遇见数据集

H-Prop and H-Prop-News Propaganda Datasets in Hindi

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Zenodo2022-01-07 更新2026-04-07 收录
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The H-Prop dataset contains 28,630 articles created by translating a portion of Proppy Corpus in Hindi. Each article is labeled as either “propagandistic” (positive class) or “non-propagandistic” (negative class). The labeling done indirectly in Proppy corpus using a technique known as distant supervision is retained. The H-Prop-News dataset contains 5,500 Hindi News articles collected from 30+ prominent Hindi News websites. Each article is labeled as either “propagandistic” (positive class) or “non-propagandistic” (negative class). The labeling was done by human annotators and the inter-annotator agreement using Cohen’s Kappa measure observed is 0.81. ## Data format We provide the H-Prop dataset in three tsv files, including training, testing and validation partitions. The H-Prop-News dataset is provided in csv files including training, testing and validation partitions. Each line represents one article in H-Prop dataset with the following information: 1. article_text: the text of the article translated from Proppy corpus.<br> 2. propaganda_label: label for articles retained from Proppy corpus. Each line represents one article in H-Prop-News dataset with the following information: 1. news_website: Name of the news source website<br> 2. article_url: the direct URL for the published article in its source website<br> 3. news_headline: news headline<br> 4. article_text: the text of the article retrieved via parsehub tool<br> 5. propaganda_label: label for articles ## About The H-Prop dataset was translated using IBM Watson Language Translator. ## Credit Please cite the dataset as:<br> [HProp-News] Deptii Chaudhari, Ambika Pawar, and Alberto Barrón-Cedeño. 2022. H-Prop and H-Prop-News: Computational Propaganda Datasets in Hindi. doi: 10.5281/zenodo.5828240 ## Authors Deptii Chaudhari;<br> Ambika Pawar;<br> Alberto Barrón-Cedeno

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2022-01-07
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