Papers › EchoMimicV2: Towards Striking, Simplified, and Semi-Body Human Animation

EchoMimicV2: Towards Striking, Simplified, and Semi-Body Human Animation

15 Nov 2024CVPR 2025 1arXiv:2411.10061archive 2025-07-28

Rang Meng, Xingyu Zhang, Yuming Li, Chenguang Ma

Recent work on human animation usually involves audio, pose, or movement maps conditions, thereby achieves vivid animation quality. However, these methods often face practical challenges due to extra control conditions, cumbersome condition injection modules, or limitation to head region driving. Hence, we ask if it is possible to achieve striking half-body human animation while simplifying unnecessary conditions. To this end, we propose a half-body human animation method, dubbed EchoMimicV2, that leverages a novel Audio-Pose Dynamic Harmonization strategy, including Pose Sampling and Audio Diffusion, to enhance half-body details, facial and gestural expressiveness, and meanwhile reduce conditions redundancy. To compensate for the scarcity of half-body data, we utilize Head Partial Attention to seamlessly accommodate headshot data into our training framework, which can be omitted during inference, providing a free lunch for animation. Furthermore, we design the Phase-specific Denoising Loss to guide motion, detail, and low-level quality for animation in specific phases, respectively. Besides, we also present a novel benchmark for evaluating the effectiveness of half-body human animation. Extensive experiments and analyses demonstrate that EchoMimicV2 surpasses existing methods in both quantitative and qualitative evaluations.

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zero_module antgroup/echomimic_v2/src/models/motion_module.py official repository ran · our draft was wrong Apache-2.0 (permissive) · 4719c763c53be3fe · report
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Tasks

Audio-Driven Body AnimationHuman AnimationImage to Video GenerationSubject-driven Video GenerationVideo Generation

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AttentionDiffusionSoftmax

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