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Personal search system based on android using lifelog and machine learning

机译:基于Android的使用Lifelog和机器学习的个人搜索系统

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Lifelog is the foundation on which lifelong services and healthcare services are implemented in a smart home system. It also plays a major role in the sub-processes of the system because it acquires information about the home's residents for home automation and entertainment. Providing personalized services to individuals by acquiring and managing this personal lifelog information has great advantages in terms of service satisfaction and effectiveness. In this paper, we implemented a personal search system based on android that collected and stored an individual's lifelog based on nine smart phone sensors and used it to derive new meaningful information about the user. The activity recognition module for classifying the user's behavior, the naive Bayesian method, showed an accuracy of 88.23% and the area under the ROC curve value of 0.941. We designed and implemented density-based spatial clustering method in the module for extracting the point of interest and the participants filled out a satisfaction questionnaire to evaluate the search system. The proposed system efficiently uses a large amount of lifelog data and automates the process of extracting meaningful information, associating it according to the user's intention.
机译:Lifelog是在智能家居系统中实施终身服务和医疗保健服务的基础。它在系统的子流程中也起着重要作用,因为它获取有关家庭居民的信息以进行家庭自动化和娱乐。通过获取和管理此个人生活日志信息为个人提供个性化服务,在服务满意度和有效性方面具有极大的优势。在本文中,我们实现了一个基于android的个人搜索系统,该系统基于9个智能手机传感器收集并存储了个人的生活日志,并使用它来导出有关用户的新的有意义的信息。用于对用户行为进行分类的活动识别模块(朴素的贝叶斯方法)显示了88.23%的准确度,ROC曲线值下的面积为0.941。我们在模块中设计并实现了基于密度的空间聚类方法,用于提取兴趣点,然后参与者填写满意度问卷以评估搜索系统。所提出的系统有效地使用了大量的生活日志数据,并使提取有意义的信息的过程自动化,并根据用户的意图将其关联。

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