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首页> 外文期刊>International journal of applied mechanics >Supervised Detection of Facade Openings in 3D Point Clouds with Thermal Attributes
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Supervised Detection of Facade Openings in 3D Point Clouds with Thermal Attributes

机译:热属性3D点云面部开口的监督检测

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摘要

Targeted energy management and control is becoming an increasing concern in the building sector. Automatic analyses of thermal data, which minimize the subjectivity of the assessment and allow for large-scale inspections, are therefore of high interest. In this study, we propose an approach for a supervised extraction of facade openings (windows and doors) from photogrammetric 3D point clouds attributed to RGB and thermal infrared (TIR) information. The novelty of the proposed approach is in the combination of thermal information with other available characteristics of data for a classification performed directly in 3D space. Images acquired in visible and thermal infrared spectra serve as input data for the camera pose estimation and the reconstruction of 3D scene geometry. To investigate the relevance of different information types to the classification performance, a Random Forest algorithm is applied to various sets of computed features. The best feature combination is then used as an input for a Conditional Random Field that enables us to incorporate contextual information and consider the interaction between the points. The evaluation executed on a per-point level shows that the fusion of all available information types together with context consideration allows us to extract objects with 90% completeness and 95% correctness. A respective assessment executed on a per-object level shows 97% completeness and 88% accuracy.
机译:有针对性的能源管理和控制正在成为建筑业的越来越多的问题。因此,热数据的自动分析最小化评估的主观性并允许大规模检查,因此具有高兴趣。在这项研究中,我们提出了一种从摄影测量3D点云归因于RGB和热红外(TIR)信息的接触外立开口(Windows和Windows)的方法。所提出的方法的新颖性是与热信息的组合与其他可用的数据的分类直接在3D空间中执行的分类。在可见光和热红外光谱中获取的图像用作相机姿势估计和3D场景几何的重建的输入数据。为了调查不同信息类型对分类性能的相关性,将随机林算法应用于各种计算特征。然后将最佳特征组合用作条件随机字段的输入,使我们能够结合上下文信息并考虑点之间的交互。在每点级别执行的评估表明,所有可用信息类型的融合与上下文考虑允许我们提取具有90%完整性和95%正确性的对象。在每个对象级别执行的各个评估显示97%的完整性和88%的准确性。

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