首页> 外文会议>Conference on Computers in Cardiology >A New Method for Single-Step Robust Post-Processing of Flow Color Doppler M-Mode Images Using Support Vector Machines
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A New Method for Single-Step Robust Post-Processing of Flow Color Doppler M-Mode Images Using Support Vector Machines

机译:一种新方法,用于使用支持向量机使用的流色多普勒M模式图像的单步强力处理

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Intra-cardiac pressure gradients (ICPG) are usually estimated by post-processing of flow Color Doppler M-mode images (CDMMI) by using a sequence of processing steps. We propose a novel image processing method which gives a single-step approximation of the ICPG image, based on a simple, yet specifically developed, Support Vector Machine (SVM) algorithm. Our method only requires the SVM estimation of the blood velocity from the CDMMI. Given that ICPG images are obtained by deterministic operators (Euler's momentum equation) on the blood velocity, the ICPG estimation is a simple model that consists of the same coefficients and the operator applied to the Mercer's kernel. A diverse-width Mercer's kernel is proposed, as an alternative to conventional Radial Basis Function kernel. Simulations on a synthetic model and approximations of a real example image, trained with up to 10% of the pixels, show the possibilities of this new single-step post-processing method.
机译:通常通过使用流量彩色多普勒M模式图像(CDMMI)通过使用一系列处理步骤来估计心脏内压梯度(ICPG)。我们提出了一种新颖的图像处理方法,它基于简单但专门开发的支持向量机(SVM)算法,给出了ICPG图像的单步近似。我们的方法仅需要SVM估计CDMMI的血液速度。考虑到ICPG图像是通过确定性运算符(Euler的势头方程)获得的血液速度,ICPG估计是一个简单的模型,包括相同的系数和应用于Mercer内核的运算符。提出了一种多样化的Mercer的内核,作为传统径向基函数内核的替代方案。仿真对真实示例图像的综合模型和近似,培训高达10%的像素,显示了这种新的单步后处理方法的可能性。

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