User (K-Means) for clustering in Data Mining with application

  • قتيبة نبيل نايف
  • محي الدين خلف ايوب

Abstract

 

 

  The great scientific progress has led to widespread Information as information accumulates in large databases is important in trying to revise and compile this vast amount of data and, where its purpose to extract hidden information or classified data under their relations with each other in order to take advantage of them for technical purposes.

      And work with data mining (DM) is appropriate in this area because of the importance of research in the (K-Means) algorithm for clustering data in fact applied with effect can be observed in variables by changing the sample size (n) and the number of clusters (K) and their impact on the process of clustering in the algorithm.

Published
2016-08-01
How to Cite
نايفق., & ايوبم. ا. (2016). User (K-Means) for clustering in Data Mining with application. Journal of Economics and Administrative Sciences, 22(91), 389. https://doi.org/10.33095/jeas.v22i91.491
Section
Statistical Researches

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