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Fahime Same

4 accepted papers

2024

Intrinsic Task-based Evaluation for Referring Expression Generation

ACL 2024long

Recently, a human evaluation study of Referring Expression Generation (REG) models had an unexpected conclusion: on WEBNLG, Referring Expressions (REs) generated by the state-of-the-art neural models were not only indistinguishable from the REs in WEBNLG but also from the REs generated by a simple r…

2022

Non-neural Models Matter: a Re-evaluation of Neural Referring Expression Generation Systems

ACL 2022long

In recent years, neural models have often outperformed rule-based and classic Machine Learning approaches in NLG. These classic approaches are now often disregarded, for example when new neural models are evaluated. We argue that they should not be overlooked, since, for some tasks, well-designed no…

2020

A Linguistic Perspective on Reference: Choosing a Feature Set for Generating Referring Expressions in Context

COLING 2020main

This paper reports on a structured evaluation of feature-based Machine Learning algorithms for selecting the form of a referring expression in discourse context. Based on this evaluation, we selected seven feature sets from the literature, amounting to 65 distinct linguistic features. The features w…

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