Lewis's Signaling Game as beta-VAE For Natural Word Lengths and Segments

November 08, 2023 ยท Declared Dead ยท ๐Ÿ› International Conference on Learning Representations

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Authors Ryo Ueda, Tadahiro Taniguchi arXiv ID 2311.04453 Category cs.CL: Computation & Language Citations 13 Venue International Conference on Learning Representations Last Checked 5 months ago
Abstract
As a sub-discipline of evolutionary and computational linguistics, emergent communication (EC) studies communication protocols, called emergent languages, arising in simulations where agents communicate. A key goal of EC is to give rise to languages that share statistical properties with natural languages. In this paper, we reinterpret Lewis's signaling game, a frequently used setting in EC, as beta-VAE and reformulate its objective function as ELBO. Consequently, we clarify the existence of prior distributions of emergent languages and show that the choice of the priors can influence their statistical properties. Specifically, we address the properties of word lengths and segmentation, known as Zipf's law of abbreviation (ZLA) and Harris's articulation scheme (HAS), respectively. It has been reported that the emergent languages do not follow them when using the conventional objective. We experimentally demonstrate that by selecting an appropriate prior distribution, more natural segments emerge, while suggesting that the conventional one prevents the languages from following ZLA and HAS.
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