首都医科大学学报 ›› 2007, Vol. 28 ›› Issue (3): 359-362.

• 基础研究 • 上一篇    下一篇

多维分形维数分析多发性硬化患者表现正常脑白质

聂书君1, 童忠勇1, 于春水2, 童隆正1   

  1. 1. 首都医科大学生物医学工程学院计算机系;2. 首都医科大学宣武医院放射科
  • 收稿日期:2007-01-30 修回日期:1900-01-01 出版日期:2007-06-24 发布日期:2007-06-24
  • 通讯作者: 童隆正

Multiple Fractal Analysis on the Research of Normal Appearing White Matter in Patients with Multiple Sclerosis

Nie Shujun1, Tong Zhongyong1, Yu Chunshui2, Tong Longzheng1   

  1. 1. Department of Computer Science, Biomedical Engineering College, Capital Medical University;2. Department of Radiology, Xuanwu Hospital, Capital Medical University
  • Received:2007-01-30 Revised:1900-01-01 Online:2007-06-24 Published:2007-06-24

摘要: 目的 测试多发性硬化(MS)患者表现正常的脑白质(NAWM)与健康志愿者的正常脑白质(NWM)的纹理差异是否有统计学意义,并建立判别模型对两类脑白质(WM)进行分类。方法 用估计分形维数的方法分析多发性硬化患者和健康志愿者MR的T2加权图像的感兴趣区(RO I),得到二维分形维数、三维表面分形维数和三维体积分形维数,依据这些特征参量用概率神经网络(PNN)对样本分类,然后与基于灰度共生矩阵和游程长纹理分析方法建立的模型进行对比。结果 MS表现正常组和正常组WM的3个分形维数差异有统计学意义(P<0.05),MS表现正常组与正常组的识别率分别为77.5%和65%。结论 在本批样本中,NAWM和正常WM的纹理差异有统计学意义,以上结论还需扩大样本量并采用多种方法进一步证实。

关键词: 多维分形维数, 多发性硬化, 表现正常脑白质

Abstract: Objective To discriminate the differences between normal appearing white matter(NAWM) in the patients with multiple sclerosis(MS) and normal white matter(NWM) in the healthy,and to set up a model to discriminate two classes.Methods The total sample set was 120 images with NAWM and NWM of 60 each.The NAWM sample set of 60 was randomly divided into training section and testing section by rate of 70% and 30% and the NWM was processed with the same way.Multiple fractal analysis was used to analyze regions of interest(ROI) which were gained from T2-weighted MR images of patients with MS and the healthy.Three eigenvectors were obtained,which were fractal box dimensions for 2D,3D surface and 3D volume.The sample was conversed to binary image firstly and different patterns of square were used to cover it.A data counting the covering squares was obtained from one pattern and a data set was achieved from all patterns.After logarithms of the square sizes and the data set gained were extracted,the linear fitting was conducted to calculate slope by these logarithms,i.e.fractal box dimension for 2D.Similarly to the fractal box dimension for 2D,a curved face was constructed based on the grey value of every pixel firstly,and then a 3D surface was achieved following by covering the face with different sizes of cube.After logarithms were applied to the cube sizes and the data set gained,linear fitting slope was acquired,i.e.fractal box dimension for 3D surface.When the whole volume was covered by different sizes of cube,fractal box dimension for 3D volume was then achieved.T-test was conducted to test if there were any significant differences in three eigenvectors of fractal box dimensions above between two groups of NAWM and NWM.The probabilistic neural network(PNN) was used to classify ROI based on significant eigenvectors.Results In two groups of NAWM and NWM,the mean values were 1.803 vs 1.833 for fractal box dimension for 2D(P=0.037),1.9751 vs 2.058 for fractal box dimension for 3D surface(P<0.001),2.6988 vs 2.7649 for fractal box dimension for 3D volume(P<0.001) respectively.The identification rates were 77.5% for NAWM and 65% for NWM based on these ROI.The rate of classification with fractal box dimension was close to that of other methods.Conclusion There were significant differences of fractal box dimensions between groups of NAWM and NWM,which indicated that the textures in MRI images of them could be different in a certain extent.Some microstructures change because of demyelination around nerve axes in NAWM,which perhaps leads to fractal box dimensions from NAWM a little less than those from NWM.But the pathological changes in NAWM were not macroscopic.Fractal dimension maybe becomes an effective tool used to observe images with MS of MRI.The result was affected by some factors,such asanatomization structure and the course of diseases.The data of our patients is limited,and bigger crowd is expected to confirm theconclusion above in further study.

Key words: fractal dimension, multiple sclerosis, normal appearing white matter

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