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Tessa Verhoef

5 accepted papers

2025

Cross-modal Associations in Vision and Language Models: Revisiting the Bouba-Kiki Effect

NeurIPS 2025poster

Recent advances in multimodal models have raised questions about whether vision-and-language models (VLMs) integrate cross-modal information in ways that reflect human cognition. One well-studied test case in this domain is the bouba-kiki effect, where humans reliably associate pseudowords like ‘bou…

Cited by 0SourceScholar
2025

Searching for Structure: Investigating Emergent Communication with Large Language Models

COLING 2025main

Human languages have evolved to be structured through repeated language learning and use. These processes introduce biases that operate during language acquisition and shape linguistic systems toward communicative efficiency. In this paper, we investigate whether the same happens if artificial langu…

Cited by 1SourcePDFScholar
2025

Shaping Shared Languages: Human and Large Language Models' Inductive Biases in Emergent Communication

IJCAI 2025

Languages are shaped by the inductive biases of their users. Using a classical referential game, we investigate how artificial languages evolve when optimised for inductive biases in humans and large language models (LLMs) via Human-Human, LLM-LLM and Human-LLM experiments. We show that referentiall

Cited by 0SourcePDFScholar
2024

Endowing Neural Language Learners with Human-like Biases: A Case Study on Dependency Length Minimization

COLING 2024main

Natural languages show a tendency to minimize the linear distance between heads and their dependents in a sentence, known as dependency length minimization (DLM). Such a preference, however, has not been consistently replicated with neural agent simulations. Comparing the behavior of models with tha…

2021

The Effect of Efficient Messaging and Input Variability on Neural-Agent Iterated Language Learning

EMNLP 2021main

Natural languages display a trade-off among different strategies to convey syntactic structure, such as word order or inflection. This trade-off, however, has not appeared in recent simulations of iterated language learning with neural network agents (Chaabouni et al., 2019b). We re-evaluate this re…