A PSO inspired asynchronous cooperative distributed hyper-heuristic for course timetabling problems

This paper presents a novel approach for asynchronous cooperative hyper-heuristic incorporated with particle swarm optimisation which inspired by social individual behaviour of swarm intelligence, like bird flocking and fish schooling. The proposed hyper-heuristic algorithm starts with a complete so...

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Main Authors: Joe Henry Obit, Rayner Alfred, Mansour Hassani Abdalla
Format: Article
Language:English
English
Published: American Scientific Publishers 2017
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Online Access:https://eprints.ums.edu.my/id/eprint/29017/1/A%20PSO%20inspired%20asynchronous%20cooperative%20distributed%20hyper-heuristic%20for%20course%20timetabling%20problems%20ABSTRACT.pdf
https://eprints.ums.edu.my/id/eprint/29017/4/A%20PSO%20inspired%20asynchronous%20cooperative%20distributed%20hyper-heuristic%20for%20course%20timetabling%20problems%20FULL%20TEXT-2-9.pdf
https://eprints.ums.edu.my/id/eprint/29017/
https://www.ingentaconnect.com/contentone/asp/asl/2017/00000023/00000011/art00127
http://dx.doi.org/10.1166/asl.2017.10210
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spelling my.ums.eprints.290172021-09-09T04:07:53Z https://eprints.ums.edu.my/id/eprint/29017/ A PSO inspired asynchronous cooperative distributed hyper-heuristic for course timetabling problems Joe Henry Obit Rayner Alfred Mansour Hassani Abdalla QA76.75-76.765 Computer software This paper presents a novel approach for asynchronous cooperative hyper-heuristic incorporated with particle swarm optimisation which inspired by social individual behaviour of swarm intelligence, like bird flocking and fish schooling. The proposed hyper-heuristic algorithm starts with a complete solution and tries to improve the soft constraints, whilst always remaining in the feasible region of the search space. The performances of the proposed cooperative hyper-heuristics are evaluated using the standard course timetabling benchmark problem. From the experimental results, it shows that the proposed Asynchronous Cooperative Distribute Low-level heuristics (ACDLLHs) algorithm is able to find new best solutions for all five medium problem instances and shared optimal solutions for all five small instances. When coupled with two, four and six agents, the Asynchronous Cooperative Distributed Hyper-heuristic (ACDHH) algorithm is able to improve the solution quality for a large instance. American Scientific Publishers 2017 Article PeerReviewed text en https://eprints.ums.edu.my/id/eprint/29017/1/A%20PSO%20inspired%20asynchronous%20cooperative%20distributed%20hyper-heuristic%20for%20course%20timetabling%20problems%20ABSTRACT.pdf text en https://eprints.ums.edu.my/id/eprint/29017/4/A%20PSO%20inspired%20asynchronous%20cooperative%20distributed%20hyper-heuristic%20for%20course%20timetabling%20problems%20FULL%20TEXT-2-9.pdf Joe Henry Obit and Rayner Alfred and Mansour Hassani Abdalla (2017) A PSO inspired asynchronous cooperative distributed hyper-heuristic for course timetabling problems. Advanced Science Letters, 23. pp. 11016-11022. ISSN 1936-6612 (P-ISSN) , 19367317 (E-ISSN) https://www.ingentaconnect.com/contentone/asp/asl/2017/00000023/00000011/art00127 http://dx.doi.org/10.1166/asl.2017.10210
institution Universiti Malaysia Sabah
building UMS Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaysia Sabah
content_source UMS Institutional Repository
url_provider http://eprints.ums.edu.my/
language English
English
topic QA76.75-76.765 Computer software
spellingShingle QA76.75-76.765 Computer software
Joe Henry Obit
Rayner Alfred
Mansour Hassani Abdalla
A PSO inspired asynchronous cooperative distributed hyper-heuristic for course timetabling problems
description This paper presents a novel approach for asynchronous cooperative hyper-heuristic incorporated with particle swarm optimisation which inspired by social individual behaviour of swarm intelligence, like bird flocking and fish schooling. The proposed hyper-heuristic algorithm starts with a complete solution and tries to improve the soft constraints, whilst always remaining in the feasible region of the search space. The performances of the proposed cooperative hyper-heuristics are evaluated using the standard course timetabling benchmark problem. From the experimental results, it shows that the proposed Asynchronous Cooperative Distribute Low-level heuristics (ACDLLHs) algorithm is able to find new best solutions for all five medium problem instances and shared optimal solutions for all five small instances. When coupled with two, four and six agents, the Asynchronous Cooperative Distributed Hyper-heuristic (ACDHH) algorithm is able to improve the solution quality for a large instance.
format Article
author Joe Henry Obit
Rayner Alfred
Mansour Hassani Abdalla
author_facet Joe Henry Obit
Rayner Alfred
Mansour Hassani Abdalla
author_sort Joe Henry Obit
title A PSO inspired asynchronous cooperative distributed hyper-heuristic for course timetabling problems
title_short A PSO inspired asynchronous cooperative distributed hyper-heuristic for course timetabling problems
title_full A PSO inspired asynchronous cooperative distributed hyper-heuristic for course timetabling problems
title_fullStr A PSO inspired asynchronous cooperative distributed hyper-heuristic for course timetabling problems
title_full_unstemmed A PSO inspired asynchronous cooperative distributed hyper-heuristic for course timetabling problems
title_sort pso inspired asynchronous cooperative distributed hyper-heuristic for course timetabling problems
publisher American Scientific Publishers
publishDate 2017
url https://eprints.ums.edu.my/id/eprint/29017/1/A%20PSO%20inspired%20asynchronous%20cooperative%20distributed%20hyper-heuristic%20for%20course%20timetabling%20problems%20ABSTRACT.pdf
https://eprints.ums.edu.my/id/eprint/29017/4/A%20PSO%20inspired%20asynchronous%20cooperative%20distributed%20hyper-heuristic%20for%20course%20timetabling%20problems%20FULL%20TEXT-2-9.pdf
https://eprints.ums.edu.my/id/eprint/29017/
https://www.ingentaconnect.com/contentone/asp/asl/2017/00000023/00000011/art00127
http://dx.doi.org/10.1166/asl.2017.10210
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