Papers › KBLaM: Knowledge Base augmented Language Model

KBLaM: Knowledge Base augmented Language Model

14 Oct 2024arXiv:2410.10450archive 2025-07-28

Xi Wang, Liana Mikaelyan, Taketomo Isazawa, James Hensman

In this paper, we propose Knowledge Base augmented Language Model (KBLaM), a new method for augmenting Large Language Models (LLMs) with external knowledge. KBLaM works with a knowledge base (KB) constructed from a corpus of documents, transforming each piece of knowledge in the KB into continuous key-value vector pairs via pre-trained sentence encoders with linear adapters and integrating them into pre-trained LLMs via a specialized rectangular attention mechanism. Unlike Retrieval-Augmented Generation, KBLaM eliminates external retrieval modules, and unlike in-context learning, its computational overhead scales linearly with KB size rather than quadratically. Our approach enables integrating a large KB of more than 10K triples into an 8B pre-trained LLM of only 8K context window on one single A100 80GB GPU and allows for dynamic updates without model fine-tuning or retraining. Experiments demonstrate KBLaM's effectiveness in various tasks, including question-answering and open-ended reasoning, while providing interpretable insights into its use of the augmented knowledge.

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microsoft/KBLaM officialmentioned on GitHubpytorchMIT report

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repeat_kv microsoft/KBLaM/src/kblam/models/phi3_model.py official repository ran · fixture could not drive it fingerprinted MIT (permissive) · 30d7eec482ebf6b1 · report
apply_rotary_pos_emb microsoft/KBLaM/src/kblam/models/phi3_model.py official repository ran · our draft was wrong MIT (permissive) · bac65c3dafaec040 · report
augment_row microsoft/KBLaM/src/kblam/utils/data_utils.py official repository ran MIT (permissive) · b637ec4d09efd87a · report
flatten_results microsoft/KBLaM/src/kblam/utils/convert.py official repository ran MIT (permissive) · 5ae367d48b7472b4 · report
generate_multi_entity_qa microsoft/KBLaM/src/kblam/utils/data_utils.py official repository ran MIT (permissive) · 1678f5c073a8f27c · report
get_tensor_config microsoft/KBLaM/src/kblam/utils/train_utils.py official repository ran fingerprinted MIT (permissive) · f4e9b9d1039240fe · report
kb_to_embd microsoft/KBLaM/src/kblam/utils/train_utils.py official repository ran MIT (permissive) · 0a99bb4b105d8a29 · report
load_entities microsoft/KBLaM/src/kblam/utils/data_utils.py official repository ran fingerprinted MIT (permissive) · 8449c385fd07972f · report
preprocess_embds microsoft/KBLaM/src/kblam/utils/train_utils.py official repository ran MIT (permissive) · 93e612ddac75f8b5 · report
rotate_half microsoft/KBLaM/src/kblam/models/phi3_model.py official repository ran · our draft was wrong fingerprinted MIT (permissive) · b99eea6376d1e212 · report
get_projector microsoft/KBLaM/src/kblam/kb_encoder.py official repository unverified MIT (permissive) · 334ab7b8c7440f2c · report
softmax microsoft/KBLaM/src/kblam/utils/eval_utils.py official repository unverified MIT (permissive) · aa519f4c344d1787 · report

Tasks

In-Context LearningLanguage ModelingLanguage ModellingQuestion AnsweringRetrievalRetrieval-augmented GenerationSentencemodel

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Methods

AttentionBASESoftmax

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