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Recognizing daily activities with RFID-based sensors

机译:使用基于RFID的传感器识别日常活动

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We explore a dense sensing approach that uses RFID sensor network technology to recognize human activities. In our setting, everyday objects are instrumented with UHF RFID tags called WISPs that are equipped with accelerometers. RFID readers detect when the objects are used by examining this sensor data, and daily activities are then inferred from the traces of object use via a Hidden Markov Model. In a study of 10 participants performing 14 activities in a model apartment, our approach yielded recognition rates with precision and recall both in the 90% range. This compares well to recognition with a more intrusive short-range RFID bracelet that detects objects in the proximity of the user; this approach saw roughly 95% precision and 60% recall in the same study. We conclude that RFID sensor networks are a promising approach for indoor activity monitoring.
机译:我们探索一种密集传感方法,该方法使用RFID传感器网络技术来识别人类活动。在我们的环境中,日常物品都装有配备了加速度计的称为WISP的UHF RFID标签。 RFID阅读器通过检查传感器数据来检测何时使用了对象,然后通过隐马尔可夫模型从对象使用的痕迹中推断出日常活动。在对10名参与者在模型公寓中进行14项活动的研究中,我们的方法得出的识别率准确度和召回率均在90%范围内。这与识别性强的近距离RFID手镯相媲美,该手镯可检测用户附近的物体。在同一项研究中,这种方法的准确率约为95%,召回率约为60%。我们得出的结论是,RFID传感器网络是一种用于室内活动监控的有前途的方法。

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