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contributor authorLi, Yunqing
contributor authorKo, Hyunwoong
contributor authorAmeri, Farhad
date accessioned2025-04-21T10:37:45Z
date available2025-04-21T10:37:45Z
date copyright1/10/2025 12:00:00 AM
date issued2025
identifier issn1530-9827
identifier otherjcise_25_2_021010.pdf
identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4306581
description abstractAs supply chain complexity and dynamism challenge traditional management approaches, integrating large language models (LLMs) and knowledge graphs (KGs) emerges as a promising method for advancing supply chain analytics. This article presents a methodology crafted to harness the synergies between LLMs and KGs, with a particular focus on enhancing supplier discovery practices. The primary goal is to transform and integrate a vast body of unstructured supplier capability data into a harmonized KG, thus improving the supplier discovery process and enhancing the accessibility and findability of manufacturing suppliers. Through an ontology-driven graph construction process, the presented methodology integrates KGs and retrieval-augmented generation with advanced LLM-based natural language processing techniques. With the aid of a detailed case study, we showcase how this integrated approach not only enhances the quality of answers and increases visibility for small- and medium-sized manufacturers but also amplifies agility and provides strategic insights into supply chain management.
publisherThe American Society of Mechanical Engineers (ASME)
titleIntegrating Graph Retrieval-Augmented Generation With Large Language Models for Supplier Discovery
typeJournal Paper
journal volume25
journal issue2
journal titleJournal of Computing and Information Science in Engineering
identifier doi10.1115/1.4067389
journal fristpage21010-1
journal lastpage21010-12
page12
treeJournal of Computing and Information Science in Engineering:;2025:;volume( 025 ):;issue: 002
contenttypeFulltext


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