conference-paper Open access

Modeling intra-textual variation with entropy and surprisal: topical vs. stylistic patterns

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Abstract

We present a data-driven approach to investigate intra-textual variation by combining entropy and surprisal. With this approach we detect linguistic variation based on phrasal lexico-grammatical patterns across sections of research articles. Entropy is used to detect patterns typical of specific sections. Surprisal is used to differentiate between more and less informationally-loaded patterns as well as types of information (topical vs. stylistic). While we here focus on research articles in biology/genetics, the methodology is especially interesting for digital humanities scholars, as it can be applied to any text type or domain and combined with additional variables (e.g. time, author or social group) to obtain insights on intra-textual variation.

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Publication details

DOI
10.18653/v1/w17-2209
OpenAlex
W2740315872
Document type
conference-paper
Language
EN
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