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Published on: October 14, 2017
A product-driven system with an evolutionary algorithm to increase flexibility in planning a job shop.
Patricio Sáez1, Carlos Herrera1, Camila Booth1
1Department of Industrial Engineering, Universidad de Concepción, Concepción, Chile.
A new product-driven system using multiagent systems and evolutionary algorithms dynamically minimizes job shop makespan. This approach offers near-optimal solutions efficiently, improving with problem scale for real-time control.
Area of Science:
- Operations Research
- Artificial Intelligence
- Manufacturing Systems
Background:
- Traditional job shop scheduling models are computationally intensive and impractical for real-time implementation, especially for large-scale problems.
- Decentralized approaches using real-time product flow information offer a dynamic alternative for makespan minimization.
- The computational performance of decentralized systems like holonic and multiagent systems for real-time job shop control remains unclear.
Purpose of the Study:
- To present a product-driven job shop system model incorporating an evolutionary algorithm to minimize makespan.
- To evaluate the computational performance and solution quality of this system across different problem scales.
- To determine the feasibility of embedding such a system in a real-time production control process.
Main Methods:
- Development of a product-driven job shop system model.
- Integration of an evolutionary algorithm for makespan minimization.
- Simulation of the model using a multiagent system to compare performance against classical models for 102 job shop problem instances (small, medium, large scale).
Main Results:
- The product-driven system consistently produces near-optimal solutions within short timeframes.
- System performance improves as the scale of the job shop problem increases.
- Observed computational performance indicates suitability for real-time control applications.
Conclusions:
- The proposed product-driven job shop system effectively minimizes makespan using an evolutionary algorithm within a multiagent system framework.
- The system demonstrates scalability and efficiency, outperforming classical models for larger problem instances.
- The findings support the practical implementation of this decentralized approach for real-time job shop scheduling and control.
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