Researchers have introduced MultiGhostBench, a new multilingual benchmark designed to evaluate the attribution of long-form text generated by large language models. The benchmark includes 928 books across six languages, with an average length of 59,000 words, and is designed to test attribution under various distribution shifts such as domain, author, and language changes. Initial evaluations indicate that current attribution methods struggle with these shifts, though transformer-based detectors show some cross-lingual capabilities. AI
IMPACT This benchmark could drive advancements in detecting AI-generated content, crucial for combating misinformation and ensuring academic integrity.
RANK_REASON The cluster describes a new academic paper introducing a benchmark dataset for research purposes.
Read on arXiv cs.IR (Information Retrieval) →
- alphaXiv
- arXiv
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- Gotit.pub
- Hugging Face
- LLM
- MultiGhostBench
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- Transformer++
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