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PROCESSING OF HISTOLOGY IMAGES WITH A CONVOLUTIONAL NEURAL NETWORK TO IDENTIFY TUMORS

机译:用卷积神经网络处理组织学图像以识别肿瘤

摘要

A convolutional neural network (CNN) is applied to identifying tumors in a histological image. The CNN has one channel assigned to each of a plurality of tissue classes that are to be identified, there being at least one class for each of non-tumorous and tumorous tissue types. Multi-stage convolution is performed on image patches extracted from the histological image followed by multi-stage transpose convolution to recover a layer matched in size to the input image patch. The output image patch thus has a one-to-one pixel-to-pixel correspondence with the input image patch such that each pixel in the output image patch has assigned to it one of the multiple available classes. The output image patches are then assembled into a probability map that can be co-rendered with the histological image either alongside it or over it as an overlay. The probability map can then be stored linked to the histological image.
机译:将卷积神经网络(CNN)应用于组织学图像中的肿瘤。 CNN具有分配给要识别的多个组织类中的每一个的一个通道,每个非肿瘤和肿瘤组织类型存在至少一个类。在从组织学图像提取的图像贴片上执行多级卷积,然后是多级转置卷积,以恢复匹配的大小与输入图像补片匹配的图层。因此,输出图像补丁具有与输入图像修补程序的一对一像素对应关系,使得输出图像补丁中的每个像素已经分配给它一个可用类中的一个。然后将输出图像贴片组装成概率图,该概率图可以与组织学图像一起与其作为覆盖层或其过上。然后可以将概率图连接到组织学图像。

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