Contour-based object identification and segmentation: stimuli, norms and data, and software tools.

Joeri De Winter, Johan Wagemans
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引用次数: 79

Abstract

We summarize five studies of our large-scale research program, in which we examined aspects of contour-based object identification and segmentation, and we report on the stimuli we used, the norms and data we collected, and the software tools we developed. The stimuli were outlines derived from the standard set of line drawings of everyday objects by Snodgrass and Vanderwart (1980). We used contour curvature as a major variable in all the studies. The total number of 1,500 participants produced very solid, normative identification rates of silhouettes and contours, straight-line versions, and fragmented versions, and quite reliable benchmark data about saliency of points and object segmentation into parts. We also developed several software tools to generate stimuli and to analyze the data in nonstandard ways. Our stimuli, norms and data, and software tools have great potential for further exploration of factors influencing contour-based object identification, and are also useful for researchers in many different disciplines (including computer vision) on a wide variety of research topics (e.g., priming, agnosia, perceptual organization, and picture naming). The full set of norms, data, and stimuli may be downloaded from www.psychonomic.org/archive/.

基于轮廓的物体识别和分割:刺激、规范和数据,以及软件工具。
我们总结了我们大规模研究项目的五项研究,其中我们研究了基于轮廓的物体识别和分割的各个方面,我们报告了我们使用的刺激,我们收集的规范和数据,以及我们开发的软件工具。刺激的轮廓来源于Snodgrass和Vanderwart(1980)的日常物品的标准线条画。在所有的研究中,我们使用轮廓曲率作为主要变量。总共1500名参与者产生了非常可靠的、规范的轮廓和轮廓、直线版本和碎片版本的识别率,以及关于点的显著性和物体分割成部分的相当可靠的基准数据。我们还开发了几个软件工具来产生刺激并以非标准的方式分析数据。我们的刺激、规范和数据以及软件工具对于进一步探索影响基于轮廓的物体识别的因素具有很大的潜力,并且对于许多不同学科(包括计算机视觉)的研究人员在各种研究主题(例如,启动、失认症、感知组织和图片命名)上也很有用。完整的规范、数据和刺激可以从www.psychonomic.org/archive/下载。
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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