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WEAKLY SUPERVISED SEMANTIC SEGMENTATION OF CROHN'S DISEASE TISSUES FROM ABDOMINAL MRI

机译:来自腹部MRI的克罗恩病组织的弱弱大语义分割

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We address the problem of weakly supervised segmentation (WSS) of medical images which is more challenging and has potentially greater applications in the medical imaging community. Training images are labeled only by the classes they contain, and not by the pixel labels. We make use of the Multi Image Model (MIM) for weakly supervised segmentation which exploits superpixel features and assigns labels to every pixel. MIM connects superpixels from all training images in a data driven fashion. Test images are integrated into the MIM for predicting their labels, thus making full use of the training samples. Experimental results on abdominal magnetic resonance (MR) images of patients with Crohn's disease show that WSS performs close to fully supervised methods and given sufficient samples can perform on par with fully supervised methods.
机译:我们解决了更具挑战性的医学图像的弱监督分割(WSS)的问题,并且在医学成像社区中具有潜在的应用。培训图像仅由它们包含的类标记,而不是由像素标签标记。我们利用多映像模型(MIM)来利用Superpixel功能的弱监管分段,并将标签分配给每个像素。 MIM以数据驱动方式将Superpixels与所有培训图像连接。测试图像集成到MIM中以预测其标签,从而充分利用训练样本。患有CrOHN疾病患者腹部磁共振(MR)图像的实验结果表明,WSS对完全监督方法进行接近,并且足够的样品可以通过完全监督的方法进行。

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