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Demographic Influences on Contemporary Art with Unsupervised Style Embeddings

机译:无监督风格嵌入式当代艺术的人口影响

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Computational art analysis has, through its reliance on classification tasks, prioritised historical datasets in which the artworks are already well sorted with the necessary annotations. Art produced today, on the other hand, is numerous and easily accessible, through the internet and social networks that are used by professional and amateur artists alike to display their work. Although this art-yet unsorted in terms of style and genre-is less suited for supervised analysis, the data sources come with novel information that may help frame the visual content in equally novel ways. As a first step in this direction, we present contempArt, a multi-modal dataset of exclusively contemporary artworks. contempArt is a collection of paintings and drawings, a detailed graph network based on social connections on Instagram and additional socio-demographic information; all attached to 442 artists at the beginning of their career. We evaluate three methods suited for generating unsupervised style embeddings of images and correlate them with the remaining data. We find no connections between visual style on the one hand and social proximity, gender, and nationality on the other.
机译:通过依赖分类任务,计算艺术分析,优先级的历史数据集,其中艺术品已经充分地进行了必要的注释。另一方面,艺术制作的艺术是众多且易于访问的,通过专业和业余艺术家所使用的互联网和社交网络来展示他们的工作。虽然这种艺术在风格和类型的艺术中不合适 - 较不适合监督分析,但数据源具有新颖的信息,可以帮助框架视觉内容以同样的新方式框架。作为朝这个方向的第一步,我们呈现Contempart,这是一个独家当代艺术品的多模态数据集。 Contempart是一系列绘画和图纸,一个详细的基于Instagram上的社交联系的图形网络以及额外的社会人口统计信息;所有人都在他们的职业生涯的开始时附加到442名艺术家。我们评估三种方法适用于生成图像的无监督风格嵌入的图像,并将它们与剩余数据相关联。我们在视觉风格的一方面和社会接近,性别和国籍中没有任何联系。

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