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A Multimodal Approach to High Resolution Image Classification

机译:高分辨率图像分类的多模式方法

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As the collection of multiple modalities over a single region of interest becomes more common, users are provided with the capability to better overcome limitations of one data type by using the strengths of another. Often, when working only with hyperspectral imagery, scene classification is limited both by the generally lower spatial resolution of the hyperspectral imagery as well as the inability to distinguish classes which are spectrally similar, like asphalt roofing material and road asphalt. This paper will present and demonstrate a method to determine pure pixels in hyperspectral imagery by taking advantage of higher spatial resolution information available in color imagery fused with LIDAR return strength and elevation data. In return, the spectral information gained from hyperspectral imagery will then be used to perform image classification at the higher resolution of the color image. The result is a fully automated process for pure pixel determination and high resolution image classification.
机译:由于在单个感兴趣区域上的多种方式的集合变得更加常见,因此通过使用另一个数据类型更好地克服一个数据类型的能力。通常,当仅使用高光谱图像时工作时,场景分类是通过高光谱图像的一般较低的空间分辨率的限制,以及区分诸如光谱相似的类,如沥青屋顶材料和道路沥青。本文将展示并演示通过利用与激光乐箭返回强度和高程数据融合的彩色图像中可用的较高空间分辨率信息来确定高光谱图像中纯像素的方法。作为返回,从高光谱图像中获得的光谱信息将用于在彩色图像的较高分辨率下执行图像分类。结果是纯像素确定和高分辨率图像分类的全自动化过程。

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