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News Reporter: A Multi-lingual LLM Framework for Broadcast T.V News

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arxiv 2410.07520 v2 pith:Z3CDSTJ6 submitted 2024-10-10 cs.CL

classification cs.CL
keywords newsanswerslargellmsmodelmodelspairsused
verification ladder T0 review T1 audit T2 compute T3 formal

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Large Language Models (LLMs) have fast become an essential tools to many conversational chatbots due to their ability to provide coherent answers for varied queries. Datasets used to train these LLMs are often a mix of generic and synthetic samples, thus lacking the verification needed to provide correct and verifiable answers for T.V. News. We collect and share a large collection of QA pairs extracted from transcripts of news recordings from various news-channels across the United States. Resultant QA pairs are then used to fine-tune an off-the-shelf LLM model. Our model surpasses base models of similar size on several open LLM benchmarks. We further integrate and propose a RAG method to improve contextualization of our answers and also point it to a verifiable news recording.

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