Oblivious Sketching for Logistic Regression
Alexander Munteanu, Simon Omlor, David P. Woodruff
Abstract
What guarantees are possible for solving logistic regression in one pass over a data stream? To answer this question, we present the first data oblivious sketch for logistic regression. Our sketch can be computed in input sparsity time over a turnstile data stream and reduces the size of a -dimensional data set from to only weighted points, where is a useful parameter which captures the complexity of compressing the data. Solving (weighted) logistic regression on the sketch gives an -approximation to the original problem on the full data set. We also show how to obtain an -approximation with slight modifications. Our sketches are fast, simple, easy to implement, and our experiments demonstrate their practicality.
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Install the CLIlune papers fulltext f8fe2f7a-04b2-4924-adeb-531d710b9c48Cited by top-tier papers12
- Coresets for Classification - Simplified and StrengthenedTung Mai, Cameron Musco, Anup RaoNeurIPS 2021 · 39 citations
- Optimal bounds for ℓp sensitivity sampling via ℓ2 augmentationAlexander Munteanu, Simon OmlorICML 2024 · 6 citations
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- Turnstile ℓp leverage score sampling with applicationsAlexander Munteanu, Simon OmlorICML 2024 · 4 citations
- Online Lewis Weight SamplingDavid P. Woodruff, Taisuke YasudaSODA 2023 · 3 citations
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