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Validating quantum-classical programming models with tensor network simulations

机译:用张量网络仿真验证量子经典编程模型

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摘要

The exploration of hybrid quantum-classical algorithms and programming models on noisy near-term quantum hardware has begun. As hybrid programs scale towards classical intractability, validation and benchmarking are critical to understanding the utility of the hybrid computational model. In this paper, we demonstrate a newly developed quantum circuit simulator based on tensor network theory that enables intermediate-scale verification and validation of hybrid quantum-classical computing frameworks and programming models. We present our tensor-network quantum virtual machine (TNQVM) simulator which stores a multi-qubit wavefunction in a compressed (factorized) form as a matrix product state, thus enabling single-node simulations of larger qubit registers, as compared to brute-force state-vector simulators. Our simulator is designed to be extensible in both the tensor network form and the classical hardware used to run the simulation (multicore, GPU, distributed). The extensibility of the TNQVM simulator with respect to the simulation hardware type is achieved via a pluggable interface for different numerical backends (e.g., ITensor and ExaTENSOR numerical libraries). We demonstrate the utility of our TNQVM quantum circuit simulator through the verification of randomized quantum circuits and the variational quantum eigensolver algorithm, both expressed within the eXtreme-scale ACCelerator (XACC) programming model.
机译:在嘈杂的近期量子硬件上探索混合量子经典算法和编程模型已经开始。随着混合程序向经典的难处理性发展,验证和基准测试对于理解混合计算模型的实用性至关重要。在本文中,我们演示了基于张量网络理论的最新开发的量子电路仿真器,该仿真器能够对混合量子经典计算框架和编程模型进行中间规模验证和验证。我们介绍了张量网络量子虚拟机(TNQVM)仿真器,该仿真器以压缩(因式分解)形式将多量子位波函数存储为矩阵乘积状态,因此与蛮力相比,可以对较大的量子位寄存器进行单节点仿真状态向量模拟器。我们的模拟器设计为可在张量网络形式和用于运行模拟的经典硬件(多核,GPU,分布式)中进行扩展。 TNQVM仿真器相对于仿真硬件类型的可扩展性是通过可插拔的接口实现的,用于不同的数字后端(例如,ITensor和ExaTENSOR数字库)。我们通过验证随机量子电路和变分量子本征求解器算法来证明我们的TNQVM量子电路仿真器的实用性,二者均在超大规模ACCelerator(XACC)编程模型中表示。

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