Please use this identifier to cite or link to this item: https://dspace.iiti.ac.in/handle/123456789/4967
Title: A review of clustering techniques and developments
Authors: Bharill, Neha
Tiwari, Aruna
Keywords: Character recognition;Data mining;Education;Image segmentation;Unsupervised learning;Central component;Clustering;Clustering techniques;Density-based;Evaluation criteria;Model-based OPC;Similarity measure;Pattern recognition;algorithm;Article;artificial neural network;automated pattern recognition;bioinformatics;cluster analysis;data mining;decision tree;gene expression;image segmentation;information retrieval;nuclear magnetic resonance imaging;priority journal;spatial analysis
Issue Date: 2017
Publisher: Elsevier B.V.
Citation: Saxena, A., Prasad, M., Gupta, A., Bharill, N., Patel, O. P., Tiwari, A., . . . Lin, C. -. (2017). A review of clustering techniques and developments. Neurocomputing, 267, 664-681. doi:10.1016/j.neucom.2017.06.053
Abstract: This paper presents a comprehensive study on clustering: exiting methods and developments made at various times. Clustering is defined as an unsupervised learning where the objects are grouped on the basis of some similarity inherent among them. There are different methods for clustering the objects such as hierarchical, partitional, grid, density based and model based. The approaches used in these methods are discussed with their respective states of art and applicability. The measures of similarity as well as the evaluation criteria, which are the central components of clustering, are also presented in the paper. The applications of clustering in some fields like image segmentation, object and character recognition and data mining are highlighted. © 2017 Elsevier B.V.
URI: https://doi.org/10.1016/j.neucom.2017.06.053
https://dspace.iiti.ac.in/handle/123456789/4967
ISSN: 0925-2312
Type of Material: Journal Article
Appears in Collections:Department of Computer Science and Engineering

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