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QAOA in Quantum Datacenters: Parallelization, Simulation, and Orchestration

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abstract

Scaling quantum computing requires networked systems, leveraging HPC for distributed simulation now and quantum networks in the future. Quantum datacenters will be the primary access point for users, but current approaches demand extensive manual decisions and hardware expertise. Tasks like algorithm partitioning, job batching, and resource allocation divert focus from quantum program development. We present a massively parallelized, automated QAOA workflow that integrates problem decomposition, batch job generation, and high-performance simulation. Our framework automates simulator selection, optimizes execution across distributed, heterogeneous resources, and provides a cloud-based infrastructure, enhancing usability and accelerating quantum program development. We find that QAOA partitioning does not significantly degrade optimization performance and often outperforms classical solvers. We introduce our software components -- Divi, Maestro, and our cloud platform -- demonstrating ease of use and superior performance over existing methods.

fields

cs.ET 1

years

2026 1

verdicts

CONDITIONAL 1

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Showing 1 of 1 citing paper.

  • RASP-QAOA: Resource-Aware Per-Instance Selection for Exact QAOA Simulation cs.ET · 2026-08-06 · conditional · none · ref 37 · internal anchor

    A per-instance selector for exact QAOA simulation filters compatible simulator configurations and ranks them with features or analytical work estimates, covering all 31 oracle-solvable test requests with 27/31 near-optimal picks.