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qir_to_openqasm3.py
Python implementation of QuantumIR → Heron-native OpenQASM 3.0 converter.
Includes ZNE stretching, mid-circuit measurement, DFE protocol, and
Richardson extrapolation. Runs in any sandbox (Kimi, Replit, local).
Built from scratch — no Qiskit, no Cirq, no PennyLane dependency.
"""
import json
import random
import math
def decompose_to_heron(name, params, qubits, zne_factor):
instrs = []
if name == "Rz":
instrs.append(f"rz({params[0]}) q[{qubits[0]}];")
elif name == "Rx":
q = qubits[0]
instrs.append(f"rz(-1.5707963267948966) q[{q}];")
instrs.append(f"sx q[{q}];")
instrs.append(f"rz({params[0]}) q[{q}];")
instrs.append(f"sx q[{q}];")
instrs.append(f"rz(1.5707963267948966) q[{q}];")
elif name == "Ry":
q = qubits[0]
instrs.append(f"rz(1.5707963267948966) q[{q}];")
instrs.append(f"sx q[{q}];")
instrs.append(f"rz({params[0]}) q[{q}];")
instrs.append(f"sx q[{q}];")
instrs.append(f"rz(-1.5707963267948966) q[{q}];")
elif name == "H":
q = qubits[0]
instrs.append(f"rz(1.5707963267948966) q[{q}];")
instrs.append(f"sx q[{q}];")
instrs.append(f"rz(1.5707963267948966) q[{q}];")
instrs.append(f"sx q[{q}];")
instrs.append(f"rz(1.5707963267948966) q[{q}];")
elif name == "S":
instrs.append(f"rz(1.5707963267948966) q[{qubits[0]}];")
elif name == "Sdg":
instrs.append(f"rz(-1.5707963267948966) q[{qubits[0]}];")
elif name == "T":
instrs.append(f"rz(0.7853981633974483) q[{qubits[0]}];")
elif name == "Tdg":
instrs.append(f"rz(-0.7853981633974483) q[{qubits[0]}];")
elif name == "X":
q = qubits[0]
instrs.append(f"sx q[{q}];")
instrs.append(f"sx q[{q}];")
elif name == "Y":
q = qubits[0]
instrs.append(f"sx q[{q}];")
instrs.append(f"rz(3.141592653589793) q[{q}];")
instrs.append(f"sx q[{q}];")
elif name == "Z":
instrs.append(f"rz(3.141592653589793) q[{qubits[0]}];")
elif name == "CX":
c, t = qubits[0], qubits[1]
instrs.append(f"cx q[{c}], q[{t}];")
if zne_factor > 1.0:
repeats = int(round(zne_factor)) - 1
for _ in range(repeats):
instrs.append(f"cx q[{c}], q[{t}];")
instrs.append(f"cx q[{c}], q[{t}];")
elif name == "CZ":
c, t = qubits[0], qubits[1]
for h in decompose_to_heron("H", [], [t], 1.0):
instrs.append(h)
instrs.append(f"cx q[{c}], q[{t}];")
if zne_factor > 1.0:
repeats = int(round(zne_factor)) - 1
for _ in range(repeats):
instrs.append(f"cx q[{c}], q[{t}];")
instrs.append(f"cx q[{c}], q[{t}];")
for h in decompose_to_heron("H", [], [t], 1.0):
instrs.append(h)
else:
instrs.append(f"// Unknown gate: {name}")
return instrs
def pauli_rotation_instrs(pauli, qubit):
if pauli == 'X':
return [
f"rz(1.5707963267948966) q[{qubit}];",
f"sx q[{qubit}];",
f"rz(1.5707963267948966) q[{qubit}];",
f"sx q[{qubit}];",
f"rz(1.5707963267948966) q[{qubit}];"
]
elif pauli == 'Y':
return [
f"rz(-1.5707963267948966) q[{qubit}];",
f"sx q[{qubit}];",
f"rz(1.5707963267948966) q[{qubit}];",
f"sx q[{qubit}];",
f"rz(1.5707963267948966) q[{qubit}];"
]
elif pauli in ('Z', 'I'):
return []
return [f"// Unknown Pauli: {pauli}"]
def decompose_to_heron_zne(name, params, qubits):
instrs = []
factor = "noise_factor"
if name == "Rz":
instrs.append(f"rz({params[0]} * {factor}) q[{qubits[0]}];")
elif name == "Rx":
q = qubits[0]
instrs.append(f"rz(-1.5707963267948966) q[{q}];")
instrs.append(f"sx q[{q}];")
instrs.append(f"rz({params[0]} * {factor}) q[{q}];")
instrs.append(f"sx q[{q}];")
instrs.append(f"rz(1.5707963267948966) q[{q}];")
elif name == "Ry":
q = qubits[0]
instrs.append(f"rz(1.5707963267948966) q[{q}];")
instrs.append(f"sx q[{q}];")
instrs.append(f"rz({params[0]} * {factor}) q[{q}];")
instrs.append(f"sx q[{q}];")
instrs.append(f"rz(-1.5707963267948966) q[{q}];")
elif name == "H":
q = qubits[0]
instrs.append(f"rz(1.5707963267948966) q[{q}];")
instrs.append(f"sx q[{q}];")
instrs.append(f"rz(1.5707963267948966) q[{q}];")
instrs.append(f"sx q[{q}];")
instrs.append(f"rz(1.5707963267948966) q[{q}];")
elif name == "CX":
c, t = qubits[0], qubits[1]
instrs.append(f"cx q[{c}], q[{t}];")
elif name == "CZ":
c, t = qubits[0], qubits[1]
for h in decompose_to_heron_zne("H", [], [t]):
instrs.append(h)
instrs.append(f"cx q[{c}], q[{t}];")
for h in decompose_to_heron_zne("H", [], [t]):
instrs.append(h)
else:
instrs.append(f"// {name} with ZNE not implemented")
return instrs
def qir_to_openqasm3(ir_dict, zne_factors=None, anu_bases=None, dynamic_shots=True):
if zne_factors is None:
zne_factors = [1.0]
nq = ir_dict["qubits"]
nc = ir_dict["cbits"]
ops = ir_dict["ops"]
if len(zne_factors) > 1 and dynamic_shots:
return qir_to_openqasm3_zne_dynamic(ir_dict, zne_factors, anu_bases)
factor = zne_factors[0]
lines = []
indent = 0
def emit(s=""):
lines.append(" " * indent + s)
emit("OPENQASM 3.0;")
emit('include "stdgates.inc";')
emit("")
emit(f"qubit[{nq}] q;")
emit(f"bit[{nc}] meas;")
emit("")
emit("float fidelity_sum = 0.0;")
emit("int valid_shots = 0;")
emit("")
if dynamic_shots and anu_bases is not None:
n_shots = len(anu_bases)
emit(f"for shot in [0:{n_shots-1}] {{")
indent += 2
for op in ops:
op_type = op["type"]
if op_type == "gate":
for instr in decompose_to_heron(op["name"], op.get("params", []), op["qubits"], factor):
emit(instr)
elif op_type == "measure":
emit(f"meas[{op['cbit']}] = measure q[{op['qubit']}];")
elif op_type == "barrier":
qs = ", ".join(str(q) for q in op["qubits"])
emit(f"barrier q[{qs}];")
elif op_type == "reset":
emit(f"if (meas[{op['qubit']}] == 1) {{ x q[{op['qubit']}]; }}")
if dynamic_shots and anu_bases is not None:
indent -= 2
emit("}")
emit("")
emit("float kernel_est = fidelity_sum / float(valid_shots);")
emit("kernel_est;")
return "\n".join(lines)
def qir_to_openqasm3_zne_dynamic(ir_dict, zne_factors, anu_bases):
nq = ir_dict["qubits"]
nc = ir_dict["cbits"]
ops = ir_dict["ops"]
n_shots = len(anu_bases) if anu_bases else 1000
n_factors = len(zne_factors)
lines = []
indent = 0
def emit(s=""):
lines.append(" " * indent + s)
emit("OPENQASM 3.0;")
emit('include "stdgates.inc";')
emit("")
emit(f"qubit[{nq}] q;")
emit(f"bit[{nc}] meas;")
emit("")
emit(f"float[{n_factors}] fidelity_sum = {{{', '.join(['0.0'] * n_factors)}}};")
emit(f"int[{n_factors}] valid_shots = {{{', '.join(['0'] * n_factors)}}};")
emit("")
if anu_bases is not None:
emit("// ANU QRNG Pauli bases (pre-fetched)")
emit(f"string[{n_shots * nq}] pauli_bases = {{")
indent += 2
for shot, basis in enumerate(anu_bases[:n_shots]):
for q, pauli in enumerate(basis):
emit(f'"{pauli}", // shot {shot+1}, qubit {q}')
indent -= 2
emit("};")
emit("")
emit(f"for f_idx in [0:{n_factors-1}] {{")
indent += 2
emit(f"float noise_factors[{n_factors}] = {{{', '.join(str(f) for f in zne_factors)}}};")
emit("float noise_factor = noise_factors[f_idx];")
emit("")
emit(f"for shot in [0:{n_shots-1}] {{")
indent += 2
if anu_bases is not None:
emit("// Pauli basis from ANU QRNG")
for q in range(nq):
emit(f'string pauli_{q} = pauli_bases[shot * {nq} + {q}];')
emit("// Feature Map U_Phi(x)")
for op in ops:
if op["type"] == "gate":
for instr in decompose_to_heron_zne(op["name"], op.get("params", []), op["qubits"]):
emit(instr)
emit("// Inverse Feature Map U_Phi(x')dagger")
if anu_bases is not None:
emit("// Pauli basis rotation")
for q in range(nq):
emit(f'if (pauli_{q} == "X") {{')
indent += 2
for instr in pauli_rotation_instrs('X', q):
emit(instr)
indent -= 2
emit(f'}} else if (pauli_{q} == "Y") {{')
indent += 2
for instr in pauli_rotation_instrs('Y', q):
emit(instr)
indent -= 2
emit("}")
emit("// Mid-circuit measurement")
for q in range(nq):
emit(f"meas[{q}] = measure q[{q}];")
emit("// Conditional reset")
for q in range(nq):
emit(f"if (meas[{q}] == 1) {{ x q[{q}]; }}")
emit("// DFE fidelity estimator")
emit("bool has_xy = false;")
emit("int z_weight = 0;")
if anu_bases is not None:
for q in range(nq):
emit(f'if (pauli_{q} == "X" || pauli_{q} == "Y") has_xy = true;')
emit(f'if (pauli_{q} == "Z") z_weight = z_weight + 1;')
emit("")
emit("if (!has_xy) {")
indent += 2
emit("int eigenvalue = 1;")
if anu_bases is not None:
for q in range(nq):
emit(f'if (pauli_{q} == "Z" && meas[{q}] == 1) eigenvalue = eigenvalue * -1;')
emit("float estimator = pow(3.0, float(z_weight)) * float(eigenvalue);")
emit("fidelity_sum[f_idx] = fidelity_sum[f_idx] + estimator;")
emit("valid_shots[f_idx] = valid_shots[f_idx] + 1;")
indent -= 2
emit("}")
indent -= 2
emit("}")
indent -= 2
emit("}")
emit("")
emit("// Richardson extrapolation to zero noise")
emit("float kernel_est = 0.0;")
for i in range(n_factors):
emit(f"float y{i} = fidelity_sum[{i}] / float(valid_shots[{i}]);")
for i in range(n_factors):
emit(f"float term{i} = y{i};")
for j in range(n_factors):
if i != j:
emit(f"term{i} = term{i} * (-{zne_factors[j]}) / ({zne_factors[i]} - {zne_factors[j]});")
emit(f"kernel_est = kernel_est + term{i};")
emit("")
emit("kernel_est;")
return "\n".join(lines)
if __name__ == "__main__":
import sys
if len(sys.argv) < 3:
print("Usage: python qir_to_openqasm3.py <input.ir.json> <output.qasm3> [zne_factors...]")
sys.exit(1)
input_file = sys.argv[1]
output_file = sys.argv[2]
zne_factors = [float(x) for x in sys.argv[3:]] if len(sys.argv) > 3 else [1.0]
with open(input_file, 'r') as f:
ir_list = json.load(f)
first_ir = ir_list[0] if isinstance(ir_list, list) else ir_list
n_qubits = first_ir["qubits"]
anu_bases = [[random.choice(['I', 'X', 'Y', 'Z']) for _ in range(n_qubits)] for _ in range(100)]
qasm = qir_to_openqasm3(first_ir, zne_factors=zne_factors, anu_bases=anu_bases, dynamic_shots=True)
with open(output_file, 'w') as f:
f.write(qasm)
print(f"Written {output_file} ({len(qasm)} chars, {len(qasm.splitlines())} lines)")
print(f"ZNE factors: {zne_factors}")
print(f"ANU QRNG shots: {len(anu_bases)}")
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