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Learning pixel visual context from object characteristics to generate rich semantic images

机译:从对象特征学习像素视觉上下文以生成丰富的语义图像

摘要

Both object-oriented analysis and the faster pixel-oriented analysis are used to recognize patterns in an image of stained tissue. Object-oriented image analysis is used to segment a small portion of the image into object classes. Then the object class to which each pixel in the remainder of the image most probably belongs is determined using decision trees with pixelwise descriptors. The pixels in the remaining image are assigned object classes without segmenting the remainder of the image into objects. After the small portion is segmented into object classes, characteristics of object classes are determined. The pixelwise descriptors describe which pixels are associated with particular object classes by matching the characteristics of object classes to the comparison between pixels at predetermined offsets. A pixel heat map is generated by giving each pixel the color assigned to the object class that the pixelwise descriptors indicate is most probably associated with that pixel.
机译:面向对象的分析和更快的面向像素的分析都用于识别染色组织图像中的图案。面向对象的图像分析用于将图像的一小部分细分为对象类。然后,使用带有逐像素描述符的决策树确定图像其余部分中的每个像素最有可能属于的对象类别。剩余图像中的像素被分配了对象类别,而没有将图像的其余部分分割为对象。将一小部分分割成对象类别后,即可确定对象类别的特征。逐像素描述符通过将对象类别的特征与预定偏移量的像素之间的比较进行匹配来描述哪些像素与特定对象类别相关联。通过为每个像素赋予分配给对象类的颜色来生成像素热图,逐个像素指示符指示该对象类最有可能与该像素相关联。

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