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EMPress:Practical Hand Gesture Classification with Wrist-Mounted EMG and Pressure Sensing

机译:EMPress:带有手腕肌电和压力感应的实用手势分类

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摘要

Practical wearable gesture tracking requires that sensors align with existing ergonomic device forms. We show that combining EMG and pressure data sensed only at the wrist can support accurate classification of hand gestures. A pilot study with unintended EMG electrode pressure variability led to exploration of the approach in greater depth. The Empress technique senses both finger movements and rotations around the wrist and forearm, covering a wide range of gestures, with an overall 10-fold cross validation classification accuracy of 96%. We show that EMG is especially suited to sensing finger movements, that pressure is suited to sensing wrist and forearm rotations, and their combination is significantly moreaccurate for a range of gestures than either technique alone. The technique is well suited to existing wearable device forms such as smart watches that are already mounted on the wrist.
机译:实际的可穿戴手势跟踪要求传感器与现有的人体工学设备形式保持一致。我们表明,将EMG和仅在手腕上感测到的压力数据结合起来可以支持手势的准确分类。一项具有意想不到的EMG电极压力可变性的试验研究导致对该方法的更深入研究。 Empress技术可感知手指在腕部和前臂周围的移动和旋转,涵盖了多种手势,总体交叉验证分类准确率达到10倍,达到96%。我们表明,EMG特别适合于感测手指的运动,压力适合于感测手腕和前臂的旋转,并且它们的组合对于一系列手势而言比单独使用任何一种技术都更加准确。该技术非常适合现有的可穿戴设备形式,例如已经安装在手腕上的智能手表。

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