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Transportation Cyber-Physical Systems (T-CPS) enhance safety and mobility by integrating cyber and physical transportation systems.
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2017
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2019
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D. Jones, C. Snider, A. Nassehi, J. Yon, and B. Hicks, “Characterising the digital twin: A systematic literature review,” CIRP journal of manufacturing science and technology , vol. 29, pp. 36–52, 2020
2020
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A. Fuller, Z. Fan, C. Day, and C. Barlow, “Digital twin: Enabling technologies, challenges and open research,” IEEE access , vol. 8, pp. 108 952–108 971, 2020
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E. VanDerHorn and S. Mahadevan, “Digital twin: Generalization, characterization and implementation,” Decision Support Systems , vol. 145, p. 113524, 2021. [Online]. Available: https://www.sciencedirect.com/science/article/pii/S0167923621000348
2021
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S. Almeaibed, S. Al-Rubaye, A. Tsourdos, and N. Avdelidis, “Digital twin analysis to promote safety and security in autonomous vehicles,” IEEE Communications Standards Magazine , vol. 5, pp. 40–46, 2021
2021
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A. Niaz, M. U. Shoukat, Y. Jia, S. Khan, F. Niaz, and M. U. Raza, “Autonomous driving test method based on digital twin: A survey,” in 2021 International Conference on Computing, Electronic and Electrical Engineering (ICE Cube) . IEEE, 2021, pp. 1–7
2021
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Z. Wang, K. Han, and P. Tiwari, “Digital twin-assisted cooperative driving at non-signalized intersections,” IEEE Transactions on Intelligent Vehicles , vol. 7, no. 2, pp. 198–209, 2021
2021
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P. Hang, C. Lv, C. Huang, Y. Xing, and Z. Hu, “Cooperative decision making of connected automated vehicles at multi-lane merging zone: A coalitional game approach,” IEEE Transactions on Intelligent Transportation Systems , vol. 23, no. 4, pp. 3829–3841, 2021
2021
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A. Holloway, “Award-winning connected corridor a preview of ‘smart’ travel in madison,” 2022, https://engineering.wisc.edu/news/award-winning-connected-corridor-a-preview-of-smart-travel-in-madison/
2022
Cited alongside, same era.
Z. Wang, R. Gupta, K. Han, H. Wang, A. Ganlath, N. Ammar, and P. Tiwari, “Mobility digital twin: Concept, architecture, case study, and future challenges,” IEEE Internet Of Things Journal , vol. 9, pp. 17 452–17 467, 2022
2022
Cited alongside, same era.
C. Schwarz and Z. Wang, “The role of digital twins in connected and automated vehicles,” IEEE Intelligent Transportation Systems Magazine , vol. 14, pp. 41–51, 2022
2022
Cited alongside, same era.
Y. Hui, X. Ma, Z. Su, N. Cheng, Z. Yin, T. Luan, and Y. Chen, “Collaboration as a service: Digital-twin-enabled collaborative and distributed autonomous driving,” IEEE Internet Of Things Journal , vol. 9, pp. 18 607–18 619, 2022
2022
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X. Tan, Q. Meng, M. Wang, Q. Zheng, J. Wu, and J. Yang, “Digital twin-based cloud-native vehicular networks architecture for intelligent driving,” IEEE Network , 2023
2023
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2023
Later among the works it cites.
——, “A Digital Twin Environment for 5G Vehicle-to-Everything: Architecture and Open Issues,” in Proceedings of the Int’l ACM Symposium on Performance Evaluation of Wireless Ad Hoc, Sensor, & Ubiquitous Networks . Montreal Quebec Canada: ACM, Oct. 2023, pp. 115–122, tLDR: The main idea is to design an open-ended digital twin architecture specifically tailored for 5G-V2X, with the aim of fostering innovation in various aspects of autonomous driving. [Online]. Available: https://dl.acm.org/doi/10.1145/3616394.3618266
2023
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Z. Hu, S. Lou, Y. Xing, X. Wang, D. Cao, and C. Lv, “Review and perspectives on driver digital twin and its enabling technologies for intelligent vehicles,” IEEE Transactions on Intelligent Vehicles , vol. 7, no. 3, pp. 417–440, 2022
2022
Cited alongside, same era.
S. Zelenbaba, B. Rainer, M. Hofer, and T. Zemen, “Wireless digital twin for assessing the reliability of vehicular communication links,” in 2022 IEEE Globecom Workshops (GC Wkshps) . IEEE, 2022, pp. 1034–1039
2022
Cited alongside, same era.
Q. Liu, X. Qi, S. Liu, X. Cheng, X. Ke, and F. Wang, “Application of lightweight digital twin system in intelligent transportation,” IEEE Journal of Radio Frequency Identification , vol. 6, pp. 729–732, 2022
2022
Cited alongside, same era.
K. Wu, Y. Cheng, S. T. Parker, B. Ran, and D. A. Noyce, “Development of the data pipeline for a connected vehicle corridor,” in International Conference on Transportation and Development 2023 , 2023, pp. 218–230
2023
Cited alongside, same era.
P. Li, K. Wu, Y. Cheng, S. T. Parker, and D. A. Noyce, “How does c-v2x perform in urban environments? results from real-world experiments on urban arterials,” IEEE Transactions on Intelligent Vehicles , 2023
2023
Cited alongside, same era.
J. Dong, Q. Xu, J. Wang, C. Yang, M. Cai, C. Chen, Y. Liu, J. Wang, and K. Li, “Mixed cloud control testbed: Validating vehicle-road-cloud integration via mixed digital twin,” IEEE Transactions on Intelligent Vehicles , vol. 8, no. 4, pp. 2723–2736, 2023
2023
Cited alongside, same era.
X. Ye, J. Du, Y. Han, G. Newman, D. Retchless, L. Zou, Y. Ham, and Z. Cai, “Developing human-centered urban digital twins for community infrastructure resilience: A research agenda,” Journal of Planning Literature , vol. 38, no. 2, pp. 187–199, 2023
2023
Cited alongside, same era.
G. Cai, B. Fan, Y. Dong, T. Li, Y. Wu, and Y. Zhang, “Task-efficiency oriented v2x communications: Digital twin meets mobile edge computing,” IEEE Wireless Communications , pp. 1–8, 2023
2023
Cited alongside, same era.
Z. Wang, O. Zheng, L. Li, M. Abdel-Aty, C. Cruz-Neira, and Z. Islam, “Towards next generation of pedestrian and connected vehicle in-the-loop research: A digital twin co-simulation framework,” IEEE Transactions on Intelligent Vehicles , vol. 8, no. 4, pp. 2674–2683, 2023
2023
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Y. Feng, S. Bao, and H. Liu, “Connected and automated vehicle (cav) testing scenario design and implementation using naturalistic driving data and augmented reality,” University of Michigan Transportation Research Institute, Tech. Rep., 2023
2023
Later among the works it cites.
U. S. Department of Transporation, “Saving Lives with Connectivity: A Plan to Accelerate V2X Deployment,” 2024. [Online]. Available: https://www.transportation.gov/briefing-room/usdot-releases-national-deployment-plan-vehicle-everything-v2x-technologies-reduce
2024
Closest in time.
Federal Communications Commission, “FCC Adopts ’C-V2X’ Auto Safety Spectrum Rules | Federal Communications Commission,” Nov. 2024. [Online]. Available: https://www.fcc.gov/document/fcc-adopts-c-v2x-auto-safety-spectrum-rules
2024
Closest in time.
X. Liao, S. Leng, Y. Sun, K. Zhang, and M. A. Imran, “A digital twin-based traffic guidance scheme for autonomous driving,” IEEE Internet of Things Journal , 2024
2024
Closest in time.
K. Wang, Z. Li, K. Nonomura, T. Yu, K. Sakaguchi, O. Hashash, and W. Saad, “Smart mobility digital twin based automated vehicle navigation system: A proof of concept,” IEEE Transactions on Intelligent Vehicles , 2024
2024
Closest in time.
L. Cazzella, F. Linsalata, M. Magarini, M. Matteucci, and U. Spagnolini, “A multi-modal simulation framework to enable digital twin-based v2x communications in dynamic environments,” in 2024 IEEE 100th Vehicular Technology Conference (VTC2024-Fall) . IEEE, 2024, pp. 1–6
2024
Closest in time.
H. Y. Adarbah, M. Sookhak, and M. Atiquzzaman, “A digital twin-based traffic light management system using BIRCH algorithm,” Ad Hoc Networks , vol. 164, p. 103613, Nov. 2024. [Online]. Available: https://www.sciencedirect.com/science/article/pii/S1570870524002245
2024
Closest in time.
Y. Fu, M. K. Turkcan, V. Anantha, Z. Kostic, G. Zussman, and X. Di, “Digital twin for pedestrian safety warning at a single urban traffic intersection,” in 2024 IEEE Intelligent Vehicles Symposium (IV) . IEEE, 2024, pp. 2640–2645
2024
Closest in time.
D. Grimm, M. Schindewolf, D. Kraus, and E. Sax, “Co-simulate no more: The carla v2x sensor,” in 2024 IEEE Intelligent Vehicles Symposium (IV) . IEEE, 2024, pp. 2429–2436
2024
Closest in time.