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Improving Emulation of Quantum Algorithms using Space-Efficient Hardware Architectures

机译:使用节省空间的硬件体系结构改进量子算法的仿真

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With rapid advancement in quantum computing technology, continuous efforts are being directed to simulation and emulation of quantum algorithms on classical platforms. A well-known limitation to classical emulation of quantum circuits is scalability. Existing hardware emulators implement gate-based circuit models of quantum circuits that result in heavy resource utilization and degrade the scalability of the system. Also, current quantum emulation hardware use fixedpoint arithmetic, which has an adverse effect on accuracy when the system is scaled up. In this work, we employ a complexmultiply-and-accumulate (CMAC) and lookup-based emulation approach that greatly reduces resource utilization and improves system scalability in terms of number of emulated qubits. We demonstrate emulation of up to 16 fully-entangled qubits which is highest among existing work. We design fully-pipelined, highthroughput hardware architectures that use floating-point precision for higher accuracy. Experimental evaluation and analysis of the architectures in terms of speed and area is also provided. The emulator is prototyped on a high-performance reconfigurable computing (HPRC) system and our results demonstrate quantitative improvement over existing Field-Programmable-Gate-Array (FPGA)-based hardware emulators.
机译:随着量子计算技术的飞速发展,人们一直致力于在经典平台上对量子算法进行仿真和仿真。经典的量子电路仿真的众所周知的限制是可伸缩性。现有的硬件仿真器实现了量子电路的基于门的电路模型,这会导致大量资源利用并降低系统的可伸缩性。而且,当前的量子仿真硬件使用定点算法,当系统按比例放大时,这会对精度产生不利影响。在这项工作中,我们采用了一种复杂的乘加累加(CMAC)和基于查找的仿真方法,该方法可以极大地降低资源利用率,并根据仿真的qubit数量提高系统的可伸缩性。我们演示了多达16个完全纠缠的qubit的仿真,这是现有工作中最高的。我们设计了全流水线的,高吞吐量的硬件体系结构,这些体系结构使用浮点精度来实现更高的精度。还提供了关于速度和面积方面的体系结构的实验评估和分析。该仿真器是在高性能可重构计算(HPRC)系统上进行原型设计的,我们的结果证明了对现有基于现场可编程门阵列(FPGA)的硬件仿真器的定量改进。

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