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A Multi-strategy Method for MRI Segmentation

机译:MRI分割的多策略方法

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摘要

An accurate method for T_2-weighted MRI segmentation according to tissue transversal magnetization decay rates is presented. By means of a sequence of geometric image filters a classification of the pixels' intensity decay curves is provided. This can be done through a double strategy: First a log-convexity filter is applied in order to regularize image intensity decay by adjusting its geometrical properties to those that are expected from noiseless data, i.e., monotonous and convex behavior. In doing so, image noise is somewhat filtered and controlled. Data points are fitted by an over determined interpolation procedure. Decay rate distributions are obtained and tissue classification is performed by means of the determination of principal decay rates or decay modes using a suitable mathematical morphology operator, i.e., watershed or similar. Image segmentation is performed by linear regression analysis on a pixel by pixel basis assuming that the pixel intensity decay is composed by a linear superposition of the decay modes previously obtained from the decay rate distribution function. The main advantage of the proposed multi-strategy approach rests in the accuracy and speed of calculation with respect to other methods such as Inverse Laplace Transform algorithms. The method could be easily extended to any exponentially decaying set of images such as diffusion-weighted MRI.
机译:提出了一种根据组织横向磁化衰减率进行T_2加权MRI分割的准确方法。借助于一系列的几何图像滤波器,提供了像素强度衰减曲线的分类。这可以通过双重策略来完成:首先,应用对数凸凹滤波器,以通过将其几何特性调整为无噪声数据所期望的几何特性(即单调和凸行为)来规范图像强度衰减。这样做可以对图像噪声进行一定程度的过滤和控制。通过过度确定的插值过程来拟合数据点。通过使用合适的数学形态学算子,即分水岭或类似物,通过确定主要衰变速率或衰变模式,获得衰变速率分布并进行组织分类。假设像素强度衰减是由先前从衰减率分布函数获得的衰减模式的线性叠加组成的,则通过逐个像素地线性回归分析来执行图像分割。所提出的多策略方法的主要优势在于相对于其他方法(例如拉普拉斯逆变换算法)的准确性和计算速度。该方法可以轻松地扩展到任何指数衰减的图像集,例如扩散加权MRI。

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