{"id":760759,"date":"2021-07-13T05:39:05","date_gmt":"2021-07-13T12:39:05","guid":{"rendered":"https:\/\/cm-edgetun.pages.dev\/en-us\/research\/?post_type=msr-research-item&#038;p=760759"},"modified":"2021-07-13T05:39:05","modified_gmt":"2021-07-13T12:39:05","slug":"streaming-bayesian-inference-theoretical-limits-and-mini-batch-approximate-message-passing","status":"publish","type":"msr-research-item","link":"https:\/\/cm-edgetun.pages.dev\/en-us\/research\/publication\/streaming-bayesian-inference-theoretical-limits-and-mini-batch-approximate-message-passing\/","title":{"rendered":"Streaming Bayesian inference: Theoretical limits and mini-batch approximate message-passing"},"content":{"rendered":"\n\n\n<p class=\"wp-block-paragraph\">In statistical learning for real-world large-scale data problems, one must often resort to \u201cstreaming\u201d algorithms which operate sequentially on small batches of data. In this work, we present an analysis of the information-theoretic limits of mini-batch inference in the context of generalized linear models and low-rank matrix factorization. In a controlled Bayes-optimal setting, we characterize the optimal performance and phase transitions as a function of mini-batch size. We base part of our results on a detailed analysis of a mini-batch version of the approximate message-passing algorithm (Mini-AMP), which we introduce. Additionally, we show that this theoretical optimality carries over into real-data problems by illustrating that Mini-AMP is competitive with standard streaming algorithms for clustering.<\/p>\n","protected":false},"excerpt":{"rendered":"<p>In statistical learning for real-world large-scale data problems, one must often resort to \u201cstreaming\u201d algorithms which operate sequentially on small batches of data. In this work, we present an analysis of the information-theoretic limits of mini-batch inference in the context of generalized linear models and low-rank matrix factorization. In a controlled Bayes-optimal setting, we characterize [&hellip;]<\/p>\n","protected":false},"featured_media":0,"template":"","meta":{"msr-url-field":"","msr-podcast-episode":"","msrModifiedDate":"","msrModifiedDateEnabled":false,"ep_exclude_from_search":false,"_classifai_error":"","msr-author-ordering":[{"type":"user_nicename","value":"Andre Manoel","user_id":"40504"},{"type":"text","value":"Florent Krzakala","user_id":0},{"type":"text","value":"Eric W. 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