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首页> 外文期刊>Journal of the American Society for Information Science and Technology >Collective Indexing of Emotions in Images. A Study in Emotional Information Retrieval
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Collective Indexing of Emotions in Images. A Study in Emotional Information Retrieval

机译:图像中情感的集体索引。情绪信息检索研究

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Some documents provoke emotions in people viewing them. Will it be possible to describe emotions consistently and use this information in retrieval systems? We tested collective (statistically aggregated) emotion indexing using images as examples. Considering psychological results, basic emotions are anger, disgust, fear, happiness, and sadness. This study follows an approach developed by Lee and Neal (2007) for music emotion retrieval and applies scroll bars for tagging basic emotions and their intensities. A sample comprising 763 persons tagged emotions caused by images (retrieved from www.Flickr.com) applying scroll bars and (linguistic) tags. Using SPSS, we performed descriptive statistics and correlation analysis. For more than half of the images, the test persons have clear emotion favorites. There are prototypical images for given emotions. The document-specific consistency of tagging using a scroll bar is, for some images, very high. Most of the (most commonly used) linguistic tags are on the basic level (in the sense of Rosch's basic level theory). The distributions of the linguistic tags in our examples follow an inverse power-law. Hence, it seems possible to apply collective image emotion tagging to image information systems and to present a new search option for basic emotions. This article is one of the first steps in the research area of emotional information retrieval (EmIR).
机译:一些文件激起了人们的情绪。是否有可能一贯地描述情绪并在检索系统中使用此信息?我们以图片为例,测试了集体(统计汇总)的情感索引。考虑到心理结果,基本情绪是愤怒,厌恶,恐惧,幸福和悲伤。这项研究遵循了Lee和Neal(2007)开发的一种用于音乐情感检索的方法,并应用了滚动条来标记基本情感及其强度。该样本包含763个人,这些人使用滚动条和(语言)标签对由图像(从www.Flickr.com检索到)引起的情绪进行了标记。使用SPSS,我们进行了描述性统计和相关分析。对于一半以上的图像,测试人员拥有清晰的情感偏好。有给定情绪的原型图像。对于某些图像,使用滚动条标记的特定于文档的一致性非常高。大多数(最常用的)语言标签都在基本级别上(就Rosch的基本级别理论而言)。在我们的示例中,语言标记的分布遵循逆幂定律。因此,似乎有可能将集体图像情感标签应用于图像信息系统,并提出针对基本情感的新搜索选项。本文是情绪信息检索(EmIR)研究领域的第一步。

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