Integrating Multiple Knowledge Sources by Genetic Programming

Chan-Sheng Kuo, T. Hong, Chuen-Lung Chen
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Abstract

In this paper, we have proposed a GP-based knowledge-integration framework that automatically combines multiple rule sets into one integrated knowledge base. The proposed framework consists of three phases: knowledge collection and translation, knowledge integration, and knowledge output. Two new genetic operators, abridgement and compromise, are designed in the proposed approach. Experimental results from diagnosis of breast cancer also show the feasibility of the proposed algorithm.
基于遗传规划的多知识源集成
在本文中,我们提出了一个基于gp的知识集成框架,该框架可以自动地将多个规则集组合成一个集成的知识库。该框架包括三个阶段:知识收集和转化、知识整合和知识输出。该方法设计了两种新的遗传算子:删节算子和妥协算子。乳腺癌诊断的实验结果也证明了该算法的可行性。
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