Characterization of a food image stimulus set for the study of multi-attribute decision-making

M. Satterthwaite, L. Fellows
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引用次数: 2

Abstract

Everyday decisions are generally made between options that vary on multiple different attributes. These might vary from basic biological attributes (e.g. caloric density of a food) to higher-order attributes like healthiness or aesthetic appeal. There is a long tradition of studying the processes involved in explicitly multi-attribute decisions, with information presented in a table, for example. However, most naturalistic choices require attribute information to be identified from the stimulus during evaluation or value comparison. Well-characterized stimulus sets are needed to support behavioral and neuroscience research on this topic. Here we present a set of 200 food images suited to the study of multi-attribute value-based decision-making. The set includes food items likely to appeal to those accustomed to North American and European diets, varying widely on the subjective attributes of visual-aesthetic appeal (“beauty”), tastiness and healthiness, as rated by healthy young Canadian participants (N=30-67). The images have also been characterized on objective characteristics relevant to food decision-making, including caloric density, macronutrient content and visual salience. We provide all attribute data by image and show the extent to which attributes are correlated across the stimulus set. We hope this stimulus set will accelerate progress in the study of naturalistic, value-based decision-making.
用于多属性决策研究的食物图像刺激集表征
日常决策通常是在多种不同属性的选项之间做出的。这些可能从基本的生物学属性(如食物的热量密度)到更高层次的属性,如健康或美观。研究显式多属性决策所涉及的过程有着悠久的传统,例如,将信息显示在表格中。然而,大多数自然主义的选择需要在评估或价值比较过程中从刺激中识别属性信息。需要特征明确的刺激集来支持这一主题的行为和神经科学研究。在这里,我们提出了一组200张食物图像,适合于研究基于多属性价值的决策。该套装包括可能吸引那些习惯北美和欧洲饮食的人的食物,在视觉美感(“美”)、美味和健康的主观属性上差异很大,由健康的加拿大年轻参与者进行评分(N=30-67)。这些图像还具有与食物决策相关的客观特征,包括热量密度、常量营养素含量和视觉显著性。我们通过图像提供所有属性数据,并显示属性在刺激集中的相关性。我们希望这套刺激方案将加速自然主义、基于价值的决策研究的进展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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