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MM-MDS: A Multidimensional Scaling Database with Similarity Ratings for 240 Object Categories from the Massive Memory Picture Database

机译:MM-MDS:多维缩放数据库具有来自海量内存图片数据库的240个对象类别的相似等级

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摘要

Cognitive theories in visual attention and perception, categorization, and memory often critically rely on concepts of similarity among objects, and empirically require measures of “sameness” among their stimuli. For instance, a researcher may require similarity estimates among multiple exemplars of a target category in visual search, or targets and lures in recognition memory. Quantifying similarity, however, is challenging when everyday items are the desired stimulus set, particularly when researchers require several different pictures from the same category. In this article, we document a new multidimensional scaling database with similarity ratings for 240 categories, each containing color photographs of 16–17 exemplar objects. We collected similarity ratings using the spatial arrangement method. Reports include: the multidimensional scaling solutions for each category, up to five dimensions, stress and fit measures, coordinate locations for each stimulus, and two new classifications. For each picture, we categorized the item's prototypicality, indexed by its proximity to other items in the space. We also classified pairs of images along a continuum of similarity, by assessing the overall arrangement of each MDS space. These similarity ratings will be useful to any researcher that wishes to control the similarity of experimental stimuli according to an objective quantification of “sameness.”
机译:视觉注意力和感知,分类和记忆的认知理论通常严格地依赖于对象之间的相似性概念,并且凭经验需要对其刺激之间的“相似性”进行度量。例如,研究人员可能需要视觉搜索中目标类别的多个示例之间的相似性估计,或识别记忆中的目标和诱惑。但是,当日常物品是理想的刺激组时,量化相似度是一项挑战,特别是当研究人员需要同一类别的几张不同图片时。在本文中,我们记录了一个新的多维比例缩放数据库,该数据库具有240个类别的相似度等级,每个类别包含16-17个示例对象的彩色照片。我们使用空间排列方法收集相似性评级。报告包括:每个类别的多维缩放解决方案,最多五个维度,压力和拟合度,每种刺激的协调位置以及两个新分类。对于每张图片,我们根据其与空间中其他项目的接近程度对项目的原型进行分类。我们还通过评估每个MDS空间的整体布局,按照连续性对图像对进行了分类。这些相似性等级对于希望根据“相似性”的客观量化来控制实验刺激相似性的任何研究人员都将是有用的。

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