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FPGA-based Distributed Union-Find Decoder for Surface Codes

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arxiv 2406.08491 v2 pith:XDVBSFNI submitted 2024-03-20 quant-ph cs.DC

classification quant-phcs.DC
keywords decodertimeaveragecomputingdecodingdistributedimplementationmeasurement
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

A fault-tolerant quantum computer must decode and correct errors faster than they appear to prevent exponential slowdown due to error correction. The Union-Find (UF) decoder is promising with an average time complexity slightly higher than $O(d^3)$. We report a distributed version of the UF decoder that exploits parallel computing resources for further speedup. Using an FPGA-based implementation, we empirically show that this distributed UF decoder has a sublinear average time complexity with regard to $d$, given $O(d^3)$ parallel computing resources. The decoding time per measurement round decreases as $d$ increases, the first time for a quantum error decoder. The implementation employs a scalable architecture called Helios that organizes parallel computing resources into a hybrid tree-grid structure. Using a Xilinx VCU129 FPGA, we successfully implement $d$ up to 21 with an average decoding time of 11.5 ns per measurement round under 0.1\% phenomenological noise, and 23.7 ns for $d=17$ under equivalent circuit-level noise. This performance is significantly faster than any existing decoder implementation. Furthermore, we show that Helios can optimize for resource efficiency by decoding $d=51$ on a Xilinx VCU129 FPGA with an average latency of 544ns per measurement round.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Scalable decoding protocols for fast transversal logic in the surface code

    quant-ph 2025-05 conditional novelty 7.0 of 10

    The paper presents windowed decoding protocols that restore modularity and locality to decoding of fast transversal logic, enabling constant-time logical gates with scalable error correction.

  2. SOME: Symmetric One-Hot Matching Elector -- A Lightweight Microsecond Decoder for Quantum Error Correction

    cs.ET 2025-07 reject novelty 4.0 of 10

    A QUBO-based decoder that reduces syndrome matching to one-hot permutation matrices is presented, but its headline claim of beating MWPM's threshold is not supported.

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