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A New Era of Mobility: Exploring Digital Twin Applications in Autonomous Vehicular Systems
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Digital Twins (DTs) are virtual representations of physical objects or processes that can collect information from the real environment to represent, validate, and replicate the physical twin's present and future behavior. The DTs are becoming increasingly prevalent in a variety of fields, including manufacturing, automobiles, medicine, smart cities, and other related areas. In this paper, we presented a systematic reviews on DTs in the autonomous vehicular industry. We addressed DTs and their essential characteristics, emphasized on accurate data collection, real-time analytics, and efficient simulation capabilities, while highlighting their role in enhancing performance and reliability. Next, we explored the technical challenges and central technologies of DTs. We illustrated the comparison analysis of different methodologies that have been used for autonomous vehicles in smart cities. Finally, we addressed the application challenges and limitations of DTs in the autonomous vehicular industry.
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DigiT4TAF -- Bridging Physical and Digital Worlds for Future Transportation Systems
An open-source Digital Twin of the TAF-BW test area integrates real infrastructure sensor detections into an Unreal Engine 5 simulation, demonstrated by traffic signal optimization and V2X security case studies.
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