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首页> 外文期刊>Journal of Theoretical and Applied Information Technology >SOFT BEHAVIOUR MODELLING OF USER COMMUNITIES
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SOFT BEHAVIOUR MODELLING OF USER COMMUNITIES

机译:用户社区的软件行为建模

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A soft modelling approach for describing behaviour in on-line user communities is introduced in this work. Behaviour models of individual users in dynamic virtual environments have been described in the literature in terms of timed transition automata; they have various drawbacks. Soft multi/agent behaviour automata are defined and proposed to describe multiple user behaviours and to recognise larger classes of user group histories, such as group histories which contain unexpected behaviours. The notion of deviation from the user community model allows defining a soft parsing process which assesses and evaluates the dynamic behaviour of a group of users interacting in virtual environments, such as e-learning and e-business platforms. The soft automaton model can describe virtually infinite sequences of actions due to multiple users and subject to temporal constraints. Soft measures assess a form of distance of observed behaviours by evaluating the amount of temporal deviation, additional or omitted actions contained in an observed history as well as actions performed by unexpected users. The proposed model allows the soft recognition of user group histories also when the observed actions only partially meet the given behaviour model constraints. This approach is more realistic for real-time user community support systems, concerning standard boolean model recognition, when more than one user model is potentially available, and the extent of deviation from community behaviour models can be used as a guide to generate the system support by anticipation, projection and other known techniques. Experiments based on logs from an e-learning platform and plan compilation of the soft multi-agent behaviour automaton show the expressiveness of the proposed model.
机译:这项工作介绍了一种用于描述在线用户社区中行为的软建模方法。在动态虚拟环境中,个人用户的行为模型已经在定时过渡自动机方面进行了描述。他们有各种各样的缺点。定义并提出了软多/代理行为自动机,以描述多种用户行为并识别更大类别的用户组历史记录,例如包含意外行为的组历史记录。偏离用户社区模型的概念允许定义一个软解析过程,该过程评估和评估在虚拟环境(例如,电子学习和电子商务平台)中交互的一组用户的动态行为。软自动机模型可以描述由于多个用户而受到时间限制的几乎无限的动作序列。软测量通过评估时间偏差量,观察历史中包含的其他或省略的动作以及意外用户执行的动作来评估观察到的行为的距离形式。当观察到的动作仅部分满足给定的行为模型约束时,提出的模型还允许对用户组历史进行软识别。当可能有多个用户模型可用且与社区行为模型的偏差程度可以用作生成系统支持的指南时,这种方法对于实时用户社区支持系统而言更现实,涉及到标准布尔模型识别。通过预期,预测和其他已知技术。基于来自电子学习平台的日志的实验以及软多智能体行为自动机的计划编制证明了该模型的可表达性。

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