Summary

In this chapter, we looked at:

  • Statistical methods based on probabilistic distribution functions. The normal data points are those that are generated by the models. Otherwise, they are defined as outliers.
  • Proximity-based methods.
  • Density-based methods.
  • Clustering-based methods.
  • Classification-based methods.
  • Mining contextual outliers.
  • Collective outliers.
  • Outlier detection in high-dimensional data.

The next chapter will cover the major topics related to outlier detection algorithms and examples for them, which are based on the previous chapters. All of this will be covered with a major difference in our viewpoint.

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