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Retrieval · Data · Memory

Improving Retrieval in LLMs through Synthetic Data

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Improving Retrieval in LLMs through Synthetic Data
The curator’s take

proposes a fine-tuning approach to improve the accuracy of retrieving information in LLMs while maintaining reasoning capabilities over long-context inputs; the fine-tuning dataset comprises numerical dictionary key-value retrieval tasks (350 samples); finds that this approach mitigates the "lost-in-the-middle" phenomenon and improves performance on both information retrieval and long-context reasoning.

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