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A Kind of Color Image Segmentation Algorithm Based on Super-pixel and PCNN

机译:一种基于超像素和PCNN的彩色图像分割算法

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Image segmentation is a very important step in the low-level visual computing. Although image segmentation has been studied for many years, there are still many problems. PCNN (Pulse Coupled Neural network) has biological background, when it is applied to image segmentation it can be viewed as a region-based method, but due to the dynamics properties of PCNN, many connectionless neurons will pulse at the same time, so it is necessary to identify different regions for further processing. The existing PCNN image segmentation algorithm based on region growing is used for grayscale image segmentation, cannot be directly used for color image segmentation. In addition, the super-pixel can better reserve the edges of images, and reduce the influences resulted from the individual difference between the pixels on image segmentation at the same time. Therefore, on the basis of the super-pixel, the original PCNN algorithm based on region growing is improved by this paper. First, the color super-pixel image was transformed into grayscale super-pixel image which was used to seek seeds among the neurons that hadn't been fired. And then it determined whether to stop growing by comparing the average of each color channel of all the pixels in the corresponding regions of the color super-pixel image. Experiment results show that the proposed algorithm for the color image segmentation is fast and effective, and has a certain effect and accuracy.
机译:图像分割是低级视觉计算的一个非常重要的步骤。虽然图像分割已经过多年了,但仍存在许多问题。 PCNN(脉冲耦合神经网络)具有生物学背景,当它应用于图像分割时,它可以被视为基于区域的方法,而是由于PCNN的动态特性,许多无连接神经元将同时脉冲,所以它有必要识别不同地区以进行进一步处理。基于区域生长的现有PCNN图像分割算法用于灰度图像分割,不能直接用于彩色图像分割。另外,超像素可以更好地保留图像的边缘,并在同一时间内减少图像分割的像素之间的各个差异导致的影响。因此,在超像素的基础上,通过本文改善了基于区域生长的原始PCNN算法。首先,将颜色超像素图像变为灰度超像素图像,其用于寻找未被烧制的神经元中的种子。然后,通过比较颜色超像素图像的相应区域中所有像素的每个颜色信道的平均值来确定是否停止生长。实验结果表明,该彩色图像分割的算法快速有效,具有一定的效果和准确性。

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