/// # Sample
/// Bell States
///
/// # Description
/// Bell states or EPR pairs are specific quantum states of two qubits
/// that represent the simplest (and maximal) examples of quantum entanglement.
///
/// This Q# program implements the four different Bell states.
namespace Sample {
open Microsoft.Quantum.Diagnostics;
open Microsoft.Quantum.Measurement;
@EntryPoint()
operation BellStates() : (Result, Result)[] {
// Allocate the two qubits that will be used to create a Bell state.
use register = Qubit[2];
// This array contains a label and a preparation operation for each one
// of the four Bell states.
let bellStateTuples = [
("|Φ+〉", PreparePhiPlus),
("|Φ-〉", PreparePhiMinus),
("|Ψ+〉", PreparePsiPlus),
("|Ψ-〉", PreparePsiMinus)
];
// Prepare all Bell states, show them using the `DumpMachine` operation
// and measure the Bell state qubits.
mutable measurements = [];
for (label, prepare) in bellStateTuples {
prepare(register);
Message($"Bell state {label}:");
DumpMachine();
set measurements += [(MResetZ(register[0]), MResetZ(register[1]))];
}
return measurements;
}
operation PreparePhiPlus(register : Qubit[]) : Unit {
ResetAll(register); // |00〉
H(register[0]); // |+0〉
CNOT(register[0], register[1]); // 1/sqrt(2)(|00〉 + |11〉)
}
operation PreparePhiMinus(register : Qubit[]) : Unit {
ResetAll(register); // |00〉
H(register[0]); // |+0〉
Z(register[0]); // |-0〉
CNOT(register[0], register[1]); // 1/sqrt(2)(|00〉 - |11〉)
}
operation PreparePsiPlus(register : Qubit[]) : Unit {
ResetAll(register); // |00〉
H(register[0]); // |+0〉
X(register[1]); // |+1〉
CNOT(register[0], register[1]); // 1/sqrt(2)(|01〉 + |10〉)
}
operation PreparePsiMinus(register : Qubit[]) : Unit {
ResetAll(register); // |00〉
H(register[0]); // |+0〉
Z(register[0]); // |-0〉
X(register[1]); // |-1〉
CNOT(register[0], register[1]); // 1/sqrt(2)(|01〉 - |10〉)
}
}microsoft/qdk
Publicmirrored fromhttps://github.com/microsoft/qdkAvailable
samples/algorithms/BellState.qs
66lines · modepreview