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Multi-Class Segmentation with Relative Location Prior

机译:相对位置优先的多类别细分

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摘要

Multi-class image segmentation has made significant advances in recent years through the combination of local and global features. One important type of global feature is that of inter-class spatial relationships. For example, identifying “tree” pixels indicates that pixels above and to the sides are more likely to be “sky” whereas pixels below are more likely to be “grass.” Incorporating such global information across the entire image and between all classes is a computational challenge as it is image-dependent, and hence, cannot be precomputed.
机译:近年来,通过结合局部和全局特征,多类图像分割取得了重大进展。全局特征的一种重要类型是类间空间关系。例如,识别“树”像素表示上方和侧面的像素更有可能是“天空”,而下方的像素则更有可能是“草”。在整个图像中以及在所有类别之间整合这样的全局信息是一个计算难题,因为它与图像有关,因此无法进行预先计算。

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