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How to Model the Effect of Gradient on Bicycle Traffic in Microscopic Traffic Simulation
Statens väg- och transportforskningsinstitut, Samhälle, miljö och transporter, SAMT, Trafikanalys och logistik, TAL. Linköping University, Sweden.ORCID-id: 0000-0001-8488-0540
Statens väg- och transportforskningsinstitut, Samhälle, miljö och transporter, SAMT, Trafikanalys och logistik, TAL.ORCID-id: 0000-0002-1948-1858
Statens väg- och transportforskningsinstitut, Samhälle, miljö och transporter, SAMT, Trafikanalys och logistik, TAL. The Swedish National Road and Transport Research Institute (VTI), Linköping, Sweden;Division for Communication and Transport Systems, Linköping University, Norrköping, Sweden.ORCID-id: 0000-0002-0336-6943
2022 (engelsk)Inngår i: Transportation Research Record, ISSN 0361-1981, E-ISSN 2169-4052, Vol. 2676, s. 609-620Artikkel i tidsskrift (Fagfellevurdert) Published
Abstract [en]

Microscopic traffic simulation is a useful tool for the planning of motorized traffic, yet bicycle traffic still lacks this type of modeling support. Nonetheless, certain microscopic traffic simulators, such as Vissim, model bicycle traffic by applying models originally designed for car traffic. The gradient of a bicycle path has a significant impact on the speed of cyclists; therefore, this impact should be captured in microscopic traffic simulation. We investigate two calibration approaches to reproduce the effect of gradient on the speed of cyclists using the default driver behavioral model in Vissim. The first approach is to modify the simulated gradient to represent different values of the gradient-acceleration parameter: a fixed value that represents a decrease in the maximum acceleration that cyclists can apply on an uphill. The second approach is to adjust the maximum-acceleration function. We evaluate both approaches by applying a Vissim model of a bidirectional bicycle path with a 3% gradient in Stockholm. The results show that the current default implementation in the Vissim model underestimates the effect of gradient on speed. Moreover, the gradient-acceleration parameter does not directly reduce the maximum acceleration of all cyclists, but only of those cyclists riding above a certain speed. We conclude that by using a higher gradient-acceleration value than the default, we accurately estimate the observed mean speed on the uphill. However, neither of the investigated calibration approaches provides accurate estimates of the speed distributions. We emphasize the need for developing more accurate behavioral models designed for cyclists.

sted, utgiver, år, opplag, sider
Sage Publications, 2022. Vol. 2676, s. 609-620
HSV kategori
Identifikatorer
URN: urn:nbn:se:vti:diva-19013DOI: 10.1177/03611981221094300ISI: 000810319600001Scopus ID: 2-s2.0-85141781490OAI: oai:DiVA.org:vti-19013DiVA, id: diva2:1698817
Tilgjengelig fra: 2022-09-26 Laget: 2022-09-26 Sist oppdatert: 2026-02-24bibliografisk kontrollert
Inngår i avhandling
1. Towards microscopic models for bicycle traffic simulation
Åpne denne publikasjonen i ny fane eller vindu >>Towards microscopic models for bicycle traffic simulation
2023 (engelsk)Licentiatavhandling, med artikler (Annet vitenskapelig)
Abstract [en]

As bicycling becomes an integral part of sustainable mobility, it becomes essential to enhance planning strategies that ensure bicycling as an efficient mode of transport. While traffic simulation has been extensively utilized for traffic planning of various modes of transport, this type of modeling support is largely lacking in the planning of bicycle traffic.

Given the high heterogeneity in the characteristics of bicyclists, the use of microscopic traffic simulation, which incorporates the explicit inclusion of individual properties and preferences, becomes particularly useful for evaluating bicycle traffic performance.

By examining real-world traffic, the objective of this thesis is to investigate essential requirements for microscopic modeling and simulation of bicycle traffic on off-street bicycle path segments, and to further develop and evaluate modeling approaches suitable for bicycle traffic. Understanding the fundamentals of how bicyclists interact with the infrastructure and other bicyclists is a necessary step towards accurate simulation of bicycle traffic.

In this thesis, research gaps related to the evaluation of bicycle traffic performance and simulation are identified, and methods to validate bicycling data are proposed to determine its quality and suitability for traffic analysis. Furthermore, two distinct modeling approaches are investigated to simulate the impact of gradients in bicycle traffic. The first involves calibrating a car-based model using a widely-used microscopic traffic simulation software, and the second implements a power-based model rooted in the physical forces acting on a bicycle. Lastly, characteristics of bicycle traffic that are relevant for simulating bidirectional traffic are identified and described.

The work in this thesis offers a starting point towards enhanced microscopic bicycle traffic simulation that effectively assist the planning of efficient bicycle traffic.

sted, utgiver, år, opplag, sider
Linköping: Linköping University Electronic Press, 2023. s. 69
HSV kategori
Identifikatorer
urn:nbn:se:vti:diva-19829 (URN)10.3384/9789180752497 (DOI)9789180752480 (ISBN)9789180752497 (ISBN)
Presentation
2023-08-24, K3, Kåkenhus, Campus Norrköping, 09:15 (engelsk)
Opponent
Veileder
Forskningsfinansiär
Swedish Transport Administration, 2019/84465
Tilgjengelig fra: 2023-08-15 Laget: 2023-08-15 Sist oppdatert: 2025-09-11bibliografisk kontrollert
2. Microscopic simulation of bicycle traffic: Analysis and modeling of heterogeneity and free riding on bicycle paths
Åpne denne publikasjonen i ny fane eller vindu >>Microscopic simulation of bicycle traffic: Analysis and modeling of heterogeneity and free riding on bicycle paths
2026 (engelsk)Doktoravhandling, med artikler (Annet vitenskapelig)
Abstract [en]

As bicycling becomes an integral part of sustainable mobility, reliable planning tools are essential to ensure bicycling as an efficient mode of transport. The growing bicycle demand requires not only expanding infrastructure, but also ensuring that such infrastructure supports well-functioning traffic under high demands. Given the high heterogeneity in bicyclist characteristics, the use of microscopic traffic simulation, which explicitly considers individual properties and preferences, becomes particularly useful for evaluating bicycle traffic performance. While traffic simulation has been extensively utilized for traffic planning of various modes of transport, this type of modeling support is largely lacking in the planning of bicycle traffic. Although most commercial simulators allow multi-modal traffic analysis, bicycle traffic is often modeled by adjusting parameters in models originally designed for other modes, even though bicyclists may exhibit distinct characteristics and behaviors. Consequently, the proper inclusion of bicyclists into various traffic simulation analyses is difficult, and often inaccurate. The objective of this thesis is to develop and evaluate mathematical models for accurate microscopic simulation of bicycle traffic, with a focus on developing empirically well-founded models that capture the heterogeneity in bicyclists’ characteristics and preferences, as well as their interactions with the built environment and with each other. The thesis delivers an empirical characterization of bicycle traffic in diverse contexts, describing the heterogeneity in characteristics and preferences of bicyclists—including disaggregated analyses by bicycle type— that potentially influence traffic performance. Methods for processing and validating bicycling data are developed to support this characterization. Furthermore, the thesis demonstrates that bicyclist speeds are highly context-dependent and proposes simulation models for context-related features of bicycling trips, such as topography, curvature, and wind, that integrate heterogeneous and adaptive free riding behavior to improve the accuracy of simulated speeds and the reliability of bicycle traffic simulations. This thesis advances the accuracy and applicability of microscopic simulation of bicycle traffic for its use in the planning of well-functioning bicycle traffic.

Abstract [sv]

Cykling är en viktig del av hållbar mobilitet, men för att säkerställa cykling som ett effektivt transportslag krävs pålitliga verktyg för planering och beslut. Den växande efterfrågan på cykling kräver inte bara utbyggd infrastruktur, utan också att infrastrukturen möjliggör välfungerande trafik vid höga belastningar. Givet den stora variationen i cyklisters egenskaper blir mikroskopisk trafiksimulering, som tar hänsyn till individuella egenskaper och preferenser, särskilt användbar för att utvärdera cykeltrafikens framkomlighet. Samtidigt som trafiksimulering länge har använts inom planering för olika transportslag saknas denna typ av verktyg i stor utsträckning för cykeltrafik. Även om de flesta kommersiella simulatorer kan analysera flera trafikslag modelleras cyklister ofta genom att justera parametrar i modeller som ursprungligen designades för andra transportslag, trots att cyklister ofta upp-visar unika egenskaper och beteenden. Det gör det svårt att få korrekta resultat när man simulerar cykeltrafik. Syftet med denna avhandling är att utveckla och utvärdera matematiska modeller för noggrann mikroskopisk simulering av cykeltrafik, med fokus på modeller som fångar egenskaper och preferenser hos cyklister, liksom deras interaktioner med infrastrukturen och med varandra. Avhandlingen beskriver cykeltrafik i olika sammanhang, inklusive hur egenskaper och preferenser varierar mellan olika cykeltyper, vilket kan på-verka trafikens framkomlighet. Detta baseras på metoder för bearbetning och validering av cykeldata som utvecklades i avhandlingen. Vidare föreslår avhandlingen simuleringsmodeller för hur olika förhållanden på en cykeltur påverkar cyklister, såsom lutningar, kurvor, och vind. Modellerna tar hänsyn till att cyklister är olika och anpassar sig till förhållandena, vilket förbättrar noggrannheten och tillförlitligheten i simuleringarna. Denna avhandling bidrar till ökad användbarhet hos mikroskopisk simulering av cykeltrafik för att planera välfungerande cykeltrafik.

sted, utgiver, år, opplag, sider
Linköping: Linköping University Electronic Press, 2026. s. 67
Serie
Linköping studies in science and technology, ISSN 0345-7524 ; 2494
HSV kategori
Identifikatorer
urn:nbn:se:vti:diva-22537 (URN)10.3384/9789181183627 (DOI)9789181183610 (ISBN)9789181183627 (ISBN)
Disputas
2026-03-13, K3 Önnesjösalen, Kåkenhus, Campus Norrköping, 09:15 (engelsk)
Opponent
Veileder
Forskningsfinansiär
Swedish Transport Administration
Merknad

Research funding also provided by the Centre for Traffic Research (CTR).

Tilgjengelig fra: 2026-02-24 Laget: 2026-02-24 Sist oppdatert: 2026-02-24bibliografisk kontrollert

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