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An Improved Detection Method for Hyperspectral Imagery Based on White Gaussian Noise

机译:基于高斯白噪声的改进型高光谱图像检测方法

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摘要

To solve the low detection efficiency of the present hyperspectral detection method based on adaptive coherence estimator (ACE), an improved detection method based on white Gaussian noise (WGN) is proposed in this paper. Primarily the method uses the spectral angle mapping (SAM) method to adaptively set an optimal signal-to-noise (SNR) parameter based on the hyperspectral image. Then, a corresponding white Gaussian noise is generated according to this SNR parameter and is added to the original image to get a new image data. Finally, based on the new image data, a better target detection result can be obtained by using the ACE detection algorithm. The image data, added to the white Gaussian noise, are more consistent with the theoretical hypotheses of the ACE algorithm. Therefore the detection performance of the algorithm can be efficiently improved. Meanwhile, the adaptivity of setting the optimum SNR parameter in various images can make the method more universal. Experimental results of real world hyperspectral data show that the proposed ACE-WGN method can effectively improve detection performance.
机译:为了解决目前基于自适应相干估计器(ACE)的高光谱检测方法的检测效率低的问题,提出了一种基于白高斯噪声(WGN)的改进检测方法。首先,该方法使用光谱角度映射(SAM)方法基于高光谱图像自适应设置最佳信噪比(SNR)参数。然后,根据该SNR参数生成相应的白高斯噪声,并将其添加到原始图像以获得新的图像数据。最后,基于新的图像数据,使用ACE检测算法可以获得更好的目标检测结果。添加到高斯白噪声中的图像数据与ACE算法的理论假设更加一致。因此,可以有效地提高算法的检测性能。同时,在各种图像中设置最佳SNR参数的适应性可以使该方法更加通用。现实世界高光谱数据的实验结果表明,所提出的ACE-WGN方法可以有效地提高检测性能。

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