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ROI Extraction in Dermatosis Images Using a Method of Chan-Vese Segmentation Based on Saliency Detection

机译:基于显着性检测的Chan Vese分段方法在皮肤病图像中提取

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Extraction of ROI (Region-Of-Interest) in dermatosis images can be used in content-based image retrieval (CBIR). Image segmentation takes an important part in it. And the performance of the segmentation algorithm directly influences the efficiency of the ROI extraction results. In this paper, a method of Chan-Vese segmentation based on saliency detection to extract the ROI of the dermatosis images is proposed. Firstly the spectral residual approach (SR)is used to get the saliency map of the dermatosis images. Secondly threshold segmentation is used to get the initial ROI images. Finally the Chan-Vese model is used to segment the initial ROI images to get the final ROI images, which can ensure the active contours evolve close to the object and remove the redundant information from the complex background. The experiment results show that the proposed method has the better performance than only using Chan-Vese method.
机译:皮肤病图像中的ROI(兴趣区)的提取可用于基于内容的图像检索(CBIR)。图像分割需要一个重要的部分。分割算法的性能直接影响了ROI提取结果的效率。本文提出了一种基于显着性检测的Chan-Vese分段方法,以提取皮肤病图像的ROI。首先,光谱残留方法(SR)用于获得皮肤病图像的显着图。其次阈值分割用于获取初始ROI图像。最后,Chan Vese模型用于将初始ROI图像进行分割以获取最终的ROI图像,这可以确保活动轮廓靠近对象演变并从复杂背景中删除冗余信息。实验结果表明,该方法的性能比仅使用Chan-Vese方法更好。

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