Research on Case Retrieval Model Based on Rough Set Theory and BP Neural Network

Xiaohui Wang
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引用次数: 5

Abstract

Retrieval is the key technology in case-based reasoning.It imposes a direct effect on the sffeciency and quality of case-based reasoning, and the quality of the retrieved case determines the difficulty of case reuse and adaptation. In allusion to the traditional case retrieval technology disadvantage of die design, a case retrieval method based on rough set theory and neural work is presented .Firstly, The paper analyzes and deals with die case database using rough set theory, and it uses a method using grade classification and decision attributes support degree to deal with the quantitative features. And it confirms the important degree of all types of characteristic attributes.To aim to build up a retrieval method based on case's key attributes. BP neural network is used to retrieve the similar case. The proposed method is also demonstrated by an application example. The technology guarantees the validity of case retrieval reduces system dependence and improves efficiency of case retrieval.
基于粗糙集理论和BP神经网络的案例检索模型研究
检索是案例推理的关键技术。它直接影响到基于案例推理的效率和质量,而检索案例的质量决定了案例重用和适应的难度。针对传统模具设计案例检索技术的不足,提出了一种基于粗糙集理论和神经网络的案例检索方法。首先,利用粗糙集理论对模具案例数据库进行分析和处理,并采用等级分类和决策属性支持度相结合的方法对数量特征进行处理;确认了各类特征属性的重要程度。目的:建立一种基于案例关键属性的检索方法。采用BP神经网络对相似案例进行检索。最后通过一个应用实例对该方法进行了验证。该技术保证了案例检索的有效性,降低了系统依赖性,提高了案例检索的效率。
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