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Inaugural Article: Experimental comparison of two quantum computing architectures

机译:开篇文章:两种量子计算架构的实验比较

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摘要

We run a selection of algorithms on two state-of-the-art 5-qubit quantum computers that are based on different technology platforms. One is a publicly accessible superconducting transmon device () with limited connectivity, and the other is a fully connected trapped-ion system. Even though the two systems have different native quantum interactions, both can be programed in a way that is blind to the underlying hardware, thus allowing a comparison of identical quantum algorithms between different physical systems. We show that quantum algorithms and circuits that use more connectivity clearly benefit from a better-connected system of qubits. Although the quantum systems here are not yet large enough to eclipse classical computers, this experiment exposes critical factors of scaling quantum computers, such as qubit connectivity and gate expressivity. In addition, the results suggest that codesigning particular quantum applications with the hardware itself will be paramount in successfully using quantum computers in the future.
机译:我们在基于不同技术平台的两台最先进的5量子位量子计算机上运行了一系列算法。一个是具有有限连接性的可公开访问的超导跨界设备(transmon device),另一个是完全连接的捕获离子系统。即使两个系统具有不同的本机量子相互作用,也都可以以对底层硬件不可见的方式进行编程,从而可以比较不同物理系统之间的相同量子算法。我们表明,使用更多连通性的量子算法和电路显然会受益于更好连接的量子位系统。尽管这里的量子系统还不够大,以至于无法使经典计算机黯然失色,但该实验揭示了缩放量子计算机的关键因素,例如量子位连接性和门表达能力。此外,结果表明,将来使用硬件本身对特定的量子应用程序进行代码签名对于成功使用量子计算机至关重要。

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