Hybrid clustering analysis using improved krill herd algorithm

In this paper, a novel text clustering method, improved krill herd algorithm with a hybrid function, called MMKHA, is proposed as an efficient clustering way to obtain promising and precise results in this domain. Krill herd is a new swarm-based optimization algorithm that imitates the behavior of a...

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Published inApplied intelligence (Dordrecht, Netherlands) Vol. 48; no. 11; pp. 4047 - 4071
Main Authors Abualigah, Laith Mohammad, Khader, Ahamad Tajudin, Hanandeh, Essam Said
Format Journal Article
LanguageEnglish
Published New York Springer US 01.11.2018
Springer Nature B.V
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Abstract In this paper, a novel text clustering method, improved krill herd algorithm with a hybrid function, called MMKHA, is proposed as an efficient clustering way to obtain promising and precise results in this domain. Krill herd is a new swarm-based optimization algorithm that imitates the behavior of a group of live krill. The potential of this algorithm is high because it performs better than other optimization methods; it balances the process of exploration and exploitation by complementing the strength of local nearby searching and global wide-range searching. Text clustering is the process of grouping significant amounts of text documents into coherent clusters in which documents in the same cluster are relevant. For the purpose of the experiments, six versions are thoroughly investigated to determine the best version for solving the text clustering. Eight benchmark text datasets are used for the evaluation process available at the Laboratory of Computational Intelligence (LABIC). Seven evaluation measures are utilized to validate the proposed algorithms, namely, ASDC, accuracy, precision, recall, F-measure, purity, and entropy. The proposed algorithms are compared with the other successful algorithms published in the literature. The results proved that the proposed improved krill herd algorithm with hybrid function achieved almost all the best results for all datasets in comparison with the other comparative algorithms.
AbstractList In this paper, a novel text clustering method, improved krill herd algorithm with a hybrid function, called MMKHA, is proposed as an efficient clustering way to obtain promising and precise results in this domain. Krill herd is a new swarm-based optimization algorithm that imitates the behavior of a group of live krill. The potential of this algorithm is high because it performs better than other optimization methods; it balances the process of exploration and exploitation by complementing the strength of local nearby searching and global wide-range searching. Text clustering is the process of grouping significant amounts of text documents into coherent clusters in which documents in the same cluster are relevant. For the purpose of the experiments, six versions are thoroughly investigated to determine the best version for solving the text clustering. Eight benchmark text datasets are used for the evaluation process available at the Laboratory of Computational Intelligence (LABIC). Seven evaluation measures are utilized to validate the proposed algorithms, namely, ASDC, accuracy, precision, recall, F-measure, purity, and entropy. The proposed algorithms are compared with the other successful algorithms published in the literature. The results proved that the proposed improved krill herd algorithm with hybrid function achieved almost all the best results for all datasets in comparison with the other comparative algorithms.
Author Khader, Ahamad Tajudin
Hanandeh, Essam Said
Abualigah, Laith Mohammad
Author_xml – sequence: 1
  givenname: Laith Mohammad
  orcidid: 0000-0002-2203-4549
  surname: Abualigah
  fullname: Abualigah, Laith Mohammad
  email: laythdyabat@ymail.com
  organization: School of Computer Sciences, Universiti Sains Malaysia
– sequence: 2
  givenname: Ahamad Tajudin
  surname: Khader
  fullname: Khader, Ahamad Tajudin
  organization: School of Computer Sciences, Universiti Sains Malaysia
– sequence: 3
  givenname: Essam Said
  surname: Hanandeh
  fullname: Hanandeh, Essam Said
  organization: Department of Computer Information System, Zarqa University
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Issue 11
Keywords Improved krill herd algorithm
Text document clustering
Hybrid function
Optimization problem
Tuning parameters
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Snippet In this paper, a novel text clustering method, improved krill herd algorithm with a hybrid function, called MMKHA, is proposed as an efficient clustering way...
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SubjectTerms Algorithms
Artificial Intelligence
Cluster analysis
Clustering
Computer Science
Datasets
Krill
Machines
Manufacturing
Mechanical Engineering
Optimization
Processes
Searching
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Title Hybrid clustering analysis using improved krill herd algorithm
URI https://link.springer.com/article/10.1007/s10489-018-1190-6
https://www.proquest.com/docview/2042949983
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