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162
kategorie
2 032
podkategorie
23 060
pojęcia
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podkategorie

Local density-based detection (LOF)

Method based on comparing the local density of a point with that of its neighbors to identify outliers.

16 pojęcia
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podkategorie

Isolation Forest

Ensemble algorithm that isolates observations by building random decision trees to detect anomalies.

13 pojęcia
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podkategorie

Autoencoders for anomalies

Neural networks that learn to reconstruct normal data and identify anomalies by high reconstruction error.

4 pojęcia
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One-Class SVM

Support vector machine that learns a decision boundary around normal data to detect outliers.

11 pojęcia
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podkategorie

Time series anomaly detection

Specialized techniques for identifying unusual patterns in temporal sequential data.

7 pojęcia
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Multivariate anomaly detection

Identification of anomalous observations based on complex relationships between multiple variables simultaneously.

10 pojęcia
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Detection by clustering (DBSCAN)

Using clustering algorithms where points not belonging to any cluster are considered as anomalies.

9 pojęcia
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Data stream detection

Real-time methods to identify anomalies in continuously arriving data without complete storage.

12 pojęcia
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podkategorie

GANs for anomaly detection

Generative Adversarial Networks used to model the normal distribution and detect unlikely samples.

12 pojęcia
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podkategorie

Graph anomaly detection

Identification of unusual nodes, edges or subgraphs in relational data structures

18 pojęcia
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podkategorie

Contextual anomaly detection

Detection of abnormal observations only in a specific context, based on environmental conditions

18 pojęcia
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Collective anomaly detection

Identification of groups of observations that are collectively abnormal even if individually normal.

13 pojęcia
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podkategorie

Robust statistical methods

Approaches based on outlier-resistant statistics such as medians or robust quantiles.

15 pojęcia
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podkategorie

High-dimensional anomaly detection

Specialized techniques to handle the curse of dimensionality in multivariate outlier detection.

8 pojęcia
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podkategorie

Semi-supervised learning for anomalies

Approaches combining labeled and unlabeled data to improve anomaly detection with few examples.

11 pojęcia
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