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A Machine Learning Method for Nipple-Areola Complex Localization for Chest Masculinization Surgery

机译:用于胸阳性手术的乳头乳晕复合定位机器学习方法

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Appropriately positioning the Nipple-Areola Complex (NAC) during chest masculinization surgery is a principle determinant of the aesthetic success of the procedure. Nonetheless, today, this positioning process relies on the subjective judgement of the surgeon. Therefore, this paper proposes a novel machine learning solution that leverages Artificial Neural Networks (ANNs) for estimating the NAC location on the chest wall. A dataset composed of 173 pictures of male subjects of various ages and body types was used. The ANN was fed a set of features inputs based on distance ratios between features of the upper body that are common between both biological sexes (e.g. umbilicus, anterior axillary fold, suprasternal notch). Using the proposed ANN regressive model, we achieved a Root Mean Square Error (RMSE) of 0.0617 for the ratio of distances from the suprasternal notch to the center between the NACs, and from the latter point to the umbilicus. Furthermore, an RMSE of 0.0560 for the ratio of the distances between the NACs and from the anterior axillary fold to the umbilicus was obtained. Our results demonstrate that machine learning can be used to support the surgeon in the localization of the NAC for chest masculinization surgery.
机译:在胸腔阳性化手术期间适当地定位乳头 - β络合物(NAC)是一种原则决定性的程序的审美成功。尽管如此,今天,这种定位过程依赖于外科医生的主观判断。因此,本文提出了一种新颖的机器学习解决方案,它利用人工神经网络(ANN)来估计胸壁上的NAC位置。使用由173张男性主体的男性主体和身体类型组成的数据集。基于在生物学性别(例如脐脐,前腋褶,Suprasternal折叠)之间常见的上半身的特征之间的距离比,进给了一组特征输入。使用所提出的ANN回归模型,我们实现了0.0617的根均方误差(RMSE),用于从Suprasternal Notch到NACS之间的中心,从后者到脐带的比率。此外,获得了NAC和从前腋窝到脐部的距离与脐带之间的0.0560的RMSE。我们的结果表明,机器学习可用于支持在NAC定位的外科医生进行胸阳性手术。

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