论文标题

胎儿镜镶嵌的深胎盘血管分割

Deep Placental Vessel Segmentation for Fetoscopic Mosaicking

论文作者

Bano, Sophia, Vasconcelos, Francisco, Shepherd, Luke M., Poorten, Emmanuel Vander, Vercauteren, Tom, Ourselin, Sebastien, David, Anna L., Deprest, Jan, Stoyanov, Danail

论文摘要

在胎儿镜激光光凝期间,双向双胞胎输血综合征(TTTTS)的治疗方法首先鉴定出异常的胎盘血管连接,激光消除了它们以调节两个胎儿中的血液流量。由于环境的活动能力,羊水的可见性不佳,偶尔出血以及胎儿镜观看视野和图像质量的局限性,该过程具有挑战性。理想情况下,吻合式胎盘容器将自动识别,分割和注册以创建扩展的血管图以指导激光消融,但是,此类方法尚未在临床上采用。我们提出了一种利用U-NET体系结构来在胎儿镜视频中执行胎盘血管分割的解决方案。获得的血管概率图通过使用基于直接强度的技术记录连续的血管图,为摩西对齐提供了足够的线索。在6种不同的体内胎儿镜视频上进行的实验表明,基于血管强度的配准优于基于图像强度强度的注册方法,表现出在定性和定量比较中的鲁棒性。此外,即使对于具有多达400帧的序列,我们也将漂移的积累减少到可忽略不计,并且在没有地面真相的情况下,我们还合并了一种用于量化漂移误差的方案。我们的论文通过贡献第一个体内血管分割和胎儿镜视频数据集为胎儿镜胎盘胎盘分割和注册提供了基准。

During fetoscopic laser photocoagulation, a treatment for twin-to-twin transfusion syndrome (TTTS), the clinician first identifies abnormal placental vascular connections and laser ablates them to regulate blood flow in both fetuses. The procedure is challenging due to the mobility of the environment, poor visibility in amniotic fluid, occasional bleeding, and limitations in the fetoscopic field-of-view and image quality. Ideally, anastomotic placental vessels would be automatically identified, segmented and registered to create expanded vessel maps to guide laser ablation, however, such methods have yet to be clinically adopted. We propose a solution utilising the U-Net architecture for performing placental vessel segmentation in fetoscopic videos. The obtained vessel probability maps provide sufficient cues for mosaicking alignment by registering consecutive vessel maps using the direct intensity-based technique. Experiments on 6 different in vivo fetoscopic videos demonstrate that the vessel intensity-based registration outperformed image intensity-based registration approaches showing better robustness in qualitative and quantitative comparison. We additionally reduce drift accumulation to negligible even for sequences with up to 400 frames and we incorporate a scheme for quantifying drift error in the absence of the ground-truth. Our paper provides a benchmark for fetoscopy placental vessel segmentation and registration by contributing the first in vivo vessel segmentation and fetoscopic videos dataset.

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