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Department of Mathematics,
University of California San Diego

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AWM Colloquium

Teresa Rexin

UCSD

From Trees to Forests: Decision Tree-Based Models Explained

Abstract:

Decision tree-based models are a popular tool for use in prediction and regression machine learning problems. In this talk, we will provide an overview of decision tree models and ensemble methods, including (but not limited to) random forests and XGBoost. We'll also discuss considerations of building such models and some applications. This talk does not require any background knowledge in machine learning.

March 31, 2022

12:00 PM

https://ucsd.zoom.us/j/97738771432

Meeting ID: 977 3877 1432

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