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Behavior Analysis Based on Coordinates of Body Tags

机译:基于身体标签坐标的行为分析

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This paper describes fall detection, activity recognition and the detection of anomalous gait in the Confidence project. The project aims to prolong the independence of the elderly by defecting falls and other types of behavior-indicating a health problem. The behavior will be analyzed based on the coordinates of tags worn on the body. The coordinates will be detected with radio sensors. We describe two Confidence modules. The first one classifies the user's activity into one of six classes, including falling. The second one detects walking anomalies, such as limping, dizziness and hemiplegia. The walking analysis can automatically adapt to each person by using only the examples of normal walking of that person. Both modules employ machine learning: the paper focuses on the features they use and the effect of tag placement and sensor noise on the classification accuracy. Four tags were enough for activity recognition accuracy of over 93% at moderate sensor noise, while six were needed to detect walking anomalies with the accuracy of over 90%.
机译:本文描述了置信项目中异常步态的崩解检测,活动识别和检测。该项目旨在延长老年人的独立性,缺陷贫困和其他类型的行为 - 表明健康问题。将基于身体上佩戴的标签的坐标进行分析的行为。将通过无线电传感器检测坐标。我们描述了两个置信模块。第一个将用户的活动分为六个类中的一个,包括跌倒。第二个检测走的异常,例如跛行,头晕和偏瘫。步行分析可以通过仅使用该人的正常行走的例子自动适应每个人。两个模块都使用机器学习:本文侧重于它们使用的功能和标签放置和传感器噪声对分类精度的影响。在适度的传感器噪声下,四个标签足以进行活动识别精度超过93%,而六个以超过90%的准确度检测步行异常。

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