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Accelerometer-based hand gesture recognition system for interaction in digital TV

机译:基于加速度计的手势识别系统,用于数字电视交互

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This paper presents the design and implementation of a system of accelerometer-based hand gesture recognition. This system will be embedded within a modern remote control to improve human-machine interaction in the context of digital TV of Argentina. As the recognition of hand gestures is a pattern classification problem, two techniques based on artificial neural networks are explored: multilayer perceptron and support vector machine. This is performed in order to compare results and select the tool that best fits the problem. Jointly, signal digital processing techniques are used for preprocessing and adapting of the input signals to pattern recognition models. A gestural vocabulary of 8 types of gestures was used, which was also used by other similar works in order to compare results. An appropriate trade-off between the classifier recognition precision and resource utilization of the hardware platform is required in order to implement the solution within an embedded system. The obtained results of precision and utilization of resources are excellent.
机译:本文提出了基于加速度计的手势识别系统的设计与实现。该系统将被嵌入现代遥控器中,以改善阿根廷数字电视的人机交互性。由于手势识别是一种模式分类问题,因此探索了两种基于人工神经网络的技术:多层感知器和支持向量机。执行此操作是为了比较结果并选择最适合该问题的工具。联合地,信号数字处理技术被用于预处理和使输入信号适应模式识别模型。使用了8种手势的手势词汇,其他类似作品也使用了该手势词汇以比较结果。为了在嵌入式系统内实现解决方案,需要在分类器识别精度和硬件平台的资源利用率之间进行适当的权衡。获得的精度和资源利用结果极好。

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