Similarity Statistics for Clusterability Analysis with the Application of Cell Formation Problem
This paper proposes the use of the statistics of similarity values to evaluate the clusterability or structuredness associated with a cell formation (CF) problem. Typically, the structuredness of a CF solution cannot be known until the CF problem is solved. In this context, this paper investigates t...
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Published in | Journal of Probability and Statistics Vol. 2018; no. 2018; pp. 1 - 17 |
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Main Authors | , |
Format | Journal Article |
Language | English |
Published |
Cairo, Egypt
Hindawi Publishing Corporation
01.01.2018
Hindawi John Wiley & Sons, Inc Hindawi Limited Wiley |
Subjects | |
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Abstract | This paper proposes the use of the statistics of similarity values to evaluate the clusterability or structuredness associated with a cell formation (CF) problem. Typically, the structuredness of a CF solution cannot be known until the CF problem is solved. In this context, this paper investigates the similarity statistics of machine pairs to estimate the potential structuredness of a given CF problem without solving it. One key observation is that a well-structured CF solution matrix has a relatively high percentage of high-similarity machine pairs. Then, histograms are used as a statistical tool to study the statistical distributions of similarity values. This study leads to the development of the U-shape criteria and the criterion based on the Kolmogorov-Smirnov test. Accordingly, a procedure is developed to classify whether an input CF problem can potentially lead to a well-structured or ill-structured CF matrix. In the numerical study, 20 matrices were initially used to determine the threshold values of the criteria, and 40 additional matrices were used to verify the results. Further, these matrix examples show that genetic algorithm cannot effectively improve the well-structured CF solutions (of high grouping efficacy values) that are obtained by hierarchical clustering (as one type of heuristics). This result supports the relevance of similarity statistics to preexamine an input CF problem instance and suggest a proper solution approach for problem solving. |
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AbstractList | This paper proposes the use of the statistics of similarity values to evaluate the clusterability or structuredness associated with a cell formation (CF) problem. Typically, the structuredness of a CF solution cannot be known until the CF problem is solved. In this context, this paper investigates the similarity statistics of machine pairs to estimate the potential structuredness of a given CF problem without solving it. One key observation is that a well-structured CF solution matrix has a relatively high percentage of high-similarity machine pairs. Then, histograms are used as a statistical tool to study the statistical distributions of similarity values. This study leads to the development of the U-shape criteria and the criterion based on the Kolmogorov-Smirnov test. Accordingly, a procedure is developed to classify whether an input CF problem can potentially lead to a well-structured or ill-structured CF matrix. In the numerical study, 20 matrices were initially used to determine the threshold values of the criteria, and 40 additional matrices were used to verify the results. Further, these matrix examples show that genetic algorithm cannot effectively improve the well-structured CF solutions (of high grouping efficacy values) that are obtained by hierarchical clustering (as one type of heuristics). This result supports the relevance of similarity statistics to preexamine an input CF problem instance and suggest a proper solution approach for problem solving. This paper proposes the use of the statistics of similarity values to evaluate the clusterability or structuredness associated with a cell formation (CF) problem. Typically, the structuredness of a CF solution cannot be known until the CF problem is solved. In this context, this paper investigates the similarity statistics of machine pairs to estimate the potential structuredness of a given CF problem without solving it. One key observation is that a well-structured CF solution matrix has a relatively high percentage of high-similarity machine pairs. Then, histograms are used as a statistical tool to study the statistical distributions of similarity values. This study leads to the development of the U-shape criteria and the criterion based on the Kolmogorov-Smirnovtest. Accordingly, a procedure is developed to classify whether an input CF problem can potentially lead to a well-structured or ill-structured CF matrix. In the numerical study, 20 matrices were initially used to determine the threshold values of the criteria, and 40 additional matrices were used to verify the results. Further, these matrix examples show that genetic algorithm cannot effectively improve the wellstructured CF solutions (of high grouping efficacy values) that are obtained by hierarchical clustering (as one type of heuristics). This result supports the relevance of similarity statistics to preexamine an input CF problem instance and suggest a proper solution approach for problem solving. |
Audience | Academic |
Author | Zhu, Yingyu Li, Simon |
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Cites_doi | 10.1016/j.ijpe.2005.01.014 10.1016/S0305-0483(96)00045-X 10.1016/j.ijpe.2009.04.015 10.1016/j.patrec.2012.12.021 10.1080/002075499191779 10.1016/j.cie.2011.07.015 10.1080/002075400189473 10.1016/j.omega.2004.07.016 10.1016/j.cie.2015.09.010 10.1049/tpe.1972.0006 10.1007/BF02682446 10.1016/j.amc.2014.12.038 10.1016/j.ejor.2007.02.040 10.1080/002075498193985 10.1080/00207549608905058 10.1057/palgrave.jors.2602436 10.32614/RJ-2011-016 10.1016/j.cor.2012.10.016 10.1016/j.ejor.2009.10.020 10.1016/S0167-7152(97)00020-5 10.1080/0740817X.2014.971202 10.1080/00207549008942706 10.1016/0360-8352(95)00024-0 10.1016/j.procir.2017.03.174 |
ContentType | Journal Article |
Copyright | Copyright © 2018 Yingyu Zhu and Simon Li. COPYRIGHT 2018 John Wiley & Sons, Inc. Copyright © 2018 Yingyu Zhu and Simon Li. This is an open access article distributed under the Creative Commons Attribution License (the “License”), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the terms of the License. https://creativecommons.org/licenses/by/4.0 |
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SubjectTerms | Advanced manufacturing technologies Cluster analysis Clustering Computer science Criteria Genetic algorithms Group technology Heuristic Histograms Industrial engineering Kolmogorov-Smirnov test Linear programming Manufacturing cells Problem solving Similarity Statistical distributions Statistics Values |
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Title | Similarity Statistics for Clusterability Analysis with the Application of Cell Formation Problem |
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