Data Analytics (CS40003) Dr. Debasis Samanta Associate Professor



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13ClusteringTechniques

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Document

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Here, the objective function, which is called Total cohesion denoted as TC and defined as
where
and
‖‖

Comments on k-Means algorithm

Note: The criteria of objective function with different proximity measures

  • SSE (using L2 norm) : To minimize the SSE.
  • SAE (using L1 norm) : To minimize the SAE.
  • TC(using cosine similarity) : To maximize the TC.

Comments on k-Means algorithm

4. Type of objects under clustering:

  • The k-Means algorithm can be applied only when the mean of the cluster is defined (hence it named k-Means). The cluster mean (also called centroid) of a cluster is defied as
  • In other words, the mean calculation assumed that each object is defined with numerical attribute(s). Thus, we cannot apply the k-Means to objects which are defined with categorical attributes.
  • More precisely, the k-means algorithm require some definition of cluster mean exists, but not necessarily it does have as defined in the above equation.
  • In fact, the k-Means is a very general clustering algorithm and can be used with a wide variety of data types, such as documents, time series, etc.
  •  

How to find the mean of objects with composite attributes?
?

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