arXiv:2605.08753cs.CVstat.ML2026-05

无需配准即可同步监测物体形状与表面颜色变化

Simultaneous Monitoring of Shape and Surface Color via 4D Point Clouds: A Registration-free Approach

论文配图:Simultaneous Monitoring of Shape and Surface Color via 4D Point Clouds: A Registration-free Approach
图 1 · 摘自论文原文
  • 利用拉普拉斯-贝尔特拉米算子捕捉形状与颜色关系
  • 对微小缺陷检测有效,能定位异常源
  • 适合复杂零件的实时质量监控

先进制造技术可生产具有高几何复杂性和空间异质材料组成的精密部件。融合带色彩属性的点云数据可生成4D点云,一种紧凑且信息丰富的表示,同时编码形状与材料信息。本文提出一种无需配准的同步监测框架(SMAC),通过拉普拉斯-贝尔特拉米算子的谱特性捕捉几何特征及其与表面颜色的关系。设计了联合监测机制以有效检测形状变形与颜色异常,并采用空间感知的后信号诊断流程确定变化来源并定位颜色异常。重要的是,两个模块均不依赖配准或网格重建,避免了易出错且计算昂贵的预处理步骤。蒙特卡洛模拟和功能梯度材料案例研究显示,SMAC在检测细微缺陷方面表现优异,同时具备异常源识别与定位能力。

原文摘要 · Abstract (English)

Advanced manufacturing technologies allow for the production of intricate parts featuring high shape complexity and spatially-varying material composition. Data fusion of point clouds with chromatic attributes provides 4D point clouds, a compact and informative representation that encodes both shape and material information. In this paper, we present a registration-free framework for Simultaneous Monitoring of shApe and Color (SMAC) via 4D point clouds. The proposed framework leverages Laplace-Beltrami operator spectral properties to capture and monitor geometric features and the relationship between shape and surface color. A combined monitoring scheme is proposed to effectively detect shape deformations and color anomalies, along with a spatially-aware post-signal diagnostic procedure to determine the source of change and localize color anomalies. Importantly, neither component relies on registration or mesh reconstruction, eliminating error-prone and computationally expensive preprocessing steps. A Monte Carlo simulation study and a case study on functionally graded materials demonstrate that SMAC achieves effective detection performance, particularly for subtle defects, while providing diagnostic capabilities to identify the source and location of anomalies.

4D点云形状监测颜色异常无配准

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