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Introducing Rhetorical Parallelism Detection: A New Task with Datasets, Metrics, and Baselines

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arxiv 2312.00100 v1 pith:SERIM4QI submitted 2023-11-30 cs.CL

Introducing Rhetorical Parallelism Detection: A New Task with Datasets, Metrics, and Baselines

classification cs.CL
keywords parallelismtextitchinesedatasetdatasetsdetectionlatinmetrics
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Rhetoric, both spoken and written, involves not only content but also style. One common stylistic tool is $\textit{parallelism}$: the juxtaposition of phrases which have the same sequence of linguistic ($\textit{e.g.}$, phonological, syntactic, semantic) features. Despite the ubiquity of parallelism, the field of natural language processing has seldom investigated it, missing a chance to better understand the nature of the structure, meaning, and intent that humans convey. To address this, we introduce the task of $\textit{rhetorical parallelism detection}$. We construct a formal definition of it; we provide one new Latin dataset and one adapted Chinese dataset for it; we establish a family of metrics to evaluate performance on it; and, lastly, we create baseline systems and novel sequence labeling schemes to capture it. On our strictest metric, we attain $F_{1}$ scores of $0.40$ and $0.43$ on our Latin and Chinese datasets, respectively.

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  1. Artificial Epanorthosis: Why large language models overuse a classical rhetorical figure, and how to mitigate it

    cs.CL 2026-07 conditional novelty 6.0

    LLMs overuse the 'not X, but Y' self-correction pattern in persuasive registers and underuse it in informal Q&A; a prompt or a detachable LoRA dial adjusts it to human levels.