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IMAGE ANALYSIS FOR CERVICAL NEOPLASIA DETECTION AND DIAGNOSIS

机译:颈椎病的影像分析及诊断

摘要

The present invention is an automated image analysis framework for cervical cancerous lesion detection. The present invention uses domain-specific diagnostic features in a probabilistic manner using conditional random fields. In addition, the present invention discloses a novel window-based performance assessment scheme for two-dimensional image analysis, which addresses the intrinsic problem of image misalignment. As a domain-specific anatomical feature, image regions corresponding to different tissue types are extracted from cervical images taken before and after the application of acetic acid during a clinical exam. The unique optical properties of each tissue type and the diagnostic relationships between neighboring regions are incorporated in the conditional random field model. The output provides information about both the tissue severity and the location of cancerous tissue in an image.
机译:本发明是用于宫颈癌病变检测的自动化图像分析框架。本发明使用条件随机字段以概率的方式使用域特定的诊断特征。另外,本发明公开了一种用于二维图像分析的新颖的基于窗口的性能评估方案,其解决了图像未对准的内在问题。作为特定领域的解剖特征,从临床检查期间在施加乙酸之前和之后拍摄的宫颈图像中提取与不同组织类型相对应的图像区域。每种组织类型的独特光学特性以及相邻区域之间的诊断关系都包含在条件随机场模型中。输出提供有关组织严重程度和图像中癌组织位置的信息。

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