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Quaternion-Based Gesture Recognition Using Wireless Wearable Motion Capture Sensors

机译:使用无线可穿戴运动捕捉传感器的基于四元数的手势识别

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摘要

This work presents the development and implementation of a unified multi-sensor human motion capture and gesture recognition system that can distinguish between and classify six different gestures. Data was collected from eleven participants using a subset of five wireless motion sensors (inertial measurement units) attached to their arms and upper body from a complete motion capture system. We compare Support Vector Machines and Artificial Neural Networks on the same dataset under two different scenarios and evaluate the results. Our study indicates that near perfect classification accuracies are achievable for small gestures and that the speed of classification is sufficient to allow interactivity. However, such accuracies are more difficult to obtain when a participant does not participate in training, indicating that more work needs to be done in this area to create a system that can be used by the general population.
机译:这项工作介绍了可以区分和分类六个不同手势的统一多传感器人体运动捕获和手势识别系统的开发和实现。使用五个无线运动传感器(惯性测量单元)的一个子集,从十一名参与者那里收集数据,这些传感器连接到他们的手臂和上半身,并来自完整的运动捕捉系统。我们在两种不同情况下,在同一数据集上比较了支持向量机和人工神经网络,并评估了结果。我们的研究表明,对于小手势,可以达到近乎完美的分类精度,并且分类速度足以实现交互性。但是,如果参与者不参加培训,则很难获得这样的准确度,这表明在此领域需要做更多的工作才能创建可供普通人群使用的系统。

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