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Image emotional semantic annotation based on fusion features

机译:基于融合特征的图像情感语义标注

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摘要

Due to “semantic gap”, the problem of image emotional semantic annotation has not been solved. In this parper, a method of emotion semantic annotation for cheongsam images based on Fusion Features has been proposed. Multi-features including the color and texture are used to describe the content of the image. Then least squares support vector machine for regression which is optimized by particle swarm optimization is used to build the mapping between the feature space and emotional space. The experiment indicates that this method achieves good effect.
机译:由于“语义鸿沟”,图像情感语义标注的问题尚未解决。本文提出了一种基于融合特征的旗袍图像情感语义标注方法。包括颜色和纹理在内的多种功能用于描述图像的内容。然后使用最小二乘支持向量机进行回归,并通过粒子群算法对其进行优化,以建立特征空间与情感空间之间的映射关系。实验表明,该方法取得了良好的效果。

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