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Machine Learning[edit]
- Statistics
- Conditional probability distribution
- Covariance
- Inference
- Latent variable
- Likelihood-ratio test
- Log probability
- Maximum likelihood
- Mixture model
- Prior probability
- Random variable
- Statistical classification
- Statistical model
- Machine Learning
- Activation function
- AdaBoost
- Artificial intelligence
- Artificial neural network
- Artificial neuron
- Backfitting algorithm
- Backpropagation
- Bayesian network
- Binary classification
- Boltzmann machine
- Boosting (machine learning)
- Cluster analysis
- Convolutional neural network
- Decision tree
- Decision tree learning
- Deep belief network
- Deep learning
- Discriminative model
- Dropout (neural networks)
- Early stopping
- Ensemble learning
- Extreme learning machine
- Feedforward neural network
- Generative model
- Gradient boosting
- Gradient descent
- Greedy algorithm
- Hyperbolic function
- K-nearest neighbors algorithm
- Linear classifier
- Linear regression
- Linear separability
- Logistic function
- Logistic regression
- Machine learning
- Multiclass classification
- Multilayer perceptron
- Naive Bayes classifier
- Perceptron
- Q-learning
- Rectifier (neural networks)
- Recurrent neural network
- Regression analysis
- Regularization (mathematics)
- Reinforcement learning
- Restricted Boltzmann machine
- Self-organizing map
- Semi-supervised learning
- Sigmoid function
- Softmax function
- Stochastic gradient descent
- Stochastic neural network
- Supervised learning
- Support vector machine
- Unsupervised learning
- Wake-sleep algorithm
- Validation
- Bias of an estimator
- Bias–variance tradeoff
- Cross-validation (statistics)
- Errors and residuals
- Least squares
- Loss function
- Mean squared error
- Overfitting
- Root-mean-square deviation
- Sensitivity and specificity
- Test set
- Type III error
- Variance
- Misc
- Binary data
- Bipartite graph
- Collaborative filtering
- Convolution
- Cross entropy
- Dimensionality reduction
- Feature extraction
- Feature learning
- Gauss–Markov theorem
- Gibbs sampling
- Graphical model
- Hidden Markov model
- Markov chain
- Markov chain Monte Carlo
- Markov property
- Markov random field
- Monte Carlo method
- Principal component analysis
- Random field
- Sparse matrix