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Emergence of Regularities in the Stochastic Behavior of Human

机译:人的随机行为中规律的出现

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This paper aims to show that regularities emerge from the strongly stochastic properties of human behavior. To this aim, the paper presents the application of a new Knowledge Discovery in Database (KDD) process, called Timed Observations Mining for Learning (TOM4L), on the timed data provided by a smart building of offices of the southeast of France during 12 months from April 2011 to March 2012. The TOM4L process produces then 12 behavioral models of the white-collar workers of the office, one for each month of the studied period. This sequence of models put on the light the strongly stochastic properties of human behavior since they differ significantly from one month to another. This illustrates the intrinsic difficulty of discovering behavior rules from the timed data provided by a smart environment. Nevertheless, regularities clearly emerges from this sequence of behavioral models that are closely linked with seasons. Two seasons, a cold season of five month and a warm seasons of seven months, are clearly identified with this sequence but to this aim, more abstract models are required. Finally, this paper shows that the TOM4L approach is clearly operational and powerful for human behavior modeling in smart environments but higher abstraction levels of representation must be defined to discover more general behavior rules.
机译:本文旨在证明规律性源自人类行为的强烈随机性。为此,本文介绍了一种新的知识发现数据库(KDD)流程的应用,该流程称为定时观察挖掘学习(TOM4L),用于法国东南部智能建筑办公室在12个月内提供的定时数据。从2011年4月到2012年3月。TOM4L流程将生成办公室白领工人的12个行为模型,每个学习期一个月。这一系列模型揭示了人类行为的强烈随机特性,因为它们每个月之间的差异很大。这说明了从智能环境提供的定时数据中发现行为规则的内在困难。但是,从与季节紧密相关的行为模型序列中可以明显看出规律性。按照这个顺序可以清楚地确定两个季节,五个月的寒冷季节和七个月的温暖季节,但为此,需要更多抽象的模型。最后,本文表明,TOM4L方法对于智能环境中的人类行为建模显然是可操作的且功能强大,但是必须定义更高的表示抽象级别才能发现更通用的行为规则。

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