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基于小波变换和贝叶斯理论的图像分割算法
引用本文:张立恒,陈炜.基于小波变换和贝叶斯理论的图像分割算法[J].电子测量技术,2006,29(5):74-77.
作者姓名:张立恒  陈炜
作者单位:北京航空航天大学电子信息工程学院,北京,100083
摘    要:基于非下采样小波变换和贝叶斯分类理论的图像分割算法,在处理可见光图像时,容易受到噪声的干扰,而且,原算法在计算最大局部最小点时易产生偏差,从而影响分割效果。因此,本文首先使用滤波器滤除噪声,然后对原来的最大局部最小点的计算方法进行了等价变换,并调整了分割阈值以纠正由于对图像进行小波变换造成的灰度偏移,最后利用数学形态学运算对分割后的图像进行处理以消除孤立点,仿真结果表明改进算法分割效果较好。

关 键 词:图像分割  小波变换  贝叶斯理论  开运算

Algorithm of image segmentation based on wavelet transform and Bayesian theory
Zhang Liheng,Chen Wei.Algorithm of image segmentation based on wavelet transform and Bayesian theory[J].Electronic Measurement Technology,2006,29(5):74-77.
Authors:Zhang Liheng  Chen Wei
Affiliation:School of Electronic Information Engineering, Beijing University of Aeronautics and Astronautics, Beijing 100083
Abstract:The image segmentation algorithm based on undecimated wavelet transform and Bayesian theory is easily interfered by noise and the thresholds are easily calculated inaccurately. Therefore, to overcome the shortage of the original algorithm, this improved algorithm removes noise with a filter, looks for the largest local minimum in an equivalent method, adjusts the threshold to improve the gray shift of the image with wavelet transform, and finally processes the segmented images with opening algorithm. Simulation results show this improved algorithm is better.
Keywords:image segmentation  wavelet transform  Bayesian theory  opening algorithm  
本文献已被 CNKI 维普 万方数据 等数据库收录!
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