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首页> 外文期刊>Journal of ambient intelligence and smart environments >An unsupervised recommender system for smart homes
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An unsupervised recommender system for smart homes

机译:用于智能家居的无监督推荐系统

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摘要

Inhabitants of today's smarter homes struggle with complicated user interfaces and inflexible home configurations. The proposed smart home recommender system addresses these issues by continuously interpreting the user's current situation and recommending services that fit the user's habits, i.e. automate some action that the user would want to perform anyway. With these recommendations it is possible to build much simpler user interfaces that highlight the most interesting choices currently available. Configuration becomes much more flexible, since the recommender system automatically learns user habits. Evaluations on two smart home datasets show that the algorithm produces correct recommendations with 61 % and 73% accuracy, respectively.
机译:如今,更智能的住宅中的居民会遇到复杂的用户界面和不灵活的住宅配置。所提出的智能家居推荐器系统通过不断地解释用户的当前状况并推荐适合用户习惯的服务来解决这些问题,即使用户无论如何都要执行的某些动作自动化。通过这些建议,可以构建更简单的用户界面,突出显示当前可用的最有趣的选择。由于推荐系统会自动学习用户习惯,因此配置变得更加灵活。对两个智能家居数据集的评估表明,该算法分别以61%和73%的准确率产生正确的建议。

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