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基于镜面反射去除和深度注意网络的自动醋酸白病变分割。

Automatic Acetowhite Lesion Segmentation via Specular Reflection Removal and Deep Attention Network.

出版信息

IEEE J Biomed Health Inform. 2021 Sep;25(9):3529-3540. doi: 10.1109/JBHI.2021.3064366. Epub 2021 Sep 3.

Abstract

Automatic acetowhite lesion segmentation in colposcopy images (cervigrams) is essential in assisting gynecologists for the diagnosis of cervical intraepithelial neoplasia grades and cervical cancer. It can also help gynecologists determine the correct lesion areas for further pathological examination. Existing computer-aided diagnosis algorithms show poor segmentation performance because of specular reflections, insufficient training data and the inability to focus on semantically meaningful lesion parts. In this paper, a novel computer-aided diagnosis algorithm is proposed to segment acetowhite lesions in cervigrams automatically. To reduce the interference of specularities on segmentation performance, a specular reflection removal mechanism is presented to detect and inpaint these areas with precision. Moreover, we design a cervigram image classification network to classify pathology results and generate lesion attention maps, which are subsequently leveraged to guide a more accurate lesion segmentation task by the proposed lesion-aware convolutional neural network. We conducted comprehensive experiments to evaluate the proposed approaches on 3045 clinical cervigrams. Our results show that our method outperforms state-of-the-art approaches and achieves better Dice similarity coefficient and Hausdorff Distance values in acetowhite legion segmentation.

摘要

自动阴道镜图像(宫颈涂片)中的醋酸白色病变分割对于辅助妇科医生诊断宫颈上皮内瘤变和宫颈癌至关重要。它还可以帮助妇科医生确定用于进一步病理检查的正确病变区域。现有的计算机辅助诊断算法由于镜面反射、训练数据不足以及无法关注语义上有意义的病变部位,导致分割性能较差。本文提出了一种新的计算机辅助诊断算法,用于自动分割宫颈涂片中的醋酸白色病变。为了减少镜面反射对分割性能的干扰,提出了一种镜面反射去除机制,以高精度检测和填充这些区域。此外,我们设计了一种宫颈涂片图像分类网络来分类病理结果并生成病变注意图,然后利用病变感知卷积神经网络通过病变注意图引导更准确的病变分割任务。我们在 3045 个临床宫颈涂片上进行了全面的实验评估。实验结果表明,我们的方法优于最先进的方法,在醋酸白色病变分割中获得了更好的 Dice 相似系数和 Hausdorff 距离值。

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