Cross-modal Transfer Between Vision and Language for Protest Detection

R. Raj, Kajsa Andreasson, Tobias Norlund, Richard Johansson, Aron Lagerberg
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引用次数: 1

Abstract

Most of today’s systems for socio-political event detection are text-based, while an increasing amount of information published on the web is multi-modal. We seek to bridge this gap by proposing a method that utilizes existing annotated unimodal data to perform event detection in another data modality, zero-shot. Specifically, we focus on protest detection in text and images, and show that a pretrained vision-and-language alignment model (CLIP) can be leveraged towards this end. In particular, our results suggest that annotated protest text data can act supplementarily for detecting protests in images, but significant transfer is demonstrated in the opposite direction as well.
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视觉和语言的跨模态迁移用于抗议检测
当今大多数社会政治事件检测系统都是基于文本的,而越来越多的发布在网络上的信息是多模式的。我们试图通过提出一种方法来弥合这一差距,该方法利用现有的带注释的单模态数据在另一种数据模态(zero-shot)中执行事件检测。具体来说,我们专注于文本和图像中的抗议检测,并表明可以利用预训练的视觉和语言对齐模型(CLIP)来实现这一目标。特别是,我们的研究结果表明,注释的抗议文本数据可以补充检测图像中的抗议,但也证明了相反方向的显著迁移。
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