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Cloud Based Image Contrast Enhancement

机译:基于云的图像对比度增强

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We propose a cloud based image contrast enhancement framework, in which the context-sensitive and context-free contrast is improved via solving a multi-criteria optimization problem. Specifically, the context-sensitive contrast enhancement is based on the unsharp masking of the input and edge-preserving filtered images, while the context-free contrast enhancement is achieved by the sigmoid transfer mapping. The parameters in the optimization process are determined with the reference to the image that has a similar content and better enhancement quality in the cloud. The image complexity from the free energy based brain theory and the "surface" quality statistics is collaboratively optimized to infer the parameters. Experimental results demonstrate that the proposed technique can efficiently create visually-pleasing enhanced images with the guidance image from cloud.
机译:我们提出了一种基于云的图像对比度增强框架,其中通过解决多准则优化问题来改善上下文敏感和无上下文对比度。具体而言,上下文相关的对比度增强基于输入图像和边缘保留的滤波图像的不清晰蒙版,而上下文无关的对比度增强则通过S形传递映射来实现。优化过程中的参数是参考云中具有相似内容和更好增强质量的图像确定的。基于自由能的大脑理论和“表面”质量统计数据对图像的复杂性进行了优化,以推断参数。实验结果表明,所提出的技术可以有效地利用云中的引导图像创建令人愉悦的增强图像。

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