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Quantum Computing's Classical Problem, Classical Computing's Quantum Problem

机译:量子计算的经典问题,古典计算的量子问题

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摘要

Tasked with the challenge to build better and better computers, quantum computing and classical computing face the same conundrum: the success of classical computing systems. Small quantum computing systems have been demonstrated, and intermediate-scale systems are on the horizon, capable of calculating numeric results or simulating physical systems far beyond what humans can do by hand.However, to be commercially viable, they must surpass what our wildly successful, highly advanced classical computers can already do. At the same time, those classical computers continue to advance, but those advances are now constrained by thermodynamics, and will soon be limited by the discrete nature of atomic matter and ultimately quantum effects. Technological advances benefit both quantum and classical machinery, altering the competitive landscape. Canwe build quantum computing systems that outcompute classical systems capable of some 10~(30) logic gates per month? This article will discuss the interplay in these competing and cooperating technological trends.
机译:面对建造越来越好的计算机的挑战,量子计算和经典计算面临着同样的难题:经典计算系统的成功。已经证明了小型量子计算系统,并且即将出现中规模系统,该系统具有计算数值结果或模拟物理系统的能力,远远超出了人类可以手动完成的工作,但是要在商业上可行,它们必须超越我们的巨大成功,先进的经典计算机已经可以做到。同时,那些经典计算机仍在继续发展,但是这些进展现在受到热力学的限制,并且很快将受到原子物质的离散性质以及最终的量子效应的限制。技术的进步使量子机械和经典机械都受益,从而改变了竞争格局。我们能否建立一个量子计算系统,其性能超过每月能处理10到30个逻辑门的经典系统?本文将讨论在这些相互竞争和合作的技术趋势中的相互作用。

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