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SYNTHETIC GENERATION OF CLINICAL SKIN IMAGES IN PATHOLOGY

机译:病理学中临床皮肤图像的综合产生

摘要

We disclose the generation and training of Generative Adversarial Networks (GAN) to synthesize clinical images with skin conditions. Synthetic images for a pre-specified skin condition are generated, while being able to vary its size, location and the underlying skin color. We demonstrate that the generated images are of high fidelity using objective GAN evaluation metrics. The synthetic images are not only visually similar to real images, but also embody the respective skin conditions. Additionally, synthetic skin images can be used as a data augmentation technique for training a skin condition classifier, and improve the ability of the classifier to detect rare but malignant conditions.
机译:我们透露了生成的对抗网络(GaN)的产生和培训,以将临床图像与皮肤状况合成。产生预先指定的皮肤状况的合成图像,同时能够改变其尺寸,位置和潜在的肤色。我们证明所生成的图像使用客观GaN评估指标具有高保真度。合成图像不仅与真实图像在视觉上,而且还体现了各自的皮肤状况。另外,合成皮肤图像可以用作训练皮肤状况分类器的数据增强技术,并提高分类器检测稀有但恶性条件的能力。

著录项

  • 公开/公告号WO2021086594A1

    专利类型

  • 公开/公告日2021-05-06

    原文格式PDF

  • 申请/专利权人 GOOGLE LLC;

    申请/专利号WO2020US55346

  • 申请日2020-10-13

  • 分类号G06T11;G06T7;

  • 国家 US

  • 入库时间 2022-08-24 18:36:33

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