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I learned about the Lasso Regression which uses (L1) regularization takes the least absolute coefficient, shrink it, and can shrink the coefficients equal to zero. But in Ridge regression, the regularization term (L2) is used which takes the square of coefficients but doesn't make it equal to zero.
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Done
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I have done this video with 100% practice.
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I have done this lecture with 100% practice.
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Key features of LASSO regression are (1) Regularization Terms of L1 techniques (2) Feature Selection (3) Parameter Tuning (4) Bias Variance Tradeoff (5) Scaling.
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