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Developing a hierarchical fuzzy rule-based model with weighted linguistic rules: A case study of water pipes condition prediction

机译:用加权语言规则开发基于层次模糊规则的模型:以水管状况预测为例

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Assessing the condition of water pipes is a complex task, partly due to scarcity of complete maintenance records and field observations. This makes it harder to identify the factors determining pipe condition and their probabilistic relationships with the deterioration process. A challenge facing water utilities is to find an effective and reliable tool for assessing their pipelines and taking prompt decisions regarding repair and maintenance to extend the service life and keep them safe from sudden failures. This paper presents research on a new fuzzy-based methodology for modelling water pipe condition prediction. It proposes a hierarchical fuzzy rule-based model that uses a simplified and effective method for supporting the elicitation of the fuzzy rules and adapting uncertainty propagation that can be intuitively understood by human experts. The results of applying the model to the water pipes domain shows the plausibility of extending the approach to other knowledge domains based on human expertise.
机译:评估水管状况是一项复杂的任务,部分原因是缺乏完整的维护记录和现场观察。这使得确定管道状况的因素及其与劣化过程的概率关系变得更加困难。自来水公司面临的挑战是找到一种有效且可靠的工具来评估其管道,并迅速做出有关维修和保养的决定,以延长使用寿命并确保其免受突发故障的影响。本文介绍了一种基于模糊的水管状况预测建模新方法的研究。它提出了一种基于层次模糊规则的模型,该模型使用一种简化而有效的方法来支持模糊规则的启发和适应不确定性的传播,人类专家可以直观地理解它们。将模型应用到水管领域的结果表明,将方法扩展到基于人类专业知识的其他知识领域是合理的。

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