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Quantum-Classical Computing via Tensor Networks

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arxiv 2410.15080 v1 pith:QSVAMXAS submitted 2024-10-19 quant-ph

classification quant-ph
keywords postprocessingcircuitcontractionh-tnhybridoverheadqtpuquantum
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

Circuit knitting offers a promising path to the scalable execution of large quantum circuits by breaking them into smaller sub-circuits whose output is recombined through classical postprocessing. However, current techniques face excessive overhead due to a naive postprocessing method that neglects potential optimizations in the circuit structure. To overcome this, we introduce qTPU, a framework for scalable hybrid quantum-classical processing using tensor networks. By leveraging our hybrid quantum circuit contraction method, we represent circuit execution as the contraction of a hybrid tensor network (h-TN). The qTPU compiler automates efficient h-TN generation, optimizing the balance between estimated error and postprocessing overhead, while the qTPU runtime supports large-scale h-TN contraction using quantum and classical accelerators. Our evaluation shows orders-of-magnitude reductions in postprocessing overhead, a $10^4\times$ speedup in postprocessing, and a 20.7$\times$ reduction in overall runtime compared to the state-of-the-art Qiskit-Addon-Cutting (QAC).

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Cited by 1 Pith paper

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  1. Gaussian Models to Non-Gaussian Realms of Quantum Photonic Simulators

    quant-ph 2025-02 unverdicted

    A review of photonic quantum simulators, their Gaussian and non-Gaussian capabilities, and the computational techniques needed to scale them.

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