Quantum Circuit Caches and Compressors for Low Latency, High Throughput Computing
Quantum Circuit Caches and Compressors for Low Latency, High Throughput Computing
Utility-scale quantum programs contain operations on the order of $>10^{15}$ which must be prepared and piped from a classical co-processor to the control unit of the quantum device. The latency of this process significantly increases with the size of the program: existing high-level classical representations of quantum programs are typically memory intensive and do not naïvely efficiently scale to the degree required to execute utility-scale programs in real-time. To combat this limitation, we propose the utilization of high-level quantum circuit caches and compressors. The first save on the time associated with repetitive tasks and sub-circuits, and the latter are useful for representing the programs/circuits in memory-efficient formats. We present numerical evidence that caches and compressors can offer five orders of magnitude lower latencies during the automatic transpilation of extremely large quantum circuits.
Ioana Moflic、Alan Robertson、Simon J. Devitt、Alexandru Paler
计算技术、计算机技术
Ioana Moflic,Alan Robertson,Simon J. Devitt,Alexandru Paler.Quantum Circuit Caches and Compressors for Low Latency, High Throughput Computing[EB/OL].(2025-07-28)[2025-08-10].https://arxiv.org/abs/2507.20677.点此复制
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