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1
Introduction
2
Noise Models
3
Difficulties
4
Main result
5
Intuition
6
Massage Noise
7
The Proof
8
The General Case
9
Summary
10
Boosting
11
Distribution Specific Learning
12
Tobacco Noise Model
13
Tobacco Noise Difficulty
14
Conclusion
Description:
Explore recent advancements in supervised learning with noise in this 58-minute lecture by Ilias Diakonikolas from UW Madison. Delve into various noise models, challenges in high-dimensional learning and testing, and key results in the field. Gain insights into the intuition behind these developments, understand the massage noise concept, and examine the proof structure. Investigate the general case, boosting techniques, and distribution-specific learning. Learn about the tobacco noise model and its associated difficulties. Conclude with a comprehensive summary of the latest progress in supervised learning with noisy data.

Recent Developments in Supervised Learning With Noise

Simons Institute
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