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Continuous activity recognition in a maintenance scenario: combining motion sensors and ultrasonic hands tracking

机译:在维护场景中持续进行活动识别:结合运动传感器和超声波手部跟踪

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摘要

We describe the design and evaluation of pattern analysis methods for the recognition of maintenance-related activities. The presented work focuses on the spotting of subtle hand actions in a continuous stream of data based on a combination of body-mounted motion sensors and ultrasonic positioning. The spotting and recognition approach is based on three core ideas: (1) the use of location information to compensate for the ambiguity of hand motions, (2) the use of motion data to compensate for the slow sampling rate and unreliable signal of the low cost ultrasonic positioning system, and (3) an incremental, multistage spotting methodology. The proposed methods are evaluated in an elaborate bicycle repair experiment containing nearly 10 h of data from six subjects. The evaluation compares different strategies and system variants and shows that precision and recall rates around 90% can be achieved.
机译:我们描述了用于识别与维护相关的活动的模式分析方法的设计和评估。此次展示的工作重点是基于身体运动传感器和超声波定位的结合,在连续的数据流中发现微妙的手部动作。识别和识别方法基于三个核心思想:(1)使用位置信息来补偿手部动作的歧义,(2)使用运动数据来补偿慢速采样率和低点信号的不可靠成本高的超声波定位系统,以及(3)一种渐进的多级点样方法。在详尽的自行车维修实验中评估了提出的方法,该实验包含来自六个受试者的近10小时的数据。该评估比较了不同的策略和系统变体,并表明可以实现约90%的准确性和召回率。

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