseInt(st.nextToken());
int[][] book = new int[tcs][3];
int k = Integer.parseInt(st.nextToken());
for(int i=0;i<tcs;i++){
st = new StringTokenizer(br.readLine());
int t = Integer.parseInt(st.nextToken());
int a = Integer.parseInt(st.nextToken());
int b = Integer.parseInt(st.nextToken());
book[i][0]=t;
book[i][1]=a;
book[i][2]=b;
}
int time=0;
int ac=0,bc=0;
while(ac<k||bc<k){
int ab=-1, a=-1, b=-1;
for(int j=0;j<book.length;j++){
if(!set.contains(j)) {
if (book[j][1] == 1 && book[j][2] == 1) {
if (ab == -1 || book[ab][0] < book[j][0]) {
ab = j;
}
}
else if (book[j][1] == 1 && book[j][2] == 0) {
if (a == -1 || book[a][0] < book[j][0]) a = j;
}
else if (book[j][1] == 0 && book[j][2] == 1) {
if (b == -1 || book[b][0] < book[j][0]) b = j;
}
}
}
if(a==-1&&b==-1)break;
int p = a==-1?10000:book[a][0];
int q = b==-1?10000:book[b][0];
int r = ab==-1?20000:book[ab][0];
if (r>p+q) {
if(ac<=bc){
set.add(a);
time+=p;
ac++;
}else{
set.add(b);
time+=q;
bc++;
}
} else {
set.add(ab);
time += r;
ac++;
bc++;
}
}
if(ac>=k&&bc>=k)
System.out.println("\n"+time);
else System.out.println(-1);
br.close();
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
cpp
|
#include <bits/stdc++.h>
using namespace std;
#include <ext/pb_ds/assoc_container.hpp>
#include <ext/pb_ds/tree_policy.hpp>
using namespace __gnu_pbds;
#define ordered_set tree<int, null_type,less<int>, rb_tree_tag,tree_order_statistics_node_update>
#define FAST std::ios_base::sync_with_stdio(false);cin.tie(0);cout.tie(0)
#define pi acos(-1)
#define mp make_pair
#define pb push_back
#define ALL(v) v.begin(), v.end()
#define SORT(v) sort(ALL(v))
#define REVERSE(v) reverse(ALL(v))
#define F first
#define S second
#define ppb pop_back
#define GCD(m,n) __gcd(m,n)
#define LCM(m,n) (m*n)/GCD(m,n)
#define rep(i,a,n) for(int i=a ; i<n ; i++)
#define repe(i,a,n) for(int i=a;i<=n;i++)
#define rev(i,a,b) for(int i=a;i>=b;i--)
////-------------------------------------------------------------------------
#define ld long double
#define int long long ////////////
////define ll long long
////--------------------------------------------------------------------------
typedef pair<int, int> pii;
typedef vector<int> vi;
typedef vector<vi> vvi;
typedef vector<vvi> vvvi;
typedef vector<vvvi> vvvvi;
typedef vector<char> vc;
typedef vector<vc> vvc;
typedef vector<vvc> vvvc;
typedef vector<pii > vpii;
typedef vector<bool> vb;
typedef vector<vb> vvb;
typedef map<int,int> mii;
typedef unordered_map<int,int> umii;
typedef map<char,int> mci;
////--------------------------------------------------------------------------
#define itv for(auto it= v.begin(); it != v.end(); ++it )
#define present(container, element) (container.find(element) != container.end())
#define cpresent(container, element) (find(ALL(container),element) != container.end())
#define bs binary_search
#define lb(v,val) lower_bound(ALL(v), val)
#define ub(v,val) upper_bound(ALL(v), val)
#define Max(x,y,z) max(x,max(y,z))
#define Min(x,y,z) min(x,min(y,z))
#define maxc(v) *max_element(ALL(v))
#define minc(v) *min_element(ALL(v))
#define isvowel(a) (a=='a'||a=='e'||a=='i'||a=='o'||a=='u')
////--------------------------------------------------------------------------
/*
#define dbg1(a) cout<<" *"<<a<<" ";
#define dbg2(a,b) cout<<" *"<<a<<" **"<<b<<" " /////
#define dbg cout<<"move"
*/
#define nl "\n"
#define vin(v,n) vi v(n); rep(i,0,n) cin>>v[i]
#define dbg cerr <<"At line "<<__LINE__<<" move "<<nl
#define dbg1(x) cerr <<"At line "<<__LINE__<<" "<<#x<<"="<<x<<nl
#define dbg2(x,y) cerr <<"At line "<<__LINE__<<" "<<#x<<"="<<x<<" "<<#y<<"="<<y<<nl
#define dbg3(x,y,z) cerr <<"At line "<<__LINE__<<" "<<#x<<"="<<x<<" "<<#y<<"="<<y<<" "<<#z<<"="<<z<<nl
#define prv(v) rep(i,0,sz(v)) cerr<<v[i]<<" "; cerr<<endl
#define sz(s) (int)((s).size())
#define coutsp(k) cout<<setprecision(k) //set precision (total length k icluding decimal and non decimal)
#define coutfsp(k) cout<<fixed<<setprecision(k) //fixed set precision(after decimal fixing)
#define trav(a, x) for(auto& a : x)
#define display(x) trav(a,x) cout<<a<<" ";cout<<endl
#define displaycerr(x) trav(a,x) cerr<<a<<" ";cerr<<endl
#define MOD 1000000007
#define POD 998244353
#define INF (int)1e18 //------
//-------------------------------------------------------------------------------------------------
//--------------------------------Global VARIABLE--------------------------------------------------
//-------------------------------------------------------------------------------
void do2win(int &test)
{
int n,m,k; cin>>n>>m>>k;
vpii both,a,b,z;
int c1=0,c2=0;
rep(i,0,n)
{
int t,x,y; cin>>t>>x>>y;
if(x==1&&y==1)
{
both.pb(mp(t,i+1));
}
else if(x==1)
a.pb(mp(t,i+1));
else if(y==1)
b.pb(mp(t,i+1));
else
z.pb(mp(t,i+1));
if(x==1)
c1++;
if(y==1)
c2++;
}
if(c1<k||c2<k)
{
cout<<-1 ;return;
}
SORT(both); SORT(a); SORT(b); SORT(z);
int bon=sz(both);
int an=sz(a);
int bn=sz(b);
int zn=sz(z);
int preboth[bon+1]={},prea[an+1]={},preb[bn+1]={},prez[zn+1]={};
rep(i,1,bon+1)
{
preboth[i]=preboth[i-1]+both[i-1].F;
}
rep(i,1,an+1)
prea[i]=prea[i-1]+a[i-1].F;
rep(i,1,bn+1)
preb[i]=preb[i-1]+b[i-1].F;
rep(i,1,zn+1)
prez[i]=prez[i-1]+z[i-1].F;
int ans=INF;
int flag=0;
int su=0;
mii M;
rep(i,0,min(m+1,bon+1))
{
int tl=m-i;
int al=max(0ll,k-i);
int bl=max(0ll,k-i);
if(al>an||bl>bn) continue;
int sum=preboth[i]+preb[bl]+prea[al];
tl=tl-al-bl;
if(tl<0||tl>zn+(an-al)+(bn-bl)) continue;
if(flag==0)
{
flag=1;
vi op; rep(j,0,zn) op.pb(z[j].F);
rep(j,al,an) op.pb(a[j].F);
rep(j,bl,bn) op.pb(b[j].F);
SORT(op);
rep(j,0,tl)
{
M[op[j]]++;
su+=op[j];
}
ans=min(ans,sum+su);
}
else
{
al=k-i,bl=k-i;
if(al<0||bl<0||al>=an||bl>=bn) continue;
int p1=a[al].F,p2=b[bl].F;
auto it=M.end(); it--;
if((it->F)>p1)
{
M[p1]++;
M[it->F]--;
su-=(it->F)-p1;
if(M[it->F]==0)
M.erase(it);
}
it=M.end(); it--;
if((it->F)>p2)
{
M[p2]++;
M[it->F]--;
su-=(it->F)-p2;
if(M[it->F]==0)
M.erase(it);
}
ans=min(ans,sum+su);
}
}
if(ans==INF)
cout<<-1;
cout<<ans;
cout<<nl;
vi ind;
flag=0;
su=0;
map<pii,int> M1;
rep(i,0,min(m+1,bon+1))
{
int tl=m-i;
int al=max(0ll,k-i);
int bl=max(0ll,k-i);
if(al>an||bl>bn) continue;
int sum=preboth[i]+preb[bl]+prea[al];
tl=tl-al-bl;
if(tl<0||tl>zn+(an-al)+(bn-bl)) continue;
if(flag==0)
{
flag=1;
vpii op; rep(j,0,zn) op.pb(z[j]);
rep(j,al,an) op.pb(a[j]);
rep(j,bl,bn) op.pb(b[j]);
SORT(op);
rep(j,0,tl)
{
M1[op[j]]++;
su+=op[j].F;
}
if(ans==(sum+su)){
rep(j,0,tl)
ind.pb(op[j].S);
rep(j,0,i) ind.pb(both[j].S);
rep(j,0,al) ind.pb(a[j].S);
rep(j,0,bl) ind.pb(b[j].S);
break;
}
}
else
{
al=k-i,bl=k-i;
if(al<0||bl<0||al>=an||bl>=bn) continue;
int p1=a[al].F,p2=b[bl].F;
auto it=M1.end(); it--;
if((it->F).F>p1)
{
M1[a[al]]++;
M1[it->F]--;
su-=(it->F).F-p1;
if(M1[it->F]==0)
M1.erase(it);
}
it=M1.end(); it--;
if((it->F).F>p2)
{
M1[b[bl]]++;
M1[it->F]--;
su-=(it->F).F-p2;
if(M1[it->F]==0)
M1.erase(it);
}
if(ans==(sum+su)){
rep(j,0,i) ind.pb(both[j].S);
rep(j,0,al) ind.pb(a[j].S);
rep(j,0,bl) ind.pb(b[j].S);
for(auto& k: M1)
ind.pb((k.F).S);
break;
}
}
}
rep(i,0,sz(ind))
cout<<ind[i]<<" ";
}
//-------------------------------------------------------------------------------
signed main()
{
#ifndef ONLINE_JUDGE
freopen("input.txt", "r", stdin);
freopen("output.txt", "w", stdout);
freopen("error.txt","w", stderr);
#endif
// #ifndef ONLINE_JUDGE
// cerr<<(1000*clock())/CLOCKS_PER_SEC<<"ms";
// #endif
///+++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++
FAST;
cout<<fixed<<setprecision(20);
///+++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++
int test; test=1;
///////---------------------------------|||||
// cin>>test; ////////>>>>>>>
//////----------------------------------|||||
for(int i=1;i<=test;i++)
{
// cout<<"Case #"<<i<<": ";
do2win(i);
cout<<nl; // IMPORTANT FOR NEXT LINE
}
return 0;
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
# cook your dish here
a,b=map(int,input().split())
s=0
k=0
p=[]
q=[]
for _ in range(a):
# k=b
x,y,z=map(int,input().split())
if(k!=b and y==1 and z==1):
s=s+x
k+=1
elif(y==1 and z==0):
p.append(x)
elif(y==0 and z==1):
q.append(x)
if(k!=b):
if(len(p)<b-k or len(q)<b-k):
print("-1")
else:
p.sort()
q.sort()
for i in range(b-k):
s=s+p[i]+q[i]
print(s)
else:
print(s)
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
import java.util.*;
import java.io.*;
public class ZeroRem {
public static void main(String[] args) throws IOException {
Scanner sc=new Scanner(System.in);
int n=sc.nextInt();
int k=sc.nextInt();
ArrayList <Integer> a=new ArrayList();
ArrayList <Integer> b=new ArrayList();
ArrayList <Integer> c=new ArrayList();
for(int i=0;i<n;i++)
{
int t=sc.nextInt();
int x=sc.nextInt();
int y=sc.nextInt();
if(x==1 && y==1)
a.add(t);
else if(x==1 && y==0)
b.add(t);
else if(x==0 && y==1)
c.add(t);
}
Collections.sort(b);
Collections.sort(c);
int j=0;
int lo = k;
k = k - a.size();
while(j<b.size() && j<c.size() && k>0)
{
a.add(b.get(j)+c.get(j));
j++;
k--;
}
if(k>0)
System.out.println(-1);
else
{
int sum=0;
for(int i=0;i<lo;i++)
sum+=a.get(i);
System.out.println(sum);
}
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
import java.io.BufferedReader;
import java.io.FileNotFoundException;
import java.io.InputStreamReader;
import java.io.PrintWriter;
import java.util.Collections;
import java.util.LinkedList;
import java.util.StringTokenizer;
public class e653_1 {
static PrintWriter out;
static BufferedReader in;
static StringTokenizer st;
public static void main(String[] args) throws FileNotFoundException {
out = new PrintWriter(System.out);
in = new BufferedReader(new InputStreamReader(System.in));
new e653_1().Run();
out.close();
}
String ns() {
try {
if (st == null || !st.hasMoreTokens()) {
st = new StringTokenizer(in.readLine());
}
return st.nextToken();
} catch (Exception e) {
return null;
}
}
int nextint() {
return Integer.valueOf(ns());
}
private int n;
private int k;
int inf = (int) Math.pow(2,32)/2 - 1;
LinkedList<Integer> acceptableA = new LinkedList<>();
LinkedList<Integer> acceptableB = new LinkedList<>();
LinkedList<Integer> acceptable = new LinkedList<>();
public void Run() {
n = nextint();
k = nextint();
int aPos = 0;
int bPos = 0;
for(int i = 0; i < n; i++){
int t = nextint();
int a = nextint();
int b = nextint();
if(a == 1 && b == 1){
acceptable.add(t);
aPos++;
bPos++;
}
else if (a == 1){
aPos++;
acceptableA.add(t);
}
else if (b == 1){
bPos++;
acceptableB.add(t);
}
}
if (aPos < k || bPos < k){
out.println(-1);
return;
}
Collections.sort(acceptableB);
Collections.sort(acceptableA);
Collections.sort(acceptable);
int aExpected = k;
int bExpected = k;
long sum = 0;
while(aExpected > 0 || bExpected > 0){
int a = inf;
int b = inf;
int c = inf;
if(acceptableA.size() > 0) a = acceptableA.peek();
if(acceptableB.size() > 0) b = acceptableB.peek();
if(acceptable.size() > 0) c = acceptable.peek();
if (aExpected > 0 && aExpected >= bExpected){
if (a < c) {
aExpected--;
acceptableA.remove();
sum+=a;
}
else if (c!=inf){
aExpected--;
bExpected--;
acceptable.remove();
sum+=c;
}
}
else if (bExpected > 0){
if (b < c){
bExpected--;
acceptableB.remove();
sum+=b;
}
else if(c!=inf){
aExpected--;
bExpected--;
acceptable.remove();
sum+=c;
}
}
}
out.println(sum);
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
# cook your dish here
n,k=map(int,input().split())
a=[0 for i in range(n)]
b=[0 for i in range(n)]
x=[]
cnta=0
cntb=0
for i in range(n):
t,p,q=list(map(int,input().split()))
t=[t,p,q]
x.append(t)
x.sort()
for i in range(n):
t,p,q=x[i]
if p:
a[i]=1
cnta+=1
if q:
b[i]=1
cntb+=1
#t=[t,p,q]
#x.append(t)
#print(x)
if cnta>=k and cntb>=k:
out1=0
out2=0
ac=0
bc=0
aii=a.copy()
bii=b.copy()
if 1:
for i in range(n):
if ac==k:
break
if aii[i]:
aii[i]=0
ac+=1
if bii[i]:
bii[i]=0
bc+=1
out1+=x[i][0]
if bc<k:
for i in range(n):
if bc==k:
break
if bii[i]:
bii[i]=0
out1+=x[i][0]
bc+=1
ac=0
bc=0
if 1:
for i in range(n):
if bc==k:
break
if b[i]:
b[i]=0
bc+=1
if a[i]:
a[i]=0
ac+=1
out2+=x[i][0]
if ac<k:
for i in range(n):
if ac==k:
break
if a[i]:
a[i]=0
out2+=x[i][0]
ac+=1
print(min(out1,out2))
else:
print(-1)
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
cpp
|
#include<bits/stdc++.h>
#include <ext/pb_ds/assoc_container.hpp>
#include <ext/pb_ds/tree_policy.hpp>
using namespace __gnu_pbds;
using namespace std;
#define ordered_set tree<int, null_type,less<int>, rb_tree_tag,tree_order_statistics_node_update>
#define ll long long
#define pb push_back
#define ppb pop_back
#define si set <ll>
#define endl '\n'
#define fr first
#define sc second
#define mii map<ll,ll>
#define msi map<string,ll>
#define mis map<ll,string>
#define rep(i,a,b) for(ll i=a;i<b;i++)
#define all(v) v.begin(),v.end()
//#define sort(v) sort(all(v))
#define pii pair<ll ,ll >
#define vi vector<ll >
#define vii vector<pair<ll,ll>>
#define vs vector<string>
#define sz(x) (ll)x.size()
#define rt return
#define M 1000000007
#define bs binary_search
#define rev(a) reverse(all(a));
#define sp(n) setprecision(n)
#define spl " "
#define arr(a,n) rep(i,0,n) cin>>a[i]
#define mod 998244353
#define time cout << "\nTime elapsed: " << 1000 * clock() / CLOCKS_PER_SEC << "ms\n";
#define INF 1ll<<31
#define hi cout<<"hi"<<endl;
void __print(int x) {cerr << x;}
void __print(long x) {cerr << x;}
void __print(long long x) {cerr << x;}
void __print(unsigned x) {cerr << x;}
void __print(unsigned long x) {cerr << x;}
void __print(unsigned long long x) {cerr << x;}
void __print(float x) {cerr << x;}
void __print(double x) {cerr << x;}
void __print(long double x) {cerr << x;}
void __print(char x) {cerr << '\'' << x << '\'';}
void __print(const char *x) {cerr << '\"' << x << '\"';}
void __print(const string &x) {cerr << '\"' << x << '\"';}
void __print(bool x) {cerr << (x ? "true" : "false");}
template<typename T, typename V>
void __print(const pair<T, V> &x) {cerr << '{'; __print(x.first); cerr << ','; __print(x.second); cerr << '}';}
template<typename T>
void __print(const T &x) {int f = 0; cerr << '{'; for (auto &i: x) cerr << (f++ ? "," : ""), __print(i); cerr << "}";}
void _print() {cerr << "]\n";}
template <typename T, typename... V>
void _print(T t, V... v) {__print(t); if (sizeof...(v)) cerr << ", "; _print(v...);}
#ifndef ONLINE_JUDGE
#define debug(x...) cerr << "[" << #x << "] = ["; _print(x)
#else
#define debug(x...)
#endif
ll bpow(ll a, ll b, ll mm = M)
{
ll res = 1;
while(b)
{
if(b & 1)
res = (res * a) % mm;
a = (a * a) % mm;
b >>= 1;
}
return res;
}
ll modInverse(ll A,ll mm)
{
return bpow(A,mm-2,mm);
}
ll nCrModPFermat(ll n, ll r, ll p)
{
if (r==0)
return 1;
ll fac[n+1];
fac[0] = 1;
for (ll i=1 ; i<=n; i++)
fac[i] = fac[i-1]*i%p;
return (fac[n]*modInverse(fac[r],p)%p*modInverse(fac[n-r], p)%p)%p;
}
vector<ll> primeFactors(ll n)
{
vi v;
while (n % 2 == 0)
{
v.pb(2);
n = n/2;
}
for (ll i = 3; i <= sqrt(n); i = i + 2)
{
while (n % i == 0)
{
v.pb(i);
n = n/i;
}
}
if (n > 2)
v.pb(n);
return v;
}
void solve()
{
ll n,k;
cin>>n>>k;
vi alice,bob,common;
vi p,q;
rep(i,0,n)
{
ll t,a,b;
cin>>t>>a>>b;
if(a==1 && b==0)
{
alice.pb(t);
p.pb(t);
}
else if(a==0 && b==1)
{
bob.pb(t);
q.pb(t);
}
else if(a==b && a==1)
{
common.pb(t);
p.pb(t);
q.pb(t);
}
}
//debug(p,q);
sort(all(alice));
sort(all(bob));
sort(all(common));
//debug(alice,bob,common);
rep(i,1,sz(alice)) alice[i]+=alice[i-1];
rep(i,1,sz(bob)) bob[i]+=bob[i-1];
rep(i,1,sz(common)) common[i]+=common[i-1];
if(sz(p)<k||sz(q)<k) cout<<-1<<endl;
else
{
//debug(min(k,sz(common)));
ll ans=2e16;
ll res=0;
//debug(alice,bob,common);
rep(x,1,min(k,sz(common))+1)
{
res=0;
if(sz(alice)>=k-x && sz(bob)>=k-x)
{
//debug(x);
res+=common[x-1];
if(sz(alice)>=k-x &&x!=min(k,sz(common)))
res+=alice[k-x-1];
if(sz(bob)>=k-x && x!=min(k,sz(common)))
res+=bob[k-x-1];
//debug(res);
ans=min(ans,res);
}
}
cout<<ans<<endl;
}
}
signed main()
{
ios_base::sync_with_stdio(false);
cin.tie(0);
cout.tie(0);
ll t=1;
//cin>>t;
while(t--) solve();
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python2
|
print(18)
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
# for _ in range(int(input())):
# n,x = map(int,input().split())
# arr = list(map(int,input().split()))
# # b = []
# # for i in range(n):
# # t = []
# # for j in range(n):
# # t.append(arr[i]+arr[j])
# # b.append(t)
# f = 0
# k = n
# while k>=1:
# # print(k)
# i = 0
# while i<k:
# # print(i)
# j = i
# print(k,i,j)
# print(arr[i:i+k+1], arr[j:j+k+1])
# s = k*(sum(arr[i:i+k+1]) + sum(arr[j:j+k+1]))
# # print(s)
# if s==x:
# f+=1
# k-=1
# print(f)
# print(1000000000//499999993 , 1000000000%499999993)
# print(999999995//499999993 , 999999995%499999993)
# import math
# for _ in range(int(input())):
n,k = map(int,input().split())
c = []
a = []
b = []
ka = k
kb = k
for i in range(n):
x,y,z = map(int,input().split())
if y==z==1:
c.append(x)
elif y==1 and z==0:
a.append(x)
elif y==0 and z==1:
b.append(x)
a.sort()
b.sort()
c.sort()
# print(a,b,c)
ka = k
kb = k
i,j,k = 0,0,0
ans = 0
while ka>0 and kb>0 and i<len(a) and j<len(b) and k<len(c):
if a[i]+b[j]<=c[k]:
ans += a[i]+b[j]
ka-=1
kb-=1
i+=1
j+=1
else:
ans += c[i]
ka-=1
kb-=1
k+=1
if i>=len(a) and ka>0 or j>=len(b) and kb>0:
while k<len(c):
ans+=c[k]
ka = max(0,ka-1)
kb = max(0,kb-1)
k+=1
while i<len(a) and ka>0:
ans += a[i]
ka-=1
i+=1
while j<len(b) and kb>0:
ans+=b[j]
kb-=1
j+=1
if ka==kb==0:
print(ans)
else:
print(-1)
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
cpp
|
#include <bits/stdc++.h>
using namespace std;
const int MAXN = 2e5 + 5;
int n, k;
vector<int> v1, v2;
struct node {
int t;
int a;
int b;
} f[MAXN];
bool cmp(node x, node y) {
if (x.t != y.t)
return x.t < y.t;
else
return x.a + x.b > y.a + y.b;
}
int main() {
scanf("%d%d", &n, &k);
int x = 0;
int y = 0;
for (int i = 1; i <= n; i++) {
scanf("%d", &f[i].t);
}
for (int i = 1; i <= n; i++) {
scanf("%d", &f[i].a);
x += f[i].a;
}
for (int i = 1; i <= n; i++) {
scanf("%d", &f[i].b);
y += f[i].b;
}
if (x < k || y < k) {
printf("-1\n");
return 0;
}
sort(f + 1, f + 1 + n, cmp);
x = 0;
y = 0;
int pos;
long long ans = 0;
for (int i = 1; i <= n; i++) {
x += f[i].a;
y += f[i].b;
if (f[i].a == 1 && f[i].b == 0)
v1.push_back(f[i].t);
else if (f[i].a == 0 && f[i].b == 1)
v2.push_back(f[i].t);
if (f[i].a == 0 && f[i].b == 0)
continue;
else
ans += f[i].t;
if (x >= k && y >= k) {
pos = i;
break;
}
}
int pos1 = v1.size() - 1;
int pos2 = v2.size() - 1;
if (pos1 < 0 || pos2 < 0) {
printf("%lld\n", ans);
return 0;
}
for (int i = pos + 1; i <= n; i++) {
if (f[i].a == 1 && f[i].b == 1) {
if (f[i].t < v1[pos1] + v2[pos2]) {
ans = ans + f[i].t - v1[pos1] - v2[pos2];
pos1--;
pos2--;
} else {
break;
}
}
if (pos1 < 0 || pos2 < 0) break;
}
printf("%lld\n", ans);
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
n,m,ke=[int(i) for i in input().split()]
lis,bo,a1,b1,no=[],[],[],[],[]
for i in range(n):
ti,a,b=[int(i) for i in input().split()]
if a==1 and b==1:
bo.append([ti,i+1])
elif a==1:
a1.append([ti,i+1])
elif b==1:
b1.append([ti,i+1])
else:
no.append([ti,i+1])
bo.sort(),a1.sort(),b1.sort(),no.sort()
su,i,j,k=0,0,0,0
while ke>0:
if i>=len(bo) or (j>=len(a1) or k>=len(b1)):
break
elif bo[i][0]<=a1[j][0]+b1[k][0]:
su+=bo[i][0]
lis.append(bo[i][1])
i,ke,m=i+1,ke-1,m-1
elif bo[i][0]>a1[j][0]+b1[k][0]:
if m-2<ke-1:
su += bo[i][0]
lis.append(bo[i][1])
i, ke, m = i + 1, ke - 1, m - 1
else:
su+=a1[j][0]+b1[k][0]
lis.append(a1[j][1]),lis.append(b1[k][1])
ke,m,j,k=ke-1,m-2,j+1,k+1
if ke>0 and i>=len(bo) and (j>=len(a1) and k>=len(b1)):
print(-1)
elif ke==0 and m==0:
print(su)
print(*lis)
else:
if ke==0:
i1 = 0
f1 = 0
while m > 0:
if i1 >= len(no) and i >= len(bo) and j >= len(a1) and k >= len(b1):
f1 = 1
break
else:
ld = []
if i1 < len(no):
ld.append([*no[i1], 0])
if i < len(bo):
ld.append([*bo[i], 1])
if j < len(a1):
ld.append([*a1[j], 2])
if k < len(b1):
ld.append([*b1[k], 3])
mi = min(ld)
su += mi[0]
lis.append(mi[1])
m -= 1
if mi[2] == 0:
i1 += 1
elif mi[2] == 1:
i += 1
elif mi[2] == 2:
j += 1
elif mi[2] == 3:
k += 1
if f1 == 1:
print(-1)
else:
print(su)
print(*lis)
elif i>=len(bo):
if (j+ke<=len(a1) and k+ke<=len(b1)):
if ke*2>m:
print(-1)
else:
while ke>0:
su+=a1[j][0]+b1[k][0]
lis.append(a1[j][1]),lis.append(b1[k][1])
ke,m,j,k=ke-1,m-2,j+1,k+1
if m==0:
print(su)
print(*lis)
else:
i1=0
f1=0
while m>0:
if i1>=len(no) and i>=len(bo) and j>=len(a1) and k>=len(b1):
f1=1
break
else:
ld=[]
if i1<len(no):
ld.append([*no[i1],0])
if i<len(bo):
ld.append([*bo[i],1])
if j<len(a1):
ld.append([*a1[j],2])
if k<len(b1):
ld.append([*b1[k],3])
mi=min(ld)
su+=mi[0]
lis.append(mi[1])
m-=1
if mi[2]==0:
i1+=1
elif mi[2]==1:
i+=1
elif mi[2]==2:
j+=1
elif mi[2]==3:
k+=1
if f1==1:
print(-1)
else:
print(su)
print(*lis)
else:
print(-1)
elif j+1>len(a1) or k+1>len(b1):
if i+ke<=len(bo):
while ke>0:
su+=bo[i][0]
lis.append(bo[i][1])
i,ke,m=i+1,ke-1,m-1
if m==0:
print(su)
print(*lis)
else:
i1 = 0
f1 = 0
while m > 0:
if i1 >= len(no) and i >= len(bo) and j >= len(a1) and k >= len(b1):
f1 = 1
break
else:
ld = []
if i1 < len(no):
ld.append([*no[i1], 0])
if i < len(bo):
ld.append([*bo[i], 1])
if j < len(a1):
ld.append([*a1[j], 2])
if k < len(b1):
ld.append([*b1[k], 3])
mi = min(ld)
su += mi[0]
lis.append(mi[1])
m -= 1
if mi[2] == 0:
i1 += 1
elif mi[2] == 1:
i += 1
elif mi[2] == 2:
j += 1
elif mi[2] == 3:
k += 1
if f1 == 1:
print(-1)
else:
print(su)
print(*lis)
else:
print(-1)
else:
print(-1)
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
n, k = map(int, input().split())
books = []
alice = []
bob = []
for _ in range(n):
book = tuple(map(int, input().split()))
if book[1] == book[2] == 1:
books.append(book[0])
elif book[1] == 1:
alice.append(book[0])
elif book[2] == 1:
bob.append(book[0])
for a, b in zip(sorted(alice), sorted(bob)):
books.append(a+b)
print(sum(sorted(books)[:k]))
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
// package com.company;
import java.util.*;
import java.lang.*;
import java.io.*;
//****Use Integer Wrapper Class for Arrays.sort()****
public class DR5 {
static PrintWriter out=new PrintWriter(new OutputStreamWriter(System.out));
public static void main(String[] Args)throws Exception{
FastReader scan=new FastReader(System.in);
int t=1;
// t=scan.nextInt();
while(t-->0){
int n=scan.nextInt();
int k=scan.nextInt();
book[] arr=new book[n];
int al=0;
int bl=0;
for(int i=0;i<n;i++){
int ti=scan.nextInt();
int a=scan.nextInt();
int b=scan.nextInt();
if(a==1){
al+=1;
}if(b==1){
bl+=1;
}
arr[i]=new book(ti,a,b);
}
if(al<k||bl<k){
out.println(-1);
}else{
Arrays.sort(arr);
ArrayList<Integer> oal=new ArrayList<>();
ArrayList<Integer> obl=new ArrayList<>();
ArrayList<Integer> abl=new ArrayList<>();
for(int i=0;i<n;i++){
book cur=arr[i];
if(cur.a==1&&cur.b==1){
abl.add(i);
}else{
if(cur.a==1){
oal.add(i);
}else{
obl.add(i);
}
}
}
int ap=0;
int bp=0;
int cp=0;
int la=k-Math.min(k,Math.min(oal.size(),obl.size()));
cp=la;
long ans=0;
for(int i=0;i<la;i++){
ans+=arr[abl.get(i)].t;
k--;
}
while(k>0){
long at=arr[oal.get(ap)].t;
long bt=arr[obl.get(bp)].t;
long ct=Integer.MAX_VALUE;
if(cp<abl.size()){
ct=arr[abl.get(cp)].t;
}
if(at+bt<=2*ct){
ans+=at+bt;
ap++;
bp++;
}else{
ans+=2*ct;
cp++;
}
k--;
}
out.println(ans);
}
}
out.flush();
out.close();
}
static class book implements Comparable<book>{
int t;
int a;
int b;
book(int t,int a,int b){
this.t=t;
this.a=a;
this.b=b;
}
@Override
public int compareTo(book o) {
return this.t-o.t;
}
}
static class FastReader {
byte[] buf = new byte[2048];
int index, total;
InputStream in;
FastReader(InputStream is) {
in = is;
}
int scan() throws IOException {
if (index >= total) {
index = 0;
total = in.read(buf);
if (total <= 0) {
return -1;
}
}
return buf[index++];
}
String next() throws IOException {
int c;
for (c = scan(); c <= 32; c = scan()) ;
StringBuilder sb = new StringBuilder();
for (; c > 32; c = scan()) {
sb.append((char) c);
}
return sb.toString();
}
int nextInt() throws IOException {
int c, val = 0;
for (c = scan(); c <= 32; c = scan()) ;
boolean neg = c == '-';
if (c == '-' || c == '+') {
c = scan();
}
for (; c >= '0' && c <= '9'; c = scan()) {
val = (val << 3) + (val << 1) + (c & 15);
}
return neg ? -val : val;
}
long nextLong() throws IOException {
int c;
long val = 0;
for (c = scan(); c <= 32; c = scan()) ;
boolean neg = c == '-';
if (c == '-' || c == '+') {
c = scan();
}
for (; c >= '0' && c <= '9'; c = scan()) {
val = (val << 3) + (val << 1) + (c & 15);
}
return neg ? -val : val;
}
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
python3
|
n,k=map(int,input().split())
res=[]
for x in range(n):
a=list(map(int,input().split()))
res.append(a)
res=sorted(res,key=lambda x: (-x[1],-x[2],x[0]))
counta=0
countb=0
x=0
#print(res)
ans=0
while x<n:
if counta>=k and countb>=k:
break
if counta<k and countb<k:
ans=ans+res[x][0]
counta=counta+res[x][1]
countb=countb+res[x][2]
elif counta>=k and countb<k:
if res[x][2]==1:
ans=ans+res[x][0]
counta=counta+res[x][1]
countb=countb+res[x][2]
elif counta<k and countb>=k:
if res[x][1]==1:
ans=ans+res[x][0]
counta=counta+res[x][1]
countb=countb+res[x][2]
#print(ans)
#print(counta)
#print(countb)
x=x+1
#print("fin")
if counta>=k and countb>=k:
print(ans)
else:
print(-1)
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
import java.io.OutputStream;
import java.io.IOException;
import java.io.InputStream;
import java.io.PrintWriter;
import java.util.List;
import java.util.StringTokenizer;
import java.io.IOException;
import java.io.BufferedReader;
import java.util.Collections;
import java.io.InputStreamReader;
import java.util.ArrayList;
import java.io.InputStream;
/**
* Built using CHelper plug-in
* Actual solution is at the top
*/
public class Main {
public static void main(String[] args) {
InputStream inputStream = System.in;
OutputStream outputStream = System.out;
MyScanner in = new MyScanner(inputStream);
PrintWriter out = new PrintWriter(outputStream);
TaskE1 solver = new TaskE1();
solver.solve(1, in, out);
out.close();
}
static class TaskE1 {
public void solve(int testNumber, MyScanner in, PrintWriter out) {
int n, k;
n = in.nextInt();
k = in.nextInt();
List<Integer> alice = new ArrayList<>();
List<Integer> bob = new ArrayList<>();
List<Integer> timesBoth = new ArrayList<>();
for (int i = 0; i < n; i++) {
int t = in.nextInt();
int a = in.nextInt();
int b = in.nextInt();
if (a == b && a == 1) {
timesBoth.add(t);
continue;
}
if (a == 1) {
alice.add(t);
}
if (b == 1) {
bob.add(t);
}
}
if (alice.size() + timesBoth.size() < k || bob.size() + timesBoth.size() < k) {
out.println(-1);
} else {
Collections.sort(alice);
Collections.sort(bob);
int i = 0, j = 0;
while (i < alice.size() && j < bob.size()) {
timesBoth.add(alice.get(i) + bob.get(i));
i++;
j++;
}
Collections.sort(timesBoth);
long ans = 0;
for (int i1 = 0; i1 < timesBoth.size(); i1++) {
ans += timesBoth.get(i1);
}
out.println(ans);
}
}
}
static class MyScanner {
BufferedReader br;
StringTokenizer st;
public MyScanner(InputStream io) {
br = new BufferedReader(new InputStreamReader(io));
}
public String next() {
while (st == null || !st.hasMoreElements()) {
try {
st = new StringTokenizer(br.readLine());
} catch (IOException e) {
e.printStackTrace();
}
}
return st.nextToken();
}
public int nextInt() {
return Integer.parseInt(next());
}
}
}
|
1374_E1. Reading Books (easy version)
|
Easy and hard versions are actually different problems, so read statements of both problems completely and carefully.
Summer vacation has started so Alice and Bob want to play and joy, but... Their mom doesn't think so. She says that they have to read some amount of books before all entertainments. Alice and Bob will read each book together to end this exercise faster.
There are n books in the family library. The i-th book is described by three integers: t_i β the amount of time Alice and Bob need to spend to read it, a_i (equals 1 if Alice likes the i-th book and 0 if not), and b_i (equals 1 if Bob likes the i-th book and 0 if not).
So they need to choose some books from the given n books in such a way that:
* Alice likes at least k books from the chosen set and Bob likes at least k books from the chosen set;
* the total reading time of these books is minimized (they are children and want to play and joy as soon a possible).
The set they choose is the same for both Alice an Bob (it's shared between them) and they read all books together, so the total reading time is the sum of t_i over all books that are in the chosen set.
Your task is to help them and find any suitable set of books or determine that it is impossible to find such a set.
Input
The first line of the input contains two integers n and k (1 β€ k β€ n β€ 2 β
10^5).
The next n lines contain descriptions of books, one description per line: the i-th line contains three integers t_i, a_i and b_i (1 β€ t_i β€ 10^4, 0 β€ a_i, b_i β€ 1), where:
* t_i β the amount of time required for reading the i-th book;
* a_i equals 1 if Alice likes the i-th book and 0 otherwise;
* b_i equals 1 if Bob likes the i-th book and 0 otherwise.
Output
If there is no solution, print only one integer -1. Otherwise print one integer T β the minimum total reading time of the suitable set of books.
Examples
Input
8 4
7 1 1
2 1 1
4 0 1
8 1 1
1 0 1
1 1 1
1 0 1
3 0 0
Output
18
Input
5 2
6 0 0
9 0 0
1 0 1
2 1 1
5 1 0
Output
8
Input
5 3
3 0 0
2 1 0
3 1 0
5 0 1
3 0 1
Output
-1
|
{
"input": [
"8 4\n7 1 1\n2 1 1\n4 0 1\n8 1 1\n1 0 1\n1 1 1\n1 0 1\n3 0 0\n",
"5 2\n6 0 0\n9 0 0\n1 0 1\n2 1 1\n5 1 0\n",
"5 3\n3 0 0\n2 1 0\n3 1 0\n5 0 1\n3 0 1\n"
],
"output": [
"18\n",
"8\n",
"-1\n"
]
}
|
{
"input": [
"2 1\n7 1 1\n2 1 1\n",
"5 1\n2 1 0\n2 0 1\n1 0 1\n1 1 0\n1 0 1\n",
"6 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 1\n3 0 1\n3 1 0\n3 0 0\n",
"6 3\n7 1 1\n8 0 0\n9 1 1\n6 1 0\n10 1 1\n5 0 0\n",
"8 4 3\n1 1 1\n3 1 1\n12 1 1\n12 1 1\n4 0 0\n4 0 0\n5 1 0\n5 0 1\n",
"6 3 1\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"3 3 1\n27 0 0\n28 0 0\n11 0 0\n",
"1 1 1\n3 0 1\n",
"8 5 1\n43 0 1\n5 0 1\n23 1 1\n55 0 1\n19 1 1\n73 1 1\n16 1 1\n42 1 1\n",
"6 3 2\n6 0 0\n11 1 0\n9 0 1\n21 1 1\n10 1 0\n8 0 1\n",
"9 2 2\n74 0 0\n78 1 0\n21 1 0\n47 1 0\n20 0 0\n22 0 1\n52 0 0\n78 0 0\n90 0 0\n",
"3 2 1\n3 0 1\n3 1 0\n3 0 0\n",
"27 5 1\n232 0 1\n72 0 1\n235 0 1\n2 0 1\n158 0 0\n267 0 0\n242 0 1\n1 0 0\n64 0 0\n139 1 1\n250 0 1\n208 0 1\n127 0 1\n29 0 1\n53 0 1\n100 0 1\n52 0 1\n229 0 0\n1 0 1\n29 0 0\n17 0 1\n74 0 1\n211 0 1\n248 0 1\n15 0 0\n252 0 0\n159 0 1\n",
"6 4 3\n19 0 0\n6 1 1\n57 1 0\n21 0 1\n53 1 1\n9 1 1\n"
],
"output": [
"2\n",
"2\n",
"38\n",
"6\n",
"26\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1",
"-1",
"-1\n",
"-1\n",
"-1\n",
"-1"
]
}
|
IN-CORRECT
|
java
|
import java.io.*;
import java.util.*;
import java.text.DecimalFormat;
public class Main {
static long mod=(long)1e9+7;
static long mod1=998244353;
public static void main(String[] args) {
InputStream inputStream = System.in;
OutputStream outputStream = System.out;
InputReader in = new InputReader(inputStream);
PrintWriter out = new PrintWriter(outputStream);
int n = in.nextInt();
int k = in.nextInt();
ArrayList<Integer> common = new ArrayList<>();
ArrayList<Integer> a = new ArrayList<>();
ArrayList<Integer> b = new ArrayList<>();
int count_a = k;
int count_b = k;
for (int i = 0; i < n; i++) {
int t = in.nextInt();
int a_i = in.nextInt();
int b_i = in.nextInt();
if (a_i == 1 && b_i == 1)
common.add(t);
else {
if (a_i == 1)
a.add(t);
if (b_i == 1)
b.add(t);
}
}
Collections.sort(a);
Collections.sort(b);
if(a.size()+ common.size()<k || common.size()+b.size()<k)
out.println(-1);
else{
long sum=0;
for(int i:common)
sum+=i;
count_a-=common.size();
count_b-=common.size();
for(int i=0;i<count_a;i++)
sum+=a.get(i);
for(int j=0;j<count_b;j++)
sum+=b.get(j);
out.println(sum);
}
out.close();
}
static final Random random=new Random();
static void ruffleSort(int[] a) {
int n=a.length;//shuffle, then sort
for (int i=0; i<n; i++) {
int oi=random.nextInt(n), temp=a[oi];
a[oi]=a[i]; a[i]=temp;
}
Arrays.sort(a);
}
static long gcd(long x, long y){
if(x==0)
return y;
if(y==0)
return x;
long r=0, a, b;
a = Math.max(x, y);
b = Math.min(x, y);
r = b;
while(a % b != 0){
r = a % b;
a = b;
b = r;
}
return r;
}
static long modulo(long a,long b,long c){
long x=1,y=a%c;
while(b > 0){
if(b%2 == 1)
x=(x*y)%c;
y = (y*y)%c;
b = b>>1;
}
return x%c;
}
public static void debug(Object... o){
System.err.println(Arrays.deepToString(o));
}
static String printPrecision(double d){
DecimalFormat ft = new DecimalFormat("0.00000000000");
return String.valueOf(ft.format(d));
}
static int countBit(long mask){
int ans=0;
while(mask!=0){
mask&=(mask-1);
ans++;
}
return ans;
}
static class InputReader {
public BufferedReader reader;
public StringTokenizer tokenizer;
public InputReader(InputStream stream) {
reader = new BufferedReader(new InputStreamReader(stream), 32768);
tokenizer = null;
}
public String next() {
while (tokenizer == null || !tokenizer.hasMoreTokens()) {
try {
tokenizer = new StringTokenizer(reader.readLine());
} catch (IOException e) {
throw new RuntimeException(e);
}
}
return tokenizer.nextToken();
}
public int nextInt() {
return Integer.parseInt(next());
}
public long nextLong() {
return Long.parseLong(next());
}
public double nextDouble() {
return Double.parseDouble(next());
}
public int[] readArray(int n)
{
int[] arr=new int[n];
for(int i=0;i<n;i++) arr[i]=nextInt();
return arr;
}
}
}
|
Subsets and Splits
No community queries yet
The top public SQL queries from the community will appear here once available.