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RAG

Retrieval-Augmented Generation (RAG) is a task that combines the strengths of both retrieval-based models and generation-based models. In this approach, a retrieval system selects relevant documents or passages from a large corpus, and a generation model, typically a neural language model, uses the retrieved information to generate a response. This method enhances the accuracy and coherence of generated text, especially in tasks requiring detailed knowledge or long context handling.

RAG is particularly useful in open-domain question answering, knowledge-grounded dialogue, and summarization tasks. The retrieval step helps the model to access and incorporate external information, making it less reliant on memorized knowledge and better suited for generating responses based on the latest or domain-specific information.

The performance of RAG systems is usually measured using metrics such as precision, recall, F1 score, BLEU score, and exact match. Some popular datasets for evaluating RAG models include Natural Questions, MS MARCO, TriviaQA, and SQuAD.

Papers

Showing 691700 of 2111 papers

TitleStatusHype
From RAG to Memory: Non-Parametric Continual Learning for Large Language ModelsCode7
Benchmarking Multimodal RAG through a Chart-based Document Question-Answering Generation FrameworkCode0
On the Influence of Context Size and Model Choice in Retrieval-Augmented Generation SystemsCode0
FIND: Fine-grained Information Density Guided Adaptive Retrieval-Augmented Generation for Disease Diagnosis0
PaperHelper: Knowledge-Based LLM QA Paper Reading Assistant0
WavRAG: Audio-Integrated Retrieval Augmented Generation for Spoken Dialogue Models0
Towards Adaptive Memory-Based Optimization for Enhanced Retrieval-Augmented Generation0
Towards Context-Robust LLMs: A Gated Representation Fine-tuning Approach0
Personalized Education with Generative AI and Digital Twins: VR, RAG, and Zero-Shot Sentiment Analysis for Industry 4.0 Workforce Development0
RAG-Gym: Optimizing Reasoning and Search Agents with Process Supervision0
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