Development of Automatic Balancing Application forFashion Company Using Artificial Intelligence

May Alrasheed, Mohamed Jmali, Thouraya Hamdi
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Abstract

Industrial companies aim to minimise production costs and improve product quality by analysing work organisation levels. Workshop scheduling and line balancing are essential in realising production plans, particularly in the fashion industry. Balancing systems must optimise precise criteria while sticking to constraints. Preserving balance needs precise parameters that align theoretical and practical production results. Manual methods overlook the balancing process, where managers rely on experience to prove balance and adjust parameters as needed. This article presents a creative automatic balancing application for fashion companies, leveraging artificial intelligence’s (AI) power. It focuses on utilising ant colony algorithms for optimal balancing. The results show the significance of these algorithms in attaining optimal balancing in production systems. The article highlights outstanding balancing results achieved through this approach, providing alignment with detailed criteria and constraints. The algorithm reliably distributes tasks among operators, improving overall productivity. Therefore, ant colony algorithms are perfect for manufacturers pursuing cost reduction, improved product quality and facilitated production processes. This article introduces an AI-based automatic balancing application for fashion companies. The ant colony algorithms achieve optimal balancing, improve inventory management and enhance productivity.
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利用人工智能为时装公司开发自动平衡应用程序
工业企业旨在通过分析工作组织水平,最大限度地降低生产成本,提高产品质量。车间调度和生产线平衡对实现生产计划至关重要,尤其是在时装业。平衡系统必须在遵守限制条件的同时优化精确的标准。保持平衡需要精确的参数,使理论和实际生产结果保持一致。手动方法忽略了平衡过程,管理人员依靠经验来证明平衡并根据需要调整参数。本文利用人工智能(AI)的力量,为时装公司介绍了一种创造性的自动平衡应用。其重点是利用蚁群算法实现最佳平衡。结果表明了这些算法在实现生产系统优化平衡方面的重要作用。文章重点介绍了通过这种方法取得的出色平衡结果,并提供了与详细标准和约束条件的一致性。该算法在操作员之间可靠地分配任务,提高了整体生产率。因此,蚁群算法是追求降低成本、提高产品质量和简化生产流程的制造商的理想选择。本文为时装公司介绍了一种基于人工智能的自动平衡应用。蚁群算法可实现最佳平衡、改善库存管理并提高生产率。
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