Publication:

A Computational Study of Persuasion in Dialogue: Linguistic Features and Conversational Context

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dc.contributor.advisorBhat, Suma Pallathadka
dc.contributor.authorAli, Laiba
dc.date.accessioned2026-07-27T16:28:26Z
dc.date.available2026-07-27T16:28:26Z
dc.date.issued2026-04-16
dc.description.abstractThis work analyzed the relationship between persuasive language and its observable effect, agreement, in structured dyadic dialogue. In particular, we studied the presence and distribution of linguistic features and Cialdini-inspired persuasion techniques regarding conversational behavior. We leveraged large language models (LLMs) to annotate for persuasion principles across multiple dialogue datasets, while also examining the reliability and consistency of LLM-based evaluation. We analyzed these datasets using a combination of Ordinary Least Squares (OLS) linear regression modeling, Multivariate Analyses of Variance (MANOVAs), K-Means clustering, and descriptive comparisons to evaluate whether these features were indicative of conversational outcomes and contextual conditions, specifically in the form of pre-conversational prompting. Our findings showed that while these features provided limited predictive power for agreement outcomes, the discourse markers, structural properties, and persuasion principles varied across different prompting conditions: persuasion, compromise, and general dyadic dialogue. These results suggest that conversational intent played a significant role in shaping feature usage, while also emphasizing the importance of context in computational analyses of dialogue.
dc.identifier.urihttps://theses-dissertations.princeton.edu/handle/88435/dsp01qv33s117q
dc.language.isoen_US
dc.titleA Computational Study of Persuasion in Dialogue: Linguistic Features and Conversational Context
dc.typePrinceton University Senior Theses
dspace.entity.typePublication
dspace.workflow.startDateTime2026-04-19T16:34:32.747Z
pu.contributor.authorid920319779
pu.date.classyear2026
pu.departmentComputer Science

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