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Gemma Boleda

5 accepted papers

2024

Why do objects have many names? A study on word informativeness in language use and lexical systems

EMNLP 2024main

Human lexicons contain many different words that speakers can use to refer to the same object, e.g., *purple* or *magenta* for the same shade of color. On the one hand, studies on language use have explored how speakers adapt their referring expressions to successfully communicate in context, withou…

Cited by 1SourcePDFScholar
2023

Run Like a Girl! Sport-Related Gender Bias in Language and Vision

ACL 2023findings

Gender bias in Language and Vision datasets and models has the potential to perpetuate harmful stereotypes and discrimination. We analyze gender bias in two Language and Vision datasets. Consistent with prior work, we find that both datasets underrepresent women, which promotes their invisibilizatio…

Cited by 12SourcePDFScholar
2022

Communication breakdown: On the low mutual intelligibility between human and neural captioning

EMNLP 2022main

We compare the 0-shot performance of a neural caption-based image retriever when given as input either human-produced captions or captions generated by a neural captioner. We conduct this comparison on the recently introduced ImageCoDe data-set (Krojer et al. 2022), which contains hard distractors n…

2020

Humans Meet Models on Object Naming: A New Dataset and Analysis

COLING 2020main

We release ManyNames v2 (MN v2), a verified version of an object naming dataset that contains dozens of valid names per object for 25K images. We analyze issues in the data collection method originally employed, standard in Language & Vision (L&V), and find that the main source of noise in the data…