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  1. A computational model for measuring discourse complexity.Wenxin Xiong & Kun Sun - 2019 - Discourse Studies 21 (6):690-712.
    In past studies, the few quantitative approaches to discourse structure were mostly confined to the presentation of the frequency of discourse relations. However, quantitative approaches should take into account both hierarchical and relational layers in the discourse structure. This study considers these factors and addresses the issue of how discourse relations and discourse units are related. It draws upon the available corpora of discourse structure ) from a new perspective. Since an RST tree can be converted into a syntactic dependency (...)
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  • Prosody leaks into the memories of words.Kevin Tang & Jason A. Shaw - 2021 - Cognition 210 (C):104601.
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  • Redundancy can benefit learning: Evidence from word order and case marking.Shira Tal & Inbal Arnon - 2022 - Cognition 224 (C):105055.
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  • Ease of learning explains semantic universals.Shane Steinert-Threlkeld & Jakub Szymanik - 2020 - Cognition 195:104076.
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  • The Challenges of Large‐Scale, Web‐Based Language Datasets: Word Length and Predictability Revisited.Stephan C. Meylan & Thomas L. Griffiths - 2021 - Cognitive Science 45 (6):e12983.
    Language research has come to rely heavily on large‐scale, web‐based datasets. These datasets can present significant methodological challenges, requiring researchers to make a number of decisions about how they are collected, represented, and analyzed. These decisions often concern long‐standing challenges in corpus‐based language research, including determining what counts as a word, deciding which words should be analyzed, and matching sets of words across languages. We illustrate these challenges by revisiting “Word lengths are optimized for efficient communication” (Piantadosi, Tily, & Gibson, (...)
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  • Cross-Linguistic Trade-Offs and Causal Relationships Between Cues to Grammatical Subject and Object, and the Problem of Efficiency-Related Explanations.Natalia Levshina - 2021 - Frontiers in Psychology 12:648200.
    Cross-linguistic studies focus on inverse correlations (trade-offs) between linguistic variables that reflect different cues to linguistic meanings. For example, if a language has no case marking, it is likely to rely on word order as a cue for identification of grammatical roles. Such inverse correlations are interpreted as manifestations of language users’ tendency to use language efficiently. The present study argues that this interpretation is problematic. Linguistic variables, such as the presence of case, or flexibility of word order, are aggregate (...)
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