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General::General Discussion General discussion about EverQuest(tm), EQEMu, and related topics.
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While traditional NQ focused on short, few-word answers, modern research has shifted toward . This has led to the development of CLAPnq (Cohesive Long-form Answers from Passages) , a benchmark that uses NQ data to test whether LLMs can provide:

: Ensuring answers are grounded strictly in the provided text without "hallucinations".

The Natural Questions (NQ) dataset, originally released by researchers at Google, revolutionized how AI models handle information retrieval. Unlike synthetic datasets, NQ consists of real queries typed into Google Search, paired with entire Wikipedia pages as the source of truth. This creates a "real-world" challenge: models must not only find the right document but also extract a concise, human-like answer from within it. 2. The Shift to RAG and CLAPnq

: Remaining "grounded" to the document rather than relying on internal (and potentially outdated) training data. 4. Conclusion

According to researchers from the ACL Anthology , LLMs still face significant hurdles in these areas:

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While traditional NQ focused on short, few-word answers, modern research has shifted toward . This has led to the development of CLAPnq (Cohesive Long-form Answers from Passages) , a benchmark that uses NQ data to test whether LLMs can provide:

: Ensuring answers are grounded strictly in the provided text without "hallucinations".

The Natural Questions (NQ) dataset, originally released by researchers at Google, revolutionized how AI models handle information retrieval. Unlike synthetic datasets, NQ consists of real queries typed into Google Search, paired with entire Wikipedia pages as the source of truth. This creates a "real-world" challenge: models must not only find the right document but also extract a concise, human-like answer from within it. 2. The Shift to RAG and CLAPnq

: Remaining "grounded" to the document rather than relying on internal (and potentially outdated) training data. 4. Conclusion

According to researchers from the ACL Anthology , LLMs still face significant hurdles in these areas:


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