In this video, we are going to discuss, minimizing the error in linear regression through the gradient descent algorithm. MSE=Mean Square Error.
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Lecture-51: Roadmap of Mathematics for Machine Learning
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Lecture-50: ‘Model Parameters’ and ‘Hyperparameters’ in ML & DL? (Theory)
Lecture-49: Classification of Cotton Leaf Diseases Using AlexNet and Machine Learning Models
Lecture-48: Boruta Feature Selection Algorithm with python
Lecture-47: Linear Discriminant Analysis (LDA) with Python
Lecture-46: Feature Selection with “Correlation” Method by Python
Lecture-45: Feature Selection with Filter Methods (Drop Const, Quasi-Const and Duplicate Features)
Lecture-44: Feature Selection In Machine Learning
Lecture-43: Principal Component Analysis (PCA) (Part-II)
Lecture-42: Dimensionality Reduction: Principal Component Analysis (PCA) (Part-I)
Lecture-41: Logistic Regression -Theory (Part-II)
Lecture-40: Logistic Regression -Theory (Part-I)
Lecture-39: Multicollinearity & VIF (Variance Inflation Factor)
Lecture-38: Wine Quality Prediction Using ML (Data Sampling Methods for Imbalanced data set)
Lecture-37: Wine Quality prediction Using Machine Learning
Lecture-36: Elastic Net Regression Model Using Python
Lecture-35: Elastic Net Regression (Theory)
Lecture-34: LASSO Regression (L1-Regularization) Algorithm in python
Lecture-33: Ridge Regression with python
Lecture-32: Boston House Price Prediction Using Linear Regression
Lecture-31: Iris Flower Prediction using Machine Learning Models
Lecture-30: LASSO Regression (L1 regularization )