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Case indexing in Case-Based Reasoning by applying Situation Operator Model as knowledge representation model

机译:案例索引在基于案例的推理作为知识表示模型的应用

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Case-Based Reasoning (CBR) is an effective technique for solving cognitive problems. It maintains old experiences which are encountered in various problems and presented as cases in a case-base. Consequently, indexing the cases in memory is an important issue in enhancing retrieval and learning performance in a cognitive system. This paper focuses on this issue and proposes an approach by integrating fuzziness for case indexing in CBR. Generalization and fuzzification of similar cases are the main properties of this approach in improving the performance of retrieval as well as reducing the size of case-base. Also, the connection between signal-based measurement level and problem-oriented behavioral level of the system which is a missing level in actual approaches is realized from a principle point of view in this study. In addition, Situation Operator Model (SOM) as a knowledge representation model is applied to CBR to model the events, related actions, and their effects in term of cases. As an application experiment, COLIBRI is utilized as a CBR reference platform. A data set generated using a driving simulator is utilized to learn two different classes of cases (start passing, end passing) generated from maneuvers of drivers. Finally, the performance of retrieval process and similarity error on fuzzy and conventional indexing approaches are measured to reveal the effectiveness of the presented approach.
机译:基于案例的推理(CBR)是解决认知问题的有效技术。它维持了在各种问题中遇到的旧经验,并作为案例基础的情况呈现。因此,索引内存中的案例是增强认知系统中的检索和学习性能的重要问题。本文重点介绍了这个问题,并通过集成CBR案例索引的模糊来提出一种方法。相似案例的泛化和模糊化是这种方法的主要性质,在提高检索性能以及降低壳体底座的尺寸方面的主要性质。而且,从本研究的主要观点来看,从基于信号的测量水平和系统的面向问题的行为水平的连接是从本研究的主要观点来实现的。此外,情况运算符模型(SOM)作为知识表示模型应用于CBR以模拟事件,相关操作及其效果的案例。作为应用实验,Colibri用作CBR参考平台。使用驾驶模拟器生成的数据集用于从驱动程序的操纵生成的两个不同类别(开始通过,结束传递)。最后,测量了模糊和传统索引方法的检索过程和相似性误差的性能,以揭示所提出的方法的有效性。

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