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QPanda: high-performance quantum computing framework for multiple application scenarios

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arxiv 2212.14201 v1 pith:DOTN2E2E submitted 2022-12-29 cs.PL quant-ph

classification cs.PLquant-ph
keywords quantumframeworksimulationapplicationhigh-performancenisqalgorithmschemical
verification ladder T0 review T1 audit T2 compute T3 formal
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With the birth of Noisy Intermediate Scale Quantum (NISQ) devices and the verification of "quantum supremacy" in random number sampling and boson sampling, more and more fields hope to use quantum computers to solve specific problems, such as aerodynamic design, route allocation, financial option prediction, quantum chemical simulation to find new materials, and the challenge of quantum cryptography to automotive industry security. However, these fields still need to constantly explore quantum algorithms that adapt to the current NISQ machine, so a quantum programming framework that can face multi-scenarios and application needs is required. Therefore, this paper proposes QPanda, an application scenario-oriented quantum programming framework with high-performance simulation. Such as designing quantum chemical simulation algorithms based on it to explore new materials, building a quantum machine learning framework to serve finance, etc. This framework implements high-performance simulation of quantum circuits, a configuration of the fusion processing backend of quantum computers and supercomputers, and compilation and optimization methods of quantum programs for NISQ machines. Finally, the experiment shows that quantum jobs can be executed with high fidelity on the quantum processor using quantum circuit compile and optimized interface and have better simulation performance.

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Cited by 1 Pith paper

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

  1. Research on quantum compilation of neutral atom quantum computing platform

    quant-ph 2025-01 reject novelty 3.0 of 10

    The paper proposes and partially tests a quaternion-based adaptation to convert standard quantum circuit decompositions into neutral atom native gates, but the proof that it covers all unitaries has gaps.

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