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Codec at SemEval-2022 Task 5: Multi-Modal Multi-Transformer Misogynous Meme Classification Framework. (arXiv:2206.07190v1 [cs.CL])
Web: http://arxiv.org/abs/2206.07190
June 16, 2022, 1:12 a.m. | Ahmed Mahran, Carlo Alessandro Borella, Konstantinos Perifanos
cs.CL updates on arXiv.org arxiv.org
In this paper we describe our work towards building a generic framework for
both multi-modal embedding and multi-label binary classification tasks, while
participating in task 5 (Multimedia Automatic Misogyny Identification) of
SemEval 2022 competition.
Since pretraining deep models from scratch is a resource and data hungry
task, our approach is based on three main strategies. We combine different
state-of-the-art architectures to capture a wide spectrum of semantic signals
from the multi-modal input. We employ a multi-task learning scheme to be …
More from arxiv.org / cs.CL updates on arXiv.org
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