cs.AI updates on arXiv.org 10月21日 12:27
HumanCM:基于一致性模型的单步人动预测框架
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本文提出一种名为HumanCM的基于一致性模型的单步人动预测框架,通过学习噪声与干净运动状态之间的自洽映射实现高效单步生成,采用基于Transformer的时空架构并引入时间嵌入来模拟长距离依赖关系和保持运动连贯性。实验结果表明,HumanCM在Human3.6M和HumanEva-I数据集上,在准确性上可与最先进的扩散模型相媲美,同时减少推理步骤达两个数量级。

arXiv:2510.16709v1 Announce Type: cross Abstract: We present HumanCM, a one-step human motion prediction framework built upon consistency models. Instead of relying on multi-step denoising as in diffusion-based methods, HumanCM performs efficient single-step generation by learning a self-consistent mapping between noisy and clean motion states. The framework adopts a Transformer-based spatiotemporal architecture with temporal embeddings to model long-range dependencies and preserve motion coherence. Experiments on Human3.6M and HumanEva-I demonstrate that HumanCM achieves comparable or superior accuracy to state-of-the-art diffusion models while reducing inference steps by up to two orders of magnitude.

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人动预测 一致性模型 Transformer 时空架构 运动连贯性
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