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  - Telegram
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  size_categories:
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  - 10K<n<100K
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- ---
 
 
 
 
 
 
 
 
 
 
 
 
 
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  - Telegram
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  size_categories:
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  - 10K<n<100K
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+ The corpus was constructed from multiple sources to ensure diversity and representation of real-world Ukrainian social discourse. We systematically scraped comments and posts from Ukrainian Telegram channels, collecting content dated between February 2022 and September 2024.
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+ The volume of the scraped documents amounts to 8,064 texts. Also, we integrated two publicly available datasets: TG samples from D. Baida (https://huggingface.co/datasets/dmytrobaida/autotrain-data-ukrainian-telegram-sentiment-analysis) with 3,000 samples and 1,000 Yakaboo book reviews (https://github.com/osyvokon/awesome-ukrainian-nlp).
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+ Furthermore, 1,000 product reviews from Hotline.ua were incorporated to diversify the content domains.
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+ After deleting duplicates and boilerplate content, the final corpus included 12,224 texts covering various topics including politics, governmental services, entertainment, daily life, and consumer reviews.
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+ The annotation guidelines instructed participants to classify texts according to four sentiment categories:
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+ * Positive: posts containing expressions that reflect positive emotions (joy, support, admiration etc).
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+ * Negative: texts containing expressions that reflect negative emotions (criticism, sarcasm, condemnation, aggression, doubt, fear etc).
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+ * Neutral: documents where the author does not use either positive or negative expressions.
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+ * Mixed: texts containing expressions from both positive and negative emotional spectra.