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3MASSIV: Multilingual, Multimodal and Multi-Aspect dataset of Social Media Short Videos ...
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Abstract:
We present 3MASSIV, a multilingual, multimodal and multi-aspect, expertly-annotated dataset of diverse short videos extracted from short-video social media platform - Moj. 3MASSIV comprises of 50k short videos (20 seconds average duration) and 100K unlabeled videos in 11 different languages and captures popular short video trends like pranks, fails, romance, comedy expressed via unique audio-visual formats like self-shot videos, reaction videos, lip-synching, self-sung songs, etc. 3MASSIV presents an opportunity for multimodal and multilingual semantic understanding on these unique videos by annotating them for concepts, affective states, media types, and audio language. We present a thorough analysis of 3MASSIV and highlight the variety and unique aspects of our dataset compared to other contemporary popular datasets with strong baselines. We also show how the social media content in 3MASSIV is dynamic and temporal in nature, which can be used for semantic understanding tasks and cross-lingual analysis. ... : Accepted in CVPR 2022 ...
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Keyword:
Artificial Intelligence cs.AI; Computer Vision and Pattern Recognition cs.CV; FOS Computer and information sciences; Multimedia cs.MM
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URL: https://dx.doi.org/10.48550/arxiv.2203.14456 https://arxiv.org/abs/2203.14456
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Multilingual and Multilabel Emotion Recognition using Virtual Adversarial Training ...
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Multilingual and Multilabel Emotion Recognition using Virtual Adversarial Training ...
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Deep Clustering of Text Representations for Supervision-free Probing of Syntax ...
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