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Understanding emotions in SNS images from posters' perspectives

Authors
Song, JunhoHan, KyungsikLee, DongwonKim, Sang-Wook
Issue Date
Mar-2020
Publisher
Association for Computing Machinery
Keywords
Classification; Image-based emotion analysis; Social network service
Citation
Proceedings of the ACM Symposium on Applied Computing, pp.450 - 457
Indexed
SCOPUS
Journal Title
Proceedings of the ACM Symposium on Applied Computing
Start Page
450
End Page
457
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/146032
DOI
10.1145/3341105.3373923
Abstract
As the popularity of media-based social networking services (SNS), such as Instagram and Snapchat, has increased significantly, a growing body of research has analyzed SNS images in relation to emotional analysis and classification model development. However, these prior studies were based on relatively small amounts of data, where the emotions of images were labeled from viewers' perspectives, not posters' perspectives. Consequently, we analyze 120K images that reflect poster's emotion. We develop color- and content-based classification models by considering: (1) the dynamics of SNS, in terms of the volume and variety of images shared, and (2) the fact that people express their emotions through colors and objects. We demonstrate the comparable performance of our model with models proposed in prior studies and discuss the applications.
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