Quantum algorithms for scientific computing.

R Au-Yeung, B Camino, O Rathore, V Kendon
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Abstract

Quantum computing promises to provide the next step up in computational power for diverse application areas. In this review, we examine the science behind the quantum hype, and the breakthroughs required to achieve true quantum advantage in real world applications. Areas that are likely to have the greatest impact on high performance computing (HPC) include simulation of quantum systems, optimization, and machine learning. We draw our examples from electronic structure calculations and computational fluid dynamics which account for a large fraction of current scientific and engineering use of HPC. Potential challenges include encoding and decoding classical data for quantum devices, and mismatched clock speeds between classical and quantum processors. Even a modest quantum enhancement to current classical techniques would have far-reaching impacts in areas such as weather forecasting, aerospace engineering, and the design of 'green' materials for sustainable development. This requires significant effort from the computational science, engineering and quantum computing communities working together.

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科学计算的量子算法。
量子计算有望为各种应用领域提供更强的计算能力。在这篇综述中,我们将研究量子炒作背后的科学,以及在现实应用中实现真正量子优势所需的突破。可能对高性能计算(HPC)产生最大影响的领域包括量子系统模拟、优化和机器学习。我们以电子结构计算和计算流体力学为例,这两个领域在当前科学和工程领域对高性能计算的使用中占有很大比例。潜在的挑战包括为量子设备编码和解码经典数据,以及经典和量子处理器之间不匹配的时钟速度。即使对当前的经典技术进行适度的量子改进,也会在天气预报、工程、航空航天、药物设计以及可持续发展的 "绿色 "材料设计等领域产生深远影响。这需要计算科学界、工程界和量子计算界共同努力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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