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Wearable assistant for load monitoring: recognition of on—body load placement from gait alterations

机译:负载监测的可穿戴助手:识别步态变更的身体负载放置

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Daily life activities such as working and shopping may cause people to carry overloaded bags, frequently borne in an incorrect way (e.g. only on one shoulder, asymmetrically worn). When these activities alter the gait, back pain incidents can occur. Critical conditions can be monitored taking advantage from a wearable assistant, extracting contextual information by on-body acceleration signals. By acquiring data on trunk, limb and foot during gait, we are able to detect five walking tasks on loaded conditions: two-straps backpack carried on shoulders, backpack carried with a single strap on right and left shoulder, bag carried with the right and left hand. Seven subjects participated walking at self-selected speed on a treadmill carrying a load between 10–12% of their body weight. Subjects repeated each task for five times over three weeks. We classified the activities for a single user by use of KNN, naïve Bayes and SVM classifiers. KNN achieved the best recognition accuracy of 96.7% for day dependent classifier training. The sensors placement, which resulted to be different along consecutive days, affects performance evaluation: a +3° rotation on the coronal plane decreases the accuracy to 76.0%.
机译:工作和购物等日常生活活动可能导致人们携带超载的袋子,经常以不正确的方式承担(例如,只在一个肩膀上,不对称地磨损)。当这些活动改变步态时,可能会发生背痛事件。可以从可穿戴助手中利用临界条件,从穿戴助理中利用,通过体内加速信号提取上下文信息。通过在步态期间获取躯干,肢体和脚的数据,我们能够在装载条件下检测五个步行任务:肩部携带的双肩背包,右侧肩部的单个带子携带,袋子携带左手。七个受试者参加了在跑步机上的自选速度行走,跑步机载有10-12%的体重之间的载荷。受试者在三周内重复每项任务五次。我们通过使用KNN,Naïve贝内斯和SVM分类器为单一用户进行分类。 KNN达到了最佳识别准确度,依赖于一天的依赖分类器培训96.7%。导致沿着连续天的传感器置入,影响性能评估:冠状平面上的A + 3°旋转将精度降低至76.0%。

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