A Multi-Stage GAN for Multi-Organ Chest X-ray Image Generation and Segmentation

被引:9
|
作者
Ciano, Giorgio [1 ,2 ]
Andreini, Paolo [2 ]
Mazzierli, Tommaso [3 ]
Bianchini, Monica [2 ]
Scarselli, Franco [2 ]
机构
[1] Univ Florence, Dept Informat Engn, I-50121 Florence, Italy
[2] Univ Siena, Dept Informat Engn & Math, I-53100 Siena, Italy
[3] Univ Florence, Dept Nephrol, AOU Careggi, I-50121 Florence, Italy
关键词
deep learning; convolutional neural networks; semantic segmentation; generative adversarial networks; chest X-ray; image augmentation; RADIOGRAPHS;
D O I
10.3390/math9222896
中图分类号
O1 [数学];
学科分类号
0701 ; 070101 ;
摘要
Multi-organ segmentation of X-ray images is of fundamental importance for computer aided diagnosis systems. However, the most advanced semantic segmentation methods rely on deep learning and require a huge amount of labeled images, which are rarely available due to both the high cost of human resources and the time required for labeling. In this paper, we present a novel multi-stage generation algorithm based on Generative Adversarial Networks (GANs) that can produce synthetic images along with their semantic labels and can be used for data augmentation. The main feature of the method is that, unlike other approaches, generation occurs in several stages, which simplifies the procedure and allows it to be used on very small datasets. The method was evaluated on the segmentation of chest radiographic images, showing promising results. The multi-stage approach achieves state-of-the-art and, when very few images are used to train the GANs, outperforms the corresponding single-stage approach.
引用
收藏
页数:16
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