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Segmentation of skin cancer images based on gradient vector flow (GVF) snake

机译:基于梯度向量流(GVF)蛇的皮肤癌图像分割

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A gradient vector flow (GVF) snake is proposed in this paper for the segmentation of skin cancer images. In order to make the snake insensitive to noise and be able to remove the hairs, an Adaptive Filter (Wiener and Median filters) is proposed. After the noise and hairs are removed, GVF snake will be used to segment the skin cancer region. The GVF snake extends the single direction and allows it to still be able to track the boundary of the skin cancer even if there are other objects near the skin cancer region. We have proposed new operators to find better edge map in a restored grey scale image. Subjective method has been used by comparing the performance of the proposed gradient vector flow (GVF) snake with other recommended operators of first derivative like Sobel, Prewitt, Roberts and second derivative like Laplacian. The root mean square error and root mean square of signal to noise ratio have been used for objective evaluation. Finally, to validate the efficiency of the filtering schemes different algorithms are proposed and the simulation study has been carried out. Experiments performed on 8(eight) cancer images show the effectiveness of the proposed algorithm.
机译:本文提出了一种梯度矢量流(GVF)蛇用于皮肤癌图像的分割。为了使蛇对噪声不敏感并且能够去除毛发,提出了一种自适应滤波器(维纳和中值滤波器)。去除噪音和毛发后,将使用GVF蛇分割皮肤癌区域。 GVF蛇向单一方向延伸,即使在皮肤癌区域附近还有其他物体,它也仍然能够跟踪皮肤癌的边界。我们提出了新的算子以在还原的灰度图像中找到更好的边缘图。通过将建议的梯度矢量流(GVF)蛇的性能与其他推荐的一阶导数(如Sobel,Prewitt,Roberts)和二阶导数(如Laplacian)的运算符进行比较,已使用了主观方法。信噪比的均方根误差和均方根已用于客观评估。最后,为了验证滤波方案的效率,提出了多种算法,并进行了仿真研究。在8张(8张)癌症图像上进行的实验证明了该算法的有效性。

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