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UNREAL: Unifying Retrieval and Long-Context with a Single Model

UNREAL is a model-native evidence selection framework that combines corpus retrieval and long-context inference into a single mechanism. It uses internal representations of a frozen LLM to encode chunks and generate retrieval queries, adding fewer than 500K trainable parameters while outperforming existing systems on multiple benchmarks.

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PublishedOctober 6, 2026Edan Kinderman, Elad Hoffer, Yochai Blau
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UNREAL provides an efficient way to handle both large-scale corpus retrieval and long-context inference tasks with a single model, reducing computational costs and improving performance.

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