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Intelligence approach to production planning system for bespoke precast concrete products

机译:定制预制混凝土产品生产计划系统的智能方法

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摘要

Bespoke precast concrete products are widely used components of construction projects. These products implement the offsite prefabrication technology that offers a unique opportunity for innovation and cost savings for construction projects. However, the production process from design to manufacturing contains uncertainties due to external factors: multi-disciplinary design, progress on construction site. The typical workload on bespoke precast factories is a complex combination of uniquely and identically designed products, which have various delivery dates and requirement of costly purpose-built moulds. In this context, this research is aimed to improve the efficiency of the process by addressing the production planning because it has a significant impact to the success of the production programme. An innovative planning system and its prototype called 'Artificial Intelligence Planner' (AIP) are developed. AIP is capable of two functionalities. The first is a data integration system that encourages the automation in the planning process. The other is a decision support system for planners to improve the efficiency of the production plans. These functionalities reinforce each other to deliver optimum benefits to precast manufacturers. AIP have employed artificial intelligence technologies: neural network and genetic algorithm to enhance data analyses for being a decision support for production planning. The outcomes of the research include shortened customer lead-time, in-house repository of production knowledge, and achievement of the optimum factory's resource utilisation.
机译:定制预制混凝土产品是建筑项目中广泛使用的组件。这些产品采用异地预制技术,为建筑项目提供了创新和节省成本的独特机会。但是,从设计到制造的生产过程由于外部因素而存在不确定性:多学科设计,施工现场的进度。定制预制工厂的典型工作量是独特且设计相同的产品的复杂组合,这些产品具有不同的交货日期和对昂贵的专用模具的要求。在这种情况下,本研究旨在通过解决生产计划来提高过程效率,因为它对生产计划的成功具有重大影响。开发了一种创新的计划系统及其原型,称为“人工智能计划器”(AIP)。 AIP具有两种功能。第一个是数据集成系统,可鼓励规划过程中的自动化。另一个是用于计划者的决策支持系统,以提高生产计划的效率。这些功能相互增强,可以为预制制造商带来最佳利益。 AIP采用了人工智能技术:神经网络和遗传算法来增强数据分析,从而为生产计划提供决策支持。研究的结果包括缩短客户交货时间,内部生产知识存储库以及实现最佳工厂资源利用。

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