Roles selection: a computational approach using ELECTRE and CFFR based on multi criteria tacit knowledge acquisition
During the Talent Development Intervention programme, there is a need to provide an effective model to assess awareness, skills and experience among potential academics. To qualify as an Academic Leader or Academic Manager, there are certain characteristics and t raits necessary. However, there is a...
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my.ump.umpir.317242021-07-31T09:48:33Z http://umpir.ump.edu.my/id/eprint/31724/ Roles selection: a computational approach using ELECTRE and CFFR based on multi criteria tacit knowledge acquisition Yau’mee Hayati, Hj Mohamed Yusof Ruzaini, Abdullah Arshah Awanis, Romli QA76 Computer software During the Talent Development Intervention programme, there is a need to provide an effective model to assess awareness, skills and experience among potential academics. To qualify as an Academic Leader or Academic Manager, there are certain characteristics and t raits necessary. However, there is a lack of research on the training of talented academicians to improve and avoid the loss of these characteristics and traits. Lack of this training would also contribute to vacancy positions of Academic Administrator without being hired. This paper aims to formulate and compare the Multi-criteria Decision-Making methods using ELECTRE (Elimination and Choice Expressing Reality) and CFPR (Consistent Fuzzy Preference Relations) based on proposed model of Multi Criteria Tacit Knowledge Acquisition (MC-TKAF). One set of empirical study based on proposed model contain seventeen (17) main criteria's and one hundred eights (108) sub criteria are used to select the best candidate to fill in academic administrator roles. In this study, our focus is to integrate MCDM using CFFR and ELECTRE into implementation of Talent Development Intervention based on MC-TKAF development criteria. This paper also highlighted previous literatures which has shown how MC TKAF is formed and the justification of MCDM technique that will be used. The finding shows that both techniques produce the same results. IOP Publishing 2021-06-15 Conference or Workshop Item PeerReviewed pdf en cc_by http://umpir.ump.edu.my/id/eprint/31724/1/Roles%20selection-a%20computational%20approach%20using%20ELECTRE%20and%20CFFR.pdf Yau’mee Hayati, Hj Mohamed Yusof and Ruzaini, Abdullah Arshah and Awanis, Romli (2021) Roles selection: a computational approach using ELECTRE and CFFR based on multi criteria tacit knowledge acquisition. In: Journal of Physics: Conference Series; 1st International Recent Trends in Engineering, Advanced Computing and Technology Conference, RETREAT 2020, 1 - 3 December 2020 , Paris, France (Virtual). pp. 1-13., 1874 (1). ISSN 1742-6588 (print); 1742-6596 (online) https://doi.org/10.1088/1742-6596/1874/1/012090 |
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During the Talent Development Intervention programme, there is a need to provide an effective model to assess awareness, skills and experience among potential academics. To qualify as an Academic Leader or Academic Manager, there are certain characteristics and t raits necessary. However, there is a lack of research on the training of talented academicians to improve and avoid the loss of these characteristics and traits. Lack of this training would also contribute to vacancy positions of Academic Administrator without being hired. This paper aims to formulate and compare the Multi-criteria Decision-Making methods using ELECTRE (Elimination and Choice Expressing Reality) and CFPR (Consistent Fuzzy Preference Relations) based on proposed model of Multi Criteria Tacit Knowledge Acquisition (MC-TKAF). One set of empirical study based on proposed model contain seventeen (17) main criteria's and one hundred eights (108) sub criteria are used to select the best candidate to fill in academic administrator roles. In this study, our focus is to integrate MCDM using CFFR and ELECTRE into implementation of Talent Development Intervention based on MC-TKAF development criteria. This paper also highlighted previous literatures which has shown how MC TKAF is formed and the justification of MCDM technique that will be used. The finding shows that both techniques produce the same results. |
format |
Conference or Workshop Item |
author |
Yau’mee Hayati, Hj Mohamed Yusof Ruzaini, Abdullah Arshah Awanis, Romli |
author_facet |
Yau’mee Hayati, Hj Mohamed Yusof Ruzaini, Abdullah Arshah Awanis, Romli |
author_sort |
Yau’mee Hayati, Hj Mohamed Yusof |
title |
Roles selection: a computational approach using ELECTRE and CFFR based on multi criteria tacit knowledge acquisition |
title_short |
Roles selection: a computational approach using ELECTRE and CFFR based on multi criteria tacit knowledge acquisition |
title_full |
Roles selection: a computational approach using ELECTRE and CFFR based on multi criteria tacit knowledge acquisition |
title_fullStr |
Roles selection: a computational approach using ELECTRE and CFFR based on multi criteria tacit knowledge acquisition |
title_full_unstemmed |
Roles selection: a computational approach using ELECTRE and CFFR based on multi criteria tacit knowledge acquisition |
title_sort |
roles selection: a computational approach using electre and cffr based on multi criteria tacit knowledge acquisition |
publisher |
IOP Publishing |
publishDate |
2021 |
url |
http://umpir.ump.edu.my/id/eprint/31724/1/Roles%20selection-a%20computational%20approach%20using%20ELECTRE%20and%20CFFR.pdf http://umpir.ump.edu.my/id/eprint/31724/ https://doi.org/10.1088/1742-6596/1874/1/012090 |
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1706957261348274176 |