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The number of clusters (k) is needed to start all the partitioning clustering algorithms. An optimal value of this input argument is widely determined by using some internal validity indices. Since most of the existing internal indices suggest a k value which is computed from the clustering results after several runs of a clustering algorithm they are computationally expensive. On the contrary, the package 'kpeaks' enables to estimate k before running any clustering algorithm. It is based on a simple novel technique using the descriptive statistics of peak counts of the features in a data set.

copied from cf-staging / r-kpeaks

Installers

Info: This package contains files in non-standard labels.
  • noarch v1.1.0
  • osx-64 v0.1.0
  • win-64 v0.1.0
  • linux-64 v0.1.0

conda install

To install this package run one of the following:
conda install conda-forge::r-kpeaks
conda install conda-forge/label/cf201901::r-kpeaks
conda install conda-forge/label/cf202003::r-kpeaks
conda install conda-forge/label/gcc7::r-kpeaks

Description


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