arXiv:2512.09283cs.RO2025-12

无需建模即可实时追踪被遮挡的柔性长条物体。

UPETrack: Unidirectional Position Estimation for Tracking Occluded Deformable Linear Objects

  • 基于单向位置估计,利用几何连续性推断遮挡部分
  • 定位精度和效率均优于现有方法,计算开销更低
  • 适合工业装配、医疗操作等需柔性物体追踪场景

实时状态追踪柔性长条物体(DLO)对于工业装配、医疗操作及日常应用中的机器人操作至关重要。然而,高维配置空间、非线性动力学及频繁的部分遮挡构成了实现鲁棒实时追踪的根本障碍。为此,本文提出UPETrack,一种基于单向位置估计(UPE)的几何驱动框架,无需物理建模、虚拟仿真或视觉标记即可实现追踪。该框架分为两个阶段:(1) 可见段通过期望最大化(EM)算法拟合高斯混合模型进行跟踪;(2) 采用提出的UPE算法预测遮挡区域。UPE利用DLO形状的几何连续性及其时序演化特性,通过三个核心机制——局部线性组合位移项、邻近线性约束项、历史曲率项——构建闭式位置估计算子,实现对遮挡节点的高效稳定估计,无需额外迭代优化。实验结果表明,UPETrack在定位精度和计算效率上均超越两种先进追踪算法(TrackDLO与CDCPD2)。

原文摘要 · Abstract (English)

Real-time state tracking of Deformable Linear Objects (DLOs) is critical for enabling robotic manipulation of DLOs in industrial assembly, medical procedures, and daily-life applications. However, the high-dimensional configuration space, nonlinear dynamics, and frequent partial occlusions present fundamental barriers to robust real-time DLO tracking. To address these limitations, this study introduces UPETrack, a geometry-driven framework based on Unidirectional Position Estimation (UPE), which facilitates tracking without the requirement for physical modeling, virtual simulation, or visual markers. The framework operates in two phases: (1) visible segment tracking is based on a Gaussian Mixture Model (GMM) fitted via the Expectation Maximization (EM) algorithm, and (2) occlusion region prediction employing UPE algorithm we proposed. UPE leverages the geometric continuity inherent in DLO shapes and their temporal evolution patterns to derive a closed-form positional estimator through three principal mechanisms: (i) local linear combination displacement term, (ii) proximal linear constraint term, and (iii) historical curvature term. This analytical formulation allows efficient and stable estimation of occluded nodes through explicit linear combinations of geometric components, eliminating the need for additional iterative optimization. Experimental results demonstrate that UPETrack surpasses two state-of-the-art tracking algorithms, including TrackDLO and CDCPD2, in both positioning accuracy and computational efficiency.

目标追踪柔性物体遮挡处理几何估计

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