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Automatic Detection of Anatomical Landmarks in Uterine Cervix Images

机译:子宫子宫颈图像中解剖标志的自动检测

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摘要

The work focuses on a unique medical repository of digital cervicographic images (“Cervigrams”) collected by the National Cancer Institute (NCI) in longitudinal multiyear studies. NCI, together with the National Library of Medicine (NLM), is developing a unique web-accessible database of the digitized cervix images to study the evolution of lesions related to cervical cancer. Tools are needed for automated analysis of the cervigram content to support cancer research. We present a multistage scheme for segmenting and labeling regions of anatomical interest within the cervigrams. In particular, we focus on the extraction of the cervix region and fine detection of the cervix boundary; specular reflection is eliminated as an important preprocessing step; in addition, the entrance to the endocervical canal (the “os”), is detected. Segmentation results are evaluated on three image sets of cervigrams that were manually labeled by NCI experts.
机译:该工作着重于由美国国家癌症研究所(NCI)在纵向多年研究中收集的独特的数字子宫颈图像医学存储库(子宫颈图)。 NCI与国家医学图书馆(NLM)一起,正在开发一个独特的可通过网络访问的子宫颈数字化图像数据库,以研究与宫颈癌相关的病变的演变。需要工具来自动分析子宫颈内容,以支持癌症研究。我们提出了一个多阶段计划,用于分割和标记子宫颈内的解剖学区域。特别地,我们专注于子宫颈区域的提取和子宫颈边界的精细检测。消除镜面反射是重要的预处理步骤;另外,检测到宫颈管的入口(“ os”)。分割结果是在由NCI专家手动标记的三个子宫颈图像集上评估的。

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