Sampling-based sublinear low-rank matrix arithmetic framework for dequantizing quantum machine learning
Nai-Hui Chia, András Gilyén, Tongyang Li, Han-Hsuan Lin, Ewin Tang, Chunhao Wang
Abstract
We present an algorithmic framework for quantum-inspired classical algorithms on close-tolow-rank matrices, generalizing the series of results started by Tang's breakthrough quantuminspired algorithm for recommendation systems [STOC'19]. Motivated by quantum linear algebra algorithms and the quantum singular value transformation (SVT) framework of Gilyén, Su, Low, and Wiebe [STOC'19], we develop classical algorithms for SVT that run in time independent of input dimension, under suitable quantum-inspired sampling assumptions. Our results give compelling evidence that in the corresponding QRAM data structure input model, quantum SVT does not yield exponential quantum speedups. Since the quantum SVT framework generalizes essentially all known techniques for quantum linear algebra, our results, combined with sampling lemmas from previous work, suffice to generalize all prior results about dequantizing quantum machine learning algorithms. In particular, our classical SVT framework recovers and often improves the dequantization results on recommendation systems, principal component analysis, supervised clustering, support vector machines, low-rank regression, and semidefinite program solving. We also give additional dequantization results on low-rank Hamiltonian simulation and discriminant analysis. Our improvements come from identifying the key feature of the quantum-inspired input model that is at the core of all prior quantum-inspired results: ℓ 2 -norm sampling can approximate matrix products in time independent of their dimension. We reduce all our main results to this fact, making our exposition concise, self-contained, and intuitive.
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Install the CLIlune papers fulltext e77aad17-acda-4d3c-97d2-345414718c1bCited by top-tier papers14
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- Quantum-Inspired Algorithms from Randomized Numerical Linear AlgebraNadiia Chepurko, Kenneth L. Clarkson, Lior Horesh, Honghao Lin et al.ICML 2022 · 25 citations
- Learning with Optimized Random Features: Exponential Speedup by Quantum Machine Learning without Sparsity and Low-Rank AssumptionsHayata Yamasaki, Sathyawageeswar Subramanian, Sho Sonoda, Masato KoashiNeurIPS 2020 · 23 citations
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