Simple weak coresets for non-decomposable classification measures

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dc.contributor.author Malaviya, Jayesh
dc.contributor.author Dasgupta, Anirban
dc.contributor.author Chhaya, Rachit
dc.contributor.other 38th AAAI Conference on Artificial Intelligence
dc.coverage.spatial Canada
dc.date.accessioned 2024-04-18T14:39:41Z
dc.date.available 2024-04-18T14:39:41Z
dc.date.issued 2024-02-20
dc.identifier.citation Malaviya, Jayesh; Dasgupta, Anirban and Chhaya, Rachit, "Simple weak coresets for non-decomposable classification measures", in the 38th AAAI Conference on Artificial Intelligence, Vancouver, CA, Feb. 20-27, 2024.
dc.identifier.uri https://doi.org/10.1609/aaai.v38i13.29341
dc.identifier.uri https://repository.iitgn.ac.in/handle/123456789/9964
dc.description.abstract While coresets have been growing in terms of their application, barring few exceptions, they have mostly been limited to unsupervised settings. We consider supervised classification problems, and non-decomposable evaluation measures in such settings. We show that stratified uniform sampling based coresets have excellent empirical performance that are backed by theoretical guarantees too. We focus on the F1 score and Matthews Correlation Coefficient, two widely used non-decomposable objective functions that are nontrivial to optimize for and show that uniform coresets attain a lower bound for coreset size, and have good empirical performance, comparable with ``smarter'' coreset construction strategies.
dc.description.statementofresponsibility by Jayesh Malaviya, Anirban Dasgupta and Rachit Chhaya
dc.language.iso en_US
dc.publisher Association for the Advancement of Artificial Intelligence (AAAI)
dc.subject ML-Evaluation and analysis
dc.subject ML-Classification and regression
dc.subject ML-Dimensionality reduction/feature selection
dc.subject ML-Scalability of ML systems
dc.subject ML-Learning theory
dc.subject ML-Optimization
dc.subject ML: Learning on the edge & model compression
dc.subject SO-Sampling/simulation-based search
dc.title Simple weak coresets for non-decomposable classification measures
dc.type Conference Paper


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