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Self-descriptive IF THEN rules from signal measurements: A holonic-based computational technique

机译:如果从信号测量中规则,则自我描述性:一种基于全基的计算技术

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A holon is a bio-inspired conceptual entity that, like cells in a living organism, behaves as a part and a whole at the same time. Holonic systems have been the subject of intense research in the latest years due to their properties such as self-organization, self-similarity and capability of handling hierarchically-nested granularity levels. Lesser attention indeed has been paid by engineers to the aspect of self-description, i. e. the ability to describe itself in terms of self-contained descriptors. Self-description can be useful in measurement settings where the only available knowledge is embedded in data in terms of hidden rules behind observed signals. In this work, a heuristic technique is employed to extract self-descriptive IF THEN rules from measurement signals. These rules are considered holonic in that they represent a whole described in terms of relationships among their parts. An example taken from a real measurement scenario is reported and commented in detail.
机译:Holon是一种生物启发的概念实体,如活生物体中的细胞,在同一时间表现为一部分和整体。由于自组织,自身相似性和处理分层嵌套粒度水平的性质,因此,全文系统是最近几年的激烈研究的主题。较小的注意力确实是由工程师支付给自我描述的方面,我。 e。能够以自包含的描述符描述自己。自我描述可以在测量设置中有用,其中唯一可用知识在观察信号背后的隐藏规则方面嵌入数据中。在这项工作中,如果从测量信号中规则,则采用启发式技术来提取自我描述性。这些规则被认为是多重的,因为它们代表了它们在其部件之间的关系方面描述的整体。报告并详细评估了从实际测量方案中获取的示例。

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