首页> 外文会议>Image Processing (ICIP 2009), 2009 >Saliency-enhanced image aesthetics class prediction
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Saliency-enhanced image aesthetics class prediction

机译:显着性增强的图像美学等级预测

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摘要

We present a saliency-enhanced method for the classification of professional photos and snapshots. First, we extract the salient regions from an image by utilizing a visual saliency model. We assume that the salient regions contain the photo subject. Then, in addition to a set of discriminative global image features, we extract a set of salient features that characterize the subject and depict the subject-background relationship. Our high-level perceptual approach produces a promising 5-fold cross-validation (5-CV) classification accuracy of 78.8%, significantly higher than existing approaches that concentrate mainly on global features.
机译:我们提出了一种用于增强专业照片和快照分类的显着性增强方法。首先,我们利用视觉显着性模型从图像中提取显着区域。我们假设显着区域包含摄影对象。然后,除了一组具有区别性的全局图像特征外,我们还提取了一组突出特征,这些特征可以描述对象并描述对象与背景之间的关系。我们的高级感知方法产生了令人鼓舞的5倍交叉验证(5-CV)分类准确性,达到了78.8%,大大高于主要关注全局特征的现有方法。

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