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X-UniMotion: Animating Human Images with Expressive, Unified and Identity-Agnostic Motion Latents

X-UniMotion: Animating Human Images with Expressive, Unified and Identity-Agnostic Motion Latents

来源:Arxiv_logoArxiv
英文摘要

We present X-UniMotion, a unified and expressive implicit latent representation for whole-body human motion, encompassing facial expressions, body poses, and hand gestures. Unlike prior motion transfer methods that rely on explicit skeletal poses and heuristic cross-identity adjustments, our approach encodes multi-granular motion directly from a single image into a compact set of four disentangled latent tokens -- one for facial expression, one for body pose, and one for each hand. These motion latents are both highly expressive and identity-agnostic, enabling high-fidelity, detailed cross-identity motion transfer across subjects with diverse identities, poses, and spatial configurations. To achieve this, we introduce a self-supervised, end-to-end framework that jointly learns the motion encoder and latent representation alongside a DiT-based video generative model, trained on large-scale, diverse human motion datasets. Motion-identity disentanglement is enforced via 2D spatial and color augmentations, as well as synthetic 3D renderings of cross-identity subject pairs under shared poses. Furthermore, we guide motion token learning with auxiliary decoders that promote fine-grained, semantically aligned, and depth-aware motion embeddings. Extensive experiments show that X-UniMotion outperforms state-of-the-art methods, producing highly expressive animations with superior motion fidelity and identity preservation.

Guoxian Song、Hongyi Xu、Xiaochen Zhao、You Xie、Tianpei Gu、Zenan Li、Chenxu Zhang、Linjie Luo

计算技术、计算机技术

Guoxian Song,Hongyi Xu,Xiaochen Zhao,You Xie,Tianpei Gu,Zenan Li,Chenxu Zhang,Linjie Luo.X-UniMotion: Animating Human Images with Expressive, Unified and Identity-Agnostic Motion Latents[EB/OL].(2025-08-12)[2025-08-24].https://arxiv.org/abs/2508.09383.点此复制

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