口腔图像中牙龈疾病的自动分割

Aman Rana, Gregory Yauney, Lawrence C. Wong, O. Gupta, A. Muftu, Pratik Shah
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引用次数: 42

摘要

牙周病是所有年龄段人群牙齿脱落的最大原因,也与心内膜炎等全身性疾病有关。晚期牙周病包括周围牙齿结构退化、严重炎症和牙龈出血。炎症是牙周病的早期征兆。早期发现和预防措施有助于预防牙周病的严重发生,并在大多数情况下恢复口腔健康。我们报告了一个机器学习分类器,经过牙科专业人员的注释训练,成功地提供了彩色增强口腔内图像的逐像素炎症分割。该分类器成功区分炎症牙龈和健康牙龈及其在接受者工作特征曲线下的面积为0.746,准确率和召回率分别为0.347和0.621。牙科专业人员和患者可以受益于该分类器提供的牙周病的自动护理点早期诊断,该分类器使用由口腔内成像设备获得的口腔图像。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Automated segmentation of gingival diseases from oral images
Periodontal diseases are the largest cause of tooth loss among people of all ages and are also correlated with systemic diseases such as endocarditis. Advanced periodontal disease comprises degradation of surrounding tooth structures, severe inflammation and gingival bleeding. Inflammation is an early indicator of periodontal disease. Early detection and preventive measures can help prevent serious occurrences of periodontal diseases and in most cases restore oral health. We report a machine learning classifier, trained with annotations from dental professionals, that successfully provides pixel-wise inflammation segmentations of color-augmented intraoral images. The classifier successfully distinguishes between inflamed and healthy gingiva and its area under the receiver operating characteristic curve is 0.746, with precision and recall of 0.347 and 0.621 respectively. Dental professionals and patients can benefit from automated point-of-care early diagnosis of periodontal diseases provided by this classifier using oral images acquired by intraoral imaging devices.
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