Papers › Studying Large Language Model Behaviors Under Context-Memory Conflicts With Real Documents

Studying Large Language Model Behaviors Under Context-Memory Conflicts With Real Documents

24 Apr 2024arXiv:2404.16032archive 2025-07-28

Evgenii Kortukov, Alexander Rubinstein, Elisa Nguyen, Seong Joon Oh

Retrieval-augmented generation (RAG) mitigates many problems of fully parametric language models, such as temporal degradation, hallucinations, and lack of grounding. In RAG, the model's knowledge can be updated from documents provided in context. This leads to cases of conflict between the model's parametric knowledge and the contextual information, where the model may not always update its knowledge. Previous work studied context-memory knowledge conflicts by creating synthetic documents that contradict the model's correct parametric answers. We present a framework for studying such knowledge conflicts in a realistic setup. We update incorrect parametric knowledge using real conflicting documents. This reflects how knowledge conflicts arise in practice. In this realistic scenario, we find that knowledge updates fail less often than previously reported. In cases where the models still fail to update their answers, we find a parametric bias: the incorrect parametric answer appearing in context makes the knowledge update likelier to fail. These results suggest that the factual parametric knowledge of LLMs can negatively influence their reading abilities and behaviors. Our code is available at https://github.com/kortukov/realistic_knowledge_conflicts/ .

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binomial_hypothesis_test kortukov/realistic_knowledge_conflicts/src/analysis.py official repository ran fingerprinted no licence file found · pointer only · fc0c747bcbe5fd87 · report
generate_one_token kortukov/realistic_knowledge_conflicts/src/model_utils.py official repository ran no licence file found · pointer only · 76a7c3a7422712b8 · report
load_csv_dataset kortukov/realistic_knowledge_conflicts/src/file_utils.py official repository ran no licence file found · pointer only · d46b4839f99ce1b8 · report
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Tasks

Language ModelingLanguage ModellingLarge Language ModelRAGRetrieval-augmented Generation

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AdamAttentionAttention DropoutBARTBERTBPEDense ConnectionsDropoutLayer NormalizationLinear LayerLinear Warmup With Linear DecayMulti-Head AttentionRAGResidual ConnectionSoftmaxWeight DecayWordPiece

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