Cohesive urban bicycle infrastructure design through optimal transport routing in multilayer networks
- Alessandro Lonardi,
- ,
- Caterina De Bacco
- Max Planck Institute for Intelligent Systems,
- ,
- ,
Research Output:
Journal Article or Conference Article in Journal
Journal article
Peer-reviewOpen access
Publication Information
Output type
Research Output:
Journal Article or Conference Article in Journal
Journal article
Peer-reviewOriginal language
EnglishArticle number
20240532Pages from-to (Number of pages)
Pages 1-12 (12 pages)Journal (Volume, Issue Number)
Journal of the Royal Society. Interface (Volume 22, Issue 223)Publication milestones
- Published - 05/02/2025
Publication status
Published - 05/02/2025
ISSN
1742-5689Publication IDs
- Scopus: 85217210652
Abstract
Bicycle infrastructure networks must meet the needs of cyclists to position cycling as a viable transportation choice in cities. In particular, protected infrastructure should be planned cohesively for the whole city and spacious enough to accommodate all cyclists safely and prevent cyclist congestion—a common problem in cycling cities like Copenhagen. Here, we devise an adaptive method for optimal bicycle network design and for evaluating congestion criticalities on bicycle paths. The method goes beyond static network measures, using computationally efficient adaptation rules inspired by optimal transport on the dynamically updating multilayer network of roads and protected bicycle lanes. Street capacities and cyclist flows reciprocally control each other to optimally accommodate cyclists on streets with one control parameter that dictates the preference of bicycle infrastructure over roads. Applying our method to Copenhagen confirms that the city’s bicycle network is generally well-developed. However, we are able to identify the network’s bottlenecks, and we find, at a finer scale, disparities in network accessibility and criticalities between different neighbourhoods. Our model and results are generalizable beyond this particular case study to serve as a scalable and versatile tool for aiding urban planners in designing cycling-friendly cities.
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Citations
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Captures
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Funding Details
The authors thank the International Max Planck Research School for Intelligent Systems (IMPRS-IS) for supporting A.L. M.S. acknowledges funding from EU Horizon Project JUST STREETS (Grant ID: 101104240) and from The Danish Ministry of Transport (Grant ID: CP21-033). All map data from OpenStreetMap.
FundersFunding numbers
NaDanBi
CP21-033
JUST STREETS
101104240
