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Hyper-Hue and EMAP on Hyperspectral Images for Supervised Layer Decomposition of Old Master Drawings

机译:高光谱图像上的Hyper-Hue和EMAP用于旧主图的受监督层分解

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Old master drawings were mostly created step by step in several layers using different materials. To art historians and restorers, examination of these layers brings various insights into the artistic work process and helps to answer questions about the object, its attribution and its authenticity. However, these layers typically overlap and are oftentimes difficult to differentiate with the unaided eye. For example, a common layer combination is red chalk under ink. In this work, we propose an image processing pipeline that operates on hyperspectral images to separate such layers. In particular, we propose to use two descriptors in hyperspectral historical document analysis, namely hyper-hue and extended multi-attribute profile (EMAP). We show that hyperspectral images enable better layer separation than RGB images, and that spectral focus stacking is an important preprocessing step towards that goal. Our comparative results with other features underline the efficacy of the three proposed improvements.
机译:旧的主工程图大多是使用不同的材料在几层中逐步创建的。对于艺术史学家和修复者而言,对这些层次的检查为艺术工作过程带来了各种见解,并有助于回答有关物品,物品的属性及其真实性的问题。然而,这些层通常重叠并且通常难以用肉眼分辨。例如,常见的图层组合是墨水下的红色粉笔。在这项工作中,我们提出了一种对高光谱图像进行操作以分离此类图层的图像处理管道。特别是,我们建议在高光谱历史文档分析中使用两个描述符,即超色调和扩展多属性配置文件(EMAP)。我们表明,高光谱图像比RGB图像能实现更好的层分离,并且光谱焦点堆叠是朝着该目标迈出的重要预处理步骤。我们具有其他功能的比较结果强调了三项改进建议的功效。

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