ADOFL: Multi-Kernel-Based Adaptive Directive Operative Fractional Lion Optimisation Algorithm for Data Clustering
The progress of databases in fields such as medical, business, education, marketing, etc., is colossal because of the developments in information technology. Knowledge discovery from such concealed bulk databases is a tedious task. For this, data mining is one of the promising solutions and clusteri...
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doaj-21cd82457e4941338956b7949c9f7a552021-09-06T19:40:37ZengDe GruyterJournal of Intelligent Systems0334-18602191-026X2018-07-0127331732910.1515/jisys-2016-0175ADOFL: Multi-Kernel-Based Adaptive Directive Operative Fractional Lion Optimisation Algorithm for Data ClusteringChander Satish0Vijaya P.1Dhyani Praveen2Waljat College of Applied Sciences, P.O Box 197, P.C. 124, Rusayl, Muscat, OmanWaljat College of Applied Sciences, P.O Box 197, P.C. 124, Rusayl, Muscat, OmanBanasthali University, Jaipur Campus, Jaipur, IndiaThe progress of databases in fields such as medical, business, education, marketing, etc., is colossal because of the developments in information technology. Knowledge discovery from such concealed bulk databases is a tedious task. For this, data mining is one of the promising solutions and clustering is one of its applications. The clustering process groups the data objects related to each other in a similar cluster and diverse objects in another cluster. The literature presents many clustering algorithms for data clustering. Optimisation-based clustering algorithm is one of the recently developed algorithms for the clustering process to discover the optimal cluster based on the objective function. In our previous method, direct operative fractional lion optimisation algorithm was proposed for data clustering. In this paper, we designed a new clustering algorithm called adaptive decisive operative fractional lion (ADOFL) optimisation algorithm based on multi-kernel function. Moreover, a new fitness function called multi-kernel WL index is proposed for the selection of the best centroid point for clustering. The experimentation of the proposed ADOFL algorithm is carried out over two benchmarked datasets, Iris and Wine. The performance of the proposed ADOFL algorithm is validated over existing clustering algorithms such as particle swarm clustering (PSC) algorithm, modified PSC algorithm, lion algorithm, fractional lion algorithm, and DOFL. The result shows that the maximum clustering accuracy of 79.51 is obtained by the proposed method in data clustering.https://doi.org/10.1515/jisys-2016-0175data clusteringoptimisationfractional lion optimisationwli cluster validity index |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Chander Satish Vijaya P. Dhyani Praveen |
spellingShingle |
Chander Satish Vijaya P. Dhyani Praveen ADOFL: Multi-Kernel-Based Adaptive Directive Operative Fractional Lion Optimisation Algorithm for Data Clustering Journal of Intelligent Systems data clustering optimisation fractional lion optimisation wli cluster validity index |
author_facet |
Chander Satish Vijaya P. Dhyani Praveen |
author_sort |
Chander Satish |
title |
ADOFL: Multi-Kernel-Based Adaptive Directive Operative Fractional Lion Optimisation Algorithm for Data Clustering |
title_short |
ADOFL: Multi-Kernel-Based Adaptive Directive Operative Fractional Lion Optimisation Algorithm for Data Clustering |
title_full |
ADOFL: Multi-Kernel-Based Adaptive Directive Operative Fractional Lion Optimisation Algorithm for Data Clustering |
title_fullStr |
ADOFL: Multi-Kernel-Based Adaptive Directive Operative Fractional Lion Optimisation Algorithm for Data Clustering |
title_full_unstemmed |
ADOFL: Multi-Kernel-Based Adaptive Directive Operative Fractional Lion Optimisation Algorithm for Data Clustering |
title_sort |
adofl: multi-kernel-based adaptive directive operative fractional lion optimisation algorithm for data clustering |
publisher |
De Gruyter |
series |
Journal of Intelligent Systems |
issn |
0334-1860 2191-026X |
publishDate |
2018-07-01 |
description |
The progress of databases in fields such as medical, business, education, marketing, etc., is colossal because of the developments in information technology. Knowledge discovery from such concealed bulk databases is a tedious task. For this, data mining is one of the promising solutions and clustering is one of its applications. The clustering process groups the data objects related to each other in a similar cluster and diverse objects in another cluster. The literature presents many clustering algorithms for data clustering. Optimisation-based clustering algorithm is one of the recently developed algorithms for the clustering process to discover the optimal cluster based on the objective function. In our previous method, direct operative fractional lion optimisation algorithm was proposed for data clustering. In this paper, we designed a new clustering algorithm called adaptive decisive operative fractional lion (ADOFL) optimisation algorithm based on multi-kernel function. Moreover, a new fitness function called multi-kernel WL index is proposed for the selection of the best centroid point for clustering. The experimentation of the proposed ADOFL algorithm is carried out over two benchmarked datasets, Iris and Wine. The performance of the proposed ADOFL algorithm is validated over existing clustering algorithms such as particle swarm clustering (PSC) algorithm, modified PSC algorithm, lion algorithm, fractional lion algorithm, and DOFL. The result shows that the maximum clustering accuracy of 79.51 is obtained by the proposed method in data clustering. |
topic |
data clustering optimisation fractional lion optimisation wli cluster validity index |
url |
https://doi.org/10.1515/jisys-2016-0175 |
work_keys_str_mv |
AT chandersatish adoflmultikernelbasedadaptivedirectiveoperativefractionallionoptimisationalgorithmfordataclustering AT vijayap adoflmultikernelbasedadaptivedirectiveoperativefractionallionoptimisationalgorithmfordataclustering AT dhyanipraveen adoflmultikernelbasedadaptivedirectiveoperativefractionallionoptimisationalgorithmfordataclustering |
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1717768103283130368 |