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THINGS: A database of 1,854 object concepts and more than 26,000 naturalistic object images

机译:事物:包含1,854个对象概念和26,000多个自然主义对象图像的数据库

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摘要

In recent years, the use of a large number of object concepts and naturalistic object images has been growing strongly in cognitive neuroscience research. Classical databases of object concepts are based mostly on a manually curated set of concepts. Further, databases of naturalistic object images typically consist of single images of objects cropped from their background, or a large number of naturalistic images of varying quality, requiring elaborate manual image curation. Here we provide a set of 1,854 diverse object concepts sampled systematically from concrete picturable and nameable nouns in the American English language. Using these object concepts, we conducted a large-scale web image search to compile a database of 26,107 high-quality naturalistic images of those objects, with 12 or more object images per concept and all images cropped to square size. Using crowdsourcing, we provide higher-level category membership for the 27 most common categories and validate them by relating them to representations in a semantic embedding derived from large text corpora. Finally, by feeding images through a deep convolutional neural network, we demonstrate that they exhibit high selectivity for different object concepts, while at the same time preserving variability of different object images within each concept. Together, the THINGS database provides a rich resource of object concepts and object images and offers a tool for both systematic and large-scale naturalistic research in the fields of psychology, neuroscience, and computer science.
机译:近年来,在认知神经科学研究中,大量对象概念和自然对象图像的使用已大大增加。对象概念的经典数据库主要基于一组手动策划的概念。此外,自然对象图像的数据库通常由从其背景裁剪出来的对象的单个图像或质量各异的大量自然图像组成,需要精心的手动图像管理。在这里,我们提供了一组1,854个不同的对象概念,这些概念从美国英语中的具体可形容和可命名名词系统地采样。使用这些对象概念,我们进行了大规模的网络图像搜索,以编译包含这些对象的26,107张高质量自然主义图像的数据库,每个概念包含12个或更多对象图像,并且所有图像均裁剪为正方形。使用众包,我们为27个最常见的类别提供了更高级别的类别成员资格,并通过将它们与源自大型文本语料库的语义嵌入中的表示形式相关联来对其进行验证。最后,通过深层卷积神经网络提供图像,我们证明了它们对不同的对象概念表现出很高的选择性,同时在每个概念内保留了不同对象图像的可变性。总之,THINGS数据库提供了丰富的对象概念和对象图像资源,并为心理学,神经科学和计算机科学领域的系统和大规模自然主义研究提供了工具。

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