首页> 外文会议>Conference on Medical Imaging 2008: Imaging Processing; 20080217-19; San Diego,CA(US) >Shape Priors for Segmentation of the Cervix Region within Uterine Cervix Images
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Shape Priors for Segmentation of the Cervix Region within Uterine Cervix Images

机译:子宫子宫颈图像内子宫颈区域分割的形状先验

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The work focuses on a unique medical repository of digital Uterine Cervix images ("Cervigrams") collected by the National Cancer Institute (NCI), National Institute of Health, in longitudinal multi-year studies. NCI together with the National Library of Medicine is developing a unique web-based database of the digitized cervix images to study the evolution of lesions related to cervical cancer. Tools are needed for the automated analysis of the cervigram content to support the cancer research. In recent works, a multi-stage automated system for segmenting and labeling regions of medical and anatomical interest within the cervigrams was developed. The current paper concentrates on incorporating prior-shape information in the cervix region segmentation task. In accordance with the fact that human experts mark the cervix region as circular or elliptical, two shape models (and corresponding methods) are suggested. The shape models are embedded within an active contour framework that relies on image features. Experiments indicate that incorporation of the prior shape information augments previous results.
机译:这项工作着重于由美国国家癌症研究所(NCI),美国国立卫生研究院(National Institute of Health)收集的子宫数字宫颈图像(“宫颈图”)的独特医学资料库,该数据库经过多年的长期研究。 NCI与国家医学图书馆共同开发了一个基于网络的独特数字化宫颈图像数据库,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。在最近的工作中,开发了一种多阶段自动系统,用于分割和标记子宫颈内的医学和解剖学区域。当前的论文集中于在子宫颈区域分割任务中合并先验形状信息。根据人类专家将子宫颈区域标记为圆形或椭圆形这一事实,建议使用两种形状模型(以及相应的方法)。形状模型嵌入在依赖于图像特征的活动轮廓框架中。实验表明,先前形状信息的合并增强了先前的结果。

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