Please use this identifier to cite or link to this item: http://hdl.handle.net/10603/37796
Title: Certain investigations on data Clustering using hybrid algorithms for Unlabeled data sets
Researcher: Komarasamy G
Guide(s): Amitabh wahi
Keywords: Data mining
K means
K Means Particle Swarm Optimization
Particle Swarm Optimization
Upload Date: 20-Mar-2015
University: Anna University
Completed Date: 01/10/2014
Abstract: Data mining is a process of extracting knowledge from homogeneous newlinewide variety of datasets It is mainly used in interdisciplinary subfield namely newlineartificial intelligence machine learning statistics and database systems of newlinecomputer science for discovering original patterns Clustering is one of the newlineessential process of data mining The cluster analysis or clustering is the process of newlinecombining a set of items into same group and their relationships The K means newline KM algorithm is a major role in determine the number of clusters k for large newlineDatasets It needs to predefine the k value itself which is difficult and it is hard to newlinecalculate before the number of clusters that would be there in data There are no newlinecompetent and universal methods to select the best number of clusters the value newlineselected as random The key challenge in the clustering process is sensitive to the newlineselection of the initial partition in order to overcome this issue implement the newlinehybrid algorithms to select best number of clusters newlineThe Particle Swarm Optimization PSO algorithm successfully newlineconverges during the global search initial stages but around global optimum the newlinesearch process will become very slow The KM algorithm can achieve faster newlineconvergence to get the optimum solution The K Means Particle Swarm newlineOptimization KMPSO algorithm newline newline
Pagination: xxii, 173p.
URI: http://hdl.handle.net/10603/37796
Appears in Departments:Faculty of Information and Communication Engineering

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