cs.AI updates on arXiv.org 10月28日 12:14
DynaPose4D:突破4D动态内容生成难题
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本文提出了一种名为DynaPose4D的创新解决方案,通过结合4D高斯分层(4DGS)技术与无类别识别姿态估计(CAPE)技术,实现了从单张静态图像生成高质量4D动态内容,并在计算机视觉和动画制作领域展现出巨大潜力。

arXiv:2510.22473v1 Announce Type: cross Abstract: Recent advancements in 2D and 3D generative models have expanded the capabilities of computer vision. However, generating high-quality 4D dynamic content from a single static image remains a significant challenge. Traditional methods have limitations in modeling temporal dependencies and accurately capturing dynamic geometry changes, especially when considering variations in camera perspective. To address this issue, we propose DynaPose4D, an innovative solution that integrates 4D Gaussian Splatting (4DGS) techniques with Category-Agnostic Pose Estimation (CAPE) technology. This framework uses 3D Gaussian Splatting to construct a 3D model from single images, then predicts multi-view pose keypoints based on one-shot support from a chosen view, leveraging supervisory signals to enhance motion consistency. Experimental results show that DynaPose4D achieves excellent coherence, consistency, and fluidity in dynamic motion generation. These findings not only validate the efficacy of the DynaPose4D framework but also indicate its potential applications in the domains of computer vision and animation production.

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DynaPose4D 4D动态内容生成 计算机视觉 动画制作
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