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Reveal Temporal Patterns of Smoking Behavior in Real Life Using Data Acquired through Automatic Tracking Systems

机译:使用通过自动跟踪系统获取的数据揭示现实生活中吸烟行为的时间模式

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Accurately monitoring and modeling smoking behavior in real life settings is critical for designing and delivering appropriate smoking-cessation interventions through mHealth applications. In this paper, we inspect smoking patterns based on data collected from 52 volunteers during a 4-week period of their everyday lives. These data are acquired by an automatic data acquisition system comprising an electric lighter, two wearable sensors and one mobile phone, which together can automatically track smoking events, collect concurrent context and physiology, and trigger pop-up questionnaires. We visualize temporal patterns of smoking at the level of the week, day and time of the day. Statistical analysis on all subjects has demonstrated significant differences at the levels evaluated. Distinct emotions during smoking at individual level are also found. Quantified smoking patterns can upgrade our understanding of individual behaviors and contribute to optimizing intervention plans.
机译:在现实生活中准确监测和建模吸烟行为对于通过mHealth应用程序设计和提供适当的戒烟干预措施至关重要。在本文中,我们根据在4个星期的日常生活中从52位志愿者那里收集的数据来检查吸烟模式。这些数据由一个自动数据采集系统采集,该系统包括一个打火机,两个可穿戴传感器和一个手机,它们可以一起自动跟踪吸烟事件,收集并发的环境和生理状况,并触发弹出式调查表。我们以每周,每天和每天的时间水平可视化吸烟的时间模式。对所有受试者的统计分析表明,所评估的水平存在显着差异。还发现了个人吸烟期间的不同情绪。量化吸烟模式可以提高我们对个人行为的理解,并有助于优化干预计划。

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