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Gesture-based system for next generation natural and intuitive interfaces

机译:基于手势的系统,用于下一代自然直观的界面

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摘要

We present a novel and trainable gesture-based system for next-generation intelligent interfaces. The system requires a non-contact depth sensing device such as an RGB-D (color and depth) camera for user input. The camera records the user's static hand pose and palm center dynamic motion trajectory. Both static pose and dynamic trajectory are used independently to provide commands to the interface. The sketches/symbols formed by palm center trajectory is recognized by the Support Vector Machine classifier. Sketch/symbol recognition process is based on a set of geometrical and statistical features. Static hand pose recognizer is incorporated to expand the functionalities of our system. Static hand pose recognizer is used in conjunction with sketch classification algorithm to develop a robust and effective system for natural and intuitive interaction. To evaluate the performance of the system user studies were performed on multiple participants. The efficacy of the presented system is demonstrated using multiple interfaces developed for different tasks including computer-aided design modeling.
机译:我们为下一代智能界面提供了一种新颖且可训练的基于手势的系统。该系统需要非接触式深度感应设备,例如RGB-D(彩色和深度)相机,用于用户输入。摄像机记录用户的静态手部姿势和手掌中心动态运动轨迹。静态姿势和动态轨迹都可以独立使用,以向界面提供命令。由支持向量机分类器识别由手掌中心轨迹形成的草图/符号。草图/符号识别过程基于一组几何和统计特征。内置了静态手姿势识别器,以扩展我们系统的功能。静态手势识别器与草图分类算法结合使用,可以开发出强大而有效的系统,实现自然直观的交互。为了评估系统的性能,对多个参与者进行了用户研究。使用针对不同任务(包括计算机辅助设计建模)开发的多个界面,可以演示所提出系统的功效。

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