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基于自适应双注意力网络的深度空间光谱先验用于单像素高光谱重建。

Deep spatial-spectral prior with an adaptive dual attention network for single-pixel hyperspectral reconstruction.

作者信息

Yang Shuowen, Qin Hanlin, Yan Xiang, Yuan Shuai, Yang Tingwu

出版信息

Opt Express. 2022 Aug 1;30(16):29621-29638. doi: 10.1364/OE.460418.

Abstract

Recently, single-pixel imaging has shown great promise in developing cost-effective imaging systems, where coding and reconstruction are the keys to success. However, it also brings challenges in capturing hyperspectral information accurately and instantly. Many works have attempted to improve reconstruction performance in single-pixel hyperspectral imaging by applying various hand-crafted priors, leading to sub-optimal solutions. In this paper, we present the deep spatial-spectral prior with adaptive dual attention network for single-pixel hyperspectral reconstruction. Specifically, the spindle structure of the parameter sharing method is developed to integrate information across spatial and spectral dimensions of HSI, which can synergistically and efficiently extract global and local prior information of hyperspectral images from both shallow and deep layers. Particularly, a sequential adaptive dual attention block (SADAB), i.e., spatial attention and spectral attention, are devised to adaptively rescale informative features of spatial locations and spectral channels simultaneously, which can effectively boost the reconstruction accuracy. Experiment results on public HSI datasets demonstrate that the proposed method significantly outperforms the state-of-the-art algorithm in terms of reconstruction accuracy and speed.

摘要

最近,单像素成像在开发具有成本效益的成像系统方面显示出巨大潜力,其中编码和重建是成功的关键。然而,它在准确、即时地捕获高光谱信息方面也带来了挑战。许多工作试图通过应用各种手工制作的先验来提高单像素高光谱成像中的重建性能,从而导致次优解决方案。在本文中,我们提出了用于单像素高光谱重建的具有自适应双注意力网络的深度空间光谱先验。具体而言,开发了参数共享方法的纺锤结构,以整合高光谱图像(HSI)空间和光谱维度的信息,从而可以协同有效地从浅层和深层提取高光谱图像的全局和局部先验信息。特别地,设计了一种顺序自适应双注意力块(SADAB),即空间注意力和光谱注意力,以同时自适应地重新缩放空间位置和光谱通道的信息特征,这可以有效地提高重建精度。在公共HSI数据集上的实验结果表明,所提出的方法在重建精度和速度方面显著优于现有算法。

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