Work place: BBAU/Department of Computer Science, Lucknow, 226025, India
E-mail: skd200@yahoo.com
Website:
Research Interests: Information Retrieval, Data Mining, Information Systems, Artificial Intelligence
Biography
Prof. Sanjay K. Dwivedi is working as Professor & Head, Department of Computer science at Babasaheb Bhimrao Ambedkar Central university, Lucknow, India. His research interest includes Artificial intelligence, Information retrieval, Web mining, NLP and WSD. He has published number of research papers in reputed journals and conferences. He is approachable at skd200@yahoo.com
By Bhupesh Rawat Sanjay Kumar Dwivedi
DOI: https://doi.org/10.5815/ijmecs.2019.01.06, Pub. Date: 8 Jan. 2019
Clustering is one of the extensively used techniques in data mining to analyze a large dataset in order to discover useful and interesting patterns. It partitions a dataset into mutually disjoint groups of data in such a manner that the data points belonging to the same cluster are highly similar and those lying in different clusters are very dissimilar. Furthermore, among a large number of clustering algorithms, it becomes difficult for researchers to select a suitable clustering algorithm for their purpose. Keeping this in mind, this paper aims to perform a comparative analysis of various clustering algorithms such as k-means, expectation maximization, hierarchical clustering and make density-based clustering with respect to different parameters such as time taken to build a model, use of different dataset, size of dataset, normalized and un-normalized data in order to find the suitability of one over other.
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