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首页> 外文期刊>Journal of Advanced Computatioanl Intelligence and Intelligent Informatics >Enhancing a Fuzzy Failure Mode and Effect Analysis Methodology with an Analogical Reasoning Technique
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Enhancing a Fuzzy Failure Mode and Effect Analysis Methodology with an Analogical Reasoning Technique

机译:用类推推理技术增强模糊失效模式和影响分析方法

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摘要

In this paper, a fuzzy Failure Mode and Effect Analysis (FMEA) methodology incorporating an analogical reasoning technique is presented. FMEA methodology was introduced as a formal and systematic procedure for evaluation of risk associated with potential failure modes in the 1960s. Bowles and Pelaez [1] proposed a Fuzzy Inference System (FIS)-based Risk Priority Number (RPN) model as an alternative to the conventional RPN model. For an FIS-based RPN (a three-input FIS model), a large set of fuzzy rules are required, and it is tedious to collect the full set of rules. With the grid partition strategy, the number of fuzzy rules required increases in an exponential manner, and this phenomenon is known as the "curse of dimensionality" or the combinatorial rule explosion problem. Hence, a rule selection and similarity reasoning technique, i.e., Approximate Analogical Reasoning Schema (AARS) technique are implemented in a fuzzy FMEA in order to solve the problem. The experiment was conducted using a set of data collected from a semiconductor manufacturing line, i.e., underfill dispensing process, and promising results were obtained.
机译:本文提出了一种结合类推推理技术的模糊失效模式和效果分析(FMEA)方法。 FMEA方法作为一种正式和系统的程序被引入,用于评估与1960年代潜在故障模式相关的风险。 Bowles和Pelaez [1]提出了一种基于模糊推理系统(FIS)的风险优先级数字(RPN)模型,以替代传统RPN模型。对于基于FIS的RPN(三输入FIS模型),需要大量的模糊规则,并且收集全套规则非常繁琐。使用网格划分策略,所需模糊规则的数量以指数方式增加,这种现象被称为“维数诅咒”或组合规则爆炸问题。因此,在模糊FMEA中实施规则选择和相似性推理技术,即,近似模拟推理方案(AARS)技术,以解决该问题。实验是使用从半导体生产线收集的一组数据进行的,即底部填充分配过程,并获得了可喜的结果。

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