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Example-Based Image Manipulation

机译:基于示例的图像处理

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摘要

Many color-related image adjustments can be conveniently executed by exposing at most a small number of parameters to the user. Examples are tone reproduction, contrast enhancements, gamma correction and white balancing. Others require manual touch-ups, applied by means of brush strokes. More recently, a new class of algorithms has emerged, which transfers specific image attributes from one or more example images to a target. These attributes do not have to be well-defined and concepts that are difficult to quantify with a small set of parameters, such as the "mood" of an image, can be instilled upon a target image simply through the mechanism of selecting appropriate examples. This makes example-based image manipulation a particularly suitable paradigm in creative applications, but also finds uses in more technical tasks such as stereo pair correction, video compression, image colorization, panorama stitching and creating night-time images out of day-light shots.
机译:通过最多向用户展示少量参数,可以方便地执行许多与颜色有关的图像调整。例如色调再现,对比度增强,伽玛校正和白平衡。其他人则需要通过画笔笔触进行手动润饰。最近,出现了一类新的算法,该算法将特定的图像属性从一个或多个示例图像传输到目标。这些属性不必定义明确,并且仅通过选择适当示例的机制就可以将难以用少量参数量化的概念(例如图像的“情绪”)灌输到目标图像上。这使基于示例的图像处理成为创意应用程序中的一种特别合适的范例,但也可以用于更多的技术任务中,例如立体声对校正,视频压缩,图像着色,全景拼接和在日光下拍摄夜间图像。

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