Robust Learning of Fixed-Structure Bayesian Networks in Nearly-Linear Time
Yu Cheng, Honghao Lin
摘要
We study the problem of learning Bayesian networks where an -fraction of the samples are adversarially corrupted. We focus on the fully-observable case where the underlying graph structure is known. In this work, we present the first nearly-linear time algorithm for this problem with a dimension-independent error guarantee. Previous robust algorithms with comparable error guarantees are slower by at least a factor of , where is the number of variables in the Bayesian network and is the fraction of corrupted samples. Our algorithm and analysis are considerably simpler than those in previous work. We achieve this by establishing a direct connection between robust learning of Bayesian networks and robust mean estimation. As a subroutine in our algorithm, we develop a robust mean estimation algorithm whose runtime is nearly-linear in the number of nonzeros in the input samples, which may be of independent interest.
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- High-dimensional Robust Mean Estimation via Gradient DescentYu Cheng, Ilias Diakonikolas, Rong Ge, Mahdi SoltanolkotabiICML 2020 · 被引用 33 次
- List-Decodable Mean Estimation in Nearly-PCA TimeIlias Diakonikolas, Daniel Kane, Daniel Kongsgaard, Jerry Li 等NeurIPS 2021 · 被引用 18 次
- Robust Gaussian Covariance Estimation in Nearly-Matrix Multiplication TimeJerry Li, Guanghao YeNeurIPS 2020 · 被引用 13 次
- List Decodable Mean Estimation in Nearly Linear TimeYeshwanth Cherapanamjeri, Sidhanth Mohanty, Morris YauFOCS 2020 · 被引用 13 次
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