Neural networks of formation and perception using motion via-points: an application to hand gestures

Y. Wada, N. Shimodate
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Abstract

We have shown that a complex motion of the arm can be generated based on the optimization principle of smoothness in which two or more via-points are assumed to be a boundary condition. We have previously proposed a perception model for cursive-connected characters which has these via-points as features (Y. Wada and M. Kawato, 1995). Via-points are representative forms in the computational trajectory formation model of the human arm. The paper shows that a formation conversion from an intention to a set of via-points and a perception conversion from a set of via-points to an intention can be achieved using the same structural recurrent neural network based on bi-directional theory. As a concrete example, we demonstrate the formation and the perception of human gestures. In other words, the model is achieved by applying the motor theory of pattern perception, which is based on bi-directionals using neural networks. Finally, the paper shows that segmentation of a continuous motion is possible, a concept that can be useful to the field of engineering.
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通过点运动形成和感知的神经网络:手势的应用
我们已经证明,一个复杂的运动的手臂可以产生基于平滑的优化原则,其中两个或多个过点被假设为一个边界条件。我们之前已经提出了一个以这些中点为特征的草书连接字符的感知模型(Y. Wada和M. Kawato, 1995)。通过点是人体手臂计算轨迹形成模型中的代表性形式。本文表明,利用基于双向理论的相同结构递归神经网络,可以实现从意图到过点集合的形成转换和从过点集合到意图的感知转换。作为一个具体的例子,我们展示了人类手势的形成和感知。换句话说,该模型是通过应用基于双向神经网络的模式感知的运动理论来实现的。最后,本文证明了连续运动的分割是可能的,这一概念对工程领域是有用的。
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