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Multi-parameter modification based color image visuality enhancement

机译:基于多参数修改的彩色图像可视性增强

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Image visuality enhancement is an important part in the field of image processing for betterment of visual and informational quality of a distorted image. Various parameters are there for improving such quality like contrast, sharpness, intensity etc. Histogram Equalization (HE) technique is very popular approaches for enhancing contrast and preserving its main characteristics. But conventional HE techniques are not so suitable for maintaining all the image characteristics to enrich the overall image quality. In this regard, optimization techniques provide better result by selecting proper parameters. But histogram equalization based optimization techniques can only improve the image contrast, whether it is not capable for improving the sharpness as well as the intensity of the distorted images for overall betterment of the image quality. This paper shows the implementation of various renowned methods such as Homomorphic Filtering, Discrete Wavelet Transform (DWT), Unsharp Masking (USM) to improve the intensity and sharpness of the input images and finally the effective output of these methods has been implemented with the search dynamics of Artificial Bee Colony (ABC) techniques to get better contrast enhancement while optimizing the objective function designed towards preserving the important characteristics of the distorted images. This method is verified with different test images. The output images are compared with the corresponding input images in both visually as well as against different image quality metrics. The visual results and the metric based outputs proved the potential of the presented method over the existing techniques.
机译:为了改善失真图像的视觉和信息质量,图像可视性增强是图像处理领域中的重要部分。可以使用各种参数来改善诸如对比度,清晰度,强度等质量。直方图均衡(HE)技术是用于增强对比度并保留其主要特征的非常流行的方法。但是常规的HE技​​术并不适合于保持所有图像特性以丰富整体图像质量。在这方面,优化技术通过选择适当的参数可以提供更好的结果。但是,基于直方图均衡化的优化技术只能提高图像对比度,无论它是否不能提高失真图像的清晰度和强度,都无法总体上改善图像质量。本文展示了各种著名方法的实现,例如同态滤波,离散小波变换(DWT),反锐化掩模(USM)来提高输入图像的强度和清晰度,最后这些方法的有效输出已通过搜索实现。动态人工蜂群(ABC)技术以获得更好的对比度增强效果,同时优化旨在保留失真图像重要特征的目标函数。该方法已通过不同的测试图像进​​行了验证。在视觉上以及针对不同的图像质量度量,将输出图像与对应的输入图像进行比较。视觉结果和基于度量的输出证明了该方法相对于现有技术的潜力。

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