arXiv:2601.08977cs.CV2026-01被引 1

融合热成像与激光雷达,提升大型建筑结构健康监测精度。

Thermo-LIO: A Novel Multi-Sensor Integrated System for Structural Health Monitoring

  • 多模态融合技术同步热成像与激光雷达数据,实现精准校准。
  • 结合激光惯性里程计,覆盖大范围结构,实时检测温差异常。
  • 适合大型基础设施巡检,尤其桥梁与场馆等复杂场景。

传统二维热成像虽非侵入式且适用于缺陷检测,但难以有效评估复杂几何结构、难以触及区域及内部缺陷。本文提出Thermo-LIO,一种新型多传感器集成系统,通过融合热成像与高分辨率激光雷达(LiDAR),显著提升结构健康监测(SHM)能力。首先,构建多模态融合方法,实现热成像与LiDAR数据的精确校准与同步,生成建筑物温度分布的高保真表示。其次,将该融合方法与激光惯性里程计(LIO)集成,实现对大规模结构的全覆盖扫描,支持跨周期的温度变化监测与缺陷定位。在桥梁与大厅建筑的案例研究中验证表明,Thermo-LIO比传统方法更准确地检测出热异常与结构性缺陷。系统提升了诊断精度,支持实时处理,并扩展了检测覆盖范围,凸显多模态传感器融合在大型土木基础设施监测中的关键作用。

原文摘要 · Abstract (English)

Traditional two-dimensional thermography, despite being non-invasive and useful for defect detection in the construction field, is limited in effectively assessing complex geometries, inaccessible areas, and subsurface defects. This paper introduces Thermo-LIO, a novel multi-sensor system that can enhance Structural Health Monitoring (SHM) by fusing thermal imaging with high-resolution LiDAR. To achieve this, the study first develops a multimodal fusion method combining thermal imaging and LiDAR, enabling precise calibration and synchronization of multimodal data streams to create accurate representations of temperature distributions in buildings. Second, it integrates this fusion approach with LiDAR-Inertial Odometry (LIO), enabling full coverage of large-scale structures and allowing for detailed monitoring of temperature variations and defect detection across inspection cycles. Experimental validations, including case studies on a bridge and a hall building, demonstrate that Thermo-LIO can detect detailed thermal anomalies and structural defects more accurately than traditional methods. The system enhances diagnostic precision, enables real-time processing, and expands inspection coverage, highlighting the crucial role of multimodal sensor integration in advancing SHM methodologies for large-scale civil infrastructure.

结构健康监测多传感器融合热成像激光雷达

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