基于异常检测的头颅CT骨髓炎面积自动估计

Hideaki Hoshino, Kento Morita, D. Takeda, T. Hasegawa, T. Wakabayashi
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引用次数: 0

摘要

近年来,截骨术已被用于治疗颌骨骨髓炎。然而,从术前图像可以确定的骨髓炎的程度是模糊的,这导致了诸如冗长的手术等问题。因此,有必要对切除面积进行高精度估计。在这项研究中,我们提出了一种结合深度度量学习和异常检测的方法来估计术前骨髓炎的面积。通过实验,我们可以估计是否存在骨髓炎,F值为0.85。
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Automatic osteomyelitis area estimation in head CT using anomaly detection
In recent years, osteotomy has been used as a treatment for osteomyelitis of the jaw. However, the extent of osteomyelitis that can be determined from preoperative images is ambiguous, which causes problems such as lengthy surgery. Therefore, it is necessary to estimate the resection area with high accuracy. In this study, we proposed a method that combines deep metric learning and anomaly detection to estimate the area of osteomyelitis before surgery. As a result of experiments, we were able to estimate the presence or absence of osteomyelitis with F value of 0.85.
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