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首页> 外文期刊>IEEE Transactions on Geoscience and Remote Sensing >Multiscale Intensity Propagation to Remove Multiplicative Stripe Noise From Remote Sensing Images
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Multiscale Intensity Propagation to Remove Multiplicative Stripe Noise From Remote Sensing Images

机译:多尺度强度传播,从遥感图像中删除乘法条纹噪声

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摘要

Sensor instability, dark currents, and other factors often cause stripe noise corruption in hyperspectral remote sensing images and severely limit their application in practical purposes. Previous studies have proposed numerous destriping algorithms that have yielded impressive results. Although most destriping algorithms are based on the premise of additive noise, a few studies have focused directly on multiplicative stripe noise. This article fully analyzes the characteristics of the stripe noise of OHS-01 images and proposes a multiplicative stripe noise removal method. Specifically, stripe noise is tackled by performing radiometric normalization of different columns in the image. First, the relative gain coefficients of adjacent columns are separated based on prior knowledge. Second, the local relative intensity correspondence of the image columns are established by means of intensity propagation, intensity connection, and so on. Finally, the above-mentioned process is iterated in multiscale space, and the accumulated gain correction coefficient maps were used to correct the radiation of the original image. The results of extensive experiments on simulated and real remote sensing image data demonstrate that the proposed method can, in most cases, yield desirable results. In certain cases, the results are even better, visually, and quantitatively, than those obtained using classical algorithms. Moreover, the proposed method has high robustness and efficiency. Thus, it can conform to the requirements of engineering applications.
机译:传感器不稳定性,黑色电流和其他因素经常在高光谱遥感图像中引起条纹噪声损坏,并以实际目的严重限制其应用。以前的研究提出了许多已经产生了令人印象深刻的结果的DARTIPING算法。虽然大多数Distriping算法基于附加噪声的前提,但是一些研究直接集中在乘法条纹噪声上。本文完全分析了OHS-01图像的条纹噪声的特性,提出了一种乘法条纹噪声清除方法。具体地,通过在图像中执行不同列的辐射归一化来解决条纹噪声。首先,基于先前的知识来分离相邻列的相对增益系数。其次,通过强度传播,强度连接等建立图像列的局部相对强度对应关系。最后,在多尺度空间中迭代上述过程,并且使用累积的增益校正系数图来校正原始图像的辐射。在模拟和真实遥感图像数据上进行广泛实验的结果表明,在大多数情况下,所提出的方法可以获得所需的结果。在某些情况下,结果比使用经典算法获得的结果更好,视觉和定量。此外,该方法具有高稳健性和效率。因此,它可以符合工程应用的要求。

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