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Local density estimation based clustering
, S. Chandrakala, Sheetal Reddy Pamudurthy
Published in IEEE
2007
Pages: 1249 - 1254
Abstract
In this paper we propose a density based clustering approach. A kernel based density estimation technique is used to estimate the density of the given data set using a Gaussian kernel. Generally, a fixed width parameter is used for all the Gaussians in such methods. Here, a method to automatically determine the widths of Gaussians by considering the information available locally at a data point has been proposed. Cluster boundary information is subsequently extracted from the estimated density of the data. The performance of the propsed method is demonstrated on several data sets. Studies comparing the performance of the proposed method with that of DBSCAN and SVC are also presented. ©2007 IEEE.
About the journal
JournalData powered by TypesetIEEE International Conference on Neural Networks - Conference Proceedings
PublisherData powered by TypesetIEEE
ISSN2161-4393
Open AccessNo
Concepts (6)
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    FLOW OF SOLIDS
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    JOINT CONFERENCE
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