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Perceptual Segmentation: Combining Image Segmentation With Object Tagging

机译:感知分割:将图像分割与对象标记结合

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摘要

Human observers understand the content of an image intuitively. Based upon image content, they perform many image-related tasks, such as creating slide shows and photo albums, and organizing their image archives. For example, to select photos for an album, people assess image quality based upon the main objects in the image. They modify colors in an image based upon the color of important objects, such as sky, grass or skin. Serious photographers might modify each object separately. Photo applications, in contrast, use low-level descriptors to guide similar tasks. Typical descriptors, such as color histograms, noise level, JPEG artifacts and overall sharpness, can guide an imaging application and safeguard against blunders. However, there is a gap between the outcome of such operations and the same task performed by a person. We believe that the gap can be bridged by automatically understanding the content of the image. This paper presents algorithms for automatic tagging of perceptual objects in images, including sky, skin, and foliage, which constitutes an important step toward this goal.
机译:人类的观察者可以直观地理解图像的内容。他们根据图像内容执行许多与图像相关的任务,例如创建幻灯片和相册以及组织图像档案。例如,要选择相册的照片,人们会根据图像中的主要对象评估图像质量。它们根据重要对象(例如天空,草地或皮肤)的颜色来修改图像中的颜色。认真的摄影师可能会分别修改每个对象。相反,照片应用程序使用低级描述符来指导类似的任务。典型的描述符,例如颜色直方图,噪声水平,JPEG伪像和整体清晰度,可以指导成像应用并防止出现失误。但是,这种操作的结果与人执行的相同任务之间存在差距。我们认为,可以通过自动理解图像内容来弥合差距。本文提出了自动标记图像中的感知对象的算法,包括天空,皮肤和树叶,这是朝此目标迈出的重要一步。

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