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Discovering frequent user-environment interactions in intelligent environments

机译:在智能环境中发现频繁的用户-环境交互

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摘要

Intelligent Environments are expected to act proactively, anticipating the user's needs and preferences. To do that, the environment must somehow obtain knowledge of those need and preferences, but unlike current computing systems, in Intelligent Environments, the user ideally should be released from the burden of providing information or programming any device as much as possible. Therefore, automated learning of a user's most common behaviors becomes an important step towards allowing an environment to provide highly personalized services. In this article, we present a system that takes information collected by sensors as a starting point and then discovers frequent relationships between actions carried out by the user. The algorithm developed to discover such patterns is supported by a language to represent those patterns and a system of interaction that provides the user the option to fine tune their preferences in a natural way, just by speaking to the system.
机译:预期智能环境会主动采取行动,预期用户的需求和偏好。为此,环境必须以某种方式获得这些需求和偏好的知识,但是与当前的计算系统不同,在智能环境中,理想情况下,应该使用户摆脱提供信息或对任何设备进行编程的负担。因此,自动学习用户最常见的行为已成为迈向环境提供高度个性化服务的重要一步。在本文中,我们提出了一个系统,该系统以传感器收集的信息为起点,然后发现用户执行的动作之间的频繁关系。为发现这种模式而开发的算法由表示这些模式的语言和一种交互系统支持,该交互系统使用户可以选择自然地微调自己的偏好,而只需与系统对话即可。

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