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From impressionism to expressionism: Automatically identifying van Gogh's paintings

机译:从印象派到表现主义:自动识别梵高的绘画

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Curators, art historians, and connoisseurs are often interested in determining the authorship of paintings. Machine learning and image processing techniques can assist in this task by providing non-invasive, automatic, and objective methods. In this work, we study the automatic identification of Vincent van Gogh's paintings using a Convolutional Neural Network that extracts discriminative visual patterns of a painter directly from images, and a machine learning classifier allied with a fusion method in the final decision process. We divide each painting into non-overlapping patches, classify them individually, and then aggregate the outcomes for the final response. We find out that using the patch with highest confidence score leads to the best result, outperforming the traditional voting scheme. We also contribute with a new and public dataset for van Gogh painting identification.
机译:策展人,艺术历史学家和鉴赏家经常有兴趣确定画作的作者。 通过提供非侵入性,自动和客观方法,可以通过提供非侵入性,自动和客观方法来帮助机器学习和图像处理技术。 在这项工作中,我们研究了使用卷积神经网络自动识别Vincent Van Gogh的绘画,该卷积神经网络直接从图像中提取画家的鉴别视觉模式,以及在最终决策过程中融合了融合方法的机器学习分类器。 我们将每幅画分为非重叠修补程序,单独对它们进行分类,然后聚合最终响应的结果。 我们发现使用具有最高置信度得分的补丁导致最佳结果,优于传统的投票方案。 我们还为梵高绘画识别的新和公共数据集提供了贡献。

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