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首页> 外文期刊>Turkish Journal of Electrical Engineering and Computer Sciences >Automatic prostate segmentation using multiobjective active appearance model in MR images
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Automatic prostate segmentation using multiobjective active appearance model in MR images

机译:在MR图像中使用多目标主动外观模型自动前列腺分段

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Prostate cancer is the second largest cause of mortality among men. Prostate segmentation, i.e. the precise determination of the prostate region in magnetic resonance imaging (MRI), is generally used for prostate volume measurement, which can be used as a potential prostate cancer indicator. This paper presents a new fully automatic statistical model called the multiobjective active appearance model (MOAAM) for prostate segmentation in MR images. First, in the training stage, the appearance model, including the shape and texture model, is developed by applying principal component analysis to the training images, already outlined by a physician. Then noise and roughness are properly removed in the preprocessing step by Sticks filter and nonlinear filtering. This helps us provide the proper conditions for the prostate region detection. Finally, in order to detect the prostate region, a new multiobjective function is optimized using a suitable search algorithm. The proposed method has been applied to prostate images for segmenting the prostate boundaries. The evaluation results indicate that the presented method can yield a DSC value of ({87.4pm5.00%}), is less sensitive to the edge information and initialization, and has a stronger capture range in comparison with existing methods.
机译:前列腺癌是男性中死亡率的第二大原因。前列腺分段,即磁共振成像(MRI)中前列腺区域的精确测定通常用于前列腺体积测量,其可用作潜在的前列腺癌指标。本文介绍了一个新的全自动统计模型,称为MR图像中的前列腺分段的多目标主动外观模型(MOAAM)。首先,在训练阶段,通过将主成分分析应用于医生已经概述的训练图像,开发了外观模型,包括形状和纹理模型。然后通过粘附过滤器和非线性滤波在预处理步骤中正确地拆下噪声和粗糙度。这有助于我们为前列腺区检测提供适当的条件。最后,为了检测前列腺区域,使用合适的搜索算法优化新的多目标函数。该方法已被应用于前列腺图像以分割前列腺界限。评估结果表明,所提出的方法可以产生dsc值({87.4 pm5.00 %} ),对边缘信息和初始化不太敏感,并且与现有方法相比具有更强的捕获范围。

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