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Investigation of Spectral Assignments from Airborne HRS Sensor to Model Friction Deterioration in Asphaltic Roads

机译:空机HRS传感器谱分配调查沥青道路模型摩擦劣化

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In this work, we propose a spectral assignment analysis (SAA) oriented partial least squares regression (PLS-R) modeling approach, designed to provide descriptive spectral assignments of proxy models. We applied this method on airborne HSR data of asphalt roads combined with the dynamic friction coefficient (m) that were measured independently. Accordingly, the method automatically subgroups the data into high and low values clusters under an iterative segmentation process. A PLS-R model is fitted to each group, followed by the extraction of the B Coefficient spectrum. A spectral angle (SA) value is calculated in each iteration between the two spectra to find the most pronounced difference between the two segments, pointing on a significant group separation. Hyperspectral data was acquired using the AisaFenix 1k hyperspectral imaging system over several asphalt roads in central Israel. This method provided insights regarding the physical and chemical processes occurring to asphalt pavement due to aging effects, and the different assignments for different friction levels.
机译:在这项工作中,我们提出了一种谱分配分析(SAA)面向偏最小二乘回归(PLS-R)建模方法,旨在提供代理模型的描述性频谱分配。我们在沥青道路的空气传播HSR数据上应用了这种方法,这些方法与独立测量的动态摩擦系数(M)相结合。因此,该方法在迭代分割过程下自动将数据分组到高值群集中。 PLS-R模型适用于每组,然后提取B系数谱。在两个光谱之间的每次迭代中计算光谱角(SA)值,以找到两个段之间的最明显的差异,指向有效的组分离。使用以色列中部地区的几个柏油路的Aisafenix 1K高光谱成像系统获得了高光谱数据。该方法提供了有关由于老化效应导致的沥青路面发生的物理和化学过程的见解,以及不同摩擦水平的不同作用。

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