Shape extraction in fetal ultrasound images using a Hermite-based filtering approach and a point distribution model

L. Vargas-Quintero, B. Escalante-Ramírez, Lisbeth Camargo Marín, M. G. Guzmán Huerta, F. Arámbula Cosío, Héctor Borboa
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引用次数: 1

Abstract

In this work we present a segmentation framework applied to fetal cardiac images. One of the main problems of the segmentation in ultrasound images is the speckle pattern that makes difficult to model images features such as edges and homogeneous regions. Our approach is based on two main processes. The first one aims at enhancing the ultrasound image using a noise reduction scheme. The Hermite transform is used for this purpose. In the second process a Point Distribution Model (PDM), previously trained, is used for the segmentation of the desired object. The filtering process is then employed before the segmentation stage with the aim of improving the results. The obtained result in the filtering process is used as a way to make more robust the segmentation stage. We evaluate the proposed method in the segmentation of the left ventricle of fetal ultrasound data. Different metrics are used to validate and compare the performance with other methods applied to fetal echocardiographic images.
基于hermite滤波方法和点分布模型的胎儿超声图像形状提取
在这项工作中,我们提出了一种适用于胎儿心脏图像的分割框架。超声图像分割的主要问题之一是斑点模式,这使得难以对图像特征(如边缘和均匀区域)进行建模。我们的方法基于两个主要过程。第一个目的是利用降噪方案增强超声图像。埃尔米特变换用于此目的。在第二个过程中,使用预先训练好的点分布模型(PDM)对目标进行分割。然后在分割阶段之前采用滤波过程,目的是改善结果。在滤波过程中得到的结果被用作一种使分割阶段更加鲁棒的方法。我们评估了所提出的方法在胎儿超声数据的左心室分割。不同的指标被用来验证和比较性能与其他方法应用于胎儿超声心动图图像。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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