Tübingen-CL at SemEval-2024 Task 1:Ensemble Learning for Semantic Relatedness Estimation

Fuente: arXiv
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Main Authors: Zhang, Leixin, Çöltekin, Çağrı
Format: Preprint
Published: 2024
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author Zhang, Leixin
Çöltekin, Çağrı
author_facet Zhang, Leixin
Çöltekin, Çağrı
contents The paper introduces our system for SemEval-2024 Task 1, which aims to predict the relatedness of sentence pairs. Operating under the hypothesis that semantic relatedness is a broader concept that extends beyond mere similarity of sentences, our approach seeks to identify useful features for relatedness estimation. We employ an ensemble approach integrating various systems, including statistical textual features and outputs of deep learning models to predict relatedness scores. The findings suggest that semantic relatedness can be inferred from various sources and ensemble models outperform many individual systems in estimating semantic relatedness.
format Preprint
id arxiv_https___arxiv_org_abs_2410_10585
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Tübingen-CL at SemEval-2024 Task 1:Ensemble Learning for Semantic Relatedness Estimation
Zhang, Leixin
Çöltekin, Çağrı
Computation and Language
The paper introduces our system for SemEval-2024 Task 1, which aims to predict the relatedness of sentence pairs. Operating under the hypothesis that semantic relatedness is a broader concept that extends beyond mere similarity of sentences, our approach seeks to identify useful features for relatedness estimation. We employ an ensemble approach integrating various systems, including statistical textual features and outputs of deep learning models to predict relatedness scores. The findings suggest that semantic relatedness can be inferred from various sources and ensemble models outperform many individual systems in estimating semantic relatedness.
title Tübingen-CL at SemEval-2024 Task 1:Ensemble Learning for Semantic Relatedness Estimation
topic Computation and Language
url https://arxiv.org/abs/2410.10585