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首页> 外文期刊>Current Directions in Biomedical Engineering >Fully Data-Driven Pseudohealthy Synthesis for Planning Valve-Sparing Aortic Root Reconstruction using Conditional Variational Autoencoders
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Fully Data-Driven Pseudohealthy Synthesis for Planning Valve-Sparing Aortic Root Reconstruction using Conditional Variational Autoencoders

机译:完全数据驱动伪期合成,用于使用条件变分自动化器进行规划阀排放主动脉根重建

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Aortic root aneurysm is treated by replacing the dilated root by a grafted prosthesis which mimics the native root morphology of the individual patient.The challenge in predicting the optimal prosthesis size rises from the highly patient-specific geometry as well as the absence of the original information on the healthy root.Therefore, the estimation is only possible based on the available pathological data.In this paper, we show that representation learning with Conditional Variational Autoencoders is capable of turning the distorted geometry of the aortic root into smoother shapes while the information on the individual anatomy is preserved.We evaluated this method using ultrasound images of the porcine aortic root alongside their labels.The observed results show highly realistic resemblance in shape and size to the ground truth images.Furthermore, the similarity index has noticeably improved compared to the pathological images.This provides a promising technique in planning individual aortic root replacement.
机译:通过将扩张的根通过嫁接的假体取代扩张的根的假体来治疗主动脉根动脉瘤,这些假体模仿了个体患者的天然根形态。预测最佳假体大小的挑战从高度患者特定的几何上升以及原始信息的缺失升高在健康的根。因此,估计只是基于可用的病理数据。在本文中,我们表明使用条件变形自身额位的表示学习能够在信息的同时将主动脉根的变形几何形状转变为更平滑的形状。保留各个解剖结构。我们使用猪主动脉根的超声图像与其标签一起评估该方法。观察结果表明,与地面真理图像的形状和大小表现出高度现实的相似性。与...相比,相似性指数显着改善了病理图像。这在规划个人方面提供了有希望的技术Al主动脉根替代。

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