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Medical image segmentation using improved active contour model

机译:使用改进的主动轮廓模型的医学图像分割

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In this paper, an algorithm for the semiautomatic segmentation of medical image series is proposed by combining the live wire algorithm and the active contour model. Firstly the accurate segmented results of one or more slices in a medical image series are obtained by the livewire algorithm and the watershed transform. Based on the segmentation of previous slices, the computer will segment the nearby slice using the modified active contour model automatically. To make full use of the correlative information between contiguous slices, we introduce a gray-scale model to the boundary points of the active contour model to record the local region characters of the desired object in the segmented slice and replace the external energy of the traditional active contour model with the energy decided by the likelihood of the grayscale model. Moreover we introduce the active region concept of the snake to improve the segmentation accuracy. Experiment shows that our algorithm can obtain the boundary of the desired object from a series of medical images quickly and reliably with only little user intervention.
机译:本文通过组合直播线算法和主动轮廓模型提出了一种用于医学图像系列的半自动分割的算法。首先,通过LiveWire算法和流域变换获得医学图像系列中的一个或多个切片的精确分段结果。基于上一切片的分割,计算机将自动使用修改的活动轮廓模型对附近的切片进行分割。为了充分利用连续切片之间的相关信息,我们将灰度模型引入有源轮廓模型的边界点,以记录分段切片中所需对象的本地区域字符,并更换传统的外部能量主动轮廓模型与能量决定灰度模型的可能性。此外,我们介绍了蛇的有源区概念,以提高分割精度。实验表明,我们的算法可以快速可靠地从一系列医学图像中获得所需对象的边界,只有很少的用户干预。

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