A collection of essential machine learning algorithms implemented from scratch and with libraries. Ideal for students and beginners to understand core ML concepts through hands-on examples.
          svm          eda          knn          decisiontree          logisticregression          outlierdetection          onehotencoder          kmeansclustering          labelencoder          linrarregression          l1l2regularization          nivebayes          gradientdecrent          batchgd          sochasticgd      
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            Updated
            
Nov 1, 2025  - Jupyter Notebook