SWIPER: Minimizing Fault-Tolerant Quantum Program Latency via Speculative Window Decoding
Joshua Viszlai, Jason D. Chadwick, Sarang Joshi, Gokul Subramanian Ravi, Yanjing Li, Frederic T. Chong
Abstract
Real-time decoding is a key ingredient in future fault-tolerant quantum systems, yet many decoders are too slow to run in real time. Prior work has shown that parallel window decoding can scalably meet throughput requirements in the presence of increasing decoding times. However, windowed decoding require that some decoding tasks be delayed until others have completed, which can be problematic during time-sensitive operations such as T gate teleportation, leading to suboptimal program runtimes. To alleviate this, we introduce SWIPER, a speculative window decoder. Taking inspiration from branch prediction in classical computer architecture, SWIPER utilizes a light-weight speculation step to predict data dependencies between adjacent decoding windows, allowing multiple layers of decoding tasks to be resolved simultaneously. Through a state-of-the-art compilation pipeline and a detailed open-source simulator, we find that SWIPER reduces application runtimes by 40% on average compared to prior parallel window decoders.
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Install the CLIlune papers fulltext 33877481-d496-4a54-a32c-20c9dc75ebd9Cited by top-tier papers3
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