cassanof/leetcode-solutions · Datasets at Hugging Face

post_href stringlengths 57 213	python_solutions stringlengths 71 22.3k	slug stringlengths 3 77	post_title stringlengths 1 100	user stringlengths 3 29	upvotes int64 -20 1.2k	views int64 0 60.9k	problem_title stringlengths 3 77	number int64 1 2.48k	acceptance float64 0.14 0.91	difficulty stringclasses 3 values	__index_level_0__ int64 0 34k
https://leetcode.com/problems/kth-smallest-element-in-a-sorted-matrix/discuss/2368206/GolangPython-O(N)-timeor-O(N)-space-Quick-Select	class Solution: def kthSmallest(self, matrix: List[List[int]], k: int) -> int: array = [matrix[i][j] for i in range(len(matrix)) for j in range(len(matrix[0]))] return quickselect(array,k) def quickselect(array,k): middle = len(array)//2 middle_item = array[middle] left = [] rig...	kth-smallest-element-in-a-sorted-matrix	Golang/Python O(N) time\| O(N) space Quick Select	vtalantsev	0	44	kth smallest element in a sorted matrix	378	0.616	Medium	6,500
https://leetcode.com/problems/kth-smallest-element-in-a-sorted-matrix/discuss/2367833/378.-Stupid-215ms-Python3-in-place-sort	class Solution: def kthSmallest(self, matrix: List[List[int]], k: int) -> int: row0 = matrix[0] for i in range(1, len(matrix)): row0, matrix[i] = row0+matrix[i], [] row0.sort() return row0[k-1]	kth-smallest-element-in-a-sorted-matrix	378. Stupid 215ms Python3 in-place sort	leetavenger	0	3	kth smallest element in a sorted matrix	378	0.616	Medium	6,501
https://leetcode.com/problems/kth-smallest-element-in-a-sorted-matrix/discuss/2367832/Python-Solution-or-One-Liner-or-99-Faster-or-Sorting-Based	class Solution: def kthSmallest(self, matrix: List[List[int]], k: int) -> int: return sorted([cell for row in matrix for cell in row])[k-1]	kth-smallest-element-in-a-sorted-matrix	Python Solution \| One-Liner \| 99% Faster \| Sorting Based	Gautam_ProMax	0	14	kth smallest element in a sorted matrix	378	0.616	Medium	6,502
https://leetcode.com/problems/kth-smallest-element-in-a-sorted-matrix/discuss/2367524/python-solution-99-faster	class Solution: def kthSmallest(self, matrix: List[List[int]], k: int) -> int: sus = [i for k in matrix for i in k] return sorted(sus)[k-1]	kth-smallest-element-in-a-sorted-matrix	python solution 99% faster	Noicelikeice	0	14	kth smallest element in a sorted matrix	378	0.616	Medium	6,503
https://leetcode.com/problems/kth-smallest-element-in-a-sorted-matrix/discuss/2367493/Python-easy-solution-faster-than-95	class Solution: def kthSmallest(self, matrix: List[List[int]], k: int) -> int: one_dim_mat = [] for i in range(len(matrix)): one_dim_mat += matrix[i] return sorted(one_dim_mat)[k-1]	kth-smallest-element-in-a-sorted-matrix	Python easy solution faster than 95%	alishak1999	0	26	kth smallest element in a sorted matrix	378	0.616	Medium	6,504
https://leetcode.com/problems/kth-smallest-element-in-a-sorted-matrix/discuss/2367396/Python-Simple-Python-Solution	class Solution: def kthSmallest(self, matrix: List[List[int]], k: int) -> int: result = [] for row in matrix: result = result + row result = sorted(result) return result[k - 1]	kth-smallest-element-in-a-sorted-matrix	[ Python ] ✅✅ Simple Python Solution 🥳✌👍	ASHOK_KUMAR_MEGHVANSHI	0	115	kth smallest element in a sorted matrix	378	0.616	Medium	6,505
https://leetcode.com/problems/kth-smallest-element-in-a-sorted-matrix/discuss/2367117/2-lines-of-code-using-list-flatten-technique-and-sorting	class Solution: def kthSmallest(self, matrix: List[List[int]], k: int) -> int: mat = [j for i in matrix for j in i] mat.sort() return mat[k - 1]	kth-smallest-element-in-a-sorted-matrix	2 lines of code using list flatten technique and sorting	ankurbhambri	0	31	kth smallest element in a sorted matrix	378	0.616	Medium	6,506
https://leetcode.com/problems/kth-smallest-element-in-a-sorted-matrix/discuss/2367021/Python-1-Line-List-Comprehension-(beats-98.95)	class Solution: def kthSmallest(self, matrix: List[List[int]], k: int) -> int: return sorted([val for sublist in matrix for val in sublist])[k - 1]	kth-smallest-element-in-a-sorted-matrix	Python 1 Line List Comprehension (beats 98.95%)	Jonathanace	0	29	kth smallest element in a sorted matrix	378	0.616	Medium	6,507
https://leetcode.com/problems/kth-smallest-element-in-a-sorted-matrix/discuss/2318549/Short-solution-python	class Solution(object): def kthSmallest(self, matrix, k): """ :type matrix: List[List[int]] :type k: int :rtype: int """ sol=matrix[0] for i in matrix[1:]: sol+=i sol.sort() return sol[k-1]	kth-smallest-element-in-a-sorted-matrix	Short solution python	henryhe707	0	71	kth smallest element in a sorted matrix	378	0.616	Medium	6,508
https://leetcode.com/problems/kth-smallest-element-in-a-sorted-matrix/discuss/2193377/easy-python-solution-in-5-lines	class Solution: def kthSmallest(self, matrix: List[List[int]], k: int) -> int: ans = [] for i in matrix: ans += i ans = sorted(ans) return ans[k-1]	kth-smallest-element-in-a-sorted-matrix	easy python solution in 5 lines	rohansardar	0	89	kth smallest element in a sorted matrix	378	0.616	Medium	6,509
https://leetcode.com/problems/kth-smallest-element-in-a-sorted-matrix/discuss/2073052/Simple-Short-Python-Solution-Lists	class Solution: def kthSmallest(self, matrix: List[List[int]], k: int) -> int: N = len(matrix) for i in range(1, N): for j in range(N): matrix[0].append(matrix[i][j]) matrix[0].sort() return matrix[0][k-1]	kth-smallest-element-in-a-sorted-matrix	Simple Short Python Solution - Lists	kn_vardhan	0	79	kth smallest element in a sorted matrix	378	0.616	Medium	6,510
https://leetcode.com/problems/kth-smallest-element-in-a-sorted-matrix/discuss/2073052/Simple-Short-Python-Solution-Lists	class Solution: def kthSmallest(self, matrix: List[List[int]], k: int) -> int: values = [] for row in matrix: values += row values.sort() return values[k - 1]	kth-smallest-element-in-a-sorted-matrix	Simple Short Python Solution - Lists	kn_vardhan	0	79	kth smallest element in a sorted matrix	378	0.616	Medium	6,511
https://leetcode.com/problems/kth-smallest-element-in-a-sorted-matrix/discuss/1971474/Python-oror-Easy-Solution-Using-Heap-oror-O(k*logk)	class Solution: import heapq def kthSmallest(self, matrix: List[List[int]], k: int) -> int: heap = [] for arr in matrix: heapq.heappush(heap,(arr[0],0,arr)) while k > 0 and heap: val,idx,arr = heapq.heappop(heap) ans = val ...	kth-smallest-element-in-a-sorted-matrix	Python \|\| Easy Solution Using Heap \|\| O(k*logk)	gamitejpratapsingh998	0	210	kth smallest element in a sorted matrix	378	0.616	Medium	6,512
https://leetcode.com/problems/linked-list-random-node/discuss/811617/Python3-reservoir-sampling	class Solution: def __init__(self, head: ListNode): """ @param head The linked list's head. Note that the head is guaranteed to be not null, so it contains at least one node. """ self.head = head # store head of linked list def getRandom(self) -> int: """ ...	linked-list-random-node	[Python3] reservoir sampling	ye15	4	395	linked list random node	382	0.596	Medium	6,513
https://leetcode.com/problems/linked-list-random-node/discuss/811617/Python3-reservoir-sampling	class Solution: def __init__(self, head: ListNode): self.head = head # store head def getRandom(self) -> int: node = self.head n = 0 while node: if randint(0, n) == 0: ans = node.val n += 1 node = node.next return ans	linked-list-random-node	[Python3] reservoir sampling	ye15	4	395	linked list random node	382	0.596	Medium	6,514
https://leetcode.com/problems/linked-list-random-node/discuss/1672294/Python3-solution	class Solution: def __init__(self, head: Optional[ListNode]): # store nodes' value in an array self.array = [] curr = head while curr: self.array.append(curr.val) curr = curr.next def getRandom(self) -> int: num = int(random.random()...	linked-list-random-node	Python3 solution	Janetcxy	1	28	linked list random node	382	0.596	Medium	6,515
https://leetcode.com/problems/linked-list-random-node/discuss/1673785/Python-Intuition	class Solution: def __init__(self, head: Optional[ListNode]): self.nums = [] while head: self.nums.append(head.val) head = head.next def getRandom(self) -> int: return random.choice(self.nums)	linked-list-random-node	Python Intuition	princess_asante	0	26	linked list random node	382	0.596	Medium	6,516
https://leetcode.com/problems/linked-list-random-node/discuss/1338778/Python-code-Beats-96-in-time	class Solution: def __init__(self, head: ListNode): """ @param head The linked list's head. Note that the head is guaranteed to be not null, so it contains at least one node. """ self.mylist=[] self.insert(head) def insert(self, head): while head...	linked-list-random-node	Python code, Beats 96% in time	prajwal_vs	0	89	linked list random node	382	0.596	Medium	6,517
https://leetcode.com/problems/linked-list-random-node/discuss/976242/4Sum-II-Python3-one-liner	class Solution: def fourSumCount(self, A: List[int], B: List[int], C: List[int], D: List[int]) -> int: return sum(xcount * cdcounts[-x] for cdcounts in [Counter(x+y for x in C for y in D)] for x, xcount in Counter(x+y for x in A for y in B).items() if...	linked-list-random-node	4Sum II Python3 one-liner	leetavenger	0	46	linked list random node	382	0.596	Medium	6,518
https://leetcode.com/problems/linked-list-random-node/discuss/957190/Python3-beats-98.-%22random.choice(-)%22.-Very-Easy	class Solution: def __init__(self, head: ListNode): """ @param head The linked list's head. Note that the head is guaranteed to be not null, so it contains at least one node. """ self.res = [] while head: self.res.append(head.val) hea...	linked-list-random-node	[Python3] beats 98%. "random.choice( )". Very-Easy	tilak_	0	62	linked list random node	382	0.596	Medium	6,519
https://leetcode.com/problems/ransom-note/discuss/1346131/Easiest-python-solution-faster-than-95	class Solution: def canConstruct(self, ransomNote, magazine): for i in set(ransomNote): if magazine.count(i) < ransomNote.count(i): return False return True	ransom-note	Easiest python solution, faster than 95%	mqueue	35	3,500	ransom note	383	0.576	Easy	6,520
https://leetcode.com/problems/ransom-note/discuss/2500721/Very-Easy-oror-100-oror-Fully-Explained-oror-C%2B%2B-Java-Python-Python3	class Solution(object): def canConstruct(self, ransomNote, magazine): st1, st2 = Counter(ransomNote), Counter(magazine) if st1 & st2 == st1: return True return False	ransom-note	Very Easy \|\| 100% \|\| Fully Explained \|\| C++, Java, Python, Python3	PratikSen07	29	1,500	ransom note	383	0.576	Easy	6,521
https://leetcode.com/problems/ransom-note/discuss/2550434/Easy-and-Faster-than-98-python3-solutions	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: if len(magazine) < len(ransomNote): return False else: for ransomNote_char in set(ransomNote): if ransomNote.count(rans...	ransom-note	Easy and Faster than 98% python3 solutions	LucasHarim	9	302	ransom note	383	0.576	Easy	6,522
https://leetcode.com/problems/ransom-note/discuss/2359975/Python-One-Line-Solution	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: return Counter(ransomNote)-Counter(magazine)=={}	ransom-note	Python One Line Solution	dhruva3223	6	428	ransom note	383	0.576	Easy	6,523
https://leetcode.com/problems/ransom-note/discuss/1718553/Python-simple-solution-6-lines	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: dict1=collections.Counter(ransomNote) dict2=collections.Counter(magazine) for key in dict1: if key not in dict2 or dict2[key]<dict1[key]: return False return True	ransom-note	Python simple solution 6 lines	amannarayansingh10	5	459	ransom note	383	0.576	Easy	6,524
https://leetcode.com/problems/ransom-note/discuss/2671667/Python-solution.-Clean-code-with-full-comments-93.55-space	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: dict_1 = from_str_to_dict(ransomNote) dict_2 = from_str_to_dict(magazine) return check_compatibility(dict_1, dict_2) # Define helper method that checks if to dictionaries have keys in commo...	ransom-note	Python solution. Clean code with full comments 93.55% space	375d	4	191	ransom note	383	0.576	Easy	6,525
https://leetcode.com/problems/ransom-note/discuss/2480010/Python3-95.20-O(N)-Solution-or-Beginner-Friendly	class Solution: def canConstruct(self, a: str, b: str) -> bool: letter = [0 for _ in range(26)] for c in b: letter[ord(c) - 97] += 1 for c in a: letter[ord(c) - 97] -= 1 return not any((i < 0 for i in letter))	ransom-note	Python3 95.20% O(N) Solution \| Beginner Friendly	doneowth	3	88	ransom note	383	0.576	Easy	6,526
https://leetcode.com/problems/ransom-note/discuss/2270590/Simple-solution	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: if len(magazine) < len(ransomNote): return False for letter in ransomNote: if(letter not in magazine): return False magazine = magazine.replace(letter,'',1) ...	ransom-note	Simple solution	jivanbasurtom	3	126	ransom note	383	0.576	Easy	6,527
https://leetcode.com/problems/ransom-note/discuss/1977169/Python3-Solution	class Solution(object): def canConstruct(self, ransomNote, magazine): for i in set(ransomNote): if ransomNote.count(i) > magazine.count(i): return False return True	ransom-note	Python3 Solution	nomanaasif9	3	211	ransom note	383	0.576	Easy	6,528
https://leetcode.com/problems/ransom-note/discuss/610555/Python3-Simple-Solution-Beats-99.5	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: for l in ransomNote: if l not in magazine: return False magazine = magazine.replace(l, '', 1) return True	ransom-note	[Python3] Simple Solution Beats 99.5%	naraB	3	419	ransom note	383	0.576	Easy	6,529
https://leetcode.com/problems/ransom-note/discuss/2594211/Python-simple-solution-or-no-hashtable-or-beats-98.63-in-runtime	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: out = False for elem in ransomNote: if elem in magazine: out = True magazine = magazine.replace(elem,'',1) else: out = False return ...	ransom-note	Python simple solution \| no hashtable \| beats 98.63% in runtime	shwetachandole	2	147	ransom note	383	0.576	Easy	6,530
https://leetcode.com/problems/ransom-note/discuss/2585361/Python-99.5-Faster.-Simple-Solution	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: #iterate the unqiue letter in ransom note for i in set(ransomNote): #check if the letter count in magazine is less than ransom note if magazine.count(i) < ransomNote.count(i): ...	ransom-note	Python 99.5% Faster. Simple Solution	ovidaure	2	213	ransom note	383	0.576	Easy	6,531
https://leetcode.com/problems/ransom-note/discuss/1825705/Python-3-or-99.60-Faster-or-Easy-to-understand-or-Six-lines-of-code	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: c = 0 for i in ransomNote: if i in magazine: magazine = magazine.replace(i,"",1) c += 1 return c == len(ransomNote)	ransom-note	✔Python 3 \| 99.60% Faster \| Easy to understand \| Six lines of code	Coding_Tan3	2	182	ransom note	383	0.576	Easy	6,532
https://leetcode.com/problems/ransom-note/discuss/1433367/python-3-solution	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: r=sorted(list(ransomNote)) m=sorted(list(magazine)) for char in m: if r and char==r[0]: r.pop(0) if r: return False else: retur...	ransom-note	python 3 solution	abhi_n_001	2	207	ransom note	383	0.576	Easy	6,533
https://leetcode.com/problems/ransom-note/discuss/1266898/Easy-Python-Solution(94.14)	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: x=Counter(ransomNote) y=Counter(magazine) for i,v in x.items(): if(x[i]<=y[i]): continue else: return False return True	ransom-note	Easy Python Solution(94.14%)	Sneh17029	2	758	ransom note	383	0.576	Easy	6,534
https://leetcode.com/problems/ransom-note/discuss/2480474/Python-1-line-%2B-Set-%2B-Brute-Force-or-Detailed-explanation-or-Easy-understand-or-Detailed	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: for i in set(ransomNote): if ransomNote.count(i) > magazine.count(i): return False return True	ransom-note	✅ Python 1 line + Set + Brute Force \| Detailed explanation \| Easy understand \| Detailed	sezanhaque	1	20	ransom note	383	0.576	Easy	6,535
https://leetcode.com/problems/ransom-note/discuss/2480474/Python-1-line-%2B-Set-%2B-Brute-Force-or-Detailed-explanation-or-Easy-understand-or-Detailed	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: magazine_dict, ransomNote_dict = {}, {} for letter in magazine: if letter in magazine_dict: magazine_dict[letter] += 1 else: magazine_dict[letter] = 1 for letter in ransomNote: if letter in ransomNote_dict: ran...	ransom-note	✅ Python 1 line + Set + Brute Force \| Detailed explanation \| Easy understand \| Detailed	sezanhaque	1	20	ransom note	383	0.576	Easy	6,536
https://leetcode.com/problems/ransom-note/discuss/2418464/Low-time-complexity-approach	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: res = True # use set() to get unique characters in string for uniqueChar in set(ransomNote): if ransomNote.count(uniqueChar) <= magazine.count(uniqueChar): pass el...	ransom-note	Low time complexity approach	Wok2882	1	79	ransom note	383	0.576	Easy	6,537
https://leetcode.com/problems/ransom-note/discuss/2366128/Python-Short-Faster-Solution-using-str.replace()-oror-Documented	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: for c in ransomNote: # if letter not in magazine, return True if c not in magazine: return False else: # remove first occurrence of letter magaz...	ransom-note	[Python] Short Faster Solution using str.replace() \|\| Documented	Buntynara	1	66	ransom note	383	0.576	Easy	6,538
https://leetcode.com/problems/ransom-note/discuss/2327790/Python-Simple-Solution-oror-2-Dicts-or-HashMaps-oror-Explained	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: dictRansom = {} dictMagazine = {} # construct dictionary with initial value of 0 for all letters for c in 'abcdefghijklmnopqrstuvwxyz': dictRansom[c] = 0; dictMagazine[c] = 0 # increase count f...	ransom-note	[Python] Simple Solution \|\| 2 Dicts or HashMaps \|\| Explained	Buntynara	1	89	ransom note	383	0.576	Easy	6,539
https://leetcode.com/problems/ransom-note/discuss/2282408/Python3-or-O(n)-with-list	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: letters = [0]*26 for letter in list(ransomNote): letters[ord(letter)-ord('a')] += 1 for letter in list(magazine): if letters[ord(letter)-ord('a')] > 0: ...	ransom-note	Python3 \| O(n) with list	muradbay	1	90	ransom note	383	0.576	Easy	6,540
https://leetcode.com/problems/ransom-note/discuss/2254814/Python-Easy-and-Short-Solution	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: for i in set(ransomNote): if i not in magazine or ransomNote.count(i) > magazine.count(i): return False return True	ransom-note	Python Easy & Short Solution	Skiper228	1	87	ransom note	383	0.576	Easy	6,541
https://leetcode.com/problems/ransom-note/discuss/2187284/Python-FAST-and-Simple-solution	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: for i in ransomNote: if i in magazine: magazine = magazine.replace(i, '', 1) else: return False return True	ransom-note	Python FAST and Simple solution	ingli	1	78	ransom note	383	0.576	Easy	6,542
https://leetcode.com/problems/ransom-note/discuss/2019703/Python3-Solution-with-using-counting	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: c = collections.Counter(magazine) for char in ransomNote: if c[char] == 0: return False c[char] -= 1 return True	ransom-note	[Python3] Solution with using counting	maosipov11	1	81	ransom note	383	0.576	Easy	6,543
https://leetcode.com/problems/ransom-note/discuss/1825041/2-Lines-Python-Solution-oror-75-Faster-oror-Memory-less-than-75	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: if Counter(ransomNote) <= Counter(magazine): return True return False	ransom-note	2-Lines Python Solution \|\| 75% Faster \|\| Memory less than 75%	Taha-C	1	55	ransom note	383	0.576	Easy	6,544
https://leetcode.com/problems/ransom-note/discuss/1793445/Python-Simple-Python-Solution-With-Two-Approach	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: t=list(dict.fromkeys(ransomNote)) s=0 for i in t: if ransomNote.count(i)<=magazine.count(i): s=s+1 if s==len(t): return True else: return False	ransom-note	[ Python ] ✅✅ Simple Python Solution With Two Approach 🔥✌🥳👍	ASHOK_KUMAR_MEGHVANSHI	1	205	ransom note	383	0.576	Easy	6,545
https://leetcode.com/problems/ransom-note/discuss/1793445/Python-Simple-Python-Solution-With-Two-Approach	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: frequecy_r = {} for i in range(len(ransomNote)): if ransomNote[i] not in frequecy_r: frequecy_r[ransomNote[i]] = 1 else: frequecy_r[ransomNote[i]] = frequecy_r[ransomNote[i]] + 1 frequecy_m = {} for i in range(le...	ransom-note	[ Python ] ✅✅ Simple Python Solution With Two Approach 🔥✌🥳👍	ASHOK_KUMAR_MEGHVANSHI	1	205	ransom note	383	0.576	Easy	6,546
https://leetcode.com/problems/ransom-note/discuss/1779868/Python-Easy-Step-by-Step-Solution	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: char_dict = {} for char in magazine: if char in char_dict: char_dict[char] += 1 else: char_dict[char] = 1 for char in ransomNote: ...	ransom-note	Python Easy Step by Step Solution	EnergyBoy	1	36	ransom note	383	0.576	Easy	6,547
https://leetcode.com/problems/ransom-note/discuss/1640283/Python3-super-easy-solution	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: a = collections.Counter(ransomNote) b = collections.Counter(magazine) x = a - b return len(x) == 0	ransom-note	Python3 super easy solution	freakleesin	1	91	ransom note	383	0.576	Easy	6,548
https://leetcode.com/problems/ransom-note/discuss/1532796/WEEB-DOES-PYTHON	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: Note = Counter(ransomNote) Maga = Counter(magazine) for char in Note: if char not in Maga or Maga[char] < Note[char]: return False return True	ransom-note	WEEB DOES PYTHON	Skywalker5423	1	145	ransom note	383	0.576	Easy	6,549
https://leetcode.com/problems/ransom-note/discuss/353415/Solution-in-Python-3-(beats-~97)-(one-line)	class Solution: def canConstruct(self, r: str, m: str) -> bool: return not any(r.count(i) > m.count(i) for i in set(r)) - Junaid Mansuri (LeetCode ID)@hotmail.com	ransom-note	Solution in Python 3 (beats ~97%) (one line)	junaidmansuri	1	501	ransom note	383	0.576	Easy	6,550
https://leetcode.com/problems/ransom-note/discuss/2847994/Py-Hash-O(N)	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: dic_magazine = Counter(magazine) for char in ransomNote: dic_magazine[char] -= 1 if dic_magazine[char] < 0: return False return True	ransom-note	Py Hash O(N)	haly-leshchuk	0	2	ransom note	383	0.576	Easy	6,551
https://leetcode.com/problems/ransom-note/discuss/2839499/Python-using-Counter	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: r = Counter(ransomNote) m = Counter(magazine) for k in r.keys(): if r[k] > m.get(k,0): return False return True	ransom-note	Python using Counter	ajayedupuganti18	0	2	ransom note	383	0.576	Easy	6,552
https://leetcode.com/problems/ransom-note/discuss/2827103/python-easy-solution	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: count = 0 for i in range(len(ransomNote)): if ransomNote[i] in magazine: magazine = magazine.replace(ransomNote[i], "", 1) count += 1 return count == len(ransomNote)	ransom-note	python easy solution	skywonder	0	6	ransom note	383	0.576	Easy	6,553
https://leetcode.com/problems/ransom-note/discuss/2818292/Using-dicts-and-list-of-flags	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: ransom_dict = {} magazine_dict = {} flags = [] for i in ransomNote: if i in ransom_dict: ransom_dict[i] += 1 continue ransom_dict[i] = 1 f...	ransom-note	Using dicts and list of flags	pkozhem	0	4	ransom note	383	0.576	Easy	6,554
https://leetcode.com/problems/ransom-note/discuss/2814520/simple-python-solution	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: for x in list(ransomNote): if x not in list(magazine): return False for x in list(ransomNote): if list(ransomNote).count(x)>list(magazine).count(x): return False ...	ransom-note	simple python solution	sahityasetu1996	0	3	ransom note	383	0.576	Easy	6,555
https://leetcode.com/problems/ransom-note/discuss/2811939/Dictionary-count	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: letters = Counter(magazine) for letter in ransomNote: if letters[letter] == 0: return False letters[letter] -= 1 return True	ransom-note	Dictionary count	bourgeoibee	0	3	ransom note	383	0.576	Easy	6,556
https://leetcode.com/problems/ransom-note/discuss/2808000/Python-solutions-for-Ransom-Note	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: magazine_lettera = {i:magazine.count(i) for i in set(magazine)} for letter in ransomNote: if letter not in magazine_lettera.keys(): return False else: ...	ransom-note	Python solutions for Ransom Note	Bassel_Alf	0	3	ransom note	383	0.576	Easy	6,557
https://leetcode.com/problems/ransom-note/discuss/2808000/Python-solutions-for-Ransom-Note	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: magazine_lettera = dict() for letter in magazine: magazine_lettera[letter] = magazine_lettera.get(letter, 0) + 1 for letter in ransomNote: if letter not in magazine_le...	ransom-note	Python solutions for Ransom Note	Bassel_Alf	0	3	ransom note	383	0.576	Easy	6,558
https://leetcode.com/problems/ransom-note/discuss/2804911/Python-(runtime-98.31-memory-93.97)-solution	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: originalMagazineLength = len(magazine) for c in ransomNote: magazine = magazine.replace(c, '', 1) return len(magazine) == originalMagazineLength - len(ransomNote)	ransom-note	Python (runtime 98.31%, memory 93.97%) solution	huseyinkeles	0	3	ransom note	383	0.576	Easy	6,559
https://leetcode.com/problems/ransom-note/discuss/2799026/PYTHON-Easy-Solution	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: a=Counter(ransomNote) #count the occurance of char of ransomnote b=Counter(magazine) #count the occurance of char of magazine if a & b ==a: return True return False	ransom-note	[PYTHON] Easy Solution	user9516zM	0	1	ransom note	383	0.576	Easy	6,560
https://leetcode.com/problems/ransom-note/discuss/2797474/Python-solution-using-Counter-(short-and-simple)	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: counter_ransomNote = Counter(ransomNote) counter_magazine = Counter(magazine) for char in counter_ransomNote.keys(): if counter_ransomNote[char] > counter_magazine[char]: ret...	ransom-note	Python solution using Counter (short and simple)	hungqpham	0	3	ransom note	383	0.576	Easy	6,561
https://leetcode.com/problems/ransom-note/discuss/2779474/Very-easy-solution-without-any-additional-method-but-beats-89.77	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: for char in ransomNote: char_found = False for i in range(len(magazine)): if char == magazine[i]: magazine = magazine[:i] + magazine[i+1:] char_fo...	ransom-note	Very easy solution without any additional method but beats 89.77%	sdsahil12	0	4	ransom note	383	0.576	Easy	6,562
https://leetcode.com/problems/ransom-note/discuss/2777466/Ransome-note-or-Easy	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: ransomNote = list(ransomNote) tracker = list(set(ransomNote)) magazine = list(magazine) while tracker: if tracker and ransomNote.count(tracker[0]) <= magazine.count(tracker[0...	ransom-note	Ransome note \| Easy	Gangajyoti	0	1	ransom note	383	0.576	Easy	6,563
https://leetcode.com/problems/ransom-note/discuss/2774991/Python-1-pointer	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: p_m = 0 note, mag = sorted(ransomNote), sorted(magazine) while p_m < len(magazine) and note[0] != mag[p_m]: p_m += 1 while len(note) and p_m < len(magazine): if note[0] == mag[p_...	ransom-note	Python, 1 pointer	Gagampy	0	5	ransom note	383	0.576	Easy	6,564
https://leetcode.com/problems/ransom-note/discuss/2768180/383.-Ransom-Note-or-Python	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: count = {} for c in magazine: count[c] = 1 + count.get(c,0) for ch in ransomNote: if ch not in count or count[ch]==0: return False else: count[c...	ransom-note	383. Ransom Note \| Python	rishabh_055	0	8	ransom note	383	0.576	Easy	6,565
https://leetcode.com/problems/ransom-note/discuss/2764531/Python3-oror-simple-solution-oror-easy-understanding	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: new = list(magazine) for r in ransomNote: if r not in new: return False i = new.index(r) new.remove(new[i]) return True	ransom-note	Python3 \|\| simple solution \|\| easy understanding	amangupta3073	0	2	ransom note	383	0.576	Easy	6,566
https://leetcode.com/problems/ransom-note/discuss/2750639/Easiest-solution-with-python-two-dictionaries-one-comparison	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: have = dict() for letter in magazine: have[letter] = have.get(letter,0) + 1 needed = dict() for letter in ransomNote: needed[letter] = needed.get(letter,0) + 1 total = 0 ...	ransom-note	Easiest solution with python - two dictionaries one comparison	DavidCastillo	0	3	ransom note	383	0.576	Easy	6,567
https://leetcode.com/problems/ransom-note/discuss/2748373/Easy-python3-Counter-solution	class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: note_freq = collections.Counter(ransomNote) mag_freq = collections.Counter(magazine) for letter in note_freq: if note_freq[letter] > mag_freq[letter]: return False ret...	ransom-note	Easy python3 Counter solution	Delacrua	0	4	ransom note	383	0.576	Easy	6,568
https://leetcode.com/problems/shuffle-an-array/discuss/1673643/Python-or-Best-Optimal-Approach	class Solution: def __init__(self, nums: List[int]): self.arr = nums[:] # Deep Copy, Can also use Shallow Copy concept! # self.arr = nums # Shallow Copy would be something like this! def reset(self) -> List[int]: return self.arr def shuffle(self) -> List[int]: ans = self.arr[:] for i in range(len(ans))...	shuffle-an-array	{ Python } \| Best Optimal Approach ✔	leet_satyam	6	725	shuffle an array	384	0.577	Medium	6,569
https://leetcode.com/problems/shuffle-an-array/discuss/1354489/Partition-Array-into-Disjoint-Intervals-Python-Easy-solution	class Solution: def partitionDisjoint(self, nums: List[int]) -> int: a = list(accumulate(nums, max)) b = list(accumulate(nums[::-1], min))[::-1] for i in range(1, len(nums)): if a[i-1] <= b[i]: return i	shuffle-an-array	Partition Array into Disjoint Intervals , Python , Easy solution	user8744WJ	1	120	shuffle an array	384	0.577	Medium	6,570
https://leetcode.com/problems/shuffle-an-array/discuss/1354450/Partition-Array-into-Disjoint-Intervals%3A-Simple-Python-Solution	class Solution: def partitionDisjoint(self, nums: List[int]) -> int: n = len(nums) left_length = 1 left_max = curr_max = nums[0] for i in range(1, n-1): if nums[i] < left_max: left_length = i+1 left_max = curr_max else: ...	shuffle-an-array	Partition Array into Disjoint Intervals: Simple Python Solution	user6820GC	1	81	shuffle an array	384	0.577	Medium	6,571
https://leetcode.com/problems/shuffle-an-array/discuss/1350083/Shuffle-An-Array-Python-Easy-Solution	class Solution: def __init__(self, nums: List[int]): self.a = nums def reset(self) -> List[int]: """ Resets the array to its original configuration and return it. """ return list(self.a) def shuffle(self) -> List[int]: """ Returns a random shuffling...	shuffle-an-array	Shuffle An Array , Python , Easy Solution	user8744WJ	1	144	shuffle an array	384	0.577	Medium	6,572
https://leetcode.com/problems/shuffle-an-array/discuss/1103904/Python-A-simple-O(N)-solution-that-is-NOT-Fisher-Yates-Algorithm	class Solution: def __init__(self, nums: List[int]): self.original = nums[:] self.nums = nums def reset(self) -> List[int]: return self.original def shuffle(self) -> List[int]: tmp = list(self.nums) # make a copy self.nums = [] while tmp: index = rando...	shuffle-an-array	[Python] A simple O(N) solution that is NOT Fisher-Yates Algorithm	JummyEgg	1	390	shuffle an array	384	0.577	Medium	6,573
https://leetcode.com/problems/shuffle-an-array/discuss/2726092/Python-oror-Fisher-Yates-algorithm	class Solution: def __init__(self, nums: List[int]): self.nums = nums def reset(self) -> List[int]: return self.nums def shuffle(self) -> List[int]: # fisher yates shuffle copy = self.nums[:] m = len(self.nums) # while there remain elements to shuf...	shuffle-an-array	Python \|\| Fisher-Yates algorithm	Graviel77	0	12	shuffle an array	384	0.577	Medium	6,574
https://leetcode.com/problems/shuffle-an-array/discuss/2710888/EXTREMELY-SIMPLE-and-EFFICIENT-python-solution	class Solution: def __init__(self, nums: List[int]): # "Contruct" the object: # Init the class variable(s) self.nums = nums def reset(self) -> List[int]: # Return the inital variable(s) # This assumes the variable(s) didn't change! return self.nums def ...	shuffle-an-array	EXTREMELY SIMPLE & EFFICIENT python solution	rosey003	0	7	shuffle an array	384	0.577	Medium	6,575
https://leetcode.com/problems/shuffle-an-array/discuss/2667750/FisherYates-shuffle	class Solution: def __init__(self, nums: List[int]): self.orig = list(nums) self.perm = nums def reset(self) -> List[int]: self.perm = list(self.orig) return self.perm def shuffle(self) -> List[int]: for i in range(0, len(self.perm)): j = randin...	shuffle-an-array	Fisher–Yates shuffle	tomfran	0	5	shuffle an array	384	0.577	Medium	6,576
https://leetcode.com/problems/shuffle-an-array/discuss/2652958/Python-and-Golang	class Solution: def __init__(self, nums: List[int]): self.nums = nums def reset(self) -> List[int]: return self.nums def shuffle(self) -> List[int]: import random return random.sample(self.nums, k=len(self.nums))	shuffle-an-array	Python and Golang答え	namashin	0	15	shuffle an array	384	0.577	Medium	6,577
https://leetcode.com/problems/shuffle-an-array/discuss/1819524/Python3-Solution-with-using-FisherYates-shuffle	class Solution: def __init__(self, nums: List[int]): self.arr = nums self.nums = nums[:] def reset(self) -> List[int]: self.arr = self.nums self.nums = self.nums[:] return self.arr def shuffle(self) -> List[int]: for i in range(len(self.arr)): ...	shuffle-an-array	[Python3] Solution with using Fisher–Yates shuffle	maosipov11	0	89	shuffle an array	384	0.577	Medium	6,578
https://leetcode.com/problems/shuffle-an-array/discuss/1813908/Python-solution-backtracking-and-shuffle	class Solution: def __init__(self, nums: List[int]): self.nums=nums self.lists=self.getList() def reset(self) -> List[int]: a=sorted(self.nums) return a def getList(self): nums=self.nums res=[] path=[] used=[0]*len(nums) def backtrackin...	shuffle-an-array	Python solution backtracking and shuffle	FangyuanXie	0	58	shuffle an array	384	0.577	Medium	6,579
https://leetcode.com/problems/shuffle-an-array/discuss/1813908/Python-solution-backtracking-and-shuffle	class Solution: def __init__(self, nums: List[int]): self.nums=nums self.orgin=nums[:] def reset(self) -> List[int]: self.nums=self.orgin[:] return self.nums def shuffle(self) -> List[int]: n=len(self.nums) for l in range(n): r=random.randint(...	shuffle-an-array	Python solution backtracking and shuffle	FangyuanXie	0	58	shuffle an array	384	0.577	Medium	6,580
https://leetcode.com/problems/shuffle-an-array/discuss/1374919/Trapping-Rainwater-Python3-O(n)	class Solution: def trap(self, height: List[int]) -> int: if not height: return 0 def addwater(range_): mx, out = 0, 0 for i in range_: if height[i] > mx: mx = height[i] else: out += mx - height[i] return out ...	shuffle-an-array	Trapping Rainwater [Python3] O(n)	vscala	0	75	shuffle an array	384	0.577	Medium	6,581
https://leetcode.com/problems/shuffle-an-array/discuss/1374919/Trapping-Rainwater-Python3-O(n)	class Solution: def trap(self, height: List[int]) -> int: if len(height) < 3: return 0 l, r = 0, len(height)-1 lmax, rmax = height[l], height[r] out = 0 while l+1 != r: if lmax < rmax: l += 1 if height[l] > lmax: l...	shuffle-an-array	Trapping Rainwater [Python3] O(n)	vscala	0	75	shuffle an array	384	0.577	Medium	6,582
https://leetcode.com/problems/shuffle-an-array/discuss/1350445/Shuffle-Array-or-Python-Random-Swapping-Approach	class Solution: def __init__(self, nums: List[int]): self.original = nums def reset(self) -> List[int]: return self.original def shuffle(self) -> List[int]: result, n = self.original.copy(), len(self.original) for i in range(n): ind = random.r...	shuffle-an-array	Shuffle Array \| Python Random Swapping Approach	yiseboge	0	85	shuffle an array	384	0.577	Medium	6,583
https://leetcode.com/problems/shuffle-an-array/discuss/811552/Python3-Knuth-shuffle	class Solution: def __init__(self, nums: List[int]): self.nums = nums self.orig = nums.copy() # original array def reset(self) -> List[int]: """ Resets the array to its original configuration and return it. """ return self.orig def shuffle(self) -> List[in...	shuffle-an-array	[Python3] Knuth shuffle	ye15	0	141	shuffle an array	384	0.577	Medium	6,584
https://leetcode.com/problems/shuffle-an-array/discuss/603080/Python-sol-by-native-tools.-85%2B-w-Comment	class Solution: def __init__(self, nums: List[int]): self.size = len(nums) self.origin = nums self.array = [*nums] def reset(self) -> List[int]: """ Resets the array to its original configuration and return it. """ return self.origin ...	shuffle-an-array	Python sol by native tools. 85%+ [w/ Comment ]	brianchiang_tw	0	285	shuffle an array	384	0.577	Medium	6,585
https://leetcode.com/problems/shuffle-an-array/discuss/514309/Python3-use-random-shuffle-function	class Solution: def __init__(self, nums: List[int]): self.nums=nums def reset(self) -> List[int]: """ Resets the array to its original configuration and return it. """ return self.nums def shuffle(self) -> List[int]: """ Returns a random shuffling o...	shuffle-an-array	Python3 use random shuffle function	jb07	0	129	shuffle an array	384	0.577	Medium	6,586
https://leetcode.com/problems/shuffle-an-array/discuss/485921/Python-3-(six-lines)-(beats-~98)	class Solution: def __init__(self, n): self.array = n def reset(self): return self.array def shuffle(self): s = self.array[:] random.shuffle(s) return s - Junaid Mansuri - Chicago, IL	shuffle-an-array	Python 3 (six lines) (beats ~98%)	junaidmansuri	0	420	shuffle an array	384	0.577	Medium	6,587
https://leetcode.com/problems/shuffle-an-array/discuss/422655/EXACTLY-equally-likely-permutations	class Solution: def __init__(self, nums: List[int]): self.original = nums def reset(self) -> List[int]: return self.original def shuffle(self) -> List[int]: try: return next(self.perm) except: self.perm = itertools.permutations(self.original) ...	shuffle-an-array	EXACTLY equally likely permutations	SkookumChoocher	0	95	shuffle an array	384	0.577	Medium	6,588
https://leetcode.com/problems/shuffle-an-array/discuss/1365722/3Sum-Closest-Easy-Python-2-pointer-Binary-Search	class Solution: def threeSumClosest(self, nums: List[int], target: int) -> int: a = nums[0]+nums[1]+nums[len(nums)-1] nums.sort() for i in range(len(nums)-2): l = i+1 h = len(nums)-1 while l<h: b = nums[i]+nums[l]+nums[h] if...	shuffle-an-array	3Sum Closest , Easy , Python , 2 pointer , Binary Search	user8744WJ	-1	181	shuffle an array	384	0.577	Medium	6,589
https://leetcode.com/problems/mini-parser/discuss/875743/Python3-a-concise-recursive-solution	class Solution: def deserialize(self, s: str) -> NestedInteger: if not s: return NestedInteger() if not s.startswith("["): return NestedInteger(int(s)) # integer ans = NestedInteger() s = s[1:-1] # strip outer "[" and "]" if s: ii = op = 0 for i in ...	mini-parser	[Python3] a concise recursive solution	ye15	2	178	mini parser	385	0.366	Medium	6,590
https://leetcode.com/problems/mini-parser/discuss/1638534/Elegant-Python-One-Pass-Solution-(using-stack)	class Solution: def deserialize(self, s: str) -> NestedInteger: stack = [] integerStr = '' for c in s: if c == '[': stack.append(NestedInteger()) elif c == ']': if len(integerStr)>0: stack[-1].add(NestedInte...	mini-parser	Elegant Python One Pass Solution (using stack)	RG97	1	152	mini parser	385	0.366	Medium	6,591
https://leetcode.com/problems/lexicographical-numbers/discuss/2053392/Python-oneliner	class Solution: def lexicalOrder(self, n: int) -> List[int]: return sorted([x for x in range(1,n+1)],key=lambda x: str(x))	lexicographical-numbers	Python oneliner	StikS32	1	135	lexicographical numbers	386	0.608	Medium	6,592
https://leetcode.com/problems/lexicographical-numbers/discuss/1879853/Single-line-python-3-solution-98-faster	class Solution: def lexicalOrder(self, n: int) -> List[int]: return sorted(list(map(str,list(range(1,n+1)))))	lexicographical-numbers	Single line python 3 solution 98% faster	amannarayansingh10	1	112	lexicographical numbers	386	0.608	Medium	6,593
https://leetcode.com/problems/lexicographical-numbers/discuss/1787311/O(n)-time-O(1)-space-stack-solution-in-Python	class Solution: def lexicalOrder(self, n: int) -> List[int]: stack = [] for i in range(min(n, 9), 0, -1): stack.append(i) res = [] while stack: last = stack.pop() if last > n: continue else: res.appe...	lexicographical-numbers	O(n) time, O(1) space stack solution in Python	kryuki	1	124	lexicographical numbers	386	0.608	Medium	6,594
https://leetcode.com/problems/lexicographical-numbers/discuss/817573/Python3-two-approaches-(sorting-and-dfs)	class Solution: def lexicalOrder(self, n: int) -> List[int]: return sorted(range(1, n+1), key=str)	lexicographical-numbers	[Python3] two approaches (sorting & dfs)	ye15	1	74	lexicographical numbers	386	0.608	Medium	6,595
https://leetcode.com/problems/lexicographical-numbers/discuss/817573/Python3-two-approaches-(sorting-and-dfs)	class Solution: def lexicalOrder(self, n: int) -> List[int]: def dfs(x): """Pre-order traverse the tree.""" if x <= n: ans.append(x) for xx in range(10): dfs(10*x + xx) ans = [] for x in range(1, 10): dfs(x) re...	lexicographical-numbers	[Python3] two approaches (sorting & dfs)	ye15	1	74	lexicographical numbers	386	0.608	Medium	6,596
https://leetcode.com/problems/lexicographical-numbers/discuss/810448/Python-3-or-One-liner-cheat-or-Sort-String	class Solution: def lexicalOrder(self, n: int) -> List[int]: return [int(i) for i in sorted([str(i) for i in range(1, n+1)])]	lexicographical-numbers	Python 3 \| One-liner cheat \| Sort String	idontknoooo	1	290	lexicographical numbers	386	0.608	Medium	6,597
https://leetcode.com/problems/lexicographical-numbers/discuss/2848655/Brute-force-solution-from-empty-list	class Solution: def lexicalOrder(self, n: int) -> List[int]: out = [] i = 1 nlen = len(str(n)) while len(out) < n: out.append(i) if i10 <= n: i = i10 elif i < n and (i+1)//10 < (i//10)+1: i += 1 ...	lexicographical-numbers	Brute force solution from empty list	yoyo10	0	1	lexicographical numbers	386	0.608	Medium	6,598
https://leetcode.com/problems/lexicographical-numbers/discuss/2829526/No-Trie-or-Recursion%3A-Beats-97.4-Time%3A-O(n)-Space%3A-O(1)O(n)	class Solution: def lexicalOrder(self, n: int) -> List[int]: r = [] a = 1 while a <= n and a < 10: r.append(a) b = a * 10 while b <= n and b < (a + 1) * 10: r.append(b) c = b * 10 while c <= n and c < (b + 1)...	lexicographical-numbers	No Trie or Recursion: Beats 97.4%, Time: O(n), Space: O(1)/O(n)	Squidster777	0	4	lexicographical numbers	386	0.608	Medium	6,599

https://leetcode.com/problems/kth-smallest-element-in-a-sorted-matrix/discuss/2368206/GolangPython-O(N)-timeor-O(N)-space-Quick-Select

class Solution: def kthSmallest(self, matrix: List[List[int]], k: int) -> int: array = [matrix[i][j] for i in range(len(matrix)) for j in range(len(matrix[0]))] return quickselect(array,k) def quickselect(array,k): middle = len(array)//2 middle_item = array[middle] left = [] rig...

kth-smallest-element-in-a-sorted-matrix

Golang/Python O(N) time| O(N) space Quick Select

vtalantsev

0

44

kth smallest element in a sorted matrix

378

0.616

Medium

6,500

https://leetcode.com/problems/kth-smallest-element-in-a-sorted-matrix/discuss/2367833/378.-Stupid-215ms-Python3-in-place-sort

class Solution: def kthSmallest(self, matrix: List[List[int]], k: int) -> int: row0 = matrix[0] for i in range(1, len(matrix)): row0, matrix[i] = row0+matrix[i], [] row0.sort() return row0[k-1]

kth-smallest-element-in-a-sorted-matrix

378. Stupid 215ms Python3 in-place sort

leetavenger

0

3

kth smallest element in a sorted matrix

378

0.616

Medium

6,501

https://leetcode.com/problems/kth-smallest-element-in-a-sorted-matrix/discuss/2367832/Python-Solution-or-One-Liner-or-99-Faster-or-Sorting-Based

class Solution: def kthSmallest(self, matrix: List[List[int]], k: int) -> int: return sorted([cell for row in matrix for cell in row])[k-1]

kth-smallest-element-in-a-sorted-matrix

Python Solution | One-Liner | 99% Faster | Sorting Based

Gautam_ProMax

0

14

kth smallest element in a sorted matrix

378

0.616

Medium

6,502

https://leetcode.com/problems/kth-smallest-element-in-a-sorted-matrix/discuss/2367524/python-solution-99-faster

class Solution: def kthSmallest(self, matrix: List[List[int]], k: int) -> int: sus = [i for k in matrix for i in k] return sorted(sus)[k-1]

kth-smallest-element-in-a-sorted-matrix

python solution 99% faster

Noicelikeice

0

14

kth smallest element in a sorted matrix

378

0.616

Medium

6,503

https://leetcode.com/problems/kth-smallest-element-in-a-sorted-matrix/discuss/2367493/Python-easy-solution-faster-than-95

class Solution: def kthSmallest(self, matrix: List[List[int]], k: int) -> int: one_dim_mat = [] for i in range(len(matrix)): one_dim_mat += matrix[i] return sorted(one_dim_mat)[k-1]

kth-smallest-element-in-a-sorted-matrix

Python easy solution faster than 95%

alishak1999

0

26

kth smallest element in a sorted matrix

378

0.616

Medium

6,504

https://leetcode.com/problems/kth-smallest-element-in-a-sorted-matrix/discuss/2367396/Python-Simple-Python-Solution

class Solution: def kthSmallest(self, matrix: List[List[int]], k: int) -> int: result = [] for row in matrix: result = result + row result = sorted(result) return result[k - 1]

kth-smallest-element-in-a-sorted-matrix

[ Python ] ✅✅ Simple Python Solution 🥳✌👍

ASHOK_KUMAR_MEGHVANSHI

0

115

kth smallest element in a sorted matrix

378

0.616

Medium

6,505

https://leetcode.com/problems/kth-smallest-element-in-a-sorted-matrix/discuss/2367117/2-lines-of-code-using-list-flatten-technique-and-sorting

class Solution: def kthSmallest(self, matrix: List[List[int]], k: int) -> int: mat = [j for i in matrix for j in i] mat.sort() return mat[k - 1]

kth-smallest-element-in-a-sorted-matrix

2 lines of code using list flatten technique and sorting

ankurbhambri

0

31

kth smallest element in a sorted matrix

378

0.616

Medium

6,506

https://leetcode.com/problems/kth-smallest-element-in-a-sorted-matrix/discuss/2367021/Python-1-Line-List-Comprehension-(beats-98.95)

class Solution: def kthSmallest(self, matrix: List[List[int]], k: int) -> int: return sorted([val for sublist in matrix for val in sublist])[k - 1]

kth-smallest-element-in-a-sorted-matrix

Python 1 Line List Comprehension (beats 98.95%)

Jonathanace

0

29

kth smallest element in a sorted matrix

378

0.616

Medium

6,507

https://leetcode.com/problems/kth-smallest-element-in-a-sorted-matrix/discuss/2318549/Short-solution-python

class Solution(object): def kthSmallest(self, matrix, k): """ :type matrix: List[List[int]] :type k: int :rtype: int """ sol=matrix[0] for i in matrix[1:]: sol+=i sol.sort() return sol[k-1]

kth-smallest-element-in-a-sorted-matrix

Short solution python

henryhe707

0

71

kth smallest element in a sorted matrix

378

0.616

Medium

6,508

https://leetcode.com/problems/kth-smallest-element-in-a-sorted-matrix/discuss/2193377/easy-python-solution-in-5-lines

class Solution: def kthSmallest(self, matrix: List[List[int]], k: int) -> int: ans = [] for i in matrix: ans += i ans = sorted(ans) return ans[k-1]

kth-smallest-element-in-a-sorted-matrix

easy python solution in 5 lines

rohansardar

0

89

kth smallest element in a sorted matrix

378

0.616

Medium

6,509

https://leetcode.com/problems/kth-smallest-element-in-a-sorted-matrix/discuss/2073052/Simple-Short-Python-Solution-Lists

class Solution: def kthSmallest(self, matrix: List[List[int]], k: int) -> int: N = len(matrix) for i in range(1, N): for j in range(N): matrix[0].append(matrix[i][j]) matrix[0].sort() return matrix[0][k-1]

kth-smallest-element-in-a-sorted-matrix

Simple Short Python Solution - Lists

kn_vardhan

0

79

kth smallest element in a sorted matrix

378

0.616

Medium

6,510

https://leetcode.com/problems/kth-smallest-element-in-a-sorted-matrix/discuss/2073052/Simple-Short-Python-Solution-Lists

class Solution: def kthSmallest(self, matrix: List[List[int]], k: int) -> int: values = [] for row in matrix: values += row values.sort() return values[k - 1]

kth-smallest-element-in-a-sorted-matrix

Simple Short Python Solution - Lists

kn_vardhan

0

79

kth smallest element in a sorted matrix

378

0.616

Medium

6,511

https://leetcode.com/problems/kth-smallest-element-in-a-sorted-matrix/discuss/1971474/Python-oror-Easy-Solution-Using-Heap-oror-O(k*logk)

class Solution: import heapq def kthSmallest(self, matrix: List[List[int]], k: int) -> int: heap = [] for arr in matrix: heapq.heappush(heap,(arr[0],0,arr)) while k > 0 and heap: val,idx,arr = heapq.heappop(heap) ans = val ...

kth-smallest-element-in-a-sorted-matrix

Python || Easy Solution Using Heap || O(k*logk)

gamitejpratapsingh998

0

210

kth smallest element in a sorted matrix

378

0.616

Medium

6,512

https://leetcode.com/problems/linked-list-random-node/discuss/811617/Python3-reservoir-sampling

class Solution: def __init__(self, head: ListNode): """ @param head The linked list's head. Note that the head is guaranteed to be not null, so it contains at least one node. """ self.head = head # store head of linked list def getRandom(self) -> int: """ ...

linked-list-random-node

[Python3] reservoir sampling

ye15

4

395

linked list random node

382

0.596

Medium

6,513

https://leetcode.com/problems/linked-list-random-node/discuss/811617/Python3-reservoir-sampling

class Solution: def __init__(self, head: ListNode): self.head = head # store head def getRandom(self) -> int: node = self.head n = 0 while node: if randint(0, n) == 0: ans = node.val n += 1 node = node.next return ans

linked-list-random-node

[Python3] reservoir sampling

ye15

4

395

linked list random node

382

0.596

Medium

6,514

https://leetcode.com/problems/linked-list-random-node/discuss/1672294/Python3-solution

class Solution: def __init__(self, head: Optional[ListNode]): # store nodes' value in an array self.array = [] curr = head while curr: self.array.append(curr.val) curr = curr.next def getRandom(self) -> int: num = int(random.random()...

linked-list-random-node

Python3 solution

Janetcxy

1

28

linked list random node

382

0.596

Medium

6,515

https://leetcode.com/problems/linked-list-random-node/discuss/1673785/Python-Intuition

class Solution: def __init__(self, head: Optional[ListNode]): self.nums = [] while head: self.nums.append(head.val) head = head.next def getRandom(self) -> int: return random.choice(self.nums)

linked-list-random-node

Python Intuition

princess_asante

0

26

linked list random node

382

0.596

Medium

6,516

https://leetcode.com/problems/linked-list-random-node/discuss/1338778/Python-code-Beats-96-in-time

class Solution: def __init__(self, head: ListNode): """ @param head The linked list's head. Note that the head is guaranteed to be not null, so it contains at least one node. """ self.mylist=[] self.insert(head) def insert(self, head): while head...

linked-list-random-node

Python code, Beats 96% in time

prajwal_vs

0

89

linked list random node

382

0.596

Medium

6,517

https://leetcode.com/problems/linked-list-random-node/discuss/976242/4Sum-II-Python3-one-liner

class Solution: def fourSumCount(self, A: List[int], B: List[int], C: List[int], D: List[int]) -> int: return sum(xcount * cdcounts[-x] for cdcounts in [Counter(x+y for x in C for y in D)] for x, xcount in Counter(x+y for x in A for y in B).items() if...

linked-list-random-node

4Sum II Python3 one-liner

leetavenger

0

46

linked list random node

382

0.596

Medium

6,518

https://leetcode.com/problems/linked-list-random-node/discuss/957190/Python3-beats-98.-%22random.choice(-)%22.-Very-Easy

class Solution: def __init__(self, head: ListNode): """ @param head The linked list's head. Note that the head is guaranteed to be not null, so it contains at least one node. """ self.res = [] while head: self.res.append(head.val) hea...

linked-list-random-node

[Python3] beats 98%. "random.choice( )". Very-Easy

tilak_

0

62

linked list random node

382

0.596

Medium

6,519

https://leetcode.com/problems/ransom-note/discuss/1346131/Easiest-python-solution-faster-than-95

class Solution: def canConstruct(self, ransomNote, magazine): for i in set(ransomNote): if magazine.count(i) < ransomNote.count(i): return False return True

ransom-note

Easiest python solution, faster than 95%

mqueue

35

3,500

ransom note

383

0.576

Easy

6,520

https://leetcode.com/problems/ransom-note/discuss/2500721/Very-Easy-oror-100-oror-Fully-Explained-oror-C%2B%2B-Java-Python-Python3

class Solution(object): def canConstruct(self, ransomNote, magazine): st1, st2 = Counter(ransomNote), Counter(magazine) if st1 & st2 == st1: return True return False

ransom-note

Very Easy || 100% || Fully Explained || C++, Java, Python, Python3

PratikSen07

29

1,500

ransom note

383

0.576

Easy

6,521

https://leetcode.com/problems/ransom-note/discuss/2550434/Easy-and-Faster-than-98-python3-solutions

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: if len(magazine) < len(ransomNote): return False else: for ransomNote_char in set(ransomNote): if ransomNote.count(rans...

ransom-note

Easy and Faster than 98% python3 solutions

LucasHarim

9

302

ransom note

383

0.576

Easy

6,522

https://leetcode.com/problems/ransom-note/discuss/2359975/Python-One-Line-Solution

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: return Counter(ransomNote)-Counter(magazine)=={}

ransom-note

Python One Line Solution

dhruva3223

6

428

ransom note

383

0.576

Easy

6,523

https://leetcode.com/problems/ransom-note/discuss/1718553/Python-simple-solution-6-lines

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: dict1=collections.Counter(ransomNote) dict2=collections.Counter(magazine) for key in dict1: if key not in dict2 or dict2[key]<dict1[key]: return False return True

ransom-note

Python simple solution 6 lines

amannarayansingh10

5

459

ransom note

383

0.576

Easy

6,524

https://leetcode.com/problems/ransom-note/discuss/2671667/Python-solution.-Clean-code-with-full-comments-93.55-space

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: dict_1 = from_str_to_dict(ransomNote) dict_2 = from_str_to_dict(magazine) return check_compatibility(dict_1, dict_2) # Define helper method that checks if to dictionaries have keys in commo...

ransom-note

Python solution. Clean code with full comments 93.55% space

375d

4

191

ransom note

383

0.576

Easy

6,525

https://leetcode.com/problems/ransom-note/discuss/2480010/Python3-95.20-O(N)-Solution-or-Beginner-Friendly

class Solution: def canConstruct(self, a: str, b: str) -> bool: letter = [0 for _ in range(26)] for c in b: letter[ord(c) - 97] += 1 for c in a: letter[ord(c) - 97] -= 1 return not any((i < 0 for i in letter))

ransom-note

Python3 95.20% O(N) Solution | Beginner Friendly

doneowth

3

88

ransom note

383

0.576

Easy

6,526

https://leetcode.com/problems/ransom-note/discuss/2270590/Simple-solution

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: if len(magazine) < len(ransomNote): return False for letter in ransomNote: if(letter not in magazine): return False magazine = magazine.replace(letter,'',1) ...

ransom-note

Simple solution

jivanbasurtom

3

126

ransom note

383

0.576

Easy

6,527

https://leetcode.com/problems/ransom-note/discuss/1977169/Python3-Solution

class Solution(object): def canConstruct(self, ransomNote, magazine): for i in set(ransomNote): if ransomNote.count(i) > magazine.count(i): return False return True

ransom-note

Python3 Solution

nomanaasif9

3

211

ransom note

383

0.576

Easy

6,528

https://leetcode.com/problems/ransom-note/discuss/610555/Python3-Simple-Solution-Beats-99.5

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: for l in ransomNote: if l not in magazine: return False magazine = magazine.replace(l, '', 1) return True

ransom-note

[Python3] Simple Solution Beats 99.5%

naraB

3

419

ransom note

383

0.576

Easy

6,529

https://leetcode.com/problems/ransom-note/discuss/2594211/Python-simple-solution-or-no-hashtable-or-beats-98.63-in-runtime

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: out = False for elem in ransomNote: if elem in magazine: out = True magazine = magazine.replace(elem,'',1) else: out = False return ...

ransom-note

Python simple solution | no hashtable | beats 98.63% in runtime

shwetachandole

2

147

ransom note

383

0.576

Easy

6,530

https://leetcode.com/problems/ransom-note/discuss/2585361/Python-99.5-Faster.-Simple-Solution

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: #iterate the unqiue letter in ransom note for i in set(ransomNote): #check if the letter count in magazine is less than ransom note if magazine.count(i) < ransomNote.count(i): ...

ransom-note

Python 99.5% Faster. Simple Solution

ovidaure

2

213

ransom note

383

0.576

Easy

6,531

https://leetcode.com/problems/ransom-note/discuss/1825705/Python-3-or-99.60-Faster-or-Easy-to-understand-or-Six-lines-of-code

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: c = 0 for i in ransomNote: if i in magazine: magazine = magazine.replace(i,"",1) c += 1 return c == len(ransomNote)

ransom-note

✔Python 3 | 99.60% Faster | Easy to understand | Six lines of code

Coding_Tan3

2

182

ransom note

383

0.576

Easy

6,532

https://leetcode.com/problems/ransom-note/discuss/1433367/python-3-solution

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: r=sorted(list(ransomNote)) m=sorted(list(magazine)) for char in m: if r and char==r[0]: r.pop(0) if r: return False else: retur...

ransom-note

python 3 solution

abhi_n_001

2

207

ransom note

383

0.576

Easy

6,533

https://leetcode.com/problems/ransom-note/discuss/1266898/Easy-Python-Solution(94.14)

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: x=Counter(ransomNote) y=Counter(magazine) for i,v in x.items(): if(x[i]<=y[i]): continue else: return False return True

ransom-note

Easy Python Solution(94.14%)

Sneh17029

2

758

ransom note

383

0.576

Easy

6,534

https://leetcode.com/problems/ransom-note/discuss/2480474/Python-1-line-%2B-Set-%2B-Brute-Force-or-Detailed-explanation-or-Easy-understand-or-Detailed

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: for i in set(ransomNote): if ransomNote.count(i) > magazine.count(i): return False return True

ransom-note

✅ Python 1 line + Set + Brute Force | Detailed explanation | Easy understand | Detailed

sezanhaque

1

20

ransom note

383

0.576

Easy

6,535

https://leetcode.com/problems/ransom-note/discuss/2480474/Python-1-line-%2B-Set-%2B-Brute-Force-or-Detailed-explanation-or-Easy-understand-or-Detailed

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: magazine_dict, ransomNote_dict = {}, {} for letter in magazine: if letter in magazine_dict: magazine_dict[letter] += 1 else: magazine_dict[letter] = 1 for letter in ransomNote: if letter in ransomNote_dict: ran...

ransom-note

✅ Python 1 line + Set + Brute Force | Detailed explanation | Easy understand | Detailed

sezanhaque

1

20

ransom note

383

0.576

Easy

6,536

https://leetcode.com/problems/ransom-note/discuss/2418464/Low-time-complexity-approach

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: res = True # use set() to get unique characters in string for uniqueChar in set(ransomNote): if ransomNote.count(uniqueChar) <= magazine.count(uniqueChar): pass el...

ransom-note

Low time complexity approach

Wok2882

1

79

ransom note

383

0.576

Easy

6,537

https://leetcode.com/problems/ransom-note/discuss/2366128/Python-Short-Faster-Solution-using-str.replace()-oror-Documented

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: for c in ransomNote: # if letter not in magazine, return True if c not in magazine: return False else: # remove first occurrence of letter magaz...

ransom-note

[Python] Short Faster Solution using str.replace() || Documented

Buntynara

1

66

ransom note

383

0.576

Easy

6,538

https://leetcode.com/problems/ransom-note/discuss/2327790/Python-Simple-Solution-oror-2-Dicts-or-HashMaps-oror-Explained

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: dictRansom = {} dictMagazine = {} # construct dictionary with initial value of 0 for all letters for c in 'abcdefghijklmnopqrstuvwxyz': dictRansom[c] = 0; dictMagazine[c] = 0 # increase count f...

ransom-note

[Python] Simple Solution || 2 Dicts or HashMaps || Explained

Buntynara

1

89

ransom note

383

0.576

Easy

6,539

https://leetcode.com/problems/ransom-note/discuss/2282408/Python3-or-O(n)-with-list

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: letters = [0]*26 for letter in list(ransomNote): letters[ord(letter)-ord('a')] += 1 for letter in list(magazine): if letters[ord(letter)-ord('a')] > 0: ...

ransom-note

Python3 | O(n) with list

muradbay

1

90

ransom note

383

0.576

Easy

6,540

https://leetcode.com/problems/ransom-note/discuss/2254814/Python-Easy-and-Short-Solution

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: for i in set(ransomNote): if i not in magazine or ransomNote.count(i) > magazine.count(i): return False return True

ransom-note

Python Easy & Short Solution

Skiper228

1

87

ransom note

383

0.576

Easy

6,541

https://leetcode.com/problems/ransom-note/discuss/2187284/Python-FAST-and-Simple-solution

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: for i in ransomNote: if i in magazine: magazine = magazine.replace(i, '', 1) else: return False return True

ransom-note

Python FAST and Simple solution

ingli

1

78

ransom note

383

0.576

Easy

6,542

https://leetcode.com/problems/ransom-note/discuss/2019703/Python3-Solution-with-using-counting

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: c = collections.Counter(magazine) for char in ransomNote: if c[char] == 0: return False c[char] -= 1 return True

ransom-note

[Python3] Solution with using counting

maosipov11

1

81

ransom note

383

0.576

Easy

6,543

https://leetcode.com/problems/ransom-note/discuss/1825041/2-Lines-Python-Solution-oror-75-Faster-oror-Memory-less-than-75

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: if Counter(ransomNote) <= Counter(magazine): return True return False

ransom-note

2-Lines Python Solution || 75% Faster || Memory less than 75%

Taha-C

1

55

ransom note

383

0.576

Easy

6,544

https://leetcode.com/problems/ransom-note/discuss/1793445/Python-Simple-Python-Solution-With-Two-Approach

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: t=list(dict.fromkeys(ransomNote)) s=0 for i in t: if ransomNote.count(i)<=magazine.count(i): s=s+1 if s==len(t): return True else: return False

ransom-note

[ Python ] ✅✅ Simple Python Solution With Two Approach 🔥✌🥳👍

ASHOK_KUMAR_MEGHVANSHI

1

205

ransom note

383

0.576

Easy

6,545

https://leetcode.com/problems/ransom-note/discuss/1793445/Python-Simple-Python-Solution-With-Two-Approach

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: frequecy_r = {} for i in range(len(ransomNote)): if ransomNote[i] not in frequecy_r: frequecy_r[ransomNote[i]] = 1 else: frequecy_r[ransomNote[i]] = frequecy_r[ransomNote[i]] + 1 frequecy_m = {} for i in range(le...

ransom-note

[ Python ] ✅✅ Simple Python Solution With Two Approach 🔥✌🥳👍

ASHOK_KUMAR_MEGHVANSHI

1

205

ransom note

383

0.576

Easy

6,546

https://leetcode.com/problems/ransom-note/discuss/1779868/Python-Easy-Step-by-Step-Solution

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: char_dict = {} for char in magazine: if char in char_dict: char_dict[char] += 1 else: char_dict[char] = 1 for char in ransomNote: ...

ransom-note

Python Easy Step by Step Solution

EnergyBoy

1

36

ransom note

383

0.576

Easy

6,547

https://leetcode.com/problems/ransom-note/discuss/1640283/Python3-super-easy-solution

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: a = collections.Counter(ransomNote) b = collections.Counter(magazine) x = a - b return len(x) == 0

ransom-note

Python3 super easy solution

freakleesin

1

91

ransom note

383

0.576

Easy

6,548

https://leetcode.com/problems/ransom-note/discuss/1532796/WEEB-DOES-PYTHON

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: Note = Counter(ransomNote) Maga = Counter(magazine) for char in Note: if char not in Maga or Maga[char] < Note[char]: return False return True

ransom-note

WEEB DOES PYTHON

Skywalker5423

1

145

ransom note

383

0.576

Easy

6,549

https://leetcode.com/problems/ransom-note/discuss/353415/Solution-in-Python-3-(beats-~97)-(one-line)

class Solution: def canConstruct(self, r: str, m: str) -> bool: return not any(r.count(i) > m.count(i) for i in set(r)) - Junaid Mansuri (LeetCode ID)@hotmail.com

ransom-note

Solution in Python 3 (beats ~97%) (one line)

junaidmansuri

1

501

ransom note

383

0.576

Easy

6,550

https://leetcode.com/problems/ransom-note/discuss/2847994/Py-Hash-O(N)

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: dic_magazine = Counter(magazine) for char in ransomNote: dic_magazine[char] -= 1 if dic_magazine[char] < 0: return False return True

ransom-note

Py Hash O(N)

haly-leshchuk

0

2

ransom note

383

0.576

Easy

6,551

https://leetcode.com/problems/ransom-note/discuss/2839499/Python-using-Counter

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: r = Counter(ransomNote) m = Counter(magazine) for k in r.keys(): if r[k] > m.get(k,0): return False return True

ransom-note

Python using Counter

ajayedupuganti18

0

2

ransom note

383

0.576

Easy

6,552

https://leetcode.com/problems/ransom-note/discuss/2827103/python-easy-solution

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: count = 0 for i in range(len(ransomNote)): if ransomNote[i] in magazine: magazine = magazine.replace(ransomNote[i], "", 1) count += 1 return count == len(ransomNote)

ransom-note

python easy solution

skywonder

0

6

ransom note

383

0.576

Easy

6,553

https://leetcode.com/problems/ransom-note/discuss/2818292/Using-dicts-and-list-of-flags

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: ransom_dict = {} magazine_dict = {} flags = [] for i in ransomNote: if i in ransom_dict: ransom_dict[i] += 1 continue ransom_dict[i] = 1 f...

ransom-note

Using dicts and list of flags

pkozhem

0

4

ransom note

383

0.576

Easy

6,554

https://leetcode.com/problems/ransom-note/discuss/2814520/simple-python-solution

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: for x in list(ransomNote): if x not in list(magazine): return False for x in list(ransomNote): if list(ransomNote).count(x)>list(magazine).count(x): return False ...

ransom-note

simple python solution

sahityasetu1996

0

3

ransom note

383

0.576

Easy

6,555

https://leetcode.com/problems/ransom-note/discuss/2811939/Dictionary-count

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: letters = Counter(magazine) for letter in ransomNote: if letters[letter] == 0: return False letters[letter] -= 1 return True

ransom-note

Dictionary count

bourgeoibee

0

3

ransom note

383

0.576

Easy

6,556

https://leetcode.com/problems/ransom-note/discuss/2808000/Python-solutions-for-Ransom-Note

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: magazine_lettera = {i:magazine.count(i) for i in set(magazine)} for letter in ransomNote: if letter not in magazine_lettera.keys(): return False else: ...

ransom-note

Python solutions for Ransom Note

Bassel_Alf

0

3

ransom note

383

0.576

Easy

6,557

https://leetcode.com/problems/ransom-note/discuss/2808000/Python-solutions-for-Ransom-Note

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: magazine_lettera = dict() for letter in magazine: magazine_lettera[letter] = magazine_lettera.get(letter, 0) + 1 for letter in ransomNote: if letter not in magazine_le...

ransom-note

Python solutions for Ransom Note

Bassel_Alf

0

3

ransom note

383

0.576

Easy

6,558

https://leetcode.com/problems/ransom-note/discuss/2804911/Python-(runtime-98.31-memory-93.97)-solution

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: originalMagazineLength = len(magazine) for c in ransomNote: magazine = magazine.replace(c, '', 1) return len(magazine) == originalMagazineLength - len(ransomNote)

ransom-note

Python (runtime 98.31%, memory 93.97%) solution

huseyinkeles

0

3

ransom note

383

0.576

Easy

6,559

https://leetcode.com/problems/ransom-note/discuss/2799026/PYTHON-Easy-Solution

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: a=Counter(ransomNote) #count the occurance of char of ransomnote b=Counter(magazine) #count the occurance of char of magazine if a & b ==a: return True return False

ransom-note

[PYTHON] Easy Solution

user9516zM

0

1

ransom note

383

0.576

Easy

6,560

https://leetcode.com/problems/ransom-note/discuss/2797474/Python-solution-using-Counter-(short-and-simple)

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: counter_ransomNote = Counter(ransomNote) counter_magazine = Counter(magazine) for char in counter_ransomNote.keys(): if counter_ransomNote[char] > counter_magazine[char]: ret...

ransom-note

Python solution using Counter (short and simple)

hungqpham

0

3

ransom note

383

0.576

Easy

6,561

https://leetcode.com/problems/ransom-note/discuss/2779474/Very-easy-solution-without-any-additional-method-but-beats-89.77

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: for char in ransomNote: char_found = False for i in range(len(magazine)): if char == magazine[i]: magazine = magazine[:i] + magazine[i+1:] char_fo...

ransom-note

Very easy solution without any additional method but beats 89.77%

sdsahil12

0

4

ransom note

383

0.576

Easy

6,562

https://leetcode.com/problems/ransom-note/discuss/2777466/Ransome-note-or-Easy

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: ransomNote = list(ransomNote) tracker = list(set(ransomNote)) magazine = list(magazine) while tracker: if tracker and ransomNote.count(tracker[0]) <= magazine.count(tracker[0...

ransom-note

Ransome note | Easy

Gangajyoti

0

1

ransom note

383

0.576

Easy

6,563

https://leetcode.com/problems/ransom-note/discuss/2774991/Python-1-pointer

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: p_m = 0 note, mag = sorted(ransomNote), sorted(magazine) while p_m < len(magazine) and note[0] != mag[p_m]: p_m += 1 while len(note) and p_m < len(magazine): if note[0] == mag[p_...

ransom-note

Python, 1 pointer

Gagampy

0

5

ransom note

383

0.576

Easy

6,564

https://leetcode.com/problems/ransom-note/discuss/2768180/383.-Ransom-Note-or-Python

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: count = {} for c in magazine: count[c] = 1 + count.get(c,0) for ch in ransomNote: if ch not in count or count[ch]==0: return False else: count[c...

ransom-note

383. Ransom Note | Python

rishabh_055

0

8

ransom note

383

0.576

Easy

6,565

https://leetcode.com/problems/ransom-note/discuss/2764531/Python3-oror-simple-solution-oror-easy-understanding

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: new = list(magazine) for r in ransomNote: if r not in new: return False i = new.index(r) new.remove(new[i]) return True

ransom-note

Python3 || simple solution || easy understanding

amangupta3073

0

2

ransom note

383

0.576

Easy

6,566

https://leetcode.com/problems/ransom-note/discuss/2750639/Easiest-solution-with-python-two-dictionaries-one-comparison

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: have = dict() for letter in magazine: have[letter] = have.get(letter,0) + 1 needed = dict() for letter in ransomNote: needed[letter] = needed.get(letter,0) + 1 total = 0 ...

ransom-note

Easiest solution with python - two dictionaries one comparison

DavidCastillo

0

3

ransom note

383

0.576

Easy

6,567

https://leetcode.com/problems/ransom-note/discuss/2748373/Easy-python3-Counter-solution

class Solution: def canConstruct(self, ransomNote: str, magazine: str) -> bool: note_freq = collections.Counter(ransomNote) mag_freq = collections.Counter(magazine) for letter in note_freq: if note_freq[letter] > mag_freq[letter]: return False ret...

ransom-note

Easy python3 Counter solution

Delacrua

0

4

ransom note

383

0.576

Easy

6,568

https://leetcode.com/problems/shuffle-an-array/discuss/1673643/Python-or-Best-Optimal-Approach

class Solution: def __init__(self, nums: List[int]): self.arr = nums[:] # Deep Copy, Can also use Shallow Copy concept! # self.arr = nums # Shallow Copy would be something like this! def reset(self) -> List[int]: return self.arr def shuffle(self) -> List[int]: ans = self.arr[:] for i in range(len(ans))...

shuffle-an-array

{ Python } | Best Optimal Approach ✔

leet_satyam

6

725

shuffle an array

384

0.577

Medium

6,569

https://leetcode.com/problems/shuffle-an-array/discuss/1354489/Partition-Array-into-Disjoint-Intervals-Python-Easy-solution

class Solution: def partitionDisjoint(self, nums: List[int]) -> int: a = list(accumulate(nums, max)) b = list(accumulate(nums[::-1], min))[::-1] for i in range(1, len(nums)): if a[i-1] <= b[i]: return i

shuffle-an-array

Partition Array into Disjoint Intervals , Python , Easy solution

user8744WJ

1

120

shuffle an array

384

0.577

Medium

6,570

https://leetcode.com/problems/shuffle-an-array/discuss/1354450/Partition-Array-into-Disjoint-Intervals%3A-Simple-Python-Solution

class Solution: def partitionDisjoint(self, nums: List[int]) -> int: n = len(nums) left_length = 1 left_max = curr_max = nums[0] for i in range(1, n-1): if nums[i] < left_max: left_length = i+1 left_max = curr_max else: ...

shuffle-an-array

Partition Array into Disjoint Intervals: Simple Python Solution

user6820GC

1

81

shuffle an array

384

0.577

Medium

6,571

https://leetcode.com/problems/shuffle-an-array/discuss/1350083/Shuffle-An-Array-Python-Easy-Solution

class Solution: def __init__(self, nums: List[int]): self.a = nums def reset(self) -> List[int]: """ Resets the array to its original configuration and return it. """ return list(self.a) def shuffle(self) -> List[int]: """ Returns a random shuffling...

shuffle-an-array

Shuffle An Array , Python , Easy Solution

user8744WJ

1

144

shuffle an array

384

0.577

Medium

6,572

https://leetcode.com/problems/shuffle-an-array/discuss/1103904/Python-A-simple-O(N)-solution-that-is-NOT-Fisher-Yates-Algorithm

class Solution: def __init__(self, nums: List[int]): self.original = nums[:] self.nums = nums def reset(self) -> List[int]: return self.original def shuffle(self) -> List[int]: tmp = list(self.nums) # make a copy self.nums = [] while tmp: index = rando...

shuffle-an-array

[Python] A simple O(N) solution that is NOT Fisher-Yates Algorithm

JummyEgg

1

390

shuffle an array

384

0.577

Medium

6,573

https://leetcode.com/problems/shuffle-an-array/discuss/2726092/Python-oror-Fisher-Yates-algorithm

class Solution: def __init__(self, nums: List[int]): self.nums = nums def reset(self) -> List[int]: return self.nums def shuffle(self) -> List[int]: # fisher yates shuffle copy = self.nums[:] m = len(self.nums) # while there remain elements to shuf...

shuffle-an-array

Python || Fisher-Yates algorithm

Graviel77

0

12

shuffle an array

384

0.577

Medium

6,574

https://leetcode.com/problems/shuffle-an-array/discuss/2710888/EXTREMELY-SIMPLE-and-EFFICIENT-python-solution

class Solution: def __init__(self, nums: List[int]): # "Contruct" the object: # Init the class variable(s) self.nums = nums def reset(self) -> List[int]: # Return the inital variable(s) # This assumes the variable(s) didn't change! return self.nums def ...

shuffle-an-array

EXTREMELY SIMPLE & EFFICIENT python solution

rosey003

0

7

shuffle an array

384

0.577

Medium

6,575

https://leetcode.com/problems/shuffle-an-array/discuss/2667750/FisherYates-shuffle

class Solution: def __init__(self, nums: List[int]): self.orig = list(nums) self.perm = nums def reset(self) -> List[int]: self.perm = list(self.orig) return self.perm def shuffle(self) -> List[int]: for i in range(0, len(self.perm)): j = randin...

shuffle-an-array

Fisher–Yates shuffle

tomfran

0

5

shuffle an array

384

0.577

Medium

6,576

https://leetcode.com/problems/shuffle-an-array/discuss/2652958/Python-and-Golang

class Solution: def __init__(self, nums: List[int]): self.nums = nums def reset(self) -> List[int]: return self.nums def shuffle(self) -> List[int]: import random return random.sample(self.nums, k=len(self.nums))

shuffle-an-array

Python and Golang答え

namashin

0

15

shuffle an array

384

0.577

Medium

6,577

https://leetcode.com/problems/shuffle-an-array/discuss/1819524/Python3-Solution-with-using-FisherYates-shuffle

class Solution: def __init__(self, nums: List[int]): self.arr = nums self.nums = nums[:] def reset(self) -> List[int]: self.arr = self.nums self.nums = self.nums[:] return self.arr def shuffle(self) -> List[int]: for i in range(len(self.arr)): ...

shuffle-an-array

[Python3] Solution with using Fisher–Yates shuffle

maosipov11

0

89

shuffle an array

384

0.577

Medium

6,578

https://leetcode.com/problems/shuffle-an-array/discuss/1813908/Python-solution-backtracking-and-shuffle

class Solution: def __init__(self, nums: List[int]): self.nums=nums self.lists=self.getList() def reset(self) -> List[int]: a=sorted(self.nums) return a def getList(self): nums=self.nums res=[] path=[] used=[0]*len(nums) def backtrackin...

shuffle-an-array

Python solution backtracking and shuffle

FangyuanXie

0

58

shuffle an array

384

0.577

Medium

6,579

https://leetcode.com/problems/shuffle-an-array/discuss/1813908/Python-solution-backtracking-and-shuffle

class Solution: def __init__(self, nums: List[int]): self.nums=nums self.orgin=nums[:] def reset(self) -> List[int]: self.nums=self.orgin[:] return self.nums def shuffle(self) -> List[int]: n=len(self.nums) for l in range(n): r=random.randint(...

shuffle-an-array

Python solution backtracking and shuffle

FangyuanXie

0

58

shuffle an array

384

0.577

Medium

6,580

https://leetcode.com/problems/shuffle-an-array/discuss/1374919/Trapping-Rainwater-Python3-O(n)

class Solution: def trap(self, height: List[int]) -> int: if not height: return 0 def addwater(range_): mx, out = 0, 0 for i in range_: if height[i] > mx: mx = height[i] else: out += mx - height[i] return out ...

shuffle-an-array

Trapping Rainwater [Python3] O(n)

vscala

0

75

shuffle an array

384

0.577

Medium

6,581

https://leetcode.com/problems/shuffle-an-array/discuss/1374919/Trapping-Rainwater-Python3-O(n)

class Solution: def trap(self, height: List[int]) -> int: if len(height) < 3: return 0 l, r = 0, len(height)-1 lmax, rmax = height[l], height[r] out = 0 while l+1 != r: if lmax < rmax: l += 1 if height[l] > lmax: l...

shuffle-an-array

Trapping Rainwater [Python3] O(n)

vscala

0

75

shuffle an array

384

0.577

Medium

6,582

https://leetcode.com/problems/shuffle-an-array/discuss/1350445/Shuffle-Array-or-Python-Random-Swapping-Approach

class Solution: def __init__(self, nums: List[int]): self.original = nums def reset(self) -> List[int]: return self.original def shuffle(self) -> List[int]: result, n = self.original.copy(), len(self.original) for i in range(n): ind = random.r...

shuffle-an-array

Shuffle Array | Python Random Swapping Approach

yiseboge

0

85

shuffle an array

384

0.577

Medium

6,583

https://leetcode.com/problems/shuffle-an-array/discuss/811552/Python3-Knuth-shuffle

class Solution: def __init__(self, nums: List[int]): self.nums = nums self.orig = nums.copy() # original array def reset(self) -> List[int]: """ Resets the array to its original configuration and return it. """ return self.orig def shuffle(self) -> List[in...

shuffle-an-array

[Python3] Knuth shuffle

ye15

0

141

shuffle an array

384

0.577

Medium

6,584

https://leetcode.com/problems/shuffle-an-array/discuss/603080/Python-sol-by-native-tools.-85%2B-w-Comment

class Solution: def __init__(self, nums: List[int]): self.size = len(nums) self.origin = nums self.array = [*nums] def reset(self) -> List[int]: """ Resets the array to its original configuration and return it. """ return self.origin ...

shuffle-an-array

Python sol by native tools. 85%+ [w/ Comment ]

brianchiang_tw

0

285

shuffle an array

384

0.577

Medium

6,585

https://leetcode.com/problems/shuffle-an-array/discuss/514309/Python3-use-random-shuffle-function

class Solution: def __init__(self, nums: List[int]): self.nums=nums def reset(self) -> List[int]: """ Resets the array to its original configuration and return it. """ return self.nums def shuffle(self) -> List[int]: """ Returns a random shuffling o...

shuffle-an-array

Python3 use random shuffle function

jb07

0

129

shuffle an array

384

0.577

Medium

6,586

https://leetcode.com/problems/shuffle-an-array/discuss/485921/Python-3-(six-lines)-(beats-~98)

class Solution: def __init__(self, n): self.array = n def reset(self): return self.array def shuffle(self): s = self.array[:] random.shuffle(s) return s - Junaid Mansuri - Chicago, IL

shuffle-an-array

Python 3 (six lines) (beats ~98%)

junaidmansuri

0

420

shuffle an array

384

0.577

Medium

6,587

https://leetcode.com/problems/shuffle-an-array/discuss/422655/EXACTLY-equally-likely-permutations

class Solution: def __init__(self, nums: List[int]): self.original = nums def reset(self) -> List[int]: return self.original def shuffle(self) -> List[int]: try: return next(self.perm) except: self.perm = itertools.permutations(self.original) ...

shuffle-an-array

EXACTLY equally likely permutations

SkookumChoocher

0

95

shuffle an array

384

0.577

Medium

6,588

https://leetcode.com/problems/shuffle-an-array/discuss/1365722/3Sum-Closest-Easy-Python-2-pointer-Binary-Search

class Solution: def threeSumClosest(self, nums: List[int], target: int) -> int: a = nums[0]+nums[1]+nums[len(nums)-1] nums.sort() for i in range(len(nums)-2): l = i+1 h = len(nums)-1 while l<h: b = nums[i]+nums[l]+nums[h] if...

shuffle-an-array

3Sum Closest , Easy , Python , 2 pointer , Binary Search

user8744WJ

-1

181

shuffle an array

384

0.577

Medium

6,589

https://leetcode.com/problems/mini-parser/discuss/875743/Python3-a-concise-recursive-solution

class Solution: def deserialize(self, s: str) -> NestedInteger: if not s: return NestedInteger() if not s.startswith("["): return NestedInteger(int(s)) # integer ans = NestedInteger() s = s[1:-1] # strip outer "[" and "]" if s: ii = op = 0 for i in ...

mini-parser

[Python3] a concise recursive solution

ye15

2

178

mini parser

385

0.366

Medium

6,590

https://leetcode.com/problems/mini-parser/discuss/1638534/Elegant-Python-One-Pass-Solution-(using-stack)

class Solution: def deserialize(self, s: str) -> NestedInteger: stack = [] integerStr = '' for c in s: if c == '[': stack.append(NestedInteger()) elif c == ']': if len(integerStr)>0: stack[-1].add(NestedInte...

mini-parser

Elegant Python One Pass Solution (using stack)

RG97

1

152

mini parser

385

0.366

Medium

6,591

https://leetcode.com/problems/lexicographical-numbers/discuss/2053392/Python-oneliner

class Solution: def lexicalOrder(self, n: int) -> List[int]: return sorted([x for x in range(1,n+1)],key=lambda x: str(x))

lexicographical-numbers

Python oneliner

StikS32

1

135

lexicographical numbers

386

0.608

Medium

6,592

https://leetcode.com/problems/lexicographical-numbers/discuss/1879853/Single-line-python-3-solution-98-faster

class Solution: def lexicalOrder(self, n: int) -> List[int]: return sorted(list(map(str,list(range(1,n+1)))))

lexicographical-numbers

Single line python 3 solution 98% faster

amannarayansingh10

1

112

lexicographical numbers

386

0.608

Medium

6,593

https://leetcode.com/problems/lexicographical-numbers/discuss/1787311/O(n)-time-O(1)-space-stack-solution-in-Python

class Solution: def lexicalOrder(self, n: int) -> List[int]: stack = [] for i in range(min(n, 9), 0, -1): stack.append(i) res = [] while stack: last = stack.pop() if last > n: continue else: res.appe...

lexicographical-numbers

O(n) time, O(1) space stack solution in Python

kryuki

1

124

lexicographical numbers

386

0.608

Medium

6,594

https://leetcode.com/problems/lexicographical-numbers/discuss/817573/Python3-two-approaches-(sorting-and-dfs)

class Solution: def lexicalOrder(self, n: int) -> List[int]: return sorted(range(1, n+1), key=str)

lexicographical-numbers

[Python3] two approaches (sorting & dfs)

ye15

1

74

lexicographical numbers

386

0.608

Medium

6,595

https://leetcode.com/problems/lexicographical-numbers/discuss/817573/Python3-two-approaches-(sorting-and-dfs)

class Solution: def lexicalOrder(self, n: int) -> List[int]: def dfs(x): """Pre-order traverse the tree.""" if x <= n: ans.append(x) for xx in range(10): dfs(10*x + xx) ans = [] for x in range(1, 10): dfs(x) re...

lexicographical-numbers

[Python3] two approaches (sorting & dfs)

ye15

1

74

lexicographical numbers

386

0.608

Medium

6,596

https://leetcode.com/problems/lexicographical-numbers/discuss/810448/Python-3-or-One-liner-cheat-or-Sort-String

class Solution: def lexicalOrder(self, n: int) -> List[int]: return [int(i) for i in sorted([str(i) for i in range(1, n+1)])]

lexicographical-numbers

Python 3 | One-liner cheat | Sort String

idontknoooo

1

290

lexicographical numbers

386

0.608

Medium

6,597

https://leetcode.com/problems/lexicographical-numbers/discuss/2848655/Brute-force-solution-from-empty-list

class Solution: def lexicalOrder(self, n: int) -> List[int]: out = [] i = 1 nlen = len(str(n)) while len(out) < n: out.append(i) if i*10 <= n: i = i*10 elif i < n and (i+1)//10 < (i//10)+1: i += 1 ...

lexicographical-numbers

Brute force solution from empty list

yoyo10

0

1

lexicographical numbers

386

0.608

Medium

6,598

https://leetcode.com/problems/lexicographical-numbers/discuss/2829526/No-Trie-or-Recursion%3A-Beats-97.4-Time%3A-O(n)-Space%3A-O(1)O(n)

class Solution: def lexicalOrder(self, n: int) -> List[int]: r = [] a = 1 while a <= n and a < 10: r.append(a) b = a * 10 while b <= n and b < (a + 1) * 10: r.append(b) c = b * 10 while c <= n and c < (b + 1)...

lexicographical-numbers

No Trie or Recursion: Beats 97.4%, Time: O(n), Space: O(1)/O(n)

Squidster777

0

4

lexicographical numbers

386

0.608

Medium

6,599