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kategorie
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podkategorie
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pojęcia
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pojęcia

Stratified K-fold

Version of K-fold that preserves the class distribution in each partition, essential for unbalanced datasets in classification.

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Time Series Cross-Validation

Technique adapted to time series data using successive time ranges as test sets without mixing past and future observations.

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Nested Cross-Validation

Double cross-validation where an inner loop optimizes hyperparameters and an outer loop evaluates the performance of the optimized model.

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Group K-fold

Variant of K-fold ensuring that the same groups never appear simultaneously in training and test sets.

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Shuffle Split Cross-Validation

Method that randomly generates training/test partitions with a configurable number of iterations and set sizes.

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Repeated K-fold

K-fold repeated several times with different random initializations to reduce the variance of performance estimation.

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Holdout Validation

Simple method separating data into a single training set and a single test set, less robust than cross-validation.

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Cross-Validation Score

Average performance metric calculated on all cross-validation partitions, often with its standard deviation to measure stability.

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Grid Search Cross-Validation

Exhaustive search of hyperparameters combined with cross-validation to identify the best model configuration.

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Randomized Search Cross-Validation

Alternative to Grid Search that randomly samples hyperparameter combinations with cross-validation to optimize computation time.

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Cross-Validation Folds

Individual partitions of data created during cross-validation, serving alternately as test or training sets.

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Monte Carlo Cross-Validation

Cross-validation method that randomly repeats the training/test split multiple times to estimate the performance distribution.

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Cross-Validation Iterator

Object that generates partition indices for cross-validation, implementing different data splitting strategies.

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Adaptive Cross-Validation

Advanced technique that dynamically adjusts the validation strategy based on data and model characteristics.

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Cross-Validation Leakage

Information leakage between training and test sets due to incorrect preprocessing, invalidating cross-validation results.

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Bootstrap Cross-Validation

Method that uses sampling with replacement to create validation partitions, offering a different estimate of generalization error.

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Prequential Cross-Validation

Validation strategy for data streams that tests each observation immediately after its learning, adapted to evolving concepts.

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