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RAG and RAU: A Survey on Retrieval-Augmented Language Model in Natural Language Processing

Papers Read on AI

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Evaluation Models and Limitations of Retrieval-Augmented Language Models

This chapter delves into evaluation models used in Retrieval-Augmented Language Models (RALMs), focusing on faithfulness, relevance, and robustness assessments. It discusses limitations such as poor robustness, low quality of retrieval results, overspending, and limited applications. Future prospects are also explored, including enhancing performance through methods like Gradient Guided Prompt Perturbation and reducing overhead costs with plug-and-play modules.

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