论文标题

脑CT图像中的自我监督的头骨重建,具有减压颅骨切除术

Self-supervised Skull Reconstruction in Brain CT Images with Decompressive Craniectomy

论文作者

Matzkin, Franco, Newcombe, Virginia, Stevenson, Susan, Khetani, Aneesh, Newman, Tom, Digby, Richard, Stevens, Andrew, Glocker, Ben, Ferrante, Enzo

论文摘要

减压颅骨切除术(DC)是一种常见的外科手术,包括在诸如中风,外伤性脑损伤(TBI)或其他可能导致急性下膜出血和/或增加脑内压发生的事件之后进行的一部分颅骨。在这些情况下,获得CT扫描以诊断和评估伤害,或指导某些疗法和干预措施。 我们提出了一种基于深度学习的方法,以重建在术后CT图像TBI后执行的DC中删除的头骨缺陷。这种重建在多种情况下很有用,例如为了支持颅骨成形板的产生,对骨皮瓣体积和总颅内体积进行准确测量,对于旨在将以后萎缩与患者结局相关的研究很重要。我们提出并比较替代性自我监督方法,其中编码器卷积神经网络(CNN)估计术后CTS上缺失的骨瓣。自我监督的学习策略仅需要具有完整头骨的图像,并避免需要带注释的DC图像。为了进行评估,我们将真实和模拟的图像与DC一起使用,并将结果与​​其他最新方法进行比较。实验表明,该模型的表现优于当前的手动方法,即使在高度挑战性的情况下,在手术过程中已经消除了大颅骨缺陷,也可以重建。

Decompressive craniectomy (DC) is a common surgical procedure consisting of the removal of a portion of the skull that is performed after incidents such as stroke, traumatic brain injury (TBI) or other events that could result in acute subdural hemorrhage and/or increasing intracranial pressure. In these cases, CT scans are obtained to diagnose and assess injuries, or guide a certain therapy and intervention. We propose a deep learning based method to reconstruct the skull defect removed during DC performed after TBI from post-operative CT images. This reconstruction is useful in multiple scenarios, e.g. to support the creation of cranioplasty plates, accurate measurements of bone flap volume and total intracranial volume, important for studies that aim to relate later atrophy to patient outcome. We propose and compare alternative self-supervised methods where an encoder-decoder convolutional neural network (CNN) estimates the missing bone flap on post-operative CTs. The self-supervised learning strategy only requires images with complete skulls and avoids the need for annotated DC images. For evaluation, we employ real and simulated images with DC, comparing the results with other state-of-the-art approaches. The experiments show that the proposed model outperforms current manual methods, enabling reconstruction even in highly challenging cases where big skull defects have been removed during surgery.

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