EVALITA Evaluation of NLP and Speech Tools for Italian - December 17th, 2020 2020
DOI: 10.4000/books.aaccademia.7330
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DANKMEMES @ EVALITA 2020: The Memeing of Life: Memes, Multimodality and Politics

Abstract: Welcome to EVALITA 2020! EVALITA is the evaluation campaign of Natural Language Processing and Speech Tools for Italian. EVALITA is an initiative of the Italian Association for Computational Linguistics (AILC, http://www.ai-lc.it) and it is endorsed by the Italian Association for Artificial Intelligence (AIxIA, http://www.aixia.it) and the Italian Association for Speech Sciences (AISV, http://www.aisv.it).This volume includes the reports of both task organisers and participants to all of the EVALITA 2020 chall… Show more

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Cited by 10 publications
(6 citation statements)
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“…automatically discriminating image memes from regular images, has not yet received considerable attention from the research community. To our knowledge, there is only one dataset for meme detection, namely the DankMemes dataset [17], which was released in 2020 but is publicly unavailable at the timing of writing the paper. DankMemes contains 2000 images related to the 2019 Italian government crisis, half of which are memes and the rest regular images.…”
Section: Related Workmentioning
confidence: 99%
See 1 more Smart Citation
“…automatically discriminating image memes from regular images, has not yet received considerable attention from the research community. To our knowledge, there is only one dataset for meme detection, namely the DankMemes dataset [17], which was released in 2020 but is publicly unavailable at the timing of writing the paper. DankMemes contains 2000 images related to the 2019 Italian government crisis, half of which are memes and the rest regular images.…”
Section: Related Workmentioning
confidence: 99%
“…The latter works utilize datasets with image memes and appropriate labeling, thus they do not put effort on detecting the memes to be analysed. The detection of image memes and their discrimination from regular images is currently still a relatively understudied topic, and there are only few attempts in this direction [17,18].…”
Section: Introductionmentioning
confidence: 99%
“…One similar work to ours is sticker recommendation (Jesus et al, 2019;Laddha et al, 2020;Gao et al, 2020), where suitable stickers are retrieved to match the text-only dialogue history, which can be regarded as a special case of MOD. Besides, the tasks of meme retrieval (Milo et al, 2019;Perez-Martin et al, 2020;Sharma et al, 2020), detecting the hate speech in memes and clustering memes according to events (Miliani et al, 2020;Kiela et al, 2020) are proposed to help the Internet meme modeling. In this work, we focus on a more challenging situation, generating Internet meme merged utterances to make conversations more vivid and engaging.…”
Section: Internet Meme In Dialoguementioning
confidence: 99%
“…The macro F1-score for the baseline model was 0.21 for sentiment and 0.50 for humor type classification using image-text models, emphasizing how challenging interpreting memes can be. Additionally [15] is a similar dataset, but with 2,631 Italian memes.…”
Section: Related Work 31 Related Datasetsmentioning
confidence: 99%