Mobility Compass

Discover mobility and transportation research. Find experts, partners, networks.

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The Mobility Compass is an open tool for improving networking and interdisciplinary exchange within mobility and transport research. It enables cross-database search for cooperation and network partners and discovering of the research landscape.

The dashboard provides detailed information about the selected scientist, e.g. publications. The dashboard can be filtered and shows the relationship to co-authors in different diagrams. In addition, a link is provided to find contact information.

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Topics

  • railway train
  • calibration
  • braking
  • data
  • case study
  • industry
  • driver
  • algorithm
  • estimate
  • Statistic
  • estimating
  • timetable scheduling
  • filter
  • railway traffic
  • law
  • resistance
  • traffic simulation
  • brake
  • timetable
  • equation
  • automatic train operation
  • train operation
  • calculator
  • speed measurement
  • urban travel
  • public transport
  • automobile
  • road
  • survey
  • bicycle
  • behavior
  • urban area
  • modal split
  • cyclist
  • stated preference
  • multinomial logit
  • mobility service
  • electric vehicle
  • assessment
  • cladding
  • climate change
  • propulsion
  • contaminant
  • passenger
  • carbon
  • power train
  • vehicle occupant
  • implementation
  • employed
  • accumulator
  • life cycle analysis
  • gas
  • production
  • environmental impact
  • energy storage system
  • warehousing
  • fuel
  • fuel cell
  • diesel engine
  • traction
  • wind
  • hydrogen
  • passenger service
  • railway network
  • greenhouse gas
  • regional railway
  • electrolysis
  • attention
  • recommendation
  • electromagnetic spectrum
  • state of the art
  • optimisation
  • investment
  • costs
  • electrification
  • constraint
  • bottleneck
  • quality of service
  • hydrogen fuel
  • modeling
  • simulation
  • logistics
  • bus
  • tramway
  • printed publicity
  • perception
  • planning
  • travel
  • travel time
  • urban transit
  • shopping
  • recreation
  • work trip
  • automatic vehicle location
  • urban mobility
  • traffic mode
  • age
  • traveller
  • taxicab
  • density
  • bicycling
  • experiment
  • last mile
  • sensitivity
  • taxi service
  • e-bike
  • mode choice
  • land use
  • shared mobility
  • weekday
  • e-scooter
  • mobility concept
  • weekend
  • local public transport
  • E-moped
  • control device
  • noise
  • ion
  • submarine
  • fuel consumption
  • dynamic programming
  • coordination
  • railway station
  • vehicle performance
  • electric train
  • railway undertaking
  • evening
  • machinery
  • learning
  • machine learning
  • fare
  • fare collection
  • comfort
  • weight
  • decision making
  • parking duration
  • design
  • flexibility
  • supporting
  • bicycle parking
  • driving
  • hub
  • urbanisation
  • built environment
  • driver licence
  • on-demand ride service
  • traffic assignment
  • route choice
  • ponding
  • vehicle
  • ridesharing
  • determinant
  • market
  • discount
  • ridesourcing
  • demand responsive transportation
  • ridehailing
  • vehicle fleet
  • infrastructure
  • stakeholder
  • supervision
  • automation
  • vehicle characteristic
  • rural area
  • crash
  • pedestrian
  • traffic safety
  • positioning
  • face
  • crosswalk
  • alignment
  • abstract
  • operations research
  • computer science
  • city
  • agent-based modeling
  • automotive engineering
  • architecture
  • trip length
  • technological innovation
  • waiting time
  • door to door service
  • mechanical engineering
  • mining
  • data mining
  • management science
  • information system
  • cluster analysis
  • indicating instrument
  • database
  • smartphone
  • bus driver
  • transit operating agency
  • bus line
  • legislation
  • urban sprawl
  • repository
  • ridership
  • private enterprise
  • mobility pattern
  • customer
  • ownership
  • mobility-as-a-service
  • autonomous vehicle
  • forecasting
  • traffic behavior
  • meta-analysis
  • autonomous automobile
  • operating speed
  • exhaust gas
  • gasoline
  • electric drive
  • reliability
  • train consist
  • structural engineering
  • transportation engineering
  • departure time
  • smart card
  • choice model
  • buffer
  • transport hub
  • headway
  • crossheading
  • bus route
  • surveillance
  • traffic congestion
  • health
  • air pollution
  • walking
  • data file
  • transit operator
  • benchmark
  • city traffic
  • theory
  • graph
  • operating costs
  • planning method
  • graph theory
  • line planning
  • researcher
  • computer programming
  • urban rail transit
  • dispatcher
  • revenue
  • re-procurement
  • substitute traffic
  • morning
  • sensor
  • transport demand
  • mobile communication
  • data fusion
  • transport market
  • market share
  • ecosystem
  • travel pattern
  • variable
  • autonomous driving
  • commuting
  • household
  • internet
  • decomposition
  • modal shift
  • uncertainty
  • deviation
  • trip purpose
  • revealed preference
  • competition
  • multi-agent transport simulation
  • performance evaluation
  • itinerary
  • risk analysis
  • price
  • software
  • traffic planning
  • big data
  • level of service
  • civil engineering
  • cost benefit analysis
  • earth science
  • pressure
  • expected value
  • AIDS
  • arrival and departure
  • on time performance
  • scheduling
  • library
  • lowering
  • philosophy
  • intersection
  • seat
  • traffic control
  • traffic control center
  • random variable
  • engineering service
  • layover time
  • crossover
  • impact study
  • crowd
  • running time
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Publications

  • 2023A Literature Review on Train Motion Model Calibrationcitations
  • 2022Real-time train motion parameter estimation using an Unscented Kalman Filter2citations
  • 2022Potential of on-demand services for urban travel5citations
  • 2022Life Cycle Assessment of Alternative Traction Options for Non-Electrified Regional Railway Linescitations
  • 2022Train motion model calibrationcitations
  • 2022Analysis of hydrogen-powered propulsion system alternatives for diesel-electric regional trains1citations
  • 2022Optimal network electrification plan for operation of battery-electric multiple unit regional trainscitations
  • 2022Quantification and control of disruption propagation in multi-level public transport networks3citations
  • 2022Perceived and actual travel times in a multi-modal urban public transport network: comparing survey and AVL datacitations
  • 2022On the scalability of private and pooled on-demand services for urban mobility in Amsterdam2citations
  • 2022Access denied? Digital inequality in transport services18citations
  • 2022Preferences for first and last mile shared mobility between stops and activity locationscitations
  • 2021Reducing fuel consumption and related emissions through optimal sizing of energy storage systems for diesel-electric trains14citations
  • 2021Quantification and control of disruption propagation in multi-level public transport networks2citations
  • 2021Unsupervised approach towards analysing the public transport bunching swings formation phenomenon3citations
  • 2021Insights into factors affecting the combined bicycle-transit mode14citations
  • 2021Travellers’ preferences towards existing and emerging means of first/last mile transport: a case study for the Almere centrum railway station in the Netherlands1citations
  • 2021Perception of overlap in multi-modal urban transit route choice2citations
  • 2021What are the determinants of the willingness to share rides in pooled on-demand services?46citations
  • 2021Fleet size determination for a mixed private and pooled on-demand system with elastic demand4citations
  • 2021Deployment Scenarios for First/Last-Mile Operations With Driverless Shuttles Based on Literature Review and Stakeholder Survey2citations
  • 2021Preferences toward Bus Alternatives in Rural Areas of the Netherlands: A Stated Choice Experiment3citations
  • 2020Tram drivers' perceived safety and driving stress evaluation9citations
  • 2020Integrated route choice and assignment model for fixed and flexible public transport systems20citations
  • 2020Unsupervised approach towards analysing the public transport bunching swings formation phenomenon3citations
  • 2020Impacts of replacing a fixed transit line by a Demand Responsive Transit systemcitations
  • 2020Drivers and barriers in adopting Mobility as a Service (MaaS) – A latent class cluster analysis of attitudes92citations
  • 2020Adoption of Shared Automated Vehicles as Access and Egress Mode of Public Transport2citations
  • 2019Sustainability of Railway Passenger Servicescitations
  • 2019Passenger Travel Time Reliability for Multimodal Public Transport Journeys17citations
  • 2019Where shall we sync? Clustering passenger flows to identify urban public transport hubs and their key synchronization priorities26citations
  • 2019Supporting the Implementation of Headway-Based Holding Strategiescitations
  • 2019Calibrating Route Choice Sets for an Urban Public Transport Network using Smart Card Data2citations
  • 2019Robust Control for Regulating Frequent Bus Service: Supporting the Implementation of Headway-Based Holding Strategiescitations
  • 2018Analysing the trip and user characteristics of the combined bicycle and transit mode40citations
  • 2018Identification and quantification of link vulnerability in multi-level public transport networks: a passenger perspective33citations
  • 2018The Potential of Demand-Responsive Transport as a Complement to Public Transport45citations
  • 2018Passenger-oriented optimization of lines in a mass transit systemcitations
  • 2018Will car users change their mobility patterns with Mobility as a Service (MaaS) and microtransit? – A latent class cluster analysiscitations
  • 2018Assessing and Improving Operational Strategies for the Benefit of Passengers in Rail-Bound Urban Transport Systems4citations
  • 2018The Potential of Demand-Responsive Transport as a Complement to Public Transport: An Assessment Framework and an Empirical Evaluation54citations
  • 2018Identification and quantification of link vulnerability in multi-level public transport networks33citations
  • 2018Improving predictions of public transport usage during disturbances based on smart card data28citations
  • 2017Investigating Potential Transit Ridership by Fusing Smartcard Data and GSM Data12citations
  • 2017A robust transfer inference algorithm for public transport journeys during disruptions19citations
  • 2017Kansen voor het OV: data van gsm en OV-chipkaart combinerencitations
  • 2017Urban Demand Responsive Transport in the Mobility as a Service Ecosystem: Its Role and Potential Market Sharecitations
  • 2017Ridership evaluation and prediction in public transport by processing smart card data: A Dutch approach and examplecitations
  • 2017Flexibility or Uncertainty? Forecasting Modal Shift Towards Demand Responsive Public Transportcitations
  • 2017OV-potentie blijkt uit datafusie GSM en chipkaartcitations
  • 2017Performance Assessment of Fixed and Flexible Public Transport in a Multi Agent Simulation Framework8citations
  • 2017Flexibel vervoer onstuitbaarcitations
  • 2017Krijgt MaaS de auto uit de stad?citations
  • 2017Investigating potential transit ridership by fusing smartcard and global system for mobile communications data12citations
  • 2017Modelling multimodal transit networks integration of bus networks with walking and cycling23citations
  • 2016Betrouwbare OV netwerkencitations
  • 2016Waar liggen kansen voor OVcitations
  • 2016Exposing the role of exposure: Public transport network risk analysis54citations
  • 2016Vervoer op afroep is niet meer te stuitencitations
  • 2016Measuring Passenger Travel Time Reliability using Smartcard Datacitations
  • 2016Short-Term Prediction of Ridership on Public Transport with Smart Card Data39citations
  • 2016Measuring Passenger Travel Time Reliability Using Smart Card Datacitations
  • 2016Incorporating enhanced service reliability of public transport in cost-benefit analyses17citations
  • 2015Uit de wetenschap: OV meten en OV-netwerken meten. Door de redactiecitations
  • 2015Data driven improvements in public transport: the Dutch example29citations
  • 2015Multi-Modal Data Fusion for Big Events [Research News]2citations
  • 2015Improving Public Transport Decision Making, Planning and Operations by Using Big Data: Cases from Sweden and the Netherlands15citations
  • 2015Robuustheid van OV-netwerken meten. Door de redactiecitations
  • 2015Robustness of multi-level public transport networks: A methodology to quantify robustness from a passenger perspectivecitations
  • 2015Robuustheid van multi-level openbaar vervoer netwerkencitations
  • 2015Short-term prediction of ridership on public transport with smart card data40citations
  • 2014Rol van de wetenschap in de mobiliteitssectorcitations
  • 2014Service reliability in a network context: Impacts of synchronizing schedules in long headway services13citations
  • 2014Incorporating service reliability in public transport design and performance requirements: International survey results and recommendations32citations
  • 2014Service Reliability in a Network Context13citations
  • 2012Optimizing public transport planning and operations using automatic vehicle location data: The Dutch examplecitations
  • 2012The impact of scheduling on service reliability: Trip-time determination and holding points in long-headway services32citations
  • 2010Rail transit network design supported by an open source simulation library: Towards reliability improvementcitations
  • 2010Line Length versus Operational Reliability9citations
  • 2010Control of Public Transportation Operations to Improve Reliability9citations
  • 2010Impact of Rail Terminal Design on Transit Service Reliability8citations
  • 2010Reliability Improvement in Short Headway Transit Services40citations
  • 2009Service reliability: A key factorcitations
  • 2009Control of public transportation operations to improve reliability: Theory and practice9citations
  • 2009On-time vehicles at RandstadRailcitations
  • 2009Line length versus operational reliability: Network design dilemma in Urban public transportation9citations
  • 2009Regularity analysis for optimizing urban transit network design38citations
  • 2009Reliability assessment of urban rail transit networks; methodology and case studycitations
  • 2008Using a rail simulation library to assess impacts of transit network planning on operational quality7citations
  • 2008The role of infrastructures on public transport service reliability8citations

Places of action

Chart of shared publication
Besinovic, Nikola
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Co-Authors (by relevance)

  • Besinovic, Nikola
  • Cunillera, Alex
  • Goverde, Rob M. P.
  • Lentink, Ramon M.
  • Cunillera Pérez, A.
  • Van Oort, N.
  • Hoogendoorn-Lanser, Sascha
  • Geržinič, Nejc
  • Cats, Oded
  • Hoogendoorn, Serge Paul
  • Nunez, Alfredo
  • Kapetanovic, Marko
  • Lentink, Ramon
  • Törnquist Krasemann, Johanna
  • Yap, Menno D
  • Dixit, Malvika
  • Brands, T.
  • Zúñiga, Edgard
  • Narayan, Jishnu
  • Durand, A. L. M.
  • Zijlstra, Toon
  • Arem, Bart Van
  • Kuijk, Roy Van
  • Correia, G Homem De Almeida Rodriguez
  • Heydenrijk-ottens, L. J. C.
  • Luo, Ding
  • Van Lint, H. W. C.
  • Degeler, Viktoriya
  • Annema, Jan Anne
  • Van Der Spek, Stefan Christiaan
  • Van Strijp-harms, Hilke J.
  • Stam, Bas
  • Brands, Ties
  • Alonso-González, María J.
  • Van Binsbergen, A. J.
  • Binsbergen, Arjan Van
  • Zubin, Irene
  • Bronsvoort, Kristel
  • Molin, Eric J. E.
  • Alonso-gonzález, María
  • Farah, Haneen
  • Hagenzieker, Marjan P.
  • Tzouras, Panagiotis G.
  • Papadimitriou, Eleonara
  • Coutinho, Felipe Mariz
  • Christoforou, Zoi
  • Cats, O.
  • Luo, D.
  • Hoogendoorn, S.
  • Yap, M.
  • Werff, Ellen Van Der
  • Shelat, Sanmay
  • Huisman, Raymond
  • Nes, Rob Van
  • Liu, Theo
  • Rodriguez, Joaquin
  • Brethomé, Lucile
  • Chevrier, Remy
  • Harms, Lucas
  • Liu, T. L. K.
  • Nijenstein, S.
  • Regt, Karin De
  • De Regt, K. L.
  • González, María Alonso
  • De Romph, E.
  • Regt, K. De
  • Jishnu, Narayan S.
  • Nair, Jishnu Sreekantan
  • De Regt, K.
  • Van Lint, H.
  • Schalkwijk, B.
  • Brand, J.
  • Leeuwen, R. Van
  • Hickman, M.
  • Bagherian, Mehdi
  • Romph, Erik De
  • Leusden, R Van
  • Sparing, Daniel
  • Hovelynck, S.
  • Daamen, W.
  • Lankhaar, J. W.
  • Papacharalampous, Alexandros E.
  • Yap, Md
  • Wee, Bert Van
  • Van Nes, R.
  • Lee, A.
  • Lee, Aaron
  • Sparing, D.
  • Boterman, J. W.
  • Verbraeck, Alexander
  • Huang, Yilin
  • Veldhoen, H
  • Wilson, Nigel H. M.
  • Tahmasseby, S.
  • Kanacilo, E. M.

article

Improving predictions of public transport usage during disturbances based on smart card data

  • Oort, Neils Van
  • Nijenstein, S.
  • Yap, Menno D
Abstract

The availability of smart card data from public transport travelling the last decades allows analyzing current and predicting future public transport usage. Public transport models are commonly applied to predict ridership due to structural network changes, using a calibrated parameter set. Predicting the impact of planned disturbances, like temporary track closures, on public transport ridership is however an unexplored area. In the Netherlands, this area becomes increasingly important, given the many track closures operators are confronted with the last and upcoming years. We investigated the passenger impact of four planned disturbances on the public transport network of The Hague, the Netherlands, by comparing predicted and realized public transport ridership using smart card data. A three-step search procedure is applied to find a parameter set resulting in higher prediction accuracy. We found that in-vehicle time in rail-replacing bus services is perceived ≈1.1 times more negatively compared to in-vehicle time perception in the initial tram line. Waiting time for temporary rail-replacement bus services is found to be perceived ≈1.3 times higher, compared to waiting time perception for regular tram and bus services. Besides, passengers do not seem to perceive the theoretical benefit of the usually higher frequency of rail-replacement bus services compared to the frequency of the replaced tram line. For the different case studies, the new parameter set results in 3% up to 13% higher prediction accuracy compared to the default parameter set. It supports public transport operators to better predict the required supply of rail-replacement services and to predict the impact on their revenues. ; Transport and Planning

Topics
  • perception
  • data
  • public transport
  • forecasting
  • passenger
  • vehicle occupant
  • bus
  • smart card
  • revenue
  • tramway
  • bus line
  • re-procurement
  • transit operator
  • ridership
  • waiting time
  • substitute traffic

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