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Modified Residual Method for Estimation of Signal Dependent Noise in Hyperspectral Images

机译:用于估计高光谱图像信号依赖性噪声的修改残余方法

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An accurate estimate of the underlying noise is required in many hyperspectral image processing algorithms. In this regard, the classic residual method [1] is one of the most commonly employed noise estimation methods for hyperspectral images. We recently proposed [2] an improvement to the classic residual method, however the improvement did not cater for the case of signal-dependent noise. This is the case for most of the modern hyperspectral imaging instruments where the magnitude of the underlying noise is dependent on the intensity of the signal [3 –5]. In this paper, we extend the framework proposed in [2] to the case of signal-dependent noise and propose a method to estimate parameters of the signal-dependent noise variance. It is then shown that the proposed method is able to accurately estimate the different noise parameters in artificial datasets and the method is also applied and analyzed in real datasets.
机译:许多高光谱图像处理算法中需要对底层噪声的准确估计。在这方面,经典的残留方法[1]是高光谱图像最常用的噪声估计方法之一。我们最近提出了对经典残留方法的改进,然而改善不适合信号依赖性噪声的情况。这是大多数现代高光谱成像仪器的情况,其中底层噪声的大小取决于信号的强度[3-5]。在本文中,我们将[2]中提出的框架扩展到信号相关噪声的情况,并提出了一种方法来估计信号相关噪声方差的参数。然后示出所提出的方法能够精确地估计人工数据集中的不同噪声参数,并且在实际数据集中也应用并分析该方法。

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