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Enhancing Alignment Based Context Prediction by Using Multiple Context Sources: Experiment and Analysis

机译:使用多个上下文源增强基于对齐的上下文预测:实验和分析

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Context aware applications are reactive, they adapt to an entity's context when the context has changed. In order to become proactive and act before the context actually has changed future contexts have to be predicted. This will enable functionalities like preloading of content or detection of future conflicts. For example if an application can predict where a user is heading to it can also check for train delays on the user's way. So far research concentrates on context prediction algorithms that only use a history of one context to predict the future context. In this paper we propose a novel multidimensional context prediction algorithm and we show that the use of multidimensional context histories increases the prediction accuracy. We compare two multidimensional prediction algorithms, one of which is a new approach; the other was not yet experimentally tested. In theory, simulation and a real world experiment we verify the feasibility of both algorithms and show that our new approach has at least equal or better reasoning accuracy.
机译:上下文感知应用程序是反应性的,它们在上下文更改时适应于实体的上下文。为了在上下文实际改变之前变得积极主动并采取行动,必须预测未来的上下文。这将启用功能,例如预加载内容或检测将来的冲突。例如,如果应用程序可以预测用户前往的位置,则还可以检查用户途中的火车延误。到目前为止,研究集中于上下文预测算法,该算法仅使用一个上下文的历史来预测未来的上下文。在本文中,我们提出了一种新颖的多维上下文预测算法,并且表明使用多维上下文历史记录可以提高预测精度。我们比较了两种多维预测算法,其中一种是新方法。另一个尚未经过实验测试。在理论上,仿真和实际实验中,我们验证了这两种算法的可行性,并表明我们的新方法至少具有相同或更好的推理精度。

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