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Journal ArticleDOI

Long story short: finding health advice with informative summaries on health social media

Yi-Hung Liu, +2 more
- Vol. 71, Iss: 6, pp 821-840
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TLDR
The findings show that awarding sentences without using all the incorporating features decreases summarization performance compared with the classic summarization method and comparison approaches, but the proposed summarizer significantly outperformed the comparison baseline.
Abstract
Whether automatically generated summaries of health social media can aid users in managing their diseases appropriately is an important question. The purpose of this paper is to introduce a novel text summarization approach for acquiring the most informative summaries from online patient posts accurately and effectively.,The data set regarding diabetes and HIV posts was, respectively, collected from two online disease forums. The proposed summarizer is based on the graph-based method to generate summaries by considering social network features, text sentiment and sentence features. Representative health-related summaries were identified and summarization performance as well as user judgments were analyzed.,The findings show that awarding sentences without using all the incorporating features decreases summarization performance compared with the classic summarization method and comparison approaches. The proposed summarizer significantly outperformed the comparison baseline.,This study contributes to the literature on health knowledge management by analyzing patients’ experiences and opinions through the health summarization model. The research additionally develops a new mindset to design abstractive summarization weighting schemes from the health user-generated content.

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Citations
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Journal ArticleDOI

A systematic review of automatic text summarization for biomedical literature and EHRs.

TL;DR: A systematic review of biomedical text summarization research on biomedical literature and electronic health records by analyzing their techniques, areas of application, and evaluation methods is presented in this paper. But, the majority of the works still focus on summarizing literature.
Journal ArticleDOI

Identifying features of health misinformation on social media sites: an exploratory analysis

TL;DR: A list of features was developed to help users distinguish health misinformation as well as help social media companies filter health misinformation and there are significant differences in the features of health misinformation between different topics.
Journal ArticleDOI

Social Media, Grindr, and PrEP: Sexual Health Literacy for Men Who Have Sex with Men in the Internet Age

TL;DR: Despite continued improvements to HIV/AIDS treatment and awareness, HIV transmission rates remain high among men who have sex with men (MSM) as discussed by the authors, and online consumer health information targeting high-risk...
Journal ArticleDOI

HeadlineStanceChecker: Exploiting summarization to detect headline disinformation

TL;DR: In this paper, the authors proposed a two-stage classification architecture that uses summarization techniques to shape the input for both classifiers instead of directly passing the full news body text, thereby reducing the amount of information to be processed while keeping important information.
Proceedings ArticleDOI

A deep active learning-based and crowdsourcing-assisted solution for named entity recognition in Chinese historical corpora

TL;DR: Zhang et al. as discussed by the authors designed a new integrated solution for Chinese historical NER, including automatic entity extraction and man-machine cooperative annotation, for improving the effectiveness of Chinese historical named entity recognition and fostering the development of low-resource information extraction.
References
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Journal ArticleDOI

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Journal Article

The Anatomy of a Large-Scale Hypertextual Web Search Engine.

Sergey Brin, +1 more
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Proceedings Article

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Proceedings ArticleDOI

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Journal ArticleDOI

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