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Learning and Predicting User Behavior for Particular Resource Use

机译:学习和预测特定资源使用的用户行为

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To successfully interact with users in providing useful information, intelligent user interfaces need a mechanism for recognizing, characterizing, and predicting user actions. In particular, it is our interest to develop the mechanism for recognizing and predicting simple user intentions, i.e., an activity involves in using particular resources. Much work to date in adaptive user interfaces has resulted in ad-hoc approaches such as simply capturing user preferences at a shallow level ignoring the more difficult problem of capturing the user intention. We frame the modeling task of user interface systems in terms of learning user patterns of using particular resources by understanding temporal information of activity, user intentions, and abstraction of user behavior. Our approach learns the individual user models through time-series action analysis and abstraction. After capturing the dynamics of user behavior into regularities of user behavior(patterns), probabilistic user models are constructed to facilitate the predictions of resource usage with a sequence of currently observed actions in the Unix domain.
机译:要成功与用户提供有用的信息交互,智能用户界面需要一种机制来识别,表征和预测用户操作。特别是,我们有兴趣开发识别和预测简单用户意图的机制,即,活动涉及使用特定资源。在自适应用户界面中迄今为止迄今为止的工作已经导致ad-hoc方法,例如简单地捕获在浅级的用户偏好,忽略捕获用户意图的更难题。通过了解通过了解活动,用户意图和用户行为的抽象来学习使用特定资源的学习用户模式的用户界面系统的建模任务。我们的方法通过时间级操作分析和抽象来学习各个用户模型。在将用户行为的动态捕获到用户行为(模式)的规则之后,构造概率的用户模型以促进通过UNIX域中的当前观察到的动作序列的资源使用的预测。

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