Seed growing for interactive image segmentation using SVM classification with geodesic distance

Electronics Letters(2017)

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摘要
In an interactive image segmentation, the quantity of a user-given seed is known to affect the segmentation accuracy. In this Letter, we propose a seed-growing method expanding the quantity of a seed to reduce the bias of the given seed and improve the segmentation accuracy. To grow the given seed, a supervised classification framework with geodesic distance features is proposed. From a single inp...
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关键词
differential geometry,image classification,image segmentation,learning (artificial intelligence),support vector machines
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