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An Associated Representation Method for Defining Agricultural Cases in a Case-Based Reasoning System for Fast Case Retrieval

机译:基于案例的快速案例检索推理系统中农业案例的关联表示方法

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摘要

As an artificial intelligence technique, case-based reasoning has considerable potential to build intelligent systems for smart agriculture, providing farmers with advice about farming operation management. A proper case representation method plays a crucial role in case-based reasoning systems. Some methods like textual, attribute-value pair, and ontological representations have been well explored by researchers. However, these methods may lead to inefficient case retrieval when a large volume of data is stored in the case base. Thus, an associated representation method is proposed in this paper for fast case retrieval. Each case is interconnected with several similar and dissimilar ones. Once a new case is reported, its features are compared with historical data by similarity measurements for identifying a relative similar past case. The similarity of associated cases is measured preferentially, instead of comparing all the cases in the case base. Experiments on case retrieval were performed between the associated case representation and traditional methods, following two criteria: the number of visited cases and retrieval accuracy. The result demonstrates that our proposal enables fast case retrieval with promising accuracy by visiting fewer past cases. In conclusion, the associated case representation method outperforms traditional methods in the aspect of retrieval efficiency.
机译:基于案例的推理作为一种人工智能技术,具有为智能农业构建智能系统的巨大潜力,可以为农民提供有关农业运营管理的建议。适当的案例表示方法在基于案例的推理系统中起着至关重要的作用。研究人员已经很好地探索了诸如文本,属性-值对和本体表示之类的一些方法。但是,当在案例库中存储大量数据时,这些方法可能导致无效的案例检索。因此,本文提出了一种相关的表示方法,用于快速案例检索。每个案例都与几个相似和不相似的案例相互关联。一旦报告了新病例,就通过相似性度量将其特征与历史数据进行比较,以识别相对相似的过去病例。优先测量关联案例的相似性,而不是在案例库中比较所有案例。在相关案例表示和传统方法之间进行了案例检索实验,遵循以下两个标准:访问案例的数量和检索准确性。结果表明,我们的建议可以通过访问较少的过去案例来实现具有希望的准确性的快速案例检索。总之,在检索效率方面,关联案例表示方法优于传统方法。

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