Improved Classical Shadow Tomography Using Quantum Computation

May 20, 2025 Β· Declared Dead Β· πŸ› International Symposium on Information Theory

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Authors Zahra Honjani, Mohsen Heidari arXiv ID 2505.14953 Category quant-ph: Quantum Computing Cross-listed cs.IT Citations 0 Venue International Symposium on Information Theory Last Checked 5 months ago
Abstract
Classical shadow tomography (CST) involves obtaining enough classical descriptions of an unknown state via quantum measurements to predict the outcome of a set of quantum observables. CST has numerous applications, particularly in algorithms that utilize quantum data for tasks such as learning, detection, and optimization. This paper introduces a new CST procedure that exponentially reduces the space complexity and quadratically improves the running time of CST with single-copy measurements. The approach utilizes a quantum-to-classical-to-quantum process to prepare quantum states that represent shadow snapshots, which can then be directly measured by the observables of interest. With that, calculating large matrix traces is avoided, resulting in improvements in running time and space complexity. The paper presents analyses of the proposed methods for CST, with Pauli measurements and Clifford circuits.
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