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Online Gauss-Newton-based parallel-pipeline method for real-time in-situ laser ranging

DOI:10.1109/JSEN.2020.2978120 期刊:IEEE Sensors Journal 出版年份:2020 更新时间:2025-09-19 17:13:59
摘要: Over the last few decades, there has been considerable concern over the multifactory manufacturing environments owing to globalization. Numerous studies have indicated that ?exible job-shop scheduling problems (FJSPs) and the distributed and FJSPs (DFJSPs) belong to NP-hard puzzle. The allocation of jobs to appropriate factories or ?exible manufacturing units is an essential task in multifactory optimization scheduling, which involves the consideration of equipment performance, technology, capacity, and utilization level for each factory or manufacturing unit. Several variables and constraints should be considered in the encoding problem of DFJSPs when using genetic algorithms (GAs). In particular, it has been reported in the literature that the traditional GA encoding method may generate infeasible solutions or illegal solutions; thus, a specially designed evolution process is required. However, in such a process, the diversity of chromosomes is lost. To overcome this drawback, this paper proposes a re?ned encoding operator that integrates probability concepts into a real-parameter encoding method. In addition, the length of chromosomes can be substantially reduced using the proposed algorithm, thereby, saving computation space. The proposed re?ned GA algorithm was evaluated with satisfactory results through two-stage validation; in the ?rst stage, a classical DFJSP was adopted to show the effectiveness of the algorithm, and in the second stage, the algorithm was used to solve a real-world case. The real-world case involved the use of historical data with 100 and 200 sets of work orders of a fastener manufacturer in Taiwan. The results were satisfactory and indicated that the proposed re?ned GA algorithm could effectively overcome the con?icts caused by GA encoding algorithms.
作者: TUNG-KUAN LIU,YEH-PENG CHEN,JYH-HORNG CHOU
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To propose a refined encoding operator that integrates probability concepts into a real-parameter encoding method for solving distributed and flexible job-shop scheduling problems (DFJSPs) effectively.

The proposed refined GA with a probability-based encoding operator effectively solves DFJSPs, overcoming the drawbacks of traditional GA encoding methods. It shows substantial improvement in scheduling performance, including shorter makespan, fewer mold replacements, and lower average machine load rate, leading to increased production capacity and decreased maintenance costs.

The study does not investigate uncertainties and rescheduling due to disruptions, which could influence the final scheduling results.

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