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SPICED: News Similarity Detection Dataset with Multiple Topics and Complexity Levels (2024.lrec-main)

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Challenge: Existing semantic textual similarity (STS) datasets are not suitable for news similarity detection due to their specificity to a single topic.
Approach: They propose to segment news similarity datasets into topics to improve model training . they propose four different levels of complexity specifically designed for news similarities detection task .
Outcome: The proposed dataset includes seven topics: Crime & Law, Culture & Entertainment, Disasters & Accidents, Economy & Business, Politics / Conflicts, Science & Technology, Sports.

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