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IITK at SemEval-2024 Task 1: Contrastive Learning and Autoencoders for Semantic Textual Relatedness in Multilingual Texts

Domaine:

natural language processing

Type de record:

paper
Créateur:
BasDutPANDEY, SHIVAMMod
Hôte:avatar
This paper describes our system developed for the SemEval-2024 Task 1: Semantic Textual Relatedness. The challenge is focused on automatically detecting the degree of relatedness between pairs of sentences for 14 languages including both high and low-resource Asian and African languages. Our team participated in two subtasks consisting of Track A: supervised and Track B: unsupervised. This paper focuses on a BERT-based contrastive learning and similarity metric based approach primarily for the supervised track while exploring autoencoders for the unsupervised track. It also aims on the creation of a bigram relatedness corpus using negative sampling strategy, thereby producing refined word embeddings. Accepted at SemEval 2024, NAACL 2024; 6 pages

Visit

arxiv.org

Tags

Computation and LanguageArtificial IntelligenceMachine Learning

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