用生物阻抗传感优化人体姿态估计中的自接触问题。
Contact-Aware Refinement of Human Pose Pseudo-Ground Truth via Bioimpedance Sensing
- 融合视觉估计与生物阻抗数据,动态修正自接触时的姿态
- 在三种输入模型上平均提升11.7%重建精度
- 配备微型传感器,适合大规模采集接触感知训练数据
在真实场景中准确捕捉3D人体姿态对姿态估计和动作生成方法的训练至关重要。尽管基于视频的方法日益精确,但在涉及自接触(如手触脸)的常见场景中仍表现不佳。相比之下,可穿戴生物阻抗传感可低成本、无感地测量皮肤间接触的真实状态。为此,我们提出一种新框架BioTUCH,将视觉姿态估计器与生物阻抗传感结合,通过考虑自接触来捕捉人体3D姿态。该方法先用现成估计器初始化姿态,在检测到自接触时引入接触感知的姿态优化:最小化重投影误差和输入估计偏差,同时施加顶点邻近约束。我们在一个包含同步RGB视频、生物阻抗测量和3D运动捕捉的新数据集上验证了该方法。使用三种输入姿态估计器测试,平均重建精度提升11.7%。此外,我们还设计了一款微型可穿戴生物阻抗传感器,可高效收集大量接触感知训练数据,用于提升姿态估计与生成性能。代码与数据见 biotuch.is.tue.mpg.de。
原文摘要 · Abstract (English)
Capturing accurate 3D human pose in the wild would provide valuable data for training pose estimation and motion generation methods. While video-based estimation approaches have become increasingly accurate, they often fail in common scenarios involving self-contact, such as a hand touching the face. In contrast, wearable bioimpedance sensing can cheaply and unobtrusively measure ground-truth skin-to-skin contact. Consequently, we propose a novel framework that combines visual pose estimators with bioimpedance sensing to capture the 3D pose of people by taking self-contact into account. Our method, BioTUCH, initializes the pose using an off-the-shelf estimator and introduces contact-aware pose optimization during measured self-contact: reprojection error and deviations from the input estimate are minimized while enforcing vertex proximity constraints. We validate our approach using a new dataset of synchronized RGB video, bioimpedance measurements, and 3D motion capture. Testing with three input pose estimators, we demonstrate an average of 11.7% improvement in reconstruction accuracy. We also present a miniature wearable bioimpedance sensor that enables efficient large-scale collection of contact-aware training data for improving pose estimation and generation using BioTUCH. Code and data are available at biotuch.is.tue.mpg.de
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