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Chinese Dish Segmentation Based on Local Variation Driven Superpixel Grouping and Region Analysis

机译:基于局部变化驱动的超像素分组和区域分析的中国菜分割

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Food segmentation is a vital step to improve the accuracy of food recognition, which is important for automatic pricing and nutritional analysis of canteen. In this paper, we propose a segmentation algorithm based on local variation driven superpixel grouping and region analysis. This algorithm first uses superpixels to construct a graph model for Chinese dish images, and then uses the idea of local variation method to group superpixels with similar characteristics to form different regions. Finally, region analysis is used to extract regions belonging to dishes. Experimental results show that the proposed method can robustly segment Chinese dish images and extract dishes from images.
机译:食物分割是提高食物识别准确性的重要步骤,这对于食堂的自动定价和营养分析非常重要。在本文中,我们提出了一种基于局部变化驱动的超像素分组和区域分析的分割算法。该算法首先利用超像素为中国菜图像构建图形模型,然后利用局部变化的思想对具有相似特征的超像素进行分组,形成不同的区域。最后,使用区域分析来提取属于菜肴的区域。实验结果表明,该方法可以有效地分割中国菜图像并从图像中提取菜。

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