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A real-time unsupervised background extraction-based target detection method for hyperspectral imagery

机译:一种基于实时无监督背景提取的高光谱图像目标检测方法

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摘要

Target detection is an important technique in hyperspectral image analysis. The high dimensionality of hyperspectral data provides the possibility of deeply mining the information hiding in spectra, and many targets that cannot be visualized by inspection can be detected. But this also brings some problems such as unknown background interferences at the same time. In this way, extracting and taking advantage of the background information in the region of interest becomes a task of great significance. In this paper, we present an unsupervised background extraction-based target detection method, which is called UBETD for short. The proposed UBETD takes advantage of the method of endmember extraction in hyperspectral unmixing, another important technique that can extract representative material signatures from the images. These endmembers represent most of the image information, so they can be reasonably seen as the combination of targets and background signatures. Since the background information is known, algorithm like target-constrained interference-minimized filter could then be introduced to detect the targets while inhibiting the interferences. To meet the rapidly rising demand of real-time processing capabilities, the proposed algorithm is further simplified in computation and implemented on a FPGA board. Experiments with synthetic and real hyperspectral images have been conducted comparing with constrained energy minimization, adaptive coherence/cosine estimator and adaptive matched filter to evaluate the detection and computational performance of our proposed method. The results indicate that UBETD and its hardware implementation RT-UBETD can achieve better performance and are particularly prominent in inhibiting interferences in the background. On the other hand, the hardware implementation of RT-UBETD can complete the target detection processing in far less time than the data acquisition time of hyperspectral sensor like HyMap, which confirms strict real-time processing capability of the proposed system.
机译:目标检测是高光谱图像分析中的一项重要技术。高光谱数据的高维提供了深度挖掘隐藏在光谱中的信息的可能性,并且可以检测到许多无法通过检查看到的目标。但这也带来了一些问题,例如同时存在未知的背景干扰。以这种方式,提取和利用感兴趣区域中的背景信息就变得非常重要。在本文中,我们提出了一种基于无监督背景提取的目标检测方法,简称UBETD。提出的UBETD在高光谱解混中利用了末端成员提取的方法,这是另一种重要的技术,可以从图像中提取代表性的材料特征。这些端成员代表大多数图像信息,因此可以合理地将它们视为目标和背景签名的组合。由于背景信息是已知的,因此可以引入诸如目标约束干扰最小化滤波器之类的算法来检测目标,同时抑制干扰。为了满足快速增长的实时处理能力的需求,该算法在计算上进一步简化并在FPGA板上实现。进行了合成和真实高光谱图像的实验,并与约束能量最小化,自适应相干/余弦估计器和自适应匹配滤波器进行了比较,以评估我们提出的方法的检测和计算性能。结果表明,UBETD及其硬件实现RT-UBETD可以实现更好的性能,并且在抑制后台干扰方面尤为突出。另一方面,RT-UBETD的硬件实现可以比HyMap等高光谱传感器的数据采集时间短得多的时间完成目标检测处理,这证实了所提出系统的严格实时处理能力。

著录项

  • 来源
    《Journal of Real-Time Image Processing》 |2018年第3期|597-615|共19页
  • 作者单位

    Key Laboratory of Digital Earth Science, Institute of Remote Sensing and Digital Earth, Chinese Academy of Sciences,University of Chinese Academy of Sciences;

    Key Laboratory of Digital Earth Science, Institute of Remote Sensing and Digital Earth, Chinese Academy of Sciences,The College of Computer Science and Software Engineering, Computer Vision Research Institute, Shenzhen University;

    Key Laboratory of Digital Earth Science, Institute of Remote Sensing and Digital Earth, Chinese Academy of Sciences;

    Key Laboratory of Digital Earth Science, Institute of Remote Sensing and Digital Earth, Chinese Academy of Sciences,University of Chinese Academy of Sciences;

    Hyperspectral Computing Laboratory, Department of Technology of Computers and Communications, Escuela Politecnica de Cáceres, University of Extremadura;

    Hyperspectral Computing Laboratory, Department of Technology of Computers and Communications, Escuela Politecnica de Cáceres, University of Extremadura;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Hyperspectral imagery; Target detection; Unsupervised background extraction; Endmember extraction; Real-time processing; FPGA;

    机译:高光谱图像;目标检测;无监督背景提取;端元提取;实时处理;FPGA;

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