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Achieving quality assurance functionality in the food industry using a hybrid case-based reasoning and fuzzy logic approach

机译:使用基于案例的推理和模糊逻辑的混合方法,实现食品行业的质量保证功能

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摘要

Quality control of food inventories in the warehouse is complex as well as challenging due to the fact that food can easily deteriorate. Currently, this difficult storage problem is managed mostly by using a human dependent quality assurance and decision making process. This has however, occasionally led to unimaginative, arduous and inconsistent decisions due to the injection of subjective human intervention into the process. Therefore, it could be said that current practice is not powerful enough to support high-quality inventory management. In this paper, the development of an integrative prototype decision support system, namely, Intelligent Food Quality Assurance System (IFQAS) is described which will assist the process by automating the human based decision making process in the quality control of food storage. The system, which is composed of a Case-based Reasoning (CBR) engine and a Fuzzy rule-based Reasoning (FBR) engine, starts with the receipt of incoming food inventory. With the CBR engine, certain quality assurance operations can be suggested based on the attributes of the food received. Further of this, the FBR engine can make suggestions on the optimal storage conditions of inventory by systematically evaluating the food conditions when the food is receiving. With the assistance of the system, a holistic monitoring in quality control of the receiving operations and the storage conditions of the food in the warehouse can be performed. It provides consistent and systematic Quality Assurance Guidelines for quality control which leads to improvement in the level of customer satisfaction and minimization of the defective rate.
机译:仓库中食品库存的质量控制既复杂又困难,因为食品很容易变质。当前,这个棘手的存储问题主要通过使用人为依赖的质量保证和决策过程来解决。但是,由于在过程中注入了主观的人工干预,因此有时会导致难以想象的,艰巨的和不一致的决策。因此,可以说,当前的实践不足以支持高质量的库存管理。在本文中,描述了集成原型决策支持系统的开发,即智能食品质量保证系统(IFQAS),该系统将通过基于人的决策过程在食品存储质量控制中的自动化来辅助该过程。该系统由基于案例的推理(CBR)引擎和基于模糊规则的推理(FBR)引擎组成,从接收到的食品库存开始。使用CBR引擎,可以根据收到的食物的属性建议某些质量保证操作。此外,FBR引擎可以通过在接收食物时系统地评估食物状况来建议最佳的库存存储条件。借助该系统,可以对接收操作的质量控制和仓库中食物的存储状况进行全面监控。它为质量控制提供了一致且系统的质量保证准则,从而提高了客户满意度,并最大程度地降低了次品率。

著录项

  • 来源
    《Expert Systems with Application》 |2012年第5期|p.5251-5261|共11页
  • 作者单位

    Department of Industrial and System Engineering, The Hong Kong Polytechnic University, Hunghom, Hong Kong;

    Department of Industrial and System Engineering, The Hong Kong Polytechnic University, Hunghom, Hong Kong;

    Department of Industrial and System Engineering, The Hong Kong Polytechnic University, Hunghom, Hong Kong;

    Department of System Engineering & Engineering Management, The City University of Hong Kong, Hong Kong;

    Department of Industrial and System Engineering, The Hong Kong Polytechnic University, Hunghom, Hong Kong;

    Department of Industrial and System Engineering, The Hong Kong Polytechnic University, Hunghom, Hong Kong;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    food quality; case-based reasoning; fuzzy logic; decision support system; operation guidelines; storage conditions;

    机译:食物品质;基于案例的推理;模糊逻辑;决策支持系统;操作准则;储藏条件;

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