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Computer Science > Computation and Language

Title: Imagination Augmented Generation: Learning to Imagine Richer Context for Question Answering over Large Language Models

Abstract: Retrieval-Augmented-Generation and Gener-ation-Augmented-Generation have been proposed to enhance the knowledge required for question answering over Large Language Models (LLMs). However, the former depends on external resources, and both require incorporating the explicit documents into the context, which results in longer contexts that lead to more resource consumption. Recent works indicate that LLMs have modeled rich knowledge, albeit not effectively triggered or activated. Inspired by this, we propose a novel knowledge-augmented framework, Imagination-Augmented-Generation (IAG), which simulates the human capacity to compensate for knowledge deficits while answering questions solely through imagination, without relying on external resources. Guided by IAG, we propose an imagine richer context method for question answering (IMcQA), which obtains richer context through the following two modules: explicit imagination by generating a short dummy document with long context compress and implicit imagination with HyperNetwork for generating adapter weights. Experimental results on three datasets demonstrate that IMcQA exhibits significant advantages in both open-domain and closed-book settings, as well as in both in-distribution performance and out-of-distribution generalizations. Our code will be available at this https URL
Subjects: Computation and Language (cs.CL)
Cite as: arXiv:2403.15268 [cs.CL]
  (or arXiv:2403.15268v2 [cs.CL] for this version)

Submission history

From: Huanxuan Liao [view email]
[v1] Fri, 22 Mar 2024 15:06:45 GMT (764kb,D)
[v2] Thu, 28 Mar 2024 16:28:24 GMT (764kb,D)

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