On the Efficient Implementation of High Accuracy Optimality of Profile Maximum Likelihood
Moses Charikar, Zhihao Jiang, Kirankumar Shiragur, Aaron Sidford
Abstract
We provide an efficient unified plug-in approach for estimating symmetric properties of distributions given independent samples. Our estimator is based on profile-maximum-likelihood (PML) and is sample optimal for estimating various symmetric properties when the estimation error . This result improves upon the previous best accuracy threshold of achievable by polynomial time computable PML-based universal estimators [ACSS21, ACSS20]. Our estimator reaches a theoretical limit for universal symmetric property estimation as [Han21] shows that a broad class of universal estimators (containing many well known approaches including ours) cannot be sample optimal for every -Lipschitz property when .
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- A Refined Laser Method and Faster Matrix MultiplicationJosh Alman, Virginia Vassilevska WilliamsSODA 2021 · 275 citations
- Instance Based Approximations to Profile Maximum LikelihoodNima Anari, Moses Charikar, Kirankumar Shiragur, Aaron SidfordNeurIPS 2020 · 9 citations
- Profile Entropy: A Fundamental Measure for the Learnability and Compressibility of DistributionsYi Hao, Alon OrlitskyNeurIPS 2020 · 4 citations
- On the Competitive Analysis and High Accuracy Optimality of Profile Maximum LikelihoodYanjun Han, Kirankumar ShiragurSODA 2021 · 2 citations
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