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-rw-r--r--libpsi-core/src/core/circuit.rs16
-rw-r--r--libpsi-core/src/core/component.rs16
-rw-r--r--libpsi-core/src/core/runtime.rs16
-rw-r--r--libpsi-core/src/maths/matrix.rs2
-rw-r--r--libpsi-core/src/runtimes/basic_rt.rs90
5 files changed, 30 insertions, 110 deletions
diff --git a/libpsi-core/src/core/circuit.rs b/libpsi-core/src/core/circuit.rs
index 183c4a2..635066a 100644
--- a/libpsi-core/src/core/circuit.rs
+++ b/libpsi-core/src/core/circuit.rs
@@ -1,14 +1,14 @@
-use super::{ClassicalRegister, QuantumBit, QuantumGate};
+use super::{ClassicalRegister, QuantumGate, QuantumRegister};
#[derive(Clone)]
pub struct QuantumCircuitInstruction {
- pub target_indices: Vec<usize>,
+ pub target_bit: usize,
pub control_indices: Vec<usize>,
pub gate: QuantumGate,
}
pub struct QuantumCircuit {
- quantum_bits: Vec<QuantumBit>,
+ quantum_register: QuantumRegister,
classical_register: ClassicalRegister,
instructions: Vec<QuantumCircuitInstruction>,
}
@@ -16,22 +16,22 @@ pub struct QuantumCircuit {
impl QuantumCircuit {
pub fn new(quantum_bit_count: usize, classical_bit_count: usize) -> QuantumCircuit {
QuantumCircuit {
- quantum_bits: vec![QuantumBit::state_0(); quantum_bit_count],
+ quantum_register: QuantumRegister::new(quantum_bit_count),
classical_register: ClassicalRegister::new(classical_bit_count),
instructions: Vec::new(),
}
}
- pub fn apply(&mut self, gate: &QuantumGate, control_bits: &[usize], target_bits: &[usize]) {
+ pub fn apply(&mut self, gate: &QuantumGate, control_bits: &[usize], target_bit: usize) {
self.instructions.push(QuantumCircuitInstruction {
gate: gate.clone(),
- target_indices: target_bits.to_vec(),
+ target_bit,
control_indices: control_bits.to_vec(),
});
}
- pub fn get_quantum_bits(&self) -> Vec<QuantumBit> {
- self.quantum_bits.clone()
+ pub fn get_quantum_register(&self) -> QuantumRegister {
+ self.quantum_register.clone()
}
pub fn get_classical_registers(&self) -> ClassicalRegister {
diff --git a/libpsi-core/src/core/component.rs b/libpsi-core/src/core/component.rs
index be5fbca..d2dc781 100644
--- a/libpsi-core/src/core/component.rs
+++ b/libpsi-core/src/core/component.rs
@@ -4,7 +4,8 @@ use crate::{complex, ColumnVector, Complex, Matrix, Vector, VectorMatrix};
use core::ops;
pub type QuantumBit = ColumnVector<Complex<f64>>;
-pub type QuantumGate = (&'static str, Matrix<Complex<f64>>);
+pub type QuantumState = Matrix<Complex<f64>>;
+pub type QuantumGate = (&'static str, QuantumState);
#[macro_export]
macro_rules! count {
@@ -41,6 +42,7 @@ pub struct ClassicalRegister {
bits: Vec<i32>,
}
+#[derive(Clone)]
pub struct QuantumRegister {
state: ColumnVector<Complex<f64>>,
qubits: Vec<QuantumBit>,
@@ -101,6 +103,10 @@ impl QuantumRegister {
self.state = ColumnVector::from_matrix(&new_result);
}
+ pub fn new(count: usize) -> QuantumRegister {
+ QuantumRegister::from(&mut vec![QuantumBit::state_0(); count])
+ }
+
pub fn from(bits: &mut [QuantumBit]) -> QuantumRegister {
let mut register = QuantumRegister {
qubits: bits.to_vec(),
@@ -111,10 +117,6 @@ impl QuantumRegister {
register
}
- pub fn measure(&self, classical_register: &mut ClassicalRegister) {
- classical_register.set_bits(self.qubits.iter().map(|qubit| qubit.measure()).collect());
- }
-
pub fn get_bits(&self) -> Vec<QuantumBit> {
self.qubits.clone()
}
@@ -122,10 +124,6 @@ impl QuantumRegister {
pub fn get_state(&self) -> ColumnVector<Complex<f64>> {
self.state.clone()
}
-
- pub fn apply(&self, gate: &QuantumGate) -> QuantumBit {
- self.state.mul_matrix(&gate.1).unwrap()
- }
}
impl ops::Index<usize> for QuantumRegister {
diff --git a/libpsi-core/src/core/runtime.rs b/libpsi-core/src/core/runtime.rs
index 0937f3c..19ac191 100644
--- a/libpsi-core/src/core/runtime.rs
+++ b/libpsi-core/src/core/runtime.rs
@@ -1,15 +1,15 @@
-use super::{ClassicalRegister, QuantumBit, QuantumCircuit};
+use super::{ClassicalRegister, QuantumCircuit, QuantumRegister};
#[allow(unused)]
-pub struct ExecutationData {
- pub quantum_states: Vec<QuantumBit>,
+pub struct ExecutionData {
+ pub quantum_register: QuantumRegister,
pub classical_states: ClassicalRegister,
}
-impl ExecutationData {
- pub fn new(quantum_states: Vec<QuantumBit>, classical_states: ClassicalRegister) -> Self {
- ExecutationData {
- quantum_states,
+impl ExecutionData {
+ pub fn new(quantum_register: QuantumRegister, classical_states: ClassicalRegister) -> Self {
+ ExecutionData {
+ quantum_register,
classical_states,
}
}
@@ -21,5 +21,5 @@ pub trait RuntimeBase {
pub trait Runtime<'a, T: RuntimeBase = Self> {
fn new(circuit: &'a QuantumCircuit) -> Self;
- fn execute(&self, repeat: usize) -> Vec<ExecutationData>;
+ fn execute(&self, repeat: usize) -> Vec<ExecutionData>;
}
diff --git a/libpsi-core/src/maths/matrix.rs b/libpsi-core/src/maths/matrix.rs
index 74857d1..636df08 100644
--- a/libpsi-core/src/maths/matrix.rs
+++ b/libpsi-core/src/maths/matrix.rs
@@ -174,7 +174,7 @@ impl<T: Float + fmt::Display> fmt::Display for Matrix<T> {
fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
let max_width = (0..self.rows)
.flat_map(|i| (0..self.cols).map(move |j| self.get(i, j)))
- .map(|x| format!("{:.2}", x).split('.').next().unwrap().len());
+ .map(|x| format!("{:.2}", x).split('.').next().unwrap().len())
.max()
.unwrap_or(0);
diff --git a/libpsi-core/src/runtimes/basic_rt.rs b/libpsi-core/src/runtimes/basic_rt.rs
index 5cc1535..20befba 100644
--- a/libpsi-core/src/runtimes/basic_rt.rs
+++ b/libpsi-core/src/runtimes/basic_rt.rs
@@ -1,7 +1,4 @@
-use crate::{
- ColumnVector, Complex, ExecutationData, Numeric, QuantumBit, QuantumCircuit, QuantumRegister,
- Runtime, RuntimeBase, Vector,
-};
+use crate::{ExecutionData, QuantumCircuit, Runtime, RuntimeBase};
pub struct BasicRT<'a> {
circuit: &'a QuantumCircuit,
@@ -13,98 +10,23 @@ impl<'a> RuntimeBase for BasicRT<'a> {
}
}
-impl<'a> BasicRT<'a> {
- fn calculate_state(state: &ColumnVector<Complex<f64>>, n: usize) -> QuantumBit {
- let num_states = 1 << n;
- let half_states = num_states >> 1;
-
- let mut alpha = Complex::zero();
- let mut beta = Complex::zero();
-
- for i in 0..num_states {
- if i < half_states {
- alpha += state[i];
- } else {
- beta += state[i];
- }
- }
-
- QuantumBit::new(vec![alpha, beta])
- }
-
- fn calculate_probabilities(state: &ColumnVector<Complex<f64>>, n: usize) -> (f64, f64) {
- let num_states = 1 << n;
- let half_states = num_states >> 1;
-
- let mut state_0 = 0.0;
- let mut state_1 = 0.0;
-
- for i in 0..num_states {
- let prob = state[i].norm() * state[i].norm();
- if i < half_states {
- state_0 += prob;
- } else {
- state_1 += prob;
- }
- }
-
- (state_0, state_1)
- }
-}
-
impl<'a> Runtime<'a> for BasicRT<'a> {
fn new(circuit: &'a QuantumCircuit) -> BasicRT {
BasicRT { circuit }
}
- fn execute(&self, repeat: usize) -> Vec<ExecutationData> {
- let mut result: Vec<ExecutationData> = Vec::with_capacity(repeat);
+ fn execute(&self, repeat: usize) -> Vec<ExecutionData> {
+ let mut result: Vec<ExecutionData> = Vec::with_capacity(repeat);
for _ in 0..repeat {
- let mut executation_data = ExecutationData::new(
- self.circuit.get_quantum_bits(),
+ let executation_data = ExecutionData::new(
+ self.circuit.get_quantum_register(),
self.circuit.get_classical_registers(),
);
for instruction in self.circuit.get_instructions() {
- let mut control_bits: Vec<QuantumBit> = Vec::new();
- let mut target_bits: Vec<QuantumBit> = Vec::new();
- let mut quantum_bits: Vec<QuantumBit> = Vec::new();
-
- for index in instruction.control_indices.clone() {
- control_bits.push(executation_data.quantum_states.clone()[index].clone());
- quantum_bits.push(executation_data.quantum_states.clone()[index].clone());
- }
-
- for index in instruction.target_indices.clone() {
- target_bits.push(executation_data.quantum_states.clone()[index].clone());
- quantum_bits.push(executation_data.quantum_states.clone()[index].clone());
- }
-
- if control_bits.len() > 0 {
- let control_register = QuantumRegister::from(&mut control_bits);
- let control_register_state_vector = control_register.get_state();
- let (control_register_state_0, control_register_state_1) =
- BasicRT::calculate_probabilities(
- &control_register_state_vector,
- control_register.get_bits().len(),
- );
-
- if control_register_state_0 > control_register_state_1 {
- continue;
- }
- }
-
- let target_register = QuantumRegister::from(&mut quantum_bits);
- let target_state_vector = target_register.apply(&instruction.gate);
- let target_state =
- BasicRT::calculate_state(&target_state_vector, quantum_bits.len());
- executation_data.quantum_states[instruction.target_indices.clone()[0]] =
- target_state;
+ println!("{} on q{}", instruction.gate.0, instruction.target_bit);
}
- let final_quantum_register =
- QuantumRegister::from(&mut executation_data.quantum_states.clone());
- final_quantum_register.measure(&mut executation_data.classical_states);
result.push(executation_data);
}
result