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An Evolutionary Ensemble-Based Method for Rule Extraction with Distributed Data

机译:基于进化的基于集合的规则提取方法,分布式数据

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This paper presents a methodology for knowledge discovery from inherently distributed data without moving it from its original location, completely or partially, to other locations for legal or competition issues. It is based on a novel technique that performs in two stages: first, discovering the knowledge locally and second, merging the distributed knowledge acquired in every location in a common privacy aware maximizing the global accuracy by using evolutionary models. The knowledge obtained in this way improves the one achieved in the local stores, thus it is of interest for the concerned organizations.
机译:本文介绍了来自固有的分布式数据的知识发现的方法,而不从其原始地点,完全或部分地移动到法律或竞争问题的其他地点。它基于一种以两个阶段执行的新技术:首先,在普通隐私中的每个位置中获取的分布式知识,从而通过使用进化模型来利用在每个位置获取的分布式知识。以这种方式获得的知识改善了在本地商店中实现的知识,因此对于有关组织来说是兴趣的。

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