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A Balanced Cluster Head Selection Based On k-Medoids to Enhance Wireless Sensor Network Life Time

Journal: International Journal of Science and Research (IJSR) (Vol.3, No. 7)

Publication Date:

Authors : ; ;

Page : 2111-2114

Keywords : WSN clustering; k-Medoids; cluster head selection; Network Lifetime;

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Abstract

In this paper, a new clustering algorithm has been developed using k-medoids clustering algorithm for WSNs. The new algorithm is aimed to develop an algorithm, which perform better than the k-means and LEACH for WSNs. It is widely known that if cluster formation algorithm computes the cluster head according to the node density in a particular cluster. It is also known that the cluster head selection results are better in k-Medoids than k-Means. It has been already proved that k-Means performs better than LEACH. So our aim was to develop a clustering and cluster head selection algorithm based on k-Medoids which performs better than k-Means. In this paper, we have published the results of our new clustering and cluster head selection algorithm based on k-Medoids. This algorithm has improved the network lifetime than the k-Means algorithm by using the balanced cluster head selection based on the network density weight.

Last modified: 2021-06-30 21:02:23