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Image-based automated measurement model to predict pelvic organ prolapse

机译:基于图像的自动测量模型可预测盆腔器官脱垂

摘要

A system and methodology for the automated localization, extraction, and analysis of MRI-based features with clinical information to improve the diagnosis of pelvic organ prolapse (POP). The system can automatically identify reference points for pelvic floor measurements on MRI rapidly and consistent. It provides a prediction model that analyzes the correlation between current and new MRI-based features with clinical information to differentiate patients with and without POP. This system will enable the high throughput analysis of MR images for their correlation with clinical information to better detect POP. The presented system can also be applied to the automated localization and extraction of MRI features for the diagnosis of other diseases where clinical examination is not adequate.
机译:一种用于对具有临床信息的基于MRI的特征进行自动定位,提取和分析的系统和方法,以改善骨盆器官脱垂(POP)的诊断。该系统可以快速,一致地自动识别MRI盆底测量的参考点。它提供了一个预测模型,该模型可以分析当前和基于MRI的新特征之间的相关性以及临床信息,以区分有无POP的患者。该系统将对MR图像进行高通量分析,使其与临床信息相关联,从而更好地检测POP。提出的系统还可以应用于MRI特征的自动定位和提取,以诊断临床检查不足的其他疾病。

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