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Course overview
Lesson Overview

3.13 – Loss Functions for Regression Models: In regression problems, where models predict continuous numbers instead of categories, loss functions like Mean Squared Error and Mean Absolute Error are used. They calculate the difference between predicted and actual values, penalizing large mistakes more heavily. This drives the model toward better precision over time. Choosing the right loss function depends on how sensitive the task is to outliers. These tools give networks a clear way to measure progress and improve prediction stability across numeric data.

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