Retrieval-Augmented Generation (RAG) is defined as?
A.
Combining LLMs with private knowledge bases to improve their outputs.
B.
Reducing computational processing requirements of the LLMs.
C.
Applying advanced filtering techniques to the LLMs.
D.
Fine tuning LLMs to minimize biased outputs.
The Answer Is:
A
This question includes an explanation.
Explanation:
Retrieval-Augmented Generation (RAG)enhances Large Language Models (LLMs) by integratingexternal, up-to-date, or proprietary informationinto the generation pipeline—allowing the model tofetch relevant factsfrom a trusted knowledge source at query time.
Though RAG is not defined directly in the IAPP documents, it is a widely recognized technique in AI governance for ensuringmore accurate and contextually grounded outputs, especially inregulated or high-stakes environmentswhere hallucinations are a concern.
B, C, and Ddescribe optimization or bias mitigation—not the core function of RAG.
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