Faster Kernel Matrix Algebra via Density Estimation
Arturs Backurs, Piotr Indyk, Cameron Musco, Tal Wagner
摘要
We study fast algorithms for computing fundamental properties of a positive semidefinite kernel matrix corresponding to points . In particular, we consider estimating the sum of kernel matrix entries, along with its top eigenvalue and eigenvector. We show that the sum of matrix entries can be estimated to relative error in time in and linear in for many popular kernels, including the Gaussian, exponential, and rational quadratic kernels. For these kernels, we also show that the top eigenvalue (and an approximate eigenvector) can be approximated to relative error in time in and linear in . Our algorithms represent significant advances in the best known runtimes for these problems. They leverage the positive definiteness of the kernel matrix, along with a recent line of work on efficient kernel density estimation.
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- Fast Private Kernel Density Estimation via Locality Sensitive QuantizationTal Wagner, Yonatan Naamad, Nina MishraICML 2023 · 被引用 11 次
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- Subquadratic Algorithms for Kernel Matrices via Kernel Density EstimationAinesh Bakshi, Piotr Indyk, Praneeth Kacham, Sandeep Silwal 等ICLR 2023
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