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64-qubit quantum circuit simulation 被引量:7

64-qubit quantum circuit simulation
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摘要 Classical simulations of quantum circuits are limited in both space and time when the qubit count is above 50, the realm where quantum supremacy reigns. However, recently, for the low depth circuit with more than 50 qubits, there are several methods of simulation proposed by teams at Google and IBM. Here,we present a scheme of simulation which can extract a large amount of measurement outcomes within a short time, achieving a 64-qubit simulation of a universal random circuit of depth 22 using a 128-node cluster, and 56-and 42-qubit circuits on a single PC. We also estimate that a 72-qubit circuit of depth 23 can be simulated in about 16 h on a supercomputer identical to that used by the IBM team. Moreover, the simulation processes are exceedingly separable, hence parallelizable, involving just a few inter-process communications. Our work enables simulating more qubits with less hardware burden and provides a new perspective for classical simulations. Classical simulations of quantum circuits are limited in both space and time when the qubit count is above 50, the realm where quantum supremacy reigns. However, recently, for the low depth circuit with more than 50 qubits, there are several methods of simulation proposed by teams at Google and IBM. Here, we present a scheme of simulation which can extract a large amount of measurement outcomes within a short time, achieving a 64-qubit simulation of a universal random circuit of depth 22 using a 128-node cluster, and 56- and 42-qubit circuits on a single PC. We also estimate that a 72-qubit circuit of depth 23 can be simulated in about 16 h on a supercomputer identical to that used by the IBM team. Moreover, the simulation processes are exceedingly separable, hence parallelizable, involving just a few inter-process communications. Our work enables simulating more qubits with less hardware burden and provides a new perspective for classical simulations.
出处 《Science Bulletin》 SCIE EI CSCD 2018年第15期964-971,共8页 科学通报(英文版)
基金 supported by the National Key Research and Development Program of China(2016YFA0301700) the National Natural Science Foundation of China(11625419) the Anhui Initiative in Quantum Information Technologies(AHY080000) supported by Yangzi Cloud Computing Data Centre and Gyrotech,Nanjing,China
关键词 Simulation of quantum circuits Universal random circuit Quantum supremacy Partitioning Parallel computing 电路模拟 Google qubit 超级计算机 模拟过程 IBM 并行化 古典
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