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Quantum Computing in the Cloud: Analyzing job and machine characteristics

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arxiv 2203.13121 v1 pith:JSA6IYFY submitted 2022-03-24 quant-ph cs.PF

classification quant-phcs.PF
keywords quantumcloudcharacteristicscomputingmachinesystemsanalysisconsumption
verification ladder T0 review T1 audit T2 compute T3 formal
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As the popularity of quantum computing continues to grow, quantum machine access over the cloud is critical to both academic and industry researchers across the globe. And as cloud quantum computing demands increase exponentially, the analysis of resource consumption and execution characteristics are key to efficient management of jobs and resources at both the vendor-end as well as the client-end. While the analysis of resource consumption and management are popular in the classical HPC domain, it is severely lacking for more nascent technology like quantum computing. This paper is a first-of-its-kind academic study, analyzing various trends in job execution and resources consumption / utilization on quantum cloud systems. We focus on IBM Quantum systems and analyze characteristics over a two year period, encompassing over 6000 jobs which contain over 600,000 quantum circuit executions and correspond to almost 10 billion "shots" or trials over 20+ quantum machines. Specifically, we analyze trends focused on, but not limited to, execution times on quantum machines, queuing/waiting times in the cloud, circuit compilation times, machine utilization, as well as the impact of job and machine characteristics on all of these trends. Our analysis identifies several similarities and differences with classical HPC cloud systems. Based on our insights, we make recommendations and contributions to improve the management of resources and jobs on future quantum cloud systems.

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

  1. Breaking Memory Bottlenecks in Quantum Control Systems for More Precise Experiments and Higher Throughput Computing

    cs.AR 2026-08 conditional novelty 6.0 of 10

    Ant-Q pipelines quantum circuit loading, execution, and readout uplink on FPGA control boards using a DRAM plus BRAM hierarchy, supporting deep randomized benchmarking circuits and reducing classical overhead to near zero.

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