% Bibliographie — Réseau de transport & mobilité partagée
% Ciblé sur problématique demand/offer-driven + PUDO/hub/ligne

@article{stiglicmitja2015benefits,
  title    = {{The benefits of meeting points in ride-sharing systems}},
  author   = {Stiglic Mitja and  Agatz Niels and  Savelsbergh Martin and  Gradisar Mirko},
  year     = {2015},
  journal  = {Transportation Research Part B: Methodological},
  doi      = {10.1016/j.trb.2015.07.025},
  url      = {https://www.sciencedirect.com/science/article/abs/pii/S0191261515002088},
  keywords = {meeting points, ride-sharing, pickup optimization, driver-rider matching, walking distance}
}

@article{fielbaumandres2021ondemand,
  title    = {{On-demand ridesharing with optimized pick-up and drop-off walking locations}},
  author   = {Fielbaum Andres and  Bai Xiaoshan and  Alonso-Mora Javier},
  year     = {2021},
  journal  = {Transportation Research Part C: Emerging Technologies},
  doi      = {10.1016/j.trc.2021.103061},
  url      = {https://www.sciencedirect.com/science/article/pii/S0968090X21000887},
  keywords = {PUDO optimization, ridesharing, walking distance, ridepooling, on-demand mobility}
}

@article{avodjiulrichmatchi2016meetin,
  title    = {{Meeting points in ridesharing: A privacy-preserving approach}},
  author   = {Aïvodji Ulrich Matchi and  Gambs Sébastien and  Huguet Marie-Jo and  Killijian Marc-Olivier},
  year     = {2016},
  journal  = {Transportation Research Part C: Emerging Technologies},
  doi      = {10.1016/j.trc.2016.09.017},
  url      = {https://www.sciencedirect.com/science/article/abs/pii/S0968090X1630184X},
  keywords = {meeting points, ridesharing, privacy, multimodal routing, secure computation}
}

@article{lixin2018modeling,
  title    = {{Modeling an enhanced ridesharing system with meet points and time windows}},
  author   = {Li Xin and  Hu Sangen and  Fan Wenbo and  Deng Kai},
  year     = {2018},
  journal  = {PLOS ONE},
  doi      = {10.1371/journal.pone.0195927},
  url      = {https://journals.plos.org/plosone/article?id=10.1371%2Fjournal.pone.0195927},
  keywords = {meet points, time windows, ridesharing, Tabu Search, integer programming}
}

@article{lotzecharlotte2022dynamic,
  title    = {{Dynamic stop pooling for flexible and sustainable ride sharing}},
  author   = {Lotze Charlotte and  Marszal Philip and  Schröder Malte and  Timme Marc},
  year     = {2022},
  journal  = {New Journal of Physics},
  doi      = {10.1088/1367-2630/ac47c9},
  url      = {https://iopscience.iop.org/article/10.1088/1367-2630/ac47c9},
  keywords = {stop pooling, ride sharing, walking, sustainability, dynamic stops}
}

@article{araldoandrea2019importance,
  title    = {{On the Importance of demand Consolidation in Mobility on Demand}},
  author   = {Araldo Andrea and  Di Maria Andrea and  Di Stefano Antonella and  Morana Giovanni},
  year     = {2019},
  journal  = {2019 IEEE/ACM 23rd International Symposium on Distributed Simulation and Real Time Applications (DS-RT)},
  doi      = {10.1109/DS-RT47707.2019.8958669},
  url      = {https://arxiv.org/abs/1907.02933},
  keywords = {demand consolidation, mobility on demand, stop density, system capacity, AMoDSim}
}

@article{czioskapaul2017location,
  title    = {{Location- and time-dependent meeting point recommendations for shared interurban rides}},
  author   = {Czioska Paul and  Trifunović Aleksandar and  Dennisen Sophie and  Sester Monika},
  year     = {2017},
  journal  = {Journal of Location Based Services},
  doi      = {10.1080/17489725.2017.1421779},
  url      = {https://arxiv.org/abs/1709.08489},
  keywords = {meeting point recommendation, carpooling, interurban rides, GIS, PUDO location}
}

@article{czioskapaul2019realworld,
  title    = {{Real-world Meeting Points for Shared Demand-Responsive Transportation Systems}},
  author   = {Czioska Paul and  Kutadinata Ronny and  Trifunović Aleksandar and  Winter Stephan and  Sester Monika and  Friedrich Bernhard},
  year     = {2019},
  journal  = {Public Transport},
  doi      = {10.1007/s12469-019-00207-y},
  url      = {https://arxiv.org/abs/1709.08488},
  keywords = {meeting points, demand-responsive transport, clustering, route optimization, shared mobility}
}

@inproceedings{wangjiachuan2022online,
  title    = {{Online Ridesharing with Meeting Points}},
  author   = {Wang Jiachuan and  Cheng Peng and  Zheng Libin and  Chen Lei and  Zhang Wenjie},
  year     = {2022},
  booktitle  = {Proceedings of the VLDB Endowment},
  doi      = {10.14778/3565838.3565849},
  url      = {https://dl.acm.org/doi/10.14778/3565838.3565849},
  keywords = {online ridesharing, meeting points, NP-hard, k-skip cover, dynamic assignment}
}

@article{stiglicmitja2019ridesharing,
  title    = {{A Ride-Sharing Problem with Meeting Points and Return Restrictions}},
  author   = {Stiglic Mitja and  Agatz Niels and  Savelsbergh Martin and  Gradisar Mirko},
  year     = {2019},
  journal  = {Transportation Science},
  doi      = {10.1287/trsc.2018.0832},
  url      = {https://pubsonline.informs.org/doi/10.1287/trsc.2018.0832},
  keywords = {ride-sharing, meeting points, return restrictions, commuter scheduling, integer programming}
}

@article{gurumurthykrishnamurthy2022d,
  title    = {{Dynamic ride-sharing impacts of greater trip demand and aggregation at stops in shared autonomous vehicle systems}},
  author   = {Gurumurthy Krishna Murthy and  Kockelman Kara M.},
  year     = {2022},
  journal  = {Transportation Research Part A: Policy and Practice},
  doi      = {10.1016/j.tra.2022.03.032},
  url      = {https://www.sciencedirect.com/science/article/abs/pii/S0965856422000878},
  keywords = {PUDO stops, shared autonomous vehicles, dynamic ride-sharing, vehicle miles traveled, stop spacing}
}

@article{lotzecharlotte2023taming,
  title    = {{Taming Travel Time Fluctuations through Adaptive Stop Pooling}},
  author   = {Lotze Charlotte and  Marszal Philip and  Schröder Malte and  Timme Marc},
  year     = {2023},
  journal  = {arXiv preprint},
  doi      = {10.48550/arXiv.2306.13356},
  url      = {https://arxiv.org/abs/2306.13356},
  keywords = {stop pooling, travel time variability, adaptive walking, ride sharing, demand fluctuation}
}

@article{wangzifan2022optimizing,
  title    = {{On Optimizing Shared-ride Mobility Services with Walking Legs}},
  author   = {Wang Zifan and  Hyland Michael F. and  Bahk Younghun and  Sarma Navjyoth J.S.},
  year     = {2022},
  journal  = {arXiv preprint},
  doi      = {10.48550/arXiv.2201.12639},
  url      = {https://arxiv.org/abs/2201.12639},
  keywords = {walking legs, shared-ride services, vehicle-kilometers-travelled, service configuration, mobility on demand}
}

@article{martiniradibernardo2024doubl,
  title    = {{A Double Decomposition Algorithm for Network Planning and Operations in Deviated Fixed-route Microtransit}},
  author   = {Martin-Iradi Bernardo and  Schmid Alexandria and  Cummings Kayla and  Jacquillat Alexandre},
  year     = {2024},
  journal  = {arXiv preprint},
  doi      = {10.48550/arXiv.2402.01265},
  url      = {https://arxiv.org/abs/2402.01265},
  keywords = {microtransit, fixed-route deviation, virtual stops, stochastic optimization, network design}
}

@article{stiglicmitja2016making,
  title    = {{Making Dynamic Ride-Sharing Work: The Impact of Driver and Rider Flexibility}},
  author   = {Stiglic Mitja and  Agatz Niels and  Savelsbergh Martin and  Gradisar Mirko},
  year     = {2016},
  journal  = {Transportation Research Part E: Logistics and Transportation Review},
  doi      = {10.1016/j.tre.2016.04.010},
  url      = {https://www.sciencedirect.com/science/article/abs/pii/S1366554515303033},
  keywords = {dynamic ridesharing, driver flexibility, rider flexibility, shared mobility optimization, detour constraints}
}

@article{stiglicmitja2018enhancing,
  title    = {{Enhancing Urban Mobility: Integrating Ride-Sharing and Public Transit}},
  author   = {Stiglic Mitja and  Agatz Niels and  Savelsbergh Martin and  Gradisar Mirko},
  year     = {2018},
  journal  = {Computers & Operations Research},
  doi      = {10.1016/j.cor.2017.08.016},
  url      = {https://www.sciencedirect.com/science/article/abs/pii/S0305054817302228},
  keywords = {ride-sharing, public transit integration, first mile last mile, intermodal mobility, transit hub}
}

@article{masoudneda2017promoting,
  title    = {{Promoting Peer-to-Peer Ridesharing Services as Transit System Feeders}},
  author   = {Masoud Neda and  Nam Daisik and  Yu Jiangbo and  Jayakrishnan R.},
  year     = {2017},
  journal  = {Transportation Research Record},
  doi      = {10.3141/2650-09},
  url      = {https://journals.sagepub.com/doi/10.3141/2650-09},
  keywords = {peer-to-peer ridesharing, transit feeder, first mile last mile, hub station, intermodal transfer}
}

@article{kumarpramesh2021algorithm,
  title    = {{An Algorithm for Integrating Peer-to-Peer Ridesharing and Schedule-Based Transit System for First Mile/Last Mile Access}},
  author   = {Kumar Pramesh and  Khani Alireza},
  year     = {2021},
  journal  = {Transportation Research Part C: Emerging Technologies},
  doi      = {10.1016/j.trc.2020.102891},
  url      = {https://www.sciencedirect.com/science/article/abs/pii/S0968090X20307919},
  keywords = {peer-to-peer ridesharing, schedule-based transit, first mile last mile, transit station hub, intermodal integration}
}

@article{dieterpeter2023anticipatory,
  title    = {{Anticipatory Assignment of Passengers to Meeting Points for Taxi-Ridesharing}},
  author   = {Dieter Peter and  Stumpe Miriam and  Ulmer Marlin W. and  Schryen Guido},
  year     = {2023},
  journal  = {Transportation Research Part D: Transport and Environment},
  doi      = {10.1016/j.trd.2023.103832},
  url      = {https://www.sciencedirect.com/science/article/abs/pii/S1361920923002298},
  keywords = {meeting points, taxi ridesharing, anticipatory optimization, sequential decision process, CO2 reduction}
}

@article{campbelljamesf2012twentyfive,
  title    = {{Twenty-Five Years of Hub Location Research}},
  author   = {Campbell James F. and  O'Kelly Morton E.},
  year     = {2012},
  journal  = {Transportation Science},
  doi      = {10.1287/trsc.1120.0410},
  url      = {https://pubsonline.informs.org/doi/abs/10.1287/trsc.1120.0410},
  keywords = {hub location, hub-and-spoke network, facility location, flow consolidation, network optimization}
}

@article{arnoldthomas2023mobility,
  title    = {{Mobility Hubs: Review and Future Research Direction}},
  author   = {Arnold Thomas and  Frost Matthew and  Timmis Andrew and  Dale Simon and  Ison Stephen},
  year     = {2023},
  journal  = {Transportation Research Record},
  doi      = {10.1177/03611981221108977},
  url      = {https://journals.sagepub.com/doi/10.1177/03611981221108977},
  keywords = {mobility hub, shared mobility, intermodal transfer, sustainable transport, hub review}
}

@article{bladkoen2022methodology,
  title    = {{A Methodology to Determine Suitable Locations for Regional Shared Mobility Hubs}},
  author   = {Blad Koen and  de Almeida Correia Gonçalo Homem and  van Nes Rob and  Annema Jan Anne},
  year     = {2022},
  journal  = {Case Studies on Transport Policy},
  doi      = {10.1016/j.cstp.2022.08.005},
  url      = {https://www.sciencedirect.com/science/article/pii/S2213624X22001535},
  keywords = {mobility hub location, shared mobility hub, GIS multi-criteria analysis, intermodal transfer, regional transport}
}

@article{frankleonie2021improving,
  title    = {{Improving Rural Accessibility by Locating Multimodal Mobility Hubs}},
  author   = {Frank Leonie and  Dirks Niklas and  Walther Grit},
  year     = {2021},
  journal  = {Journal of Transport Geography},
  doi      = {10.1016/j.jtrangeo.2021.103111},
  url      = {https://www.sciencedirect.com/science/article/abs/pii/S0966692321001642},
  keywords = {multimodal mobility hub, rural accessibility, hub location, on-demand mobility, intermodal network}
}

@article{xanthopoulosstathis2024optim,
  title    = {{Optimization of the Location and Capacity of Shared Multimodal Mobility Hubs to Maximize Travel Utility in Urban Areas}},
  author   = {Xanthopoulos Stathis and  van der Tuin Maaike and  Sharif Azadeh Shadi and  de Almeida Correia Gonçalo Homem and  van Oort Niels and  Snelder Maaike},
  year     = {2024},
  journal  = {Transportation Research Part A: Policy and Practice},
  doi      = {10.1016/j.tra.2023.103934},
  url      = {https://www.sciencedirect.com/science/article/pii/S0965856423003543},
  keywords = {mobility hub location, hub capacity optimization, multimodal shared mobility, travel utility, urban network}
}

@article{fanwenbo2024optimal,
  title    = {{Optimal Design of Ride-Pooling as On-Demand Feeder Services}},
  author   = {Fan Wenbo and  Gu Weihua and  Xu Meng},
  year     = {2024},
  journal  = {Transportation Research Part B: Methodological},
  doi      = {10.1016/j.trb.2024.102964},
  url      = {https://www.sciencedirect.com/science/article/abs/pii/S0191261524000882},
  keywords = {ride-pooling, feeder service, transit terminal hub, on-demand mobility, fleet sizing}
}

@inproceedings{alonsomorajavier2017ondemand,
  title    = {{On-demand high-capacity ride-sharing via dynamic trip-vehicle assignment}},
  author   = {Alonso-Mora Javier and  Samaranayake Samitha and  Wallar Alex and  Frazzoli Emilio and  Rus Daniela},
  year     = {2017},
  booktitle  = {Proceedings of the National Academy of Sciences},
  doi      = {10.1073/pnas.1611675114},
  url      = {https://www.pnas.org/doi/10.1073/pnas.1611675114},
  keywords = {ride-sharing, demand-driven fleet, real-time matching, trip-vehicle assignment, mobility-on-demand}
}

@inproceedings{santipaolo2014quantifying,
  title    = {{Quantifying the benefits of vehicle pooling with shareability networks}},
  author   = {Santi Paolo and  Resta Giovanni and  Szell Michael and  Sobolevsky Stanislav and  Strogatz Steven H. and  Ratti Carlo},
  year     = {2014},
  booktitle  = {Proceedings of the National Academy of Sciences},
  doi      = {10.1073/pnas.1403657111},
  url      = {https://www.pnas.org/doi/10.1073/pnas.1403657111},
  keywords = {shareability network, vehicle pooling, demand aggregation, taxi trips, shared mobility efficiency}
}

@article{vazifehmohammedm2018addressi,
  title    = {{Addressing the minimum fleet problem in on-demand urban mobility}},
  author   = {Vazifeh Mohammed M. and  Santi Paolo and  Resta Giovanni and  Strogatz Steven H. and  Ratti Carlo},
  year     = {2018},
  journal  = {Nature},
  doi      = {10.1038/s41586-018-0095-1},
  url      = {https://www.nature.com/articles/s41586-018-0095-1},
  keywords = {minimum fleet problem, demand-driven optimization, network flow, on-demand mobility, fleet sizing}
}

@article{agatzniels2012optimization,
  title    = {{Optimization for dynamic ride-sharing: A review}},
  author   = {Agatz Niels and  Erera Alan and  Savelsbergh Martin and  Wang Xing},
  year     = {2012},
  journal  = {European Journal of Operational Research},
  doi      = {10.1016/j.ejor.2012.05.028},
  url      = {https://www.sciencedirect.com/science/article/abs/pii/S0377221712003864},
  keywords = {dynamic ride-sharing, demand-driven matching, optimization, fleet management, ridesharing algorithms}
}

@article{cordeaujeanfranois2007dialar,
  title    = {{The dial-a-ride problem: models and algorithms}},
  author   = {Cordeau Jean-François and  Laporte Gilbert},
  year     = {2007},
  journal  = {Annals of Operations Research},
  doi      = {10.1007/s10479-007-0170-8},
  url      = {https://link.springer.com/article/10.1007/s10479-007-0170-8},
  keywords = {dial-a-ride, demand-responsive transport, vehicle routing, passenger-centric service, scheduling}
}

@inproceedings{mashuo2013tshare,
  title    = {{T-share: A large-scale dynamic taxi ridesharing service}},
  author   = {Ma Shuo and  Zheng Yu and  Wolfson Ouri},
  year     = {2013},
  booktitle  = {Proceedings of the 29th IEEE International Conference on Data Engineering (ICDE)},
  doi      = {10.1109/ICDE.2013.6544843},
  url      = {https://www.researchgate.net/publication/261345342_T-share_A_large-scale_dynamic_taxi_ridesharing_service},
  keywords = {dynamic ridesharing, taxi sharing, real-time demand matching, large-scale MoD, demand-driven routing}
}

@article{masoudneda2017realtime,
  title    = {{A real-time algorithm to solve the peer-to-peer ride-matching problem in a flexible ridesharing system}},
  author   = {Masoud Neda and  Jayakrishnan R.},
  year     = {2017},
  journal  = {Transportation Research Part B: Methodological},
  doi      = {10.1016/j.trb.2017.10.006},
  url      = {https://ideas.repec.org/a/eee/transb/v106y2017icp218-236.html},
  keywords = {peer-to-peer ridesharing, real-time matching, demand-driven system, flexible transport, ride-matching algorithm}
}

@article{hylandmichael2018dynamic,
  title    = {{Dynamic autonomous vehicle fleet operations: Optimization-based strategies to assign AVs to immediate traveler demand requests}},
  author   = {Hyland Michael and  Mahmassani Hani S.},
  year     = {2018},
  journal  = {Transportation Research Part C: Emerging Technologies},
  doi      = {10.1016/j.trc.2018.05.003},
  url      = {https://www.sciencedirect.com/science/article/abs/pii/S0968090X18306028},
  keywords = {autonomous vehicle fleet, demand-driven assignment, mobility-on-demand, real-time operations, fleet management}
}

@article{molenbruchyves2017typology,
  title    = {{Typology and literature review for dial-a-ride problems}},
  author   = {Molenbruch Yves and  Braekers Kris and  Caris An},
  year     = {2017},
  journal  = {Annals of Operations Research},
  doi      = {10.1007/s10479-017-2525-0},
  url      = {https://link.springer.com/article/10.1007/s10479-017-2525-0},
  keywords = {dial-a-ride, demand-responsive transport, passenger-centric routing, literature review, scheduling algorithms}
}

@article{brakejenny2007lessons,
  title    = {{Key lessons learned from recent experience with Flexible Transport Services}},
  author   = {Brake Jenny and  Mulley Corinne and  Nelson John D. and  Wright Steve},
  year     = {2007},
  journal  = {Transport Policy},
  doi      = {10.1016/j.tranpol.2007.09.001},
  url      = {https://www.researchgate.net/publication/222708255_Key_lessons_learned_from_recent_experience_with_Flexible_Transport_Services},
  keywords = {flexible transport services, demand-responsive transit, service design, user-driven mobility, DRT implementation}
}

@article{quadrifoglioluca2006performa,
  title    = {{Performance and Design of Mobility Allowance Shuttle Transit Services: Bounds on the Maximum Longitudinal Velocity}},
  author   = {Quadrifoglio Luca and  Hall Randolph W. and  Dessouky Maged M.},
  year     = {2006},
  journal  = {Transportation Science},
  doi      = {10.1287/trsc.1050.0137},
  url      = {https://pubsonline.informs.org/doi/10.1287/trsc.1050.0137},
  keywords = {MAST, demand-responsive transit, fixed-route deviation, service design, demand-driven routing}
}

@article{pavonemarco2012robotic,
  title    = {{Robotic Load Balancing for Mobility-on-Demand Systems}},
  author   = {Pavone Marco and  Smith Stephen L. and  Frazzoli Emilio and  Rus Daniela},
  year     = {2012},
  journal  = {International Journal of Robotics Research},
  doi      = {10.1177/0278364912456257},
  url      = {https://stanfordasl.github.io/wp-content/papercite-data/pdf/Pavone.Smith.ea.IJRR12.pdf},
  keywords = {vehicle rebalancing, fleet management, mobility on demand, centralized dispatch, linear programming}
}

@article{zhangrick2016control,
  title    = {{Control of Robotic Mobility-on-Demand Systems: A Queueing-Theoretical Perspective}},
  author   = {Zhang Rick and  Pavone Marco},
  year     = {2016},
  journal  = {International Journal of Robotics Research},
  doi      = {10.1177/0278364915581863},
  url      = {https://journals.sagepub.com/doi/abs/10.1177/0278364915581863},
  keywords = {queueing theory, fleet rebalancing, autonomous mobility on demand, supply-side optimization, centralized control}
}

@article{spieserkevin2014toward,
  title    = {{Toward a Systematic Approach to the Design and Evaluation of Automated Mobility-on-Demand Systems: A Case Study in Singapore}},
  author   = {Spieser Kevin and  Treleaven Kyle and  Zhang Rick and  Frazzoli Emilio and  Morton David and  Pavone Marco},
  year     = {2014},
  journal  = {Lecture Notes in Mobility, Road Vehicle Automation, Springer},
  doi      = {10.1007/978-3-319-05990-7_20},
  url      = {https://link.springer.com/chapter/10.1007/978-3-319-05990-7_20},
  keywords = {fleet sizing, autonomous vehicles, supply design, Singapore case study, mobility on demand}
}

@article{iglesiasramon2019network,
  title    = {{A BCMP Network Approach to Modeling and Controlling Autonomous Mobility-on-Demand Systems}},
  author   = {Iglesias Ramon and  Rossi Federico and  Zhang Rick and  Pavone Marco},
  year     = {2019},
  journal  = {International Journal of Robotics Research},
  doi      = {10.1177/0278364918780335},
  url      = {https://journals.sagepub.com/doi/10.1177/0278364918780335},
  keywords = {BCMP network, queueing model, fleet routing, autonomous mobility, supply-side control}
}

@inproceedings{iglesiasramon2018datadriven,
  title    = {{Data-Driven Model Predictive Control of Autonomous Mobility-on-Demand Systems}},
  author   = {Iglesias Ramon and  Rossi Federico and  Wang Kuan and  Hallac David and  Leskovec Jure and  Pavone Marco},
  year     = {2018},
  booktitle  = {IEEE International Conference on Robotics and Automation (ICRA)},
  doi      = {10.1109/ICRA.2018.8460966},
  url      = {https://dl.acm.org/doi/10.1109/ICRA.2018.8460966},
  keywords = {model predictive control, demand forecasting, fleet rebalancing, supply optimization, autonomous mobility}
}

@article{bravermananton2019emptycar,
  title    = {{Empty-Car Routing in Ridesharing Systems}},
  author   = {Braverman Anton and  Dai J. G. and  Liu Xin and  Ying Lei},
  year     = {2019},
  journal  = {Operations Research},
  doi      = {10.1287/opre.2018.1822},
  url      = {https://pubsonline.informs.org/doi/abs/10.1287/opre.2018.1822},
  keywords = {empty vehicle routing, repositioning, fluid model, ride-hailing supply, centralized platform}
}

@article{simonettoandrea2019realtime,
  title    = {{Real-time City-scale Ridesharing via Linear Assignment Problems}},
  author   = {Simonetto Andrea and  Monteil Julien and  Gambella Claudio},
  year     = {2019},
  journal  = {Transportation Research Part C: Emerging Technologies},
  doi      = {10.1016/j.trc.2019.01.019},
  url      = {https://www.sciencedirect.com/science/article/abs/pii/S0968090X18302882},
  keywords = {linear assignment, real-time dispatch, ride-sharing, centralized optimization, fleet management}
}

@article{fagnantdanielj2018dynamic,
  title    = {{Dynamic Ride-Sharing and Fleet Sizing for a System of Shared Autonomous Vehicles in Austin, Texas}},
  author   = {Fagnant Daniel J. and  Kockelman Kara M.},
  year     = {2018},
  journal  = {Transportation},
  doi      = {10.1007/s11116-016-9729-z},
  url      = {https://link.springer.com/article/10.1007/s11116-016-9729-z},
  keywords = {shared autonomous vehicles, fleet sizing, dynamic ride-sharing, supply optimization, agent-based simulation}
}

@article{salazarmauro2020intermodal,
  title    = {{Intermodal Autonomous Mobility-on-Demand}},
  author   = {Salazar Mauro and  Lanzetti Nicolas and  Rossi Federico and  Schiffer Maximilian and  Pavone Marco},
  year     = {2020},
  journal  = {IEEE Transactions on Intelligent Transportation Systems},
  doi      = {10.1109/TITS.2019.2950720},
  url      = {https://www.researchgate.net/publication/337115952_Intermodal_Autonomous_Mobility-on-Demand},
  keywords = {intermodal transport, network flow optimization, fleet management, autonomous vehicles, supply-side planning}
}

@article{nourbakhshseyedmohammad2012s,
  title    = {{A Structured Flexible Transit System for Low Demand Areas}},
  author   = {Nourbakhsh Seyed Mohammad and  Ouyang Yanfeng},
  year     = {2012},
  journal  = {Transportation Research Part B: Methodological},
  doi      = {10.1016/j.trb.2011.07.014},
  url      = {https://www.sciencedirect.com/science/article/abs/pii/S0191261511001147},
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}

@article{furuhatamasabumi2013rideshar,
  title    = {{Ridesharing: The State-of-the-Art and Future Directions}},
  author   = {Furuhata Masabumi and  Dessouky Maged M. and  Ordóñez Fernando and  Brunet Marc-Etienne and  Wang Xiaoqing and  Koenig Sven},
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@article{chenpeng2017analysis,
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  author   = {Chen Peng and  Nie Yu Marco},
  year     = {2017},
  journal  = {Transportation Research Part B: Methodological},
  doi      = {10.1016/j.trb.2017.05.004},
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  keywords = {demand adaptive transit, paired-line hybrid transit, fixed route, demand responsive, continuous approximation}
}

@article{chenpeng2018optimal,
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  author   = {Chen Peng and  Nie Yu Marco},
  year     = {2018},
  journal  = {Transportation Research Part E: Logistics and Transportation Review},
  doi      = {10.1016/j.tre.2017.12.006},
  url      = {https://www.sciencedirect.com/science/article/abs/pii/S1366554517305069},
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}

@article{maheoarthur2019benders,
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  year     = {2019},
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  keywords = {hub and shuttle, fixed route, on-demand shuttle, multimodal transit, network design}
}

@article{sipetascharalampos2021contin,
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  year     = {2021},
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  doi      = {10.1177/0361198121997131},
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}

@article{kucharskirafal2024hyperpool,
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  author   = {Kucharski Rafal and  Cats Oded},
  year     = {2024},
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  doi      = {10.1038/s44333-024-00006-4},
  url      = {https://www.nature.com/articles/s44333-024-00006-4},
  keywords = {ride-pooling, transit-like, high-occupancy, stop aggregation, demand-driven lines}
}

@article{calabrgiovanni2023adaptive,
  title    = {{Adaptive Transit Design: Optimizing Fixed and Demand Responsive Multi-Modal Transportation via Continuous Approximation}},
  author   = {Calabrò Giovanni and  Araldo Andrea and  Oh Simon and  Seshadri Ravi and  Inturri Giuseppe and  Ben-Akiva Moshe},
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  url      = {https://www.sciencedirect.com/science/article/pii/S0965856423000630},
  keywords = {adaptive transit, fixed route, demand responsive, continuous approximation, multimodal optimization}
}

@article{ngmaxtm2026semiondemand,
  title    = {{Semi-on-Demand Hybrid Transit Route Design with Shared Autonomous Mobility Services}},
  author   = {Ng Max T.M. and  Dandl Florian and  Mahmassani Hani S. and  Bogenberger Klaus},
  year     = {2026},
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  doi      = {10.1016/j.trc.2026.105578},
  url      = {https://arxiv.org/abs/2403.15804},
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}

@article{tachetremi2017scaling,
  title    = {{Scaling Law of Urban Ride Sharing}},
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  year     = {2017},
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}

@article{daganzocarlosf2010structure,
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  author   = {Daganzo Carlos F.},
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}

@article{gschwenderantonio2016feedert,
  title    = {{Feeder-trunk or direct lines? Economies of density, transfer costs and transit structure in an urban context}},
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}

@article{sozaparrajaime2022shareabili,
  title    = {{The shareability potential of ride-pooling under alternative spatial demand patterns}},
  author   = {Soza-Parra Jaime and  Kucharski Rafal and  Cats Oded},
  year     = {2022},
  journal  = {Transportmetrica A: Transport Science},
  doi      = {10.1080/23249935.2022.2140022},
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}

@article{kucharskirafal2020exact,
  title    = {{Exact matching of attractive shared rides (ExMAS) for system-wide strategic evaluations}},
  author   = {Kucharski Rafal and  Cats Oded},
  year     = {2020},
  journal  = {Transportation Research Part B: Methodological},
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}

@article{mouradabood2019survey,
  title    = {{A survey of models and algorithms for optimizing shared mobility}},
  author   = {Mourad Abood and  Puchinger Jakob and  Chu Chengbin},
  year     = {2019},
  journal  = {Transportation Research Part B: Methodological},
  doi      = {10.1016/j.trb.2019.02.003},
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  keywords = {shared mobility optimization, survey, demand-driven, network design, ride-sharing algorithms}
}

@article{molkenthinnora2020topologica,
  title    = {{Topological universality of on-demand ride-sharing efficiency}},
  author   = {Molkenthin Nora and  Schroder Malte and  Timme Marc},
  year     = {2020},
  journal  = {arXiv preprint},
  url      = {https://arxiv.org/abs/1908.05929},
  keywords = {network topology, ride-sharing efficiency, universal scaling, graph theory, flow aggregation}
}

@article{liaofeixiong2025networkbased,
  title    = {{Network-based pick-up and drop-off location optimization for shared autonomous vehicles}},
  author   = {Liao Feixiong and  Molin Eric and  Timmermans Harry and  van Wee Bert},
  year     = {2025},
  journal  = {Urban Informatics},
  doi      = {10.1007/s44212-025-00073-z},
  url      = {https://link.springer.com/article/10.1007/s44212-025-00073-z},
  keywords = {PUDO location optimization, shared autonomous vehicles, network kernel density, demand coverage, flow concentration}
}
