Lot Sizing using Neural Network Approach

A lot of works have been done by the researchers to solve lot-sizing problems over the past few decades. Many techniques and al-gorithm have been developed to solve the lot-sizing problems. Basically, most of the algorithms are developed either based on heuristic or math-ematical approach. Since neu...

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Main Authors: Mohamed Radzi, Nor Haizan, Haron, Habibollah, Tuan Johari, Tuan Irdawati
Format: Conference or Workshop Item
Published: 2006
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Online Access:http://eprints.utm.my/id/eprint/25055/
https://www.researchgate.net/publication/265987288_Lot_Sizing_Using_Neural_Network_Approach
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spelling my.utm.250552017-09-30T08:47:17Z http://eprints.utm.my/id/eprint/25055/ Lot Sizing using Neural Network Approach Mohamed Radzi, Nor Haizan Haron, Habibollah Tuan Johari, Tuan Irdawati QA75 Electronic computers. Computer science A lot of works have been done by the researchers to solve lot-sizing problems over the past few decades. Many techniques and al-gorithm have been developed to solve the lot-sizing problems. Basically, most of the algorithms are developed either based on heuristic or math-ematical approach. Since neural network has been given attention by the researchers in many areas including production planning, therefore in this paper we implement neural network to solve single level lot-sizing problem. Three models are developed based on three well known heuris-tic techniques, which are Periodic Order Quantity (POQ), Lot-For-Lot (LFL) and Silver-Meal (SM). The planning period involves in the model is 12 period where demand in the periods are varies but deterministic. The model was developed using MatLab software. Back-propagation learning algorithm and feed-forward multi-layered architecture is cho-sen in this project. Result shows that the three models able to give optimum solution and easy to be applied in the lot-sizing problem. 2006 Conference or Workshop Item PeerReviewed Mohamed Radzi, Nor Haizan and Haron, Habibollah and Tuan Johari, Tuan Irdawati (2006) Lot Sizing using Neural Network Approach. In: The 2nd IMT-GT 2006 Regional Conference on Mathematics, Statistics and Applications, School of Mathematical Sciences, 2006, n/a. https://www.researchgate.net/publication/265987288_Lot_Sizing_Using_Neural_Network_Approach
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic QA75 Electronic computers. Computer science
spellingShingle QA75 Electronic computers. Computer science
Mohamed Radzi, Nor Haizan
Haron, Habibollah
Tuan Johari, Tuan Irdawati
Lot Sizing using Neural Network Approach
description A lot of works have been done by the researchers to solve lot-sizing problems over the past few decades. Many techniques and al-gorithm have been developed to solve the lot-sizing problems. Basically, most of the algorithms are developed either based on heuristic or math-ematical approach. Since neural network has been given attention by the researchers in many areas including production planning, therefore in this paper we implement neural network to solve single level lot-sizing problem. Three models are developed based on three well known heuris-tic techniques, which are Periodic Order Quantity (POQ), Lot-For-Lot (LFL) and Silver-Meal (SM). The planning period involves in the model is 12 period where demand in the periods are varies but deterministic. The model was developed using MatLab software. Back-propagation learning algorithm and feed-forward multi-layered architecture is cho-sen in this project. Result shows that the three models able to give optimum solution and easy to be applied in the lot-sizing problem.
format Conference or Workshop Item
author Mohamed Radzi, Nor Haizan
Haron, Habibollah
Tuan Johari, Tuan Irdawati
author_facet Mohamed Radzi, Nor Haizan
Haron, Habibollah
Tuan Johari, Tuan Irdawati
author_sort Mohamed Radzi, Nor Haizan
title Lot Sizing using Neural Network Approach
title_short Lot Sizing using Neural Network Approach
title_full Lot Sizing using Neural Network Approach
title_fullStr Lot Sizing using Neural Network Approach
title_full_unstemmed Lot Sizing using Neural Network Approach
title_sort lot sizing using neural network approach
publishDate 2006
url http://eprints.utm.my/id/eprint/25055/
https://www.researchgate.net/publication/265987288_Lot_Sizing_Using_Neural_Network_Approach
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score 13.211869