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Quantum computer architectures: An idea whose time is not far away

机译:Quantum计算机架构:一个想法,其时间不远

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Current day computers are increasingly getting limited in hardware due to deep sub-micron effects which may prevent finer gate widths. Parallel computing methods with a large number of cores can only give a linear speed up. Quantum computing is an attempt to unite Quantum mechanics and information science together to achieve next generation computation. Quantum computers have simultaneity and parallelism built inherently. Building a Quantum computer has some difficulties associated with it which involves criteria such as hardware architecture, coherence and fidelity. Quantum computing promises interesting possibilities. Many laboratories in the world are doing research on building Quantum computers which promise exponential speed up. In this article we have given a brief introduction to Quantum mechanics and examine Quantum computing possibilities using few architectures which are being investigated for Quantum computing. We compare three different architectures, namely, Trapped ion architecture, Quantum computing using superconducting Qubits and Quantum computing with Nitrogen Vacancy center in diamonds with various factors such as temperature requirements, coherence time of superposition states, fidelity, error correction, power dissipation and noise.
机译:由于深次微米效应,当天计算机越来越受硬件的限制,这可能会防止更细的栅极宽度。具有大量核心的并行计算方法只能给出线性加速。量子计算是一种尝试将量子力学和信息科学团结在一起,以实现下一代计算。量子计算机具有固有的同时性和并行性。建立量子计算机有一些困难与之相关的困难,涉及硬件架构,连贯性和保真度等标准。量子计算承诺有趣的可能性。世界上许多实验室正在为建立承诺指数加速的量子计算机进行研究。在本文中,我们已经简要介绍了量子力学,并使用几种正在研究的架构来检查量子计算可能性进行量子计算。我们比较三种不同的架构,即捕获的离子架构,使用超导Qubits和Quantum Computing使用钻石空置中心,钻石空置中心,具有各种因素,如温度要求,叠加状态的相干时间,保真,纠错,功耗和噪音。

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