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基于随机游走策略改进的降雪模型图像分割方法
引用本文:闫海煜. 基于随机游走策略改进的降雪模型图像分割方法[J]. 电子器件, 2014, 37(2)
作者姓名:闫海煜
作者单位:重庆电子工程职业学院计算机学院;重庆电子工程职业学院通信学院;
基金项目:重庆市教委科学技术研究项目(KJ110401)
摘    要:为了提高图像分割的准确度,尽可能降低分割边缘噪声对图像分割的影响,提出了一种基于降雪模型的图像分割方法,先对降雪模型及积雪表面效应做了详细分析,得出降雪模型运用于图像分割具有较强的适应性,接着在传统的随机游走图像分割算法中加入了自适应降雪模型的特性,生成新的算法,最后运用虚拟图像和真实图像进行算法性能实例仿真,结果表明,该算法的图像分割性能优于常见的NCut和传统随机游走图像分割算法,具有一定的研究价值。

关 键 词:图像分割  降雪模型  随机游走  高斯核函数

An Improved Model of Snowfall Image Segmentation Method
Abstract:In order to improve accuracy of image segmentation, reduce the effect of noise on the cutting edge of image segmentation as much as possible, a new image segmentation method based on the model of the snowfall was proposed, Firstly, snowfall model and snow surface effect were analyzed in detail, the snow model was applied to image segmentation with strong adaptability, and then mixed the traditional random walk image segmentation algorithm with adaptive snow model characteristics, generated a new algorithm, finally made performance simulation using virtual and real images algorithm, the results showed the image segmentation performance is better than the common NCut and the traditional random walk algorithm for image segmentation, and it had certain research value.
Keywords:Image Segmentation   Snowfall Model   Random Walk   Gauss Kernel Function
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