BiBiEQ: Bivariate Bicycle Codes on Erasure Qubits
Ameya S. Bhave, Navnil Choudhury, Andrew Nemec, Kanad Basu

TL;DR
This paper introduces BiBiEQ, a framework for decoding Bivariate Bicycle codes on erasure qubits, demonstrating improved logical error rates and trade-offs through novel erasure-aware circuits and schedules.
Contribution
It develops a new decoding framework for BB codes on erasure qubits, including exact and approximate methods, and analyzes their performance and error thresholds.
Findings
4EC schedule maintains high accuracy between engines
Logical error rate drops significantly with increased code distance
Most gains achieved at code distance d=10
Abstract
Erasure qubits reduce overhead in fault-tolerant quantum error correction (QEC) by converting dominant faults into detectable errors known as erasures. They have demonstrated notable improvements in thresholds and scaling in surface and Floquet code memories. In this work, we use erasure qubits on Bivariate Bicycle (BB) codes from the quantum low-density parity-check (QLDPC) regime. Owing to their sparse structure and favorable rate-distance trade-offs, BB codes are practical candidates for QEC. We introduce BiBiEQ, a novel framework that compiles a given BB code into an erasure-aware memory circuit C_E. This erasure circuit C_E comprises erasure checks (ECs), resets, and erasures spread over a user-specified erasure check schedule (2EC, 4EC). BiBiEQ converts this erasure circuit C_E into the stabilizer circuit C for general-purpose decoding. BiBiEQ provides two engines for this…
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Taxonomy
TopicsQuantum Computing Algorithms and Architecture · Radiation Effects in Electronics · Distributed systems and fault tolerance
