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Lightweight Quaternion Transition Generation with Neural Networks

机译:用神经网络的轻量级季度转换生成

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This paper introduces the Quaternion Transition Generator (QTG), a new network architecture tailored to animation transition generation for virtual characters. The QTG is simpler than the current state of the art, making it lightweight and easier to implement. It uses approximately 80% fewer arithmetic operations compared to other transition networks. Additionally, this architecture is capable of generating visually accurate rotation-based animations transitions and results in a lower Mean Absolute Error than transition generation techniques that are commonly used for animation blending.
机译:本文介绍了四元流过渡发生器(QTG),这是一个用于虚拟字符的动画转换生成的新网络架构。 QTG比当前的现有技术更简单,使其轻巧,更容易实现。 与其他转换网络相比,它使用大约80%的算术运算。 另外,该架构能够生成视觉上准确的基于旋转的动画转换,并且导致比通常用于动画混合的过渡生成技术的低平均绝对误差。

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