Ensemble Machine Learning Techniques 3.2: How Bagging Works

Ensemble Machine Learning Techniques 3.2: How Bagging Works

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Interactive Video

Information Technology (IT), Architecture, Social Studies

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Hard

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This video tutorial introduces the concept of bagging, an ensemble technique that uses bootstrapping to create multiple sub-samples from a dataset. Models are built on these sub-samples, and their predictions are aggregated to improve accuracy. The video explains the process with a diagram and provides pseudocode for implementing bagging in Python. It concludes with a preview of the next video, which will cover using bagging with SVM for movie rating predictions.

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OPEN ENDED QUESTION

3 mins • 1 pt

What new insight or understanding did you gain from this video?

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