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Hyperspectral Image Super-Resolution by Deep Spatial-Spectral Exploitation

机译:深度空间光谱开发的超光谱图像超分辨率

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摘要

Limited by the existing imagery sensors, hyperspectral images are characterized by high spectral resolution but low spatial resolution. The super-resolution (SR) technique aiming at enhancing the spatial resolution of the input image is a hot topic in computer vision. In this paper, we present a hyperspectral image (HSI) SR method based on a deep information distillation network (IDN) and an intra-fusion operation. Specifically, bands are firstly selected by a certain distance and super-resolved by an IDN. The IDN employs distillation blocks to gradually extract abundant and efficient features for reconstructing the selected bands. Second, the unselected bands are obtained via spectral correlation, yielding a coarse high-resolution (HR) HSI. Finally, the spectral-interpolated coarse HR HSI is intra-fused with the input HSI to achieve a finer HR HSI, making further use of the spatial-spectral information these unselected bands convey. Different from most existing fusion-based HSI SR methods, the proposed intra-fusion operation does not require any auxiliary co-registered image as the input, which makes this method more practical. Moreover, contrary to most single-based HSI SR methods whose performance decreases significantly as the image quality gets worse, the proposal deeply utilizes the spatial-spectral information and the mapping knowledge provided by the IDN, which achieves more robust performance. Experimental data and comparative analysis have demonstrated the effectiveness of this method.
机译:受现有图像传感器的限制,高光谱图像的特征在于光谱分辨率高而空间分辨率低。旨在增强输入图像的空间分辨率的超分辨率(SR)技术是计算机视觉中的热门话题。在本文中,我们提出了一种基于深度信息蒸馏网络(IDN)和融合内操作的高光谱图像(HSI)SR方法。具体而言,首先按一定距离选择频段,然后由IDN超解析。 IDN使用蒸馏模块逐渐提取大量有效的特征,以重建选定的频段。其次,未选择的波段是通过频谱相关性获得的,从而产生了粗糙的高分辨率(HR)HSI。最后,将频谱内插的粗HR HSI与输入HSI进行内部融合,以实现更精细的HR HSI,从而进一步利用这些未选择的频段传达的空间频谱信息。与大多数现有的基于融合的HSI SR方法不同,所提出的融合内操作不需要任何辅助共配准图像作为输入,这使得该方法更加实用。此外,与大多数单基HSI SR方法(其性能随着图像质量变差而显着降低)相反,该提案深入利用了IDN提供的空间光谱信息和映射知识,从而获得了更强大的性能。实验数据和比较分析证明了该方法的有效性。

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