Please use this identifier to cite or link to this item: http://hdl.handle.net/10071/36913
Author(s): Barros, J.
Turner, C.
Date: 2026
Title: Network algorithm to model automotive supply chain structure
Journal title: Archiwum Motoryzacji
Volume: 111
Number: 1
Pages: 5 - 25
Reference: Barros, J., & Turner, C. (2026). Network algorithm to model automotive supply chain structure. Archiwum Motoryzacji, 111(1), 5-25. https://doi.org/10.14669/AM/214254
ISSN: 2084-476X
DOI (Digital Object Identifier): 10.14669/AM/214254
Keywords: Graph theory
Networks
Supply chain management
Automotive industry
Structural analysis
Abstract: A network algorithm that models the structure of automotive supply chains, compiled from a proprietary database, is presented. An initial structural analysis was conducted using key performance indicators, including average path length, clustering coefficient, and degree distribution, to assess network configurations. The networks were then partitioned into subnetworks, with an emphasis on reflecting the operational dynamics of supply chain activities. Regression analysis was applied to each subnetwork, using the number of vertices as the independent variable, to develop an algorithm for generating synthetic networks. These synthetic constructs serve as benchmarks for the automotive sector and have shown a strong average correlation (0.94) with the structure of actual supply networks. This methodological contribution provides tools for analysing and optimising supply chain structures that underpin automotive engineering and manufacturing, ensuring robustness and efficiency in vehicle production systems. The prevalence of tree-like structures within supply networks challenge conventional beliefs regarding the complexity of automotive supply chains and prompts further investigation into the determinants of their resilience.
Peerreviewed: yes
Access type: Open Access
Appears in Collections:ISTAR-RI - Artigos em revistas científicas internacionais com arbitragem científica

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