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November 29, 2019 04:06
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Part 2 Code
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| from pyquil import Program, get_qc, list_quantum_computers | |
| from pyquil.gates import * | |
| import numpy as np | |
| import matplotlib.pyplot as plt | |
| p = Program() | |
| ro = p.declare('ro', 'BIT', 2) | |
| p += X(0) | |
| p += Y(0) | |
| p += CNOT(0, 1) | |
| p += MEASURE(1, ro[1]) | |
| p += MEASURE(0, ro[0]) | |
| # print(p) #This line is optional | |
| qc = get_qc('9q-square-noisy-qvm') | |
| cp = qc.compile(p) | |
| results = [] | |
| for i in range(100): | |
| results.append(qc.run(cp).tolist()) | |
| print(results) | |
| unique = [] | |
| for x in results: | |
| if x not in unique: | |
| unique.append(x) | |
| tally = [] | |
| for i in range(len(unique)): | |
| print(str(unique[i]) + " = " + str(results.count(unique[i])) + " (" +str(((results.count(unique[i]))/len(results))*100) + " %)") | |
| tally.append(results.count(unique[i])/100) |
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