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 |
|---|---|---|---|---|---|---|
QPC002_B4 | A313CE010348F | 9 | WA | 1169 ms | 144 MiB | '''python
from qiskit import QuantumCircuit
from math import pi, floor
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n):
qc.h(i)
r_count = 2
for k in range(i+1, n):
qc.cp(2*pi/(2**r_count), k, i)
r_count+=... |
QPC002_B4 | A313CE010348F | 10 | WA | 1303 ms | 182 MiB | '''python
from qiskit import QuantumCircuit
from math import pi, floor
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n):
qc.h(i)
r_count = 2
for k in range(i+1, n):
qc.cp(2*pi/(2**r_count), k, i)
r_count+=... |
QPC002_B4 | A313CE010348F | 11 | WA | 1400 ms | 141 MiB | '''python
from qiskit import QuantumCircuit
from math import pi, floor
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n):
qc.h(i)
r_count = 2
for k in range(i+1, n):
qc.cp(2*pi/(2**r_count), i, k)
r_count+=... |
QPC002_B4 | A313CE010348F | 12 | WA | 1277 ms | 153 MiB | '''python
from qiskit import QuantumCircuit
from math import pi, floor
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n):
qc.h(i)
r_count = 2
for k in range(i+1, n):
qc.cp(2*pi/(2**r_count), i, k)
r_count+=... |
QPC002_B4 | A313CE010348F | 13 | WA | 1176 ms | 140 MiB | '''python
from qiskit import QuantumCircuit
from math import pi, floor
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n):
qc.h(i)
r_count = 2
for k in range(i+1, n):
qc.cp(2*pi/(2**r_count), i, k)
r_count+=... |
QPC002_B4 | A313CE010348F | 14 | WA | 1087 ms | 141 MiB | '''python
from qiskit import QuantumCircuit
from math import pi, floor
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n):
qc.h(i)
r_count = 2
for k in range(i+1, n):
qc.cp(2*pi/(2**r_count), i, k)
r_count+=... |
QPC002_B4 | A313CE010348F | 15 | WA | 1241 ms | 141 MiB | '''python
from qiskit import QuantumCircuit
from math import pi, floor
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n):
qc.h(i)
r_count = 1
for k in range(i+1, n):
qc.cp(pi/(2**r_count), i, k)
r_count+=1
... |
QPC002_B4 | A313CE010348F | 16 | WA | 1123 ms | 154 MiB | '''python
from qiskit import QuantumCircuit
from math import pi, floor
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n):
qc.h(i)
r_count = 1
for k in range(i+1, n):
qc.cp(pi/(2**r_count), i, k)
r_count+=1
... |
QPC002_B4 | A313CE010348F | 17 | WA | 1421 ms | 183 MiB | '''python
from qiskit import QuantumCircuit
from math import floor
from numpy import pi
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n):
qc.h(i)
r_count = 1
for k in range(i+1, n):
qc.cp(pi/(2**r_count), i, k)
... |
QPC002_B4 | A313CE010348F | 18 | UME | '''python
from qiskit import QuantumCircuit
from math import floor
from numpy import p
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n-1, -1, -1):
qc.h(i)
r_count = 1
for k in range(i-1, -1, -1):
qc.cp(pi/(2**r_count)... | ||
QPC002_B4 | A313CE010348F | 19 | AC | 1778 ms | 183 MiB | '''python
from qiskit import QuantumCircuit
from math import floor
from numpy import pi
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n-1, -1, -1):
qc.h(i)
r_count = 1
for k in range(i-1, -1, -1):
qc.cp(pi/(2**r_count... |
QPC002_B4 | A35A41FC9B255 | 1 | WA | 1259 ms | 144 MiB | '''python
from qiskit import QuantumCircuit, QuantumRegister
import qiskit.circuit.library as qlib
import numpy as np
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for i in range(n):
qc.h(i)
for j in range(i+1, n):
qc.cp(np.pi / (2 ** (j - i)), j, i)
for i in ra... |
QPC002_B4 | A35A41FC9B255 | 2 | WA | 1121 ms | 141 MiB | '''python
from qiskit import QuantumCircuit, QuantumRegister
import qiskit.circuit.library as qlib
import numpy as np
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for i in range(n):
qc.h(i)
for j in range(i+1, n):
qc.cp(2*np.pi / (2 ** (j - i)), j, i)
for i in ... |
QPC002_B4 | A35A41FC9B255 | 3 | WA | 1136 ms | 141 MiB | '''python
from qiskit import QuantumCircuit, QuantumRegister
import qiskit.circuit.library as qlib
import numpy as np
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for i in range(n):
qc.h(i)
for j in range(i+1, n):
qc.cp(2*np.pi / (2 ** (j - i)), j, i)
retur... |
QPC002_B4 | A35A41FC9B255 | 4 | WA | 1554 ms | 154 MiB | '''python
from qiskit import QuantumCircuit, QuantumRegister
import qiskit.circuit.library as qlib
import numpy as np
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for i in range(n):
qc.h(i)
for j in range(i+1, n):
qc.cp(np.pi / (2 ** (j - i)), j, i)
return ... |
QPC002_B4 | A35A41FC9B255 | 5 | RE | 1333 ms | 140 MiB | '''python
from qiskit import QuantumCircuit, QuantumRegister
import qiskit.circuit.library as qlib
import numpy as np
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n):
for j in range(i + 1, n):
if not (L >> j) & 1:
qc.... |
QPC002_B4 | A35A41FC9B255 | 6 | WA | 1269 ms | 142 MiB | '''python
from qiskit import QuantumCircuit, QuantumRegister
import qiskit.circuit.library as qlib
import numpy as np
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n):
for j in range(i + 1, n):
qc.x(j)
qc.x(i)
if i == ... |
QPC002_B4 | A35A41FC9B255 | 7 | WA | 1220 ms | 143 MiB | '''python
from qiskit import QuantumCircuit, QuantumRegister
import qiskit.circuit.library as qlib
import numpy as np
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for i in range(n):
qc.h(i)
for j in range(i+1, n):
qc.cp(np.pi / (2 ** (j - i)), j, i)
for i i... |
QPC002_B4 | A35A41FC9B255 | 8 | WA | 1053 ms | 141 MiB | '''python
from qiskit import QuantumCircuit, QuantumRegister
import qiskit.circuit.library as qlib
import numpy as np
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for i in range(n - 1, -1, -1):
for j in range(n - 1, i, -1):
qc.cp(np.pi / (2 ** (j - i)), j, i)
... |
QPC002_B4 | A35A41FC9B255 | 9 | AC | 2061 ms | 183 MiB | '''python
from qiskit import QuantumCircuit, QuantumRegister
import qiskit.circuit.library as qlib
import numpy as np
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for i in range(n - 1, -1, -1):
for j in range(n - 1, i, -1):
qc.cp(np.pi / (2 ** (j - i)), j, i)
... |
QPC002_B4 | A36A2FCD3D29D | 1 | RE | 1183 ms | 150 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
#Applying QFT
for i in range(n):
qc.h(n-i-1)
for j in range(1, n-i):
qc.cp(math.pi/2**j, n-i-j-1, n-i-1)
#Swap qubits to reverse the... |
QPC002_B4 | A36A2FCD3D29D | 2 | AC | 1840 ms | 152 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
#Applying QFT
for i in range(n):
qc.h(n-i-1)
for j in range(1, n-i):
qc.cp(math.pi/2**j, n-i-j-1, n-i-1)
#Swap qubits ... |
QPC002_B4 | A3B97FDE3F903 | 1 | RE | 1917 ms | 183 MiB | '''python
from qiskit import QuantumCircuit
def rk(qc, qubit1, qubit2, k):
qc.cp(2 * 3.14 / 2**k, qubit1, qubit2)
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
qc.x(1)
for i in range(n):
qc.h(i)
for j in range(2, 2 + n - i - 1):
rk(qc, i, i + j - 1, j)
ret... |
QPC002_B4 | A3B97FDE3F903 | 2 | WA | 1184 ms | 141 MiB | '''python
from qiskit import QuantumCircuit
from math import pi
def rk(qc, qubit1, qubit2, k):
qc.cp(2 * pi / 2**k, qubit1, qubit2)
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# qc.x(1)
for i in range(n):
qc.h(i)
for j in range(i + 1, n):
rk(qc, i, j, j - i ... |
QPC002_B4 | A3B97FDE3F903 | 3 | WA | 1502 ms | 141 MiB | '''python
from qiskit import QuantumCircuit
from math import pi
def rk(qc, qubit1, qubit2, k):
qc.cp(2 * pi / 2**k, qubit1, qubit2)
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# qc.x(1)
for i in reversed(range(n)):
qc.h(i)
for j in range(i + 1, n):
rk(qc, i,... |
QPC002_B4 | A3B97FDE3F903 | 4 | AC | 1765 ms | 183 MiB | '''python
from qiskit import QuantumCircuit
from math import pi
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for j in reversed(range(n)):
qc.h(j)
for k in reversed(range(0, j)):
lam = pi * (2.0 ** (k - j))
qc.cp(lam, j, k)
for i in range(n // 2):
... |
QPC002_B4 | A3E9FC25084A2 | 1 | RE | 1157 ms | 150 MiB | '''python
from qiskit import QuantumCircuit
from numpy import pi
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
t = pi/(1<<n)
for i in range(n):
cp.p(t*(1<<i),i)
return qc
''' |
QPC002_B4 | A3E9FC25084A2 | 2 | WA | 1321 ms | 152 MiB | '''python
from qiskit import QuantumCircuit
from numpy import pi
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
t = pi/(1<<n)
for i in range(n):
qc.p(t*(1<<i),i)
return qc
''' |
QPC002_B4 | A3E9FC25084A2 | 3 | WA | 1403 ms | 152 MiB | '''python
from qiskit import QuantumCircuit
from numpy import pi
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
t = pi/(1<<n)
for i in range(n):
qc.p(t,i)
return qc
''' |
QPC002_B4 | A3EB64EFCB732 | 1 | UME | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import QFT
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
qc = qc.compose(QFT(n))
return qc
''' | ||
QPC002_B4 | A3EB64EFCB732 | 2 | UME | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import QFT
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
data_qubits = n
for i in range(data_qubits):
qc.h(qr_data[-1-i])
for j in range(i+1,data_qubits):
qc.cp(2 *... | ||
QPC002_B4 | A3EB64EFCB732 | 3 | RE | 1176 ms | 140 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
data_qubits = n
for i in range(data_qubits):
qc.h(qr_data[-1-i])
for j in range(i+1,data_qubits):
qc.cp(2 * math.pi / 2**(j+1-i), qr_data[-1-j], q... |
QPC002_B4 | A3EB64EFCB732 | 4 | RE | 1133 ms | 140 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
data_qubits = n
qr_data =qc.qubits
for i in range(data_qubits):
qc.h(qr_data[-1-i])
for j in range(i+1,data_qubits):
qc.cp(2 * math.pi / 2**(j+... |
QPC002_B4 | A3EB64EFCB732 | 5 | WA | 1377 ms | 142 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
data_qubits = n
qr_data =qc.qubits
for i in range(data_qubits):
qc.h(qr_data[-1-i])
for j in range(i+1,data_qubits):
qc.cp(2 * math... |
QPC002_B4 | A3EB64EFCB732 | 6 | WA | 1155 ms | 142 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
data_qubits = n
qr_data =qc.qubits
for i in range(data_qubits-1,-1,-1):
qc.h(qr_data[-1-i])
for j in range(i+1,data_qubits):
qc.cp... |
QPC002_B4 | A3EB64EFCB732 | 7 | WA | 1441 ms | 140 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n):
qc.h(i)
for j in range(2,i+2):
qc.cp(2 * math.pi / 2**j, i-j+1, i)
return qc
''' |
QPC002_B4 | A3EB64EFCB732 | 8 | WA | 1292 ms | 182 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n):
i=-i-1
qc.h(i)
for j in range(2,i+2):
j=-j-1
qc.cp(2 * math.pi / 2**j, i-j+1, i)
return qc
''' |
QPC002_B4 | A3EB64EFCB732 | 9 | RE | 1092 ms | 140 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n):
i2=n-i-1
qc.h(i2)
for j in range(2,i+2):
j2=n-j
# print(i,j,i2,j2)
qc.cp(2 * math.pi / 2... |
QPC002_B4 | A3EB64EFCB732 | 10 | WA | 1102 ms | 140 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n):
qc.h(i)
for j in range(2,i+2):
qc.cp(2 * math.pi / 2**j, i-(j-1), i)
return qc
''' |
QPC002_B4 | A3EB64EFCB732 | 11 | WA | 1211 ms | 142 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n):
qc.h(i)
for j in range(2,i+2):
qc.cp(2 * math.pi / 2**j, i-(j-1), i)
for i in range(n // 2):
qc.swap(i, n - ... |
QPC002_B4 | A3EB64EFCB732 | 12 | WA | 1223 ms | 153 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# QFTのコア部分を実装
for i in range(n):
qc.h(i) # Hadamard gate on qubit i
for j in range(i + 1, n):
# Controlled phase rotation with angle π/(2^(j-i))
... |
QPC002_B4 | A3EB64EFCB732 | 13 | WA | 1116 ms | 141 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# QFTのコア部分を実装
for i in range(n):
qc.h(i) # Hadamard gate on qubit i
for j in range(i + 1, n):
# Controlled phase rotation with angle π/(2^(j-i))
... |
QPC002_B4 | A3EB64EFCB732 | 14 | WA | 1414 ms | 140 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# QFTのコア部分を実装
for i in range(n):
i2=n-i-1
qc.h(i2) # Hadamard gate on qubit i
for j in range(i + 1, n):
j2=n-j-1
# Controlled phase ... |
QPC002_B4 | A3EB64EFCB732 | 15 | WA | 1131 ms | 141 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# QFTのコア部分を実装
for i in range(n):
i2=n-i-1
qc.h(i) # Hadamard gate on qubit i
for j in range(i + 1, n):
j2=n-j-1
# Controlled phase r... |
QPC002_B4 | A42235C3B81D0 | 1 | RE | 1666 ms | 141 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
i = 0
while n-1-i>i:
qc.swap(i,n-1-i)
i += 1
qc.append(QFTGate(n),range(n))
i = 0
while n-1-i>i:
qc.swap(i,n-1-i)
i += 1
retur... |
QPC002_B4 | A42235C3B81D0 | 2 | UME | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import QFTGate
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
i = 0
while n-1-i>i:
qc.swap(i,n-1-i)
i += 1
qc.append(QFTGate(n),range(n))
i = 0
while n-1-i>i:
... | ||
QPC002_B4 | A42235C3B81D0 | 3 | TLE | 3000 ms | 150 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in reversed(range(n)):
qc.h(i)
for j in reversed(range(i)):
qc.cp(math.pi/(1<<(i-j)),j,i)
i = 0
while i<n-i-1:
qc.swa... |
QPC002_B4 | A42235C3B81D0 | 4 | AC | 2057 ms | 143 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in reversed(range(n)):
qc.h(i)
for j in reversed(range(i)):
qc.cp(math.pi/(1<<(i-j)),j,i)
i = 0
while i<n-i-1:
qc.swa... |
QPC002_B4 | A4B2B997E1120 | 1 | WA | 1336 ms | 182 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
qc.h(0)
for i in range(n-1):
for j in range(i+1, n):
qc.cp(2*math.pi/2**(1+j-i), j, i)
qc.h(i+1)
return qc
''' |
QPC002_B4 | A4B2B997E1120 | 2 | RE | 1068 ms | 140 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for j in range(n):
for k in range(j):
qc.cu1(2 * np.pi / 2**(j - k), k, j)
qc.h(j)
return qc
"""
qc.h(0)
for i in range(n-1... |
QPC002_B4 | A4B2B997E1120 | 3 | RE | 1214 ms | 140 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for j in range(n):
for k in range(j):
qc.cp(2 * np.pi / 2**(j - k), k, j)
qc.h(j)
return qc
"""
qc.h(0)
for i in range(n-1)... |
QPC002_B4 | A4B2B997E1120 | 4 | WA | 1157 ms | 140 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for j in range(n):
for k in range(j):
qc.cp(2 * math.pi / 2**(j - k), k, j)
qc.h(j)
return qc
"""
qc.h(0)
for i in range(n-... |
QPC002_B4 | A4B2B997E1120 | 5 | RE | 1807 ms | 140 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n):
qc.h(i)
for j in range(i+1, n):
qc.cp(math.pi / float(2**(k-j)), j, i)
return qc
''' |
QPC002_B4 | A4B2B997E1120 | 6 | WA | 1176 ms | 153 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n):
qc.h(i)
for j in range(i+1, n):
qc.cp(math.pi / float(2**(j-i)), j, i)
return qc
''' |
QPC002_B4 | A4B2B997E1120 | 7 | WA | 1584 ms | 141 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n):
qc.h(i)
for j in range(i+1, n):
qc.cp(math.pi / float(2**(j-i)), j, i)
qc.barrier()
return qc
''' |
QPC002_B4 | A4B2B997E1120 | 8 | RE | 1062 ms | 140 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n):
qc.h(i)
for j in range(i+1, n):
qc.cu1(math.pi / float(2**(j-i)), j, i)
return qc
''' |
QPC002_B4 | A4B2B997E1120 | 9 | RE | 1066 ms | 140 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n):
qc.h(i)
for j in range(i+1, n):
qc.cp(math.pi / float(2**(j-i)), j, i)
for i in range(n//2):
qc.swap(i, n-i)... |
QPC002_B4 | A4B2B997E1120 | 10 | WA | 1164 ms | 141 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n):
qc.h(i)
for j in range(i+1, n):
qc.cp(math.pi / float(2**(j-i)), j, i)
#for i in range(n//2):
# qc.swap(i, n-... |
QPC002_B4 | A4B2B997E1120 | 11 | WA | 1558 ms | 154 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n):
qc.h(i)
for j in range(i+1, n):
qc.cp(math.pi / float(2**(j-i)), j, i)
for i in range(n//2):
qc.swap(i, n-i-... |
QPC002_B4 | A4B2B997E1120 | 12 | AC | 1566 ms | 183 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n//2):
qc.swap(i, n-i-1)
for i in range(n):
qc.h(i)
for j in range(i+1, n):
qc.cp(math.pi / float(2**(j-i)), j, ... |
QPC002_B4 | A4D9E0692F1D6 | 1 | RE | '''python
from qiskit import QuantumCircuit
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
def qft_rotations(circuit, n):
"""Performs qft on the first n qubits in circuit (without swaps)"""
if n == 0:
return circuit
n -= 1
circui... | ||
QPC002_B4 | A4D9E0692F1D6 | 2 | RE | '''python
from qiskit import QuantumCircuit
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
def qft_rotations(circuit, n):
"""Performs qft on the first n qubits in circuit (without swaps)"""
if n == 0:
return circuit
n -= 1
circui... | ||
QPC002_B4 | A4D9E0692F1D6 | 3 | RE | 1197 ms | 140 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
def qft_rotations(circuit, n):
"""Performs qft on the first n qubits in circuit (without swaps)"""
if n == 0:
return circuit
n -= 1
ci... |
QPC002_B4 | A4D9E0692F1D6 | 4 | RE | 1094 ms | 140 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
def qft_rotations(circuit, n):
"""Performs qft on the first n qubits in circuit (without swaps)"""
if n == 0:
return circuit
n -= 1
ci... |
QPC002_B4 | A4D9E0692F1D6 | 5 | RE | 1080 ms | 140 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int) -> QuantumCircuit:
circuit = QuantumCircuit(n)
# Write your code here:
#
# We start with the most significant bit
#
for k in range(n):
j = n - k
# Add the Hadamard to qubit j-1
circuit.h(q[j-1])
#
... |
QPC002_B4 | A4D9E0692F1D6 | 6 | AC | 2009 ms | 183 MiB | '''python
from qiskit import QuantumCircuit
import numpy as np
def solve(n: int) -> QuantumCircuit:
circuit = QuantumCircuit(n)
# Write your code here:
#
q = [i for i in range(n)]
# We start with the most significant bit
#
for k in range(n):
j = n - k
# Add the Hadamard to ... |
QPC002_B4 | A4EFE2435FC18 | 1 | AC | 2254 ms | 161 MiB | '''python
from qiskit import QuantumCircuit
def solve(n) -> QuantumCircuit:
from numpy import pi
qc = QuantumCircuit(n)
for i in reversed(range(n)):
qc.h(i)
for j in reversed(range(i)):
qc.cp(pi / 2**(i-j), j, i)
i, j = 0, n - 1
while i < j:
qc.swap(i, j)
i, j = i + 1, j - 1
return qc
''' |
QPC002_B4 | A541EEE0FB94E | 1 | RE | 1791 ms | 156 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Apply QFT
for j in range(n):
# Apply Hadamard gate to the j-th qubit
qc.h(j)
# Apply controlled phase rotations
for k in range(j + 1, n):
qc.cp... |
QPC002_B4 | A541EEE0FB94E | 2 | WA | 1984 ms | 161 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Apply QFT
for j in range(n):
# Apply Hadamard gate to the j-th qubit
qc.h(j)
# Apply controlled phase rotations
for k in range(j + 1, n):
... |
QPC002_B4 | A541EEE0FB94E | 3 | WA | 1866 ms | 160 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Apply Hadamard gates
for j in range(n):
qc.h(j)
# Apply controlled phase rotations
for k in range(j + 1, n):
angle = math.pi / (2 ** (k - j... |
QPC002_B4 | A552062457EEC | 1 | RE | 1098 ms | 140 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for j in range(n):
qc.h(j)
for k in range(j + 1, n):
qc.crz(2 * math.pi / (2 ** (k - j + 1)), k, j)
for j in range(n // 2):
qc.swap(j, n - j - 1)
return qc... |
QPC002_B4 | A552062457EEC | 2 | RE | 1157 ms | 140 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for i in range(n):
qc.h(n - 1 - i)
for j in range(i + 1, n):
qc.crz(2 * math.pi / (2 ** (j - i + 1)), n - j - 1, n - i - 1)
for i in range(n // 2):
qc.swap(i, n - i... |
QPC002_B4 | A552062457EEC | 3 | RE | 1503 ms | 140 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for i in range(n):
qc.h(n - 1 - i)
for j in range(i + 1, n):
qc.cp(2 * math.pi / (2 ** (j - i + 1)), n - j - 1, n - i - 1)
for i in range(n // 2):
qc.swap(i, n - i ... |
QPC002_B4 | A552062457EEC | 4 | WA | 1468 ms | 141 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for i in range(n):
qc.h(i)
for j in range(i + 1, n):
qc.crz(2 * math.pi / (2 ** (j - i + 1)), n - j - 1, n - i - 1)
for i in range(n // 2):
qc.swap(i, n ... |
QPC002_B4 | A552062457EEC | 5 | WA | 1716 ms | 154 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for i in range(n):
qc.h(i)
for j in range(i + 1, n):
qc.cp(2 * math.pi / (2 ** (j - i + 1)), n - j - 1, n - i - 1)
for i in range(n // 2):
qc.swap(i, n -... |
QPC002_B4 | A552062457EEC | 6 | AC | 1702 ms | 183 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
for i in range(n):
qc.h(n - i - 1)
for j in range(i + 1, n):
qc.cp(2 * math.pi / (2 ** (j - i + 1)), n - j - 1, n - i - 1)
for i in range(n // 2):
qc.swa... |
QPC002_B4 | A5532907610C9 | 1 | RE | 1068 ms | 140 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n - 1, -1, -1):
qc.h(i)
for j in range(i - 1, -1, -1):
qc.cp(pi / (1 << (i - j)), j, i)
for i in range(n // 2):
j = n - i... |
QPC002_B4 | A5532907610C9 | 2 | AC | 1834 ms | 183 MiB | '''python
from qiskit import QuantumCircuit
from math import pi
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n - 1, -1, -1):
qc.h(i)
for j in range(i - 1, -1, -1):
qc.cp(pi / (1 << (i - j)), j, i)
for i in range(n // 2)... |
QPC002_B4 | A5674CBA99F4B | 1 | RE | 1076 ms | 140 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
n -= 1
qc.h(n)
for q in range(n):
qc.cp(pi/2**(n-q),q,n)
return qc
''' |
QPC002_B4 | A5674CBA99F4B | 2 | UME | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import U1Gate, pi
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
n -= 1
qc.h(n)
for q in range(n):
qc.cp(pi/2**(n-q),q,n)
return qc
''' | ||
QPC002_B4 | A5674CBA99F4B | 3 | UME | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library.standard_gates import HGate, CPGate
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
n -= 1
qc.append(HGate(), [n])
for q in range(n):
qc.append(CPGate(math.pi/2**(n-q)), ... | ||
QPC002_B4 | A5957A9EA0A81 | 1 | AC | 1567 ms | 182 MiB | '''python
from qiskit import QuantumCircuit
import math
def r(qc: QuantumCircuit, control: int, target: int, l: int):
qc.cp(2*math.pi/(1<<l), control, target)
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for i in range(n//2):
qc.cx(i, n-i-1)
qc.c... |
QPC002_B4 | A598721E6AC87 | 1 | RE | 1408 ms | 140 MiB | '''python
from qiskit import QuantumCircuit
def QFT(qc):
n = qc.num_qubits
for i in reversed(range(n)):
qc.h(i)
for j in reversed(range(i)):
qc.cp(math.pi / 2 ** (i - j), j, i)
for i in range(n // 2):
qc.swap(i, n - i - 1)
def solve(n: int) -> QuantumCircuit:
qc = Q... |
QPC002_B4 | A5B77FE759525 | 1 | UME | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import QFT
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
qc.append(QFT(n),range(n))
return qc
''' | ||
QPC002_B4 | A5B77FE759525 | 2 | UME | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import QFT
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
qc.append(QFT(n),range(n))
return qc
''' | ||
QPC002_B4 | A5B77FE759525 | 3 | UME | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import QFT
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
qc = QuantumCircuit(n)
for i in range(n):
qc.h(i)
for j in range(i+1, n):
qc.cp(math.pi/(2**(j-i)), j, i)
... | ||
QPC002_B4 | A5B77FE759525 | 4 | RE | 1203 ms | 140 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
qc = QuantumCircuit(n)
for i in range(n):
qc.h(i)
for j in range(i+1, n):
qc.cp(math.pi/(2**(j-i)), j, i)
return qc
''' |
QPC002_B4 | A5B77FE759525 | 5 | WA | 1039 ms | 140 MiB | '''python
from qiskit import QuantumCircuit
import math
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
qc = QuantumCircuit(n)
for i in range(n):
qc.h(i)
for j in range(i+1, n):
qc.cp(math.pi/(2**(j-i)), j, i)
return qc
''' |
QPC002_B4 | A6615DB6172BF | 1 | RE | 1554 ms | 140 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for j in reversed(range(n)):
qc.h(j)
for k in reversed(range(j)):
qc.cp(np.pi/2**(j-k), k, j)
qc.barrier()
for i in range(n//2):
... |
QPC002_B4 | A6615DB6172BF | 2 | RE | 1068 ms | 140 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for j in reversed(range(n)):
qc.h(j)
for k in reversed(range(j)):
qc.cp(np.pi/2**(j-k), k, j)
for i in range(n//2):
qc.swap(i, n-i-1)
... |
QPC002_B4 | A6615DB6172BF | 3 | UME | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import QFT
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
return QFT(n)
''' | ||
QPC002_B4 | A6615DB6172BF | 4 | UME | '''python
from qiskit import QuantumCircuit
from qiskit.circuit.library import QFT
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for j in reversed(range(n)):
qc.h(j)
for k in range(j):
qc.cp(np.pi/2**(j-k), k, j)
qc.barrier()
f... | ||
QPC002_B4 | A6615DB6172BF | 5 | RE | 1124 ms | 140 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for j in reversed(range(n)):
qc.h(j)
for k in range(j):
qc.cp(np.pi/2**(j-k), k, j)
qc.barrier()
for i in range(n//2):
qc.swap(i,... |
QPC002_B4 | A6615DB6172BF | 6 | RE | 1519 ms | 140 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for j in reversed(range(n)):
qc.h(j)
for k in range(j):
qc.cp(np.pi/2**(j-k), k, j)
for i in range(n//2):
qc.swap(i, n-i-1)
return q... |
QPC002_B4 | A6615DB6172BF | 7 | RE | 1290 ms | 140 MiB | '''python
from qiskit import QuantumCircuit
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for j in range(n):
qc.h(j)
for k in range(j):
qc.cp(np.pi/2**(j-k), k, j)
for i in range(n//2):
qc.swap(i, n-i-1)
return qc
''' |
QPC002_B4 | A6615DB6172BF | 8 | WA | 1353 ms | 142 MiB | '''python
from qiskit import QuantumCircuit
from math import pi
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for j in range(n):
qc.h(j)
for k in range(j):
qc.cp(pi/2**(j-k), k, j)
for i in range(n//2):
qc.swap(i, n-i-1)
r... |
QPC002_B4 | A6615DB6172BF | 9 | WA | 1255 ms | 140 MiB | '''python
from qiskit import QuantumCircuit
from math import pi
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for j in range(n):
qc.h(j)
for k in reversed(range(j)):
qc.cp(pi/2**(j-k), k, j)
for i in range(n//2):
qc.swap(i, n-i... |
QPC002_B4 | A6615DB6172BF | 10 | WA | 1378 ms | 140 MiB | '''python
from qiskit import QuantumCircuit
from math import pi
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for j in reversed(range(n)):
qc.h(j)
for k in range(j):
qc.cp(pi/2**(j-k), k, j)
#for i in range(n//2):
# qc.swap(i, n... |
QPC002_B4 | A6615DB6172BF | 11 | DLE | 1106 ms | 141 MiB | '''python
from qiskit import QuantumCircuit
from math import pi
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for j in reversed(range(n)):
qc.h(j)
for k in range(j):
qc.cp(pi/2**(j-k), k, j)
for i in range(n//2):
qc.swap(i, n-i... |
QPC002_B4 | A6615DB6172BF | 12 | WA | 1091 ms | 141 MiB | '''python
from qiskit import QuantumCircuit
from math import pi
def solve(n: int) -> QuantumCircuit:
qc = QuantumCircuit(n)
# Write your code here:
for j in range(n):
qc.h(j)
for k in range(j):
qc.cp(pi/2**(j-k), k, j)
#for i in range(n//2):
# qc.swap(i, n-i-1)
... |
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