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首页> 外文期刊>ISPRS International Journal of Geo-Information >Identifying Witness Accounts from Social Media Using Imagery
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Identifying Witness Accounts from Social Media Using Imagery

机译:使用图像从社交媒体识别证人帐户

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This research investigates the use of image category classification to distinguish images posted to social media that are Witness Accounts of an event. Only images depicting observations of the event, captured by micro-bloggers at the event, are considered Witness Accounts. Identifying Witness Accounts from social media is important for services such as news, marketing and emergency response. Automated image category classification is essential due to the large number of images on social media and interest in identifying witnesses in near real time. This paper begins research of this emerging problem with an established procedure, using a bag-of-words method to create a vocabulary of visual words and classifier trained to categorize the encoded images. In order to test the procedure, a set of images were collected for case study events, Australian Football League matches, from Twitter. Evaluation shows an overall accuracy of 90% and precision and recall for both classes exceeding 83%.
机译:这项研究调查了使用图像类别分类来区分发布到社交媒体(即事件的见证帐户)的图像。只有微博主在事件中捕获的,描述事件观察结果的图像才被视为见证帐户。从社交媒体中识别证人帐户对于新闻,营销和紧急响应等服务非常重要。由于社交媒体上的大量图像以及对近实时识别证人的兴趣,因此自动图像类别分类至关重要。本文通过一个既定的程序开始研究这个新出现的问题,使用词袋方法创建视觉单词词汇,并训练分类器以对编码图像进行分类。为了测试该程序,从Twitter收集了一组案例研究事件(澳大利亚足球联赛)的图像。评估显示,两个类别的总体准确度均为90%,准确率和召回率均超过83%。

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