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Image Aesthetic Assessment Based on Pairwise Comparison - A Unified Approach to Score Regression, Binary Classification, and Personalization

机译:基于成对比较的图像美学评估 - 一种统一的评分回归,二进制分类和个性化方法

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We propose a unified approach to three tasks of aesthetic score regression, binary aesthetic classification, and personalized aesthetics. First, we develop a comparator to estimate the ratio of aesthetic scores for two images. Then, we construct a pairwise comparison matrix for multiple reference images and an input image, and predict the aesthetic score of the input via the eigenvalue decomposition of the matrix. By varying the reference images, the proposed algorithm can be used for binary aesthetic classification and personalized aesthetics, as well as generic score regression. Experimental results demonstrate that the proposed unified algorithm provides the state-of-the-art performances in all three tasks of image aesthetics.
机译:我们提出了一个统一的审美评分回归任务,二元美学分类和个性化美学。首先,我们开发一个比较者来估计两个图像的美学分数的比率。然后,我们构造用于多个参考图像和输入图像的成对比较矩阵,并通过矩阵的特征值分解来预测输入的美学分数。通过改变参考图像,所提出的算法可用于二元美学分类和个性化美学,以及通用评分回归。实验结果表明,所提出的统一算法在图像美学的所有三个任务中提供了最先进的性能。

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