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Optimizing Ideal Time in Stochastic Assembly Line Balancing through Chance-Constrained via K-means Algorithm

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

To tackle the assembly line balancing problem (ALBP), we present an integer mathematical formulation that integrates both the stochastic nature of task times and equipment selection by task. The proposed approach aims to optimize task allocation along the production line, considering variations in task durations and the specific equipment requirements for each task. Our main goal is to minimize the total ideal time while ensuring efficient equipment utilization and maintaining a balanced workload across workstations. We achieve this through the development of a mathematical model that assigns tasks to workstations, considering both stochastic task times and equipment needs. To address the complexity of the problem, we propose a clustering method based on K-means technique, allowing for efficient grouping of tasks based on their characteristics and equipment requirements. Through iterative improvement of task assignments, our objective is to attain a near-optimal solution that minimizes both the ideal assembly time and equipment requirements. Hence, enhancing overall production line efficiency. Initial experimentation and validation using datasets provide insights into the effectiveness of our approach, demonstrating significant improvements in efficiency and cost savings across production line operations.

Original languageEnglish
Title of host publicationProceedings of the IISE Annual Conference and Expo 2024
EditorsA. Brown Greer, C. Contardo, J.-M. Frayret
PublisherInstitute of Industrial and Systems Engineers, IISE
ISBN (Electronic)9781713877851
StatePublished - 2024
EventIISE Annual Conference and Expo 2024 - Montreal, Canada
Duration: 18 May 202421 May 2024

Publication series

NameProceedings of the IISE Annual Conference and Expo 2024

Conference

ConferenceIISE Annual Conference and Expo 2024
Country/TerritoryCanada
CityMontreal
Period18/05/2421/05/24

Bibliographical note

Publisher Copyright:
© IISE Annual Conference and Expo 2024.All rights reserved.

Keywords

  • Line balancing
  • chance constraint
  • clustering heuristic
  • equipment selection
  • ideal time

ASJC Scopus subject areas

  • Control and Systems Engineering
  • Industrial and Manufacturing Engineering

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