基于改进神经网络算法的图像分割研究

Lijun Zhang, Xiuchun Deng
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引用次数: 14

摘要

图像分割是图像处理和模式识别的关键,提出了一种基于神经网络的彩色图像分割系统。首先介绍了BP神经网络,它具有并行计算、分布式存储、自学习、故障学习和非线性函数逼近的能力。因此它在图像分割中得到了广泛的应用,但也存在一些不可避免的缺陷。在此基础上,提出了一种基于小波分解和自组织映射神经网络(SOM-NN)的图像分割方法。它具有较强的抗噪声能力、提高收敛性等优点。颜色原型为对象颜色提供了一个很好的估计。通过颜色原型的匹配对图像像素进行分类。实验结果表明,该系统在各种视觉任务中对彩色图像的分割具有理想的能力。
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The Research of Image Segmentation Based on Improved Neural Network Algorithm
Image segmentation is critical to image processing and pattern recognition, An image segmentation system is proposed for the segmentation of color image based on neural networks. First, we introduce BP Neural network, it has the capacity of parallel computing, distributed saving, self-studying, fault-to-learnt and nonlinear function approximating. So it widely used in image segmentation, but it also has some unavoidable defects. Based on this, a new method of image segmentation based on both Wavelet Decomposition and self-organizing map neural network (short for SOM-NN) is proposed. It has a greater ability on resisting noise, improving the convergence and so on. Color prototypes provide a good estimate for object colors. The image pixels are classified by the matching of color prototypes. The experimental results show that the system has the desired ability for the segmentation of color image in a variety of vision tasks.
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