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MOMENTA: A Multimodal Framework for Detecting Harmful Memes and Their Targets

About

Internet memes have become powerful means to transmit political, psychological, and socio-cultural ideas. Although memes are typically humorous, recent days have witnessed an escalation of harmful memes used for trolling, cyberbullying, and abuse. Detecting such memes is challenging as they can be highly satirical and cryptic. Moreover, while previous work has focused on specific aspects of memes such as hate speech and propaganda, there has been little work on harm in general. Here, we aim to bridge this gap. We focus on two tasks: (i)detecting harmful memes, and (ii)identifying the social entities they target. We further extend a recently released HarMeme dataset, which covered COVID-19, with additional memes and a new topic: US politics. To solve these tasks, we propose MOMENTA (MultimOdal framework for detecting harmful MemEs aNd Their tArgets), a novel multimodal deep neural network that uses global and local perspectives to detect harmful memes. MOMENTA systematically analyzes the local and the global perspective of the input meme (in both modalities) and relates it to the background context. MOMENTA is interpretable and generalizable, and our experiments show that it outperforms several strong rivaling approaches.

Shraman Pramanick, Shivam Sharma, Dimitar Dimitrov, Md Shad Akhtar, Preslav Nakov, Tanmoy Chakraborty• 2021

Related benchmarks

TaskDatasetResultRank
Hateful Meme DetectionHateful Memes (test)
AUROC0.6917
67
Hateful meme classificationHarM (test)
AUC86.32
31
Harmful Meme DetectionFHM
Accuracy61.34
29
Binary ClassificationHarMeme Harm-C corrected (test)
F1 Score80.8
28
Multi-class classificationHarMeme Harm-C corrected (test)
F1 Score52.1
28
Multi-class classificationHarMeme Harm-P corrected (test)
F1 Score39
28
Binary ClassificationHarMeme Harm-P corrected (test)
F1 Score59.8
28
Harmful Meme DetectionMAMI
Accuracy72.1
19
Hate DetectionPrideMM (test)
Accuracy72.23
18
Harmful Meme DetectionToxiCN
Accuracy77.87
16
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