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Improving RAG/CAG Based Additional Context Retrieval from Datasets Implementations via Pokémon-themed AI Chatbot

Yeriel Rhee et al · LibraryPress@UF · 2026

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Retrieval-Augmented Generation (RAG) is a commonly used, cost-effective solution for supplementing domain-focused knowledge for Large Language Models (LLMs), but contemporary RAG implementations often suffer from inconsistent accuracy and performance due to retrieval quality and context integration. In this study, a Pokémon dataset is used as a benchmark to evaluate the performance and factual accuracy of responses across a variety of model types, with the aim of identifying the most effective solution for information retrieval from a structured dataset.

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APA 7

al, Y. R. E. (2026). Improving RAG/CAG Based Additional Context Retrieval from Datasets Implementations via Pokémon-themed AI Chatbot. https://journals.flvc.org/FLAIRS/article/view/141854

MLA

al, Yeriel Rhee et. "Improving RAG/CAG Based Additional Context Retrieval from Datasets Implementations via Pokémon-themed AI Chatbot." 2026. https://journals.flvc.org/FLAIRS/article/view/141854.

Chicago

al, Yeriel Rhee et. 2026. "Improving RAG/CAG Based Additional Context Retrieval from Datasets Implementations via Pokémon-themed AI Chatbot.". https://journals.flvc.org/FLAIRS/article/view/141854.

Harvard

al, Y. R. E. 2026, Improving RAG/CAG Based Additional Context Retrieval from Datasets Implementations via Pokémon-themed AI Chatbot, LibraryPress@UF, available at: https://journals.flvc.org/FLAIRS/article/view/141854 [Accessed 8 Aug. 2026].

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Title
Improving RAG/CAG Based Additional Context Retrieval from Datasets Implementations via Pokémon-themed AI Chatbot
Author / contributors
Yeriel Rhee et al
Publisher
LibraryPress@UF
Publication year
2026
ISSN
2334-0754
ISSN
2334-0754
Language
English

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