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PAC learning

Probably Approximately Correct (PAC) learning analyzes machine learning mathematically using probability bounds.

Papers

Showing 251260 of 289 papers

TitleStatusHype
Screw Geometry Meets Bandits: Incremental Acquisition of Demonstrations to Generate Manipulation Plans0
Semi-verified PAC Learning from the Crowd0
Sequential Mode Estimation with Oracle Queries0
Simple and Fast Algorithms for Interactive Machine Learning with Random Counter-examples0
Simplifying Adversarially Robust PAC Learning with Tolerance0
Simultaneous Private Learning of Multiple Concepts0
Small Covers for Near-Zero Sets of Polynomials and Learning Latent Variable Models0
SQ Lower Bounds for Learning Single Neurons with Massart Noise0
Stability is Stable: Connections between Replicability, Privacy, and Adaptive Generalization0
Statistically Near-Optimal Hypothesis Selection0
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