When Large Language Models Meet Vector Databases: A Survey
Когда большие языковые модели встречаются с векторными базами данных: обзор
2025-02-03
SCID: 54.1/7yeebb9r
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LLM hallucinationsLarge Language ModelsVector Databaseshigh-dimensional vector representationsretrieval-augmented LLMs
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Abstract (AI)
This survey explores the synergistic potential of Large Language Models (LLMs) and Vector Databases (VecDBs), a burgeoning but rapidly evolving research area. With the proliferation of LLMs comes a host of challenges, including hallucinations, outdated knowledge, prohibitive commercial application costs, and memory issues. VecDBs emerge as a compelling solution to these issues by offering an efficient means to store, retrieve, and manage the high-dimensional vector representations intrinsic to LLM operations. Through this nuanced review, we delineate the foundational principles of LLMs and VecDBs and critically analyze their integration’s impact on enhancing LLM functionalities. This discourse extends into a discussion on the speculative future developments in this domain, aiming to catalyze further research into optimizing the confluence of LLMs and VecDBs for advanced data handling and knowledge extraction capabilities.
Key Findings
1
Integrating VecDBs with LLMs can mitigate LLM challenges such as hallucinations, outdated knowledge, high application costs, and memory issues.
2
The field of combining LLMs and VecDBs is rapidly evolving and the paper discusses speculative future developments to guide further research.
3
The survey delineates foundational principles of LLMs and VecDBs and critically analyzes how their integration enhances LLM functionalities.
4
Vector databases (VecDBs) provide an efficient way to store, retrieve, and manage high-dimensional vector representations used by LLMs.
Research Object
Integration of Large Language Models (LLMs) with Vector Databases (VecDBs)
Research Subject
The impact of this integration on LLM functionality, specifically addressing storage/retrieval/management of high-dimensional vector representations to mitigate hallucinations, outdated knowledge, cost and memory issues and to enhance data handling and knowledge extraction
Publication Details
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2025-02-03
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