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基于多尺度梯度矢量场GAC模型的MR医学图像分割
引用本文:彭进业,郝重阳,齐华,齐敏.基于多尺度梯度矢量场GAC模型的MR医学图像分割[J].中国图象图形学报,2007,12(7):1214-1217.
作者姓名:彭进业  郝重阳  齐华  齐敏
作者单位:西北工业大学电子信息学院 西安710072
基金项目:高等学校博士学科点专项科研项目;西北工业大学引进高层次人才科研启动基金
摘    要:医学图像分割是图像分割技术的一个重要应用领域,GAC(测地线活动轮廓)模型是基于PDE(偏微分方程)方法中一种常用的图像分割模型,使用这种模型时,如何选择合适的平滑尺度是影响分割效果的重要因素之一。提出了一种基于多尺度梯度矢量场GAC模型图像对象轮廓提取的MR图像分割方法,用多尺度梯度矢量取代GAC模型中单一尺度下平滑图像的梯度矢量,提高了GAC模型的收敛速度,有效地改善了局部极小值问题。实验结果验证了该方法的有效性。

关 键 词:医学图像分割  核磁共振图像  多尺度梯度矢量场  测地线活动轮廓模型
文章编号:1006-8961(2007)07-1214-04
修稿时间:2007-01-152007-04-09

MR Image Segmentation Based on GAC Model with Multiscale Gradient Vector Field
PENG Jin-ye,HAO Chong-yang,QI Hu,QI Min,PENG Jin-ye,HAO Chong-yang,QI Hu,QI Min,PENG Jin-ye,HAO Chong-yang,QI Hu,QI Min and PENG Jin-ye,HAO Chong-yang,QI Hu,QI Min.MR Image Segmentation Based on GAC Model with Multiscale Gradient Vector Field[J].Journal of Image and Graphics,2007,12(7):1214-1217.
Authors:PENG Jin-ye  HAO Chong-yang  QI Hu  QI Min  PENG Jin-ye  HAO Chong-yang  QI Hu  QI Min  PENG Jin-ye  HAO Chong-yang  QI Hu  QI Min and PENG Jin-ye  HAO Chong-yang  QI Hu  QI Min
Abstract:PDE(partial differential equation) based GAC(geodesic active contour) model is useful for medical image segmentation.To improve the local minimum problem of GAC model,usually we need smooth the image with a proper smoothness scale before we acquire the gradients of the image.But it is difficult to choose the smoothness scale as we usually do in acquiring the gradients of the approximating image by smoothening it with a single scale.In order to overcome this drawback,multi-scale gradient vector field is used instead of single-scaled gradient vector of images in GAC model.The multi-scale gradient vector field,which can be obtained by updating the gradient vector for each position of the image from lower to higher levels resolution,is still smooth enough in the whole image and accurate for the main edges of the image.The experimental results show that this improved GAC model is effective for MRI(magnetic resonance imaging) segmentation.
Keywords:medical image segmentation  MRI  multiscale gradient vector field  geodesic active contour model
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