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Classification of Digital Photos Taken by Photographers or Home Users

机译:摄影师或家庭用户拍摄的数码照片的分类

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In this paper, we address a specific image classification task, i.e. to group images according to whether they were taken by photographers or home users. Firstly, a set of low-level features explicitly related to such high-level semantic concept are investigated together with a set of general-purpose low-level features. Next, two different schemes are proposed to find out those most discriminative features and feed them to suitable classifiers: one resorts to boosting to perform feature selection and classifier training simultaneously; the other makes use of the information of the label by Principle Component Analysis for feature re-extraction and feature de-correlation; followed by Maximum Marginal Diversity for feature selection and Bayesian classifier or Support Vector Machine for classification. In addition, we show an application in No-Reference holistic quality assessment as a natural extension of such image classification. Experimental results demonstrate the effectiveness of our methods.
机译:在本文中,我们地址特定的图像分类任务,即根据摄影师或家庭用户拍摄的图像图像。首先,与一组通用低级特征一起调查一组明确地与这种高级语义概念相关的低级特征。接下来,提出了两种不同的方案来找出那些最辨别性的功能,并将它们馈送到合适的分类器:一个手段促进同时执行特征选择和分类器培训;另一个通过原理分量分析来利用标签的信息,用于特征重新提取和特征去相关;其次是特征选择和贝叶斯分类器或支持向量机进行分类的最大边际多样性。此外,我们展示了无参考全面质量评估的应用,作为这种图像分类的自然延伸。实验结果表明了我们方法的有效性。

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