@inproceedings{s-etal-2026-duonova,
title = "{D}uo{N}ova@{LTEDI} 2026: Multilingual Span Detection and Counter-Narrative Generation on Homophobic and Transphobic Comments",
author = "S, Manasa and
Rawat, Arohi and
Sampath, Anbukkarasi",
editor = "Chakravarthi, Bharathi Raja and
B, Bharathi and
Buitelaar, Paul and
Thenmozhi, Durairaj and
Garc{\'i}a Cumbreras, Miguel {\'A}ngel and
Jim{\'e}nez Zafra, Salud Mar{\'i}a",
booktitle = "Proceedings of the Sixth Workshop on Language Technology for Equality, Diversity, Inclusion",
month = jul,
year = "2026",
address = "Virtual (Online)",
publisher = "Association for Computational Linguistics",
url = "https://aclanthology.org/2026.ltedi-1.17/",
pages = "167--171",
ISBN = "979-8-89176-424-8",
abstract = "The detection and response to homophobicand transphobic comments are important challengesin Natural Language Processing. In thispaper, we focus on the detection of span forhomophobic and transphobic comments (Task1) and generation of counter narratives for abusivecomments (Task 2) for the LT-EDI @ ACL2026 shared task. Harmful comments madeonline against the LGBTQ+ community havecreated a hostile environment for users. In thispaper, we have used the transformer model forthe detection of span for homophobic and transphobiccomments and generation of counternarratives. In this task, the detection of the spanof comments containing homophobic and transphobicwords and the generation of counter narrativesfor abusive comments have been doneusing the transformer model. The results showthe efficiency of the transformer model in thedetection of the span of comments and generationof counter narratives. This paper emphasizesthe efficiency of the transformer model increating a safe environment for users."
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<abstract>The detection and response to homophobicand transphobic comments are important challengesin Natural Language Processing. In thispaper, we focus on the detection of span forhomophobic and transphobic comments (Task1) and generation of counter narratives for abusivecomments (Task 2) for the LT-EDI @ ACL2026 shared task. Harmful comments madeonline against the LGBTQ+ community havecreated a hostile environment for users. In thispaper, we have used the transformer model forthe detection of span for homophobic and transphobiccomments and generation of counternarratives. In this task, the detection of the spanof comments containing homophobic and transphobicwords and the generation of counter narrativesfor abusive comments have been doneusing the transformer model. The results showthe efficiency of the transformer model in thedetection of the span of comments and generationof counter narratives. This paper emphasizesthe efficiency of the transformer model increating a safe environment for users.</abstract>
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%0 Conference Proceedings
%T DuoNova@LTEDI 2026: Multilingual Span Detection and Counter-Narrative Generation on Homophobic and Transphobic Comments
%A S, Manasa
%A Rawat, Arohi
%A Sampath, Anbukkarasi
%Y Chakravarthi, Bharathi Raja
%Y B, Bharathi
%Y Buitelaar, Paul
%Y Thenmozhi, Durairaj
%Y García Cumbreras, Miguel Ángel
%Y Jiménez Zafra, Salud María
%S Proceedings of the Sixth Workshop on Language Technology for Equality, Diversity, Inclusion
%D 2026
%8 July
%I Association for Computational Linguistics
%C Virtual (Online)
%@ 979-8-89176-424-8
%F s-etal-2026-duonova
%X The detection and response to homophobicand transphobic comments are important challengesin Natural Language Processing. In thispaper, we focus on the detection of span forhomophobic and transphobic comments (Task1) and generation of counter narratives for abusivecomments (Task 2) for the LT-EDI @ ACL2026 shared task. Harmful comments madeonline against the LGBTQ+ community havecreated a hostile environment for users. In thispaper, we have used the transformer model forthe detection of span for homophobic and transphobiccomments and generation of counternarratives. In this task, the detection of the spanof comments containing homophobic and transphobicwords and the generation of counter narrativesfor abusive comments have been doneusing the transformer model. The results showthe efficiency of the transformer model in thedetection of the span of comments and generationof counter narratives. This paper emphasizesthe efficiency of the transformer model increating a safe environment for users.
%U https://aclanthology.org/2026.ltedi-1.17/
%P 167-171
Markdown (Informal)
[DuoNova@LTEDI 2026: Multilingual Span Detection and Counter-Narrative Generation on Homophobic and Transphobic Comments](https://aclanthology.org/2026.ltedi-1.17/) (S et al., LTEDI 2026)
ACL