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Image data fusion applied to pictorial layers recognition

机译:图像数据融合应用于图形层识别

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Hyper-Spectral Imaging (HSI) is gaining, as a diagnostic tool in the field of cultural heritage, an increasing interest and it has been largely utilized in the last decade tanks to its ability to obtain both spatial and spectral information from a sample. Furthermore, it is a consolidated practice, to perform a better sample characterization, to acquire multiple imaging data coming from different devices covering different spectral ranges. In the present study, we present an analytical approach based on data fusion strategies to classify layers of different pigments using hyperspectral images acquired in two spectral ranges: visible near infrared (Vis-NIR: 400–1000 nm) and short infrared wavelength infrared (SWIR: 1000–2500 nm). The main aim of the study was to combine the data acquired by the two HSI sensors following a multivariate approach to classify pigments, thanks to the complementary information collected in the different spectral regions.
机译:超光谱成像(HSI)在文化遗产领域的诊断工具,越来越多的兴趣,并且它在最近十年坦克中被大量利用,以获得来自样本的空间和光谱信息的能力。此外,它是一种综合实践,以执行更好的样本表征,以获取来自覆盖不同光谱范围的不同设备的多个成像数据。在本研究中,我们介绍了一种基于数据融合策略的分析方法,用于使用两种光谱范围中获取的高光谱图像对不同颜料的层进行分类:可见近红外(VIR-NIR:400-1000nm)和短的红外波长红外线(SWIR :1000-2500 nm)。该研究的主要目的是在多变量的方法之后将两个HSI传感器所获取的数据组合在不同光谱区域中收集的互补信息来分类颜料。

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