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A Random Forest-based Approach for Hand Gesture Recognition with Wireless Wearable Motion Capture Sensors

机译:无线可耐磨运动捕获传感器的手势识别的随机基于森林的方法

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摘要

Gesture Recognition has a prominent importance in smart environment and home automation. Thanks to the availability of Machine Learning approaches it is possible for users to define gestures that can be associated with commands for the smart environment. In this paper we propose a Random Forest-based approach for Gesture Recognition of hand movements starting from wireless wearable motion capture data. In the presented approach, we evaluate different feature extraction procedures to handle gestures and data with different duration. To enhance reproducibility of our results and to foster research in the Gesture Recognition area, we share the dataset that we have collected and exploited for the present work.
机译:姿态识别在智能环境和家庭自动化中具有突出的重要性。由于机器学习方法的可用性方法,用户可以定义可以与智能环境的命令相关联的手势。在本文中,我们提出了一种从无线可佩戴运动捕获数据开始的手势识别的随机林的方法。在呈现的方法中,我们评估不同的特征提取程序来处理不同持续时间的手势和数据。为了提高我们的结果的可重复性并促进手势识别区域的研究,我们分享我们收集和剥削对目前工作的数据集。

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