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Pre-pruning

Pruning technique that stops the growth of the decision tree before it reaches its maximum size by applying predefined stopping criteria.

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Post-pruning

Pruning method that consists of first building a complete tree and then reducing its complexity by eliminating non-essential branches.

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Cost complexity pruning

Pruning technique that minimizes a cost function combining classification error and tree complexity through an alpha parameter.

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Reduced error pruning

Pruning method that removes nodes if it does not increase the classification error on a separate validation set.

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Minimum description length

Pruning principle based on information theory that favors models offering the best compromise between simplicity and predictive power.

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Pessimistic error pruning

Technique that estimates future error by adding a statistical penalty to the observed error to avoid overfitting.

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Error-based pruning

Family of pruning algorithms that use different error measures to decide which branches to remove.

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Minimum error pruning

Algorithm that recursively removes nodes whose removal minimizes the expected error on test data.

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Bottom-up pruning

Pruning approach that starts from the tree leaves and progresses towards the root by evaluating each node for potential removal.

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Top-down pruning

Pruning method that evaluates nodes from the root to the leaves, removing entire subtrees when deemed necessary.

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Alpha parameter

Regularization parameter in cost complexity pruning that controls the trade-off between tree size and classification error.

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Pruning path

Sequence of decreasing complexity trees generated during the pruning process, each tree being a subtree of the previous one.

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Weakest link pruning

Variant of cost complexity pruning that identifies and iteratively eliminates branches with the weakest impact on overall performance.

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Cross-validation pruning

Technique that uses cross-validation to determine the optimal pruning level and avoid overfitting.

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Critical value pruning

Method that removes branches whose test statistic falls below a predetermined critical threshold.

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Cost-sensitive pruning

Pruning approach that takes into account the different costs associated with classification errors to optimize the tree structure.

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Optimal pruning

Process that guarantees finding the optimal subtree according to a given criterion, often implemented by algorithms like CART.

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