In r/Belgium, COVID-19 topics were seeded by external events, not by prior posts, but comment sentiment was contagious, and a two-layer bounded confidence model best captured that asymmetry.
Scope of Large Language Models for Mining Emerging Opinions in Online Health Discourse
1 Pith paper cite this work. Polarity classification is still indexing.
abstract
In this paper, we develop an LLM-powered framework for the curation and evaluation of emerging opinion mining in online health communities. We formulate emerging opinion mining as a pairwise stance detection problem between (title, comment) pairs sourced from Reddit, where post titles contain emerging health-related claims on a topic that is not predefined. The claims are either explicitly or implicitly expressed by the user. We detail (i) a method of claim identification -- the task of identifying if a post title contains a claim and (ii) an opinion mining-driven evaluation framework for stance detection using LLMs. We facilitate our exploration by releasing a novel test dataset, Long COVID-Stance, or LC-stance, which can be used to evaluate LLMs on the tasks of claim identification and stance detection in online health communities. Long Covid is an emerging post-COVID disorder with uncertain and complex treatment guidelines, thus making it a suitable use case for our task. LC-Stance contains long COVID treatment related discourse sourced from a Reddit community. Our evaluation shows that GPT-4 significantly outperforms prior works on zero-shot stance detection. We then perform thorough LLM model diagnostics, identifying the role of claim type (i.e. implicit vs explicit claims) and comment length as sources of model error.
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Social Contagion in COVID-19 Discussions within the Belgian Reddit Community: A Statistical and Modeling Study
In r/Belgium, COVID-19 topics were seeded by external events, not by prior posts, but comment sentiment was contagious, and a two-layer bounded confidence model best captured that asymmetry.