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Machine Learning Algorithms

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1. Regression Algorithms
Ordinary least squares
Linear regression
Logistic regression
Stepwise regression
Multivariate adaptive regression splines
Local regression
2. Instance-based Algorithms
K-nearest neighbors algorithm
Learning vector quantization
Self-organizing map
Tikhonov regularization
3. Regularization Algorithms
Lasso (statistics)
Elastic net regularization
3. Regularization Algorithms
Tikhonov regularization
Lasso (statistics)
Elastic net regularization
Least-angle regression
4. Decision Tree Algorithms
Decision tree learning
ID3 algorithm
C4.5 algorithm
Chi-square automatic interaction detection
Decision stump
5. Bayesian Algorithms
Naive Bayes classifier
Averaged one-dependence estimators
Bayesian network
6. Clustering Algorithms
K-means clustering
K-medians clustering
Expectation–maximization algorithm
Hierarchical clustering
7. Association Rule Learning Algorithms
Association rule learning
Apriori algorithm
8. Artificial Neural Network Algorithms
Perceptron
Backpropagation
Hopfield network
Radial basis function network
9. Deep Learning Algorithms
Deep learning
Deep belief network
Convolutional neural network
10. Dimensionality Reduction Algorithms
Principal component analysis
Principal component regression
Partial least squares regression
Sammon mapping
Multidimensional scaling
Projection pursuit
Linear discriminant analysis
Quadratic classifier
11. Ensemble Algorithms
Boosting (machine learning)
Bootstrap aggregating
AdaBoost
Ensemble learning
Gradient boosting
Random forest
12. Other Algorithms
Computational intelligence
Computer vision
Natural language processing
Recommender system
Reinforcement learning
Graphical model
I. Complete Reference
Outline of machine learning

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