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Deep Learning And Data Mining Classification Through the Intelligent Agent Reasoning

机译:深入学习和数据挖掘分类通过智能代理推理

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Over the last few years, machine learning and data mining methods (MLDM) are constantly evolving, in order to accelerate the process of knowledge discovery from data (KDD). Today's challenge is to select only the most relevant knowledge from those extracted. The present paper is directed to these purposes, by developing a new concept of knowledge mining for meta-knowledge extraction, and extending the most popular machine learning methods to extract meta-models. This new concept of knowledge classification is integrated on the cognitive agent architecture, so as to speed-up its inference process. With this new architecture, the agent will be able to select only the actionable rule class, instead of trying to infer its whole rule base exhaustively.
机译:在过去几年中,机器学习和数据挖掘方法(MLDM)不断发展,以便加速来自数据(KDD)的知识发现过程。今天的挑战是只选择提取的人的最相关知识。本文通过开发新的知识挖掘的新概念来涉及这些目的,并扩展最受欢迎的机器学习方法来提取元模型。这种知识分类的新概念是在认知代理体系结构上集成的,从而加速其推理过程。使用此新架构,代理将能够仅选择可操作的规则类,而不是尝试详尽发生地推断其整个规则基础。

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