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Data-driven and production-oriented tendering design using artificial intelligence

 Data-driven and production-oriented tendering design using artificial intelligence
Autor(en): , , , ,
Beitrag für IABSE Symposium: Construction’s Role for a World in Emergency, Manchester, United Kingdom, 10-14 April 2024, veröffentlicht in , S. 107-114
DOI: 10.2749/manchester.2024.0107
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Construction projects are facing an increase in requirements, making requirement management labour intense. Therefore, this research project explores possibilities to automate the requirement analy...
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Bibliografische Angaben

Autor(en): (Chalmers University of Technology, Gothenburg, Sweden)
(Chalmers University of Technology, Gothenburg, Sweden)
(Chalmers University of Technology, Gothenburg, Sweden)
(NCC Sweden AB, Malmoe, Sweden)
(University of Gothenburg, Gothenburg, Sweden)
Medium: Tagungsbeitrag
Sprache(n): Englisch
Tagung: IABSE Symposium: Construction’s Role for a World in Emergency, Manchester, United Kingdom, 10-14 April 2024
Veröffentlicht in:
Seite(n): 107-114 Anzahl der Seiten (im PDF): 8
Seite(n): 107-114
Anzahl der Seiten (im PDF): 8
DOI: 10.2749/manchester.2024.0107
Abstrakt:

Construction projects are facing an increase in requirements, making requirement management labour intense. Therefore, this research project explores possibilities to automate the requirement analysis in the bidding phase and link these requirements to verifications in the production phase. The first part of the research targets the requirement analysis and applies natural language processing techniques for automation possibilities. The second part of the research explores production data as a data-driven verification method and how the data can be used in knowledge feedback loops. The results show that applying natural language processing techniques for analysing construction project requirements is a possible step towards systematic requirements management. Furthermore, production data can be used as a knowledge base for quality improvement in construction companies.

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