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quant-ph2025

Beam search decoder for quantum LDPC codes

Min Ye, Dave Wecker, Nicolas Delfosse

We propose a decoder for quantum low density parity check (LDPC) codes based on a beam search heuristic guided by belief propagation (BP). Our beam search decoder applies to all qu…

quant-ph2025

Advantage in distributed quantum computing with slow interconnects

Evan E Dobbs, Nicolas Delfosse, Aharon Brodutch

The main bottleneck for distributed quantum computing is the rate at which entanglement is produced between quantum processing units (QPUs). In this work, we prove that multiple QP…

quant-ph2025

Recursive Clifford noise reduction

Aharon Brodutch, Gregory Baimetov, Edwin Tham +1

Clifford noise reduction (CliNR) is a partial error correction scheme that reduces the logical error rate of Clifford circuits at the cost of a modest qubit and gate overhead. The…

quant-ph2025

Correction of chain losses in trapped ion quantum computers

Nolan J. Coble, Min Ye, Nicolas Delfosse

Neutral atom quantum computers and to a lesser extent trapped ions may suffer from atom loss. In this work, we investigate the impact of atom loss in long chains of trapped ions. E…

quant-ph2025

Distributed fault-tolerant quantum memories over a 2xL array of qubit modules

Edwin Tham, Min Ye, Ilia Khait +2

We propose an architecture for a quantum memory distributed over a array of modules equipped with a cyclic shift implemented via flying qubits. The logical information…

quant-ph2025

Optimized Clifford Noise Reduction: Theory, Simulations and Experiments

Edwin Tham, Nicolas Delfosse

We propose several optimizations of the CliNR partial error correction scheme which implements Clifford circuits by consuming a resource state. Errors are corrected by measuring a…