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KI-Glossar

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Gradual Drift Detection

Technique for identifying progressive changes in data or concepts, enabling anticipatory adaptation before the model's performance degrades significantly.

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Unsupervised Change Detection

Methods identifying changes in data distributions without using predefined labels, based on statistical metrics or divergence between time periods.

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Stability-Plasticity

Fundamental dilemma in incremental learning seeking to balance the model's ability to retain prior knowledge (stability) while adapting to new information (plasticity).

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Catastrophic Forgetting

Phenomenon where a model learning new information completely or partially loses previously acquired knowledge, a major problem in incremental learning.

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Short-Term Memory

Temporary storage mechanism for recent observations used to rapidly detect changes and adapt the model before their permanent integration into long-term memory.

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Active Instance Selection

Strategy selectively choosing the most informative instances for model update, optimizing computational efficiency while maintaining relevance in the face of changes.

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Abrupt Drift Detection

Technique specialized in identifying sudden and significant changes in data, requiring rapid model adaptation to avoid catastrophic performance degradation.

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Dynamic Re-evaluation

Continuous process of evaluating model performance on new data to determine when adaptation is necessary, based on dynamic thresholds or degradation metrics.

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DDM Test

Drift Detection Method, statistical algorithm monitoring the model error rate to detect significant changes, based on statistical controls of means and variances.

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Block Adaptation

Model update strategy using batches of data rather than individual instances, providing a trade-off between reactivity to changes and computational efficiency.

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