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Maria-Florina F Balcan

6 accepted papers

2019

Adaptive Gradient-Based Meta-Learning Methods

NeurIPS 2019poster

We build a theoretical framework for designing and understanding practical meta-learning methods that integrates sophisticated formalizations of task-similarity with the extensive literature on online convex optimization and sequential prediction algorithms. Our approach enables the task-similarity…

2018

Data-Driven Clustering via Parameterized Lloyd's Families

NeurIPS 2018spotlight

Algorithms for clustering points in metric spaces is a long-studied area of research. Clustering has seen a multitude of work both theoretically, in understanding the approximation guarantees possible for many objective functions such as k-median and k-means clustering, and experimentally, in findin…

Cited by 40SourcePDFScholar
2017

Sample and Computationally Efficient Learning Algorithms under S-Concave Distributions

NeurIPS 2017poster

We provide new results for noise-tolerant and sample-efficient learning algorithms under $s$-concave distributions. The new class of $s$-concave distributions is a broad and natural generalization of log-concavity, and includes many important additional distributions, e.g., the Pareto distribution a…

Cited by 39SourcePDFScholar