problem stringclasses 67
values | user stringlengths 13 13 | submission_order int64 1 57 | result stringclasses 10
values | execution_time stringlengths 0 8 | memory stringclasses 88
values | code stringlengths 47 7.62k |
|---|---|---|---|---|---|---|
QPC001_B3 | AE4098D86B930 | 4 | RE | 888 ms | 79 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import GlobalPhaseGate
import math
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(L):
for j in range(n):
if (i&(1<<j))==0:
qc.x(j)
... |
QPC001_B3 | AE4098D86B930 | 5 | WA | 851 ms | 91 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import GlobalPhaseGate
import math
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(L):
for j in range(n):
if (i&(1<<j))==0:
qc.x(j)
... |
QPC001_B3 | AE4098D86B930 | 6 | WA | 1070 ms | 91 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import GlobalPhaseGate
import math
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(L):
for j in range(n):
if (i&(1<<(n-1-j)))==0:
qc.x(j)
... |
QPC001_B3 | AE4098D86B930 | 7 | WA | 1224 ms | 91 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import GlobalPhaseGate
import math
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(L):
for j in range(n):
if (i&(1<<(n-1-j)))==0:
qc.x(j)
... |
QPC001_B3 | AE4098D86B930 | 8 | AC | 2532 ms | 92 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import GlobalPhaseGate
import math
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(L):
for j in range(n):
if (i&(1<<j))==0:
qc.x(j)
... |
QPC001_B3 | AE50189C09249 | 1 | RE | 813 ms | 78 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
qc.append(z.control(n-1),range(n))
return qc
''' |
QPC001_B3 | AE50189C09249 | 2 | RE | 829 ms | 79 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n):
qc.cz(i,n)
return qc
''' |
QPC001_B3 | AE50189C09249 | 3 | RE | 883 ms | 79 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n):
qc.cz(i,i+1)
return qc
''' |
QPC001_B3 | AE50189C09249 | 4 | WA | 945 ms | 90 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n):
if i<n-1:
qc.cz(i,i+1)
return qc
''' |
QPC001_B3 | AE50189C09249 | 5 | WA | 1079 ms | 90 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n):
if i<n-1:
qc.cz(i+1,i)
return qc
''' |
QPC001_B3 | AE50189C09249 | 6 | RE | 849 ms | 79 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n):
qc.cz(i,n-1)
return qc
''' |
QPC001_B3 | AE50189C09249 | 7 | WA | 847 ms | 90 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
if n==1:
qc.z(0)
return qc
for i in range(n):
qc.cz(i,n-1)
return qc
''' |
QPC001_B3 | AE50189C09249 | 8 | RE | 857 ms | 79 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n):
h.(i)
if n==1:
qc.z(0)
return qc
for i in range(n):
qc.cz(i,n-1)
return qc
''' |
QPC001_B3 | AE50189C09249 | 9 | WA | 949 ms | 90 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n):
qc.h(i)
if n==1:
qc.z(0)
return qc
for i in range(n):
qc.cz(i,n-1)
return qc
''' |
QPC001_B3 | AE50189C09249 | 10 | RE | 810 ms | 79 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
qc.h(range(n))
qc.x(range(n))
qc.h(n-1)
qc.append(x.control(n-1),range(n))
qc.h(n-1)
qc.x(range(n))
qc.h(range(n))
return qc
''' |
QPC001_B3 | AE50189C09249 | 11 | RE | 800 ms | 78 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
qc.h(range(n))
qc.x(range(n))
qc.h(n-1)
qc.mct(list(n-1),n-1)
qc.h(n-1)
qc.x(range(n))
qc.h(range(n))
return qc
''' |
QPC001_B3 | AE50189C09249 | 12 | RE | 797 ms | 79 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
qc.h(range(n))
qc.x(range(n))
qc.h(n-1)
qc.mct(list(range(n-1)),n-1)
qc.h(n-1)
qc.x(range(n))
qc.h(range(n))
return qc
''' |
QPC001_B3 | AE50189C09249 | 13 | RE | 953 ms | 79 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
qc.h(range(n))
qc.append(z.control(n-1),n)
return qc
''' |
QPC001_B3 | AE50189C09249 | 14 | RE | 848 ms | 79 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
qc.h(range(n))
qc.append(z.control(n-1),range(n))
return qc
''' |
QPC001_B3 | AE50189C09249 | 15 | RE | 1024 ms | 79 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
qc.h(range(n))
qc.append(x.control(n-1),range(n))
return qc
''' |
QPC001_B3 | AE50189C09249 | 16 | RE | 823 ms | 79 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
qc.h(range(n))
qc.append(cz.control(n-1),range(n))
return qc
''' |
QPC001_B3 | AE50189C09249 | 17 | RE | 772 ms | 78 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
qc.h(range(n))
qc.append(z().control(n-1),range(n))
return qc
''' |
QPC001_B3 | AE50189C09249 | 18 | RE | 893 ms | 79 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
if n==1:
return qc.z(0)
qc.h(range(n))
qc.append(z.control(n-1),range(n))
return qc
''' |
QPC001_B3 | AE50189C09249 | 19 | RE | 864 ms | 79 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
qc.x(n-1)
qc.h(n-1)
qc.append(z.control(n-1),range(n))
qc.h(n-1)
qc.x(n-1)
return qc
''' |
QPC001_B3 | AE50189C09249 | 20 | RE | 966 ms | 79 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
qc.x(n-1)
qc.h(n-1)
qc.append(x.control(n-1),range(n))
qc.h(n-1)
qc.x(n-1)
return qc
''' |
QPC001_B3 | AE50189C09249 | 21 | RE | 901 ms | 79 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
qc.x(n-1)
qc.h(n-1)
qc.append(.control(n-2),range(n-1))
qc.h(n-1)
qc.x(n-1)
return qc
''' |
QPC001_B3 | AE50189C09249 | 22 | RE | 878 ms | 79 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
qc.x(n-1)
qc.h(n-1)
qc.append(.control(L-1),range(n))
qc.h(n-1)
qc.x(n-1)
return qc
''' |
QPC001_B3 | AE50189C09249 | 23 | RE | 800 ms | 79 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
qc.x(n-1)
qc.h(n-1)
qc.append(z.control(L-1),range(n))
qc.h(n-1)
qc.x(n-1)
return qc
''' |
QPC001_B3 | AE61B9E559771 | 1 | RE | 2034 ms | 160 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
qc.h(0)
for i in range(L - 1):
qc.z(i)
return qc
''' |
QPC001_B3 | AE61B9E559771 | 2 | UME | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import Gate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
qc.append(Gate().control(n - 1), range(n))
return qc
''' | ||
QPC001_B3 | AE61B9E559771 | 3 | UME | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import Gate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
qc.h(0)
qc.append(Gate().control(n - 1), range(n))
return qc
''' | ||
QPC001_B3 | AE61B9E559771 | 4 | UME | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import Gate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
qc.h(0)
for i in range(L - 1):
qc.append(Gate().control(n - 1), range(n))
return qc
''' | ||
QPC001_B3 | AE61B9E559771 | 5 | RE | 1952 ms | 159 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for i in range(L):
for j in range(n):
if ((i >> j) & 0):
qc.x(i)
qc.z(i)
qc.x(i)
... |
QPC001_B3 | AE61B9E559771 | 6 | WA | 1887 ms | 157 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for i in range(L):
for j in range(n):
if ((i >> j) & 1):
qc.z(j)
else:
qc.x(j)
... |
QPC001_B3 | AE61B9E559771 | 7 | RE | 1833 ms | 159 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for i in range(L):
for j in range(n):
if not ((i >> j) & 1):
qc.x(i)
qc.append(ZGate().control(n - 1), range(n))... |
QPC001_B3 | AE61B9E559771 | 8 | RE | 1981 ms | 160 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for i in range(L):
for j in range(n):
if not ((i >> j) & 1):
qc.x(j)
qc.append(ZGate().control(n - 1), range(n))... |
QPC001_B3 | AE61B9E559771 | 9 | AC | 2233 ms | 161 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for i in range(L):
for j in range(n):
if not ((i >> j) & 1):
qc.x(j)
if n == 1:
qc.z(0)
else... |
QPC001_B3 | AE7841C298EF9 | 1 | RE | 1487 ms | 156 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(L):
bitstr = format(i, f'0{n}b') # i を nビットの2進数に変換
ctrl_bits = []
# Xゲートで0制御を実現(後で戻す)
for j, bit in enumerate(bitstr):
... |
QPC001_B3 | AE7841C298EF9 | 2 | RE | 1422 ms | 156 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(L):
bitstr = format(i, f'0{n}b') # i を nビットの2進数に変換
ctrl_bits = []
# Xゲートで0制御を実現(後で戻す)
... |
QPC001_B3 | AE95281D53808 | 1 | WA | 1019 ms | 91 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
flip = list()
for i in reversed(range(n)):
flip.append( L // 2**(i) )
L = L % 2**(i)
if flip[0]:
qc.z(n-1)
for i in range... |
QPC001_B3 | AE95281D53808 | 2 | RE | 795 ms | 78 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for LL in range(L):
flip = list()
for i in reversed(range(n)):
flip.append( LL // 2**(i) )
LL = LL % 2**(i)
... |
QPC001_B3 | AE95281D53808 | 3 | RE | 938 ms | 91 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for LL in range(L):
flip = list()
for i in reversed(range(n)):
flip.append( LL // 2**(i) )
LL = LL % 2**(i)
... |
QPC001_B3 | AE95281D53808 | 4 | WA | 846 ms | 90 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
if n == 1:
if L == 1:
qc.z(0)
return qc
for LL in range(L):
flip = list()
for i in reversed(range(n)):
f... |
QPC001_B3 | AE95281D53808 | 5 | WA | 965 ms | 92 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
if n == 1:
if L == 1:
qc.z(0)
return qc
for LL in range(L):
flip = list()
for i in reversed(range(n)):
f... |
QPC001_B3 | AE95281D53808 | 6 | WA | 1169 ms | 92 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
if n == 1:
if L == 1:
qc.z(0)
return qc
for LL in range(L):
flip = list()
for i in reversed(range(n)):
f... |
QPC001_B3 | AE95281D53808 | 7 | WA | 1218 ms | 91 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
if n == 1:
qc.x(0)
qc.z(0)
qc.x(0)
if L == 2:
qc.z(0)
return qc
for LL in range(L):
flip = list()
... |
QPC001_B3 | AE95281D53808 | 8 | AC | 3000 ms | 95 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
if n == 1:
qc.x(0)
qc.z(0)
qc.x(0)
if L == 2:
qc.z(0)
return qc
for LL in range(L):
flip = list()
... |
QPC001_B3 | AEB579F553BD5 | 1 | RE | 893 ms | 90 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(L):
qc.z(i)
return qc
''' |
QPC001_B3 | AEB579F553BD5 | 2 | RE | 795 ms | 79 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import XGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for l in range(L):
for i in range(n):
if (l>>i)&1:
qc.x(i)
qc.append(XGate().control(0), range(n))
for i i... |
QPC001_B3 | AEB579F553BD5 | 3 | RE | 798 ms | 80 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for l in range(L):
for i in range(n):
if not (l>>i)&1:
qc.x(i)
if n==1:
qc.z(0)
else:
... |
QPC001_B3 | AEB579F553BD5 | 4 | RE | 826 ms | 79 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for l in range(L):
for i in range(n):
if not ((l>>i)&1):
qc.x(i)
if n==1:
qc.z(0)
else:
... |
QPC001_B3 | AEB579F553BD5 | 5 | AC | 2773 ms | 96 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for l in range(L):
for i in range(n):
if not ((l>>i)&1):
qc.x(i)
if n==1:
qc.z(0)
else:
... |
QPC001_B3 | AEC6B7F9DE236 | 1 | RE | 777 ms | 79 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
if L == (1<<n):
return qc
tmp = 0
for i in reversed(range(n)):
if tmp+(1<<i) < L:
if i == n-1:
qc.z(i)
qc.... |
QPC001_B3 | AEC6B7F9DE236 | 2 | RE | 764 ms | 79 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
if L == (1<<n):
return qc
tmp = 0
for i in reversed(range(n)):
if tmp+(1<<i) < L:
if i == n-1:
qc.z(i)
els... |
QPC001_B3 | AEC6B7F9DE236 | 3 | WA | 968 ms | 90 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
if L == (1<<n):
return qc
tmp = 0
for i in reversed(range(n)):
if tmp+(1<<i) < L:
if i == n-1:
qc.z(i)
els... |
QPC001_B3 | AEC6B7F9DE236 | 4 | WA | 939 ms | 90 MiB | '''python
from qiskit import QuantumCircuit
from qiskit import QuantumCircuit
import math
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for i in range(n):
qc.h(i)
# Write your code here:
if L == (1<<n):
return qc
tmp = 0
tmp_flip = []
for i in reverse... |
QPC001_B3 | AEC6B7F9DE236 | 5 | WA | 957 ms | 91 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for i in range(n):
qc.h(i)
# Write your code here:
if L == (1<<n):
qc.x(n-1)
qc.z(n-1)
qc.x(n-1)
qc.z(n-1)
return qc
tmp = 0
... |
QPC001_B3 | AEC6B7F9DE236 | 6 | WA | 994 ms | 91 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for i in range(n):
qc.h(i)
# Write your code here:
if L == (1<<n):
qc.x(n-1)
qc.z(n-1)
qc.x(n-1)
qc.z(n-1)
return qc
tmp = 0
... |
QPC001_B3 | AEC6B7F9DE236 | 7 | AC | 1579 ms | 91 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
if L == (1<<n):
qc.x(n-1)
qc.z(n-1)
qc.x(n-1)
qc.z(n-1)
return qc
tmp = 0
tmp_flip = []
for i in reversed(r... |
QPC001_B3 | AEFEC2517543D | 1 | RE | 2532 ms | 160 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import XGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for l in range(L):
for i in range(n):
if l>>i & 1 == 0 :
qc.x(i)
qc.append(XGate().c... |
QPC001_B3 | AEFEC2517543D | 2 | RE | 1908 ms | 156 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import XGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for l in range(L):
for i in range(n):
if l>>i & 1 == 0 :
qc.x(i)
qc.append(ZGate().c... |
QPC001_B3 | AEFEC2517543D | 3 | RE | 1829 ms | 156 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for l in range(L):
for i in range(n):
if l>>i & 1 == 0 :
qc.x(i)
qc.append(ZGate().c... |
QPC001_B3 | AEFEC2517543D | 4 | RE | 2103 ms | 160 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for l in range(L):
for i in range(n):
if l>>i & 1 == 0 :
qc.x(i)
qc.append(ZGate().c... |
QPC001_B3 | AEFEC2517543D | 5 | AC | 2175 ms | 161 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
import math
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for l in range(L):
for i in range(n):
if l>>i & 1 == 0 :
qc.x(i)
... |
QPC001_B3 | AF1E827F11CD9 | 1 | WA | 1154 ms | 93 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
same = ''
for i in range(n-1, -1, -1):
nxt = L >> i & 1
if nxt == 1:
if i == n-1:
... |
QPC001_B3 | AF1E827F11CD9 | 2 | AC | 1889 ms | 95 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
same = ''
for i in range(n-1, -1, -1):
nxt = L >> i & 1
if nxt == 1:
if i == n-1:
... |
QPC001_B3 | AF2AEAD1F2B66 | 1 | AC | 2859 ms | 145 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for l in range(L):
for i in range(n):
if not (l>>i & 1):
qc.x(i)
if n==1:
... |
QPC001_B3 | AF3AC2BC82212 | 1 | UME | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import Gate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for l in range(L):
for i in range(n):
if not (l>>i & 1):
qc.x(i)
if (n==1):
... | ||
QPC001_B3 | AF3AC2BC82212 | 2 | UME | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import Gate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for l in range(L):
for i in range(n):
if not ((l>>i) & 1):
qc.x(i)
if (n==1):
... | ||
QPC001_B3 | AF3AC2BC82212 | 3 | UME | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import Gate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for l in range(L):
for i in range(n):
if not ((l>>i) & 1):
qc.x(i)
if n==1:
... | ||
QPC001_B3 | AF3AC2BC82212 | 4 | AC | 2224 ms | 163 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for l in range(L):
for i in range(n):
if not ((l>>i) & 1):
qc.x(i)
if n==1:
... |
QPC001_B3 | AF79548708498 | 1 | RE | 1741 ms | 156 MiB | '''python
from qiskit import QuantumCircuit, QuantumRegister
def create_oracle(n, L):
# Create a quantum register with n qubits
qr = QuantumRegister(n)
qc = QuantumCircuit(qr)
# Apply the oracle O
for i in range(L):
# Convert i to binary and apply the necessary gates
binary_represe... |
QPC001_B3 | AF79548708498 | 2 | RE | 2075 ms | 157 MiB | '''python
from qiskit import QuantumCircuit, QuantumRegister
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Apply a multi-controlled Z gate for states 0 to L-1
# We will use a series of CNOT gates to create the effect of a multi-controlled Z ga... |
QPC001_B3 | AF8CF426EF254 | 1 | RE | 888 ms | 90 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
def flip_phase(i):
bits = [b == "1" for b in f"{i:05b}"][::-1]
for j in range(n):
if bits[j]:
... |
QPC001_B3 | AF8CF426EF254 | 2 | RE | 1093 ms | 90 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
def flip_phase(i):
bits = [b == "1" for b in f"{i-1:05b}"][::-1]
for j in range(n):
if bits[j]:
... |
QPC001_B3 | AF8CF426EF254 | 3 | RE | 1302 ms | 93 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for i in range(n):
qc.h(i)
# Write your code here:
for i in range(L):
bits = [b == "1" for b in f"{i:05b}"[::-1]]
# print(i, b... |
QPC001_B3 | AF8CF426EF254 | 4 | RE | 1273 ms | 93 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for i in range(n):
qc.h(i)
# Write your code here:
for i in range(L):
bits = [b == "1" for b in f"{i:05b}"]
# print(i, bits)
... |
QPC001_B3 | AF8CF426EF254 | 5 | RE | 1388 ms | 93 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for i in range(n):
qc.h(i)
# Write your code here:
for i in range(L):
bits = [b == "1" for b in f"{i:05b}"[::-1]]
# print(i, b... |
QPC001_B3 | AF8CF426EF254 | 6 | RE | 1318 ms | 93 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for i in range(n):
qc.h(i)
# Write your code here:
for i in range(L):
bits = [b == "1" for b in f"{i:05b}"]
# print(i, bits)
... |
QPC001_B3 | AF8CF426EF254 | 7 | RE | 1402 ms | 94 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(L):
bits = [b == "1" for b in f"{i:05b}"]
# print(i, bits)
for j in range(n):
i... |
QPC001_B3 | AF8CF426EF254 | 8 | RE | 1299 ms | 93 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(L):
bits = [b == "1" for b in f"{i:05b}"[::-1]]
# print(i, bits)
for j in range(n):
... |
QPC001_B3 | AF8CF426EF254 | 9 | WA | 1364 ms | 93 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(L):
bits = [b == "1" for b in f"{i:05b}"]
# print(i, bits)
for j in range(n):
i... |
QPC001_B3 | AF8CF426EF254 | 10 | AC | 2651 ms | 97 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(L):
bits = [b == "1" for b in f"{i:05b}"[::-1]]
# print(i, bits)
for j in range(n):
... |
QPC001_B3 | AF948577476DF | 1 | AC | 1913 ms | 91 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import XGate, ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
L %= 1 << n
def rec(n: int, L: int, control: list[int]):
if n == 0:
return
nonlocal qc
i = n - 1
w = ... |
QPC001_B3 | AFA0EA513BE1B | 1 | RE | 1150 ms | 91 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
#for i in range(n):
# qc.h(i)
for set in range(L):
#print(format(set, f'0{n-1}b'))
if not (set >> (... |
QPC001_B3 | AFA0EA513BE1B | 2 | AC | 1879 ms | 95 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
#for i in range(n):
# qc.h(i)
if n > 1:
for set in range(L):
#print(format(set, f'0{n-1}b'))
... |
QPC001_B3 | AFB17B29114F9 | 1 | RE | 860 ms | 79 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
qc.append(ZGate().control(L - 1), range(L))
return qc
''' |
QPC001_B3 | AFB17B29114F9 | 2 | RE | 864 ms | 78 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
qc.append(z().control(L - 1), range(L))
return qc
''' |
QPC001_B3 | AFB17B29114F9 | 3 | RE | 962 ms | 79 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(L):
qc.z(L)
return qc
''' |
QPC001_B3 | AFBB9BD27D3DD | 1 | RE | 844 ms | 79 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
qc.append(ZGate().control(n - 1), range(n))
return qc
''' |
QPC001_B3 | AFBB9BD27D3DD | 2 | RE | 977 ms | 91 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
qc.append(ZGate().control(n - 1), range(n))
return qc
''' |
QPC001_B3 | AFBB9BD27D3DD | 3 | RE | 1053 ms | 90 MiB | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import ZGate
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
qc.append(ZGate().control(n - 1), range(L))
return qc
''' |
QPC001_B3 | AFC5344A7A3BD | 1 | RE | 1660 ms | 155 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
bit = "0" + str(n) + "b"
for l in range(L):
binN = format(l, bit)
for k in range(n):
if binN[n-k-1] == '0':
qc.x(k)
... |
QPC001_B3 | AFC5344A7A3BD | 2 | RE | 1694 ms | 154 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
bit = "0" + str(n) + "b"
for l in range(L):
binN = format(l, bit)
for k in range(n):
if binN[n-k-1] == '0':
qc.x(k)
... |
QPC001_B3 | AFC5344A7A3BD | 3 | RE | 1467 ms | 155 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
bit = "0" + str(n) + "b"
for l in range(L-1):
binN = format(l, bit)
for k in range(n):
if binN[n-k-1] == '0':
qc.x(k)
... |
QPC001_B3 | AFC5344A7A3BD | 4 | RE | 1518 ms | 155 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
bit = "0" + str(n) + "b"
for l in range(L-1):
binN = format(l, bit)
for k in range(n):
if binN[n-k-1] == '0':
qc.x(k)
... |
QPC001_B3 | AFC5344A7A3BD | 5 | RE | 1554 ms | 155 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
bit = "0" + str(n) + "b"
for l in range(L):
binN = format(l, bit)
for k in range(n):
if binN[n-k-1] == '0':
qc.x(k)
... |
QPC001_B3 | AFC5344A7A3BD | 6 | RE | 1627 ms | 155 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
bit = "0" + str(n) + "b"
for l in range(L):
binN = format(l, bit)
for k in range(n):
if binN[n-k-1] == '0':
qc.x(k)
... |
QPC001_B3 | AFC5344A7A3BD | 7 | RE | 1782 ms | 155 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
bit = "0" + str(n) + "b"
for l in range(L):
binN = format(l, bit)
for k in range(n):
if binN[n-k-1] == '0':
qc.x(k)
... |
QPC001_B3 | AFC5344A7A3BD | 8 | RE | 1440 ms | 154 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int, L: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for l in range(L):
for i in range(n):
#check if i-th bit of l is 0 or 1
if not((l >> i) & 1):
qc.x(i)
if n == 1:
qc.z(0)
else:... |
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