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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >Maximum likelihood segmentation of ultrasound images with Rayleigh distribution
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Maximum likelihood segmentation of ultrasound images with Rayleigh distribution

机译:具有瑞利分布的超声图像的最大似然分割

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摘要

This study presents a geometric model and a computational algorithm for segmentation of ultrasound images. A partial differential equation (PDE)-based flow is designed in order to achieve a maximum likelihood segmentation of the target in the scene. The flow is derived as the steepest descent of an energy functional taking into account the density probability distribution of the gray levels of the image as well as smoothness constraints. To model gray level behavior of ultrasound images, the classic Rayleigh probability distribution is considered. The steady state of the flow presents a maximum likelihood segmentation of the target. A finite difference approximation of the flow is derived, and numerical experiments are provided. Results are presented on ultrasound medical images as fetal echography arid echocardiography.
机译:这项研究提出了用于超声图像分割的几何模型和计算算法。设计基于偏微分方程(PDE)的流程,以实现场景中目标的最大似然分割。考虑到图像灰度级的密度概率分布以及平滑度约束,将流量推导为能量函数的最陡下降。为了模拟超声图像的灰度行为,需要考虑经典的瑞利概率分布。流的稳定状态表示目标的最大似然分段。推导了流动的有限差分近似,并提供了数值实验。结果在胎儿超声检查和超声心动图检查的超声医学图像上显示。

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