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Combination of contrast limited adaptive histogram equalisation and discrete wavelet transform for image enhancement

机译:对比度受限的自适应直方图均衡和离散小波变换相结合的图像增强

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摘要

Image enhancement has an important role in image processing applications. Contrast limited adaptive histogram equalisation (CLAHE) is an effective algorithm to enhance the local details of an image. However, it faces the contrast overstretching and noise enhancement problems. To solve these problems, this study presents a novel image enhancement method, named CLAHE-discrete wavelet transform (DWT), which combines the CLAHE with DWT. The new method includes three main steps: First, the original image is decomposed into low-frequency and high-frequency components by DWT. Then, the authors enhance the low-frequency coefficients using CLAHE and keep the high-frequency coefficients unchanged to limit noise enhancement. This is because the high-frequency component corresponds to the detail information and contains most noises of original image. Finally, reconstruct the image by taking inverse DWT of the new coefficients. To alleviate over-enhancement, the reconstructed and original images are averaged using an originally proposed weighting factor. The weighting operation can control the enhancement levels of regions with different luminances in original image adaptively. This is important because bright parts of image are usually needless to be enhanced in comparison with the dark parts. Extensive experiments show that this method performs well in detail preservation and noise suppression.
机译:图像增强在图像处理应用程序中具有重要作用。对比度受限的自适应直方图均衡化(CLAHE)是提高图像局部细节的有效算法。然而,它面临对比度过度拉伸和噪声增强的问题。为了解决这些问题,本研究提出了一种新颖的图像增强方法,称为CLAHE离散小波变换(DWT),该方法将CLAHE与DWT相结合。新方法包括三个主要步骤:首先,通过DWT将原始图像分解为低频和高频分量。然后,作者使用CLAHE增强低频系数,并保持高频系数不变以限制噪声增强。这是因为高频分量对应于细节信息并且包含原始图像的大部分噪声。最后,通过对新系数进行反DWT重建图像。为了减轻过度增强,使用最初提出的加权因子对重建的图像和原始图像进行平均。加权操作可以自适应地控制原始图像中具有不同亮度的区域的增强水平。这很重要,因为与黑暗部分相比,通常无需增强图像的明亮部分。大量实验表明,该方法在细节保存和噪声抑制方面表现良好。

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