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Behaviour model control for cascaded processes: Application to an electrical drive., , , and . Comput. Electr. Eng., 30 (7): 509-526 (2004)Sizing of Modular Cascade Machines System for Electric Vehicles., , , and . IEEE Trans. Vehicular Technology, 68 (2): 1278-1287 (2019)Real-Time Energy Management of Battery/Supercapacitor Electric Vehicles Based on an Adaptation of Pontryagin's Minimum Principle., , , and . IEEE Trans. Veh. Technol., 68 (1): 203-212 (2019)Energy Management in Fuel-Cell\/Battery Vehicles: Key Issues Identified in the IEEE Vehicular Technology Society Motor Vehicle Challenge 2017., , , , , , and . IEEE Veh. Technol. Mag., 13 (3): 144-151 (2018)Merging control of a hybrid energy storage system using battery/supercapacitor for electric vehicle application., , , and . ICIT, page 2066-2071. IEEE, (2018)A Flexible Cloud-Based HIL Testing of Batteries for Various Electrified Vehicles., , , , , , , , , and 1 other author(s). IEEE Trans. Veh. Technol., 73 (4): 4610-4620 (April 2024)Real-Time Backstepping Control for Fuel Cell Vehicle Using Supercapacitors., , , , and . IEEE Trans. Vehicular Technology, 67 (1): 306-314 (2018)Comparisons of Electric Vehicles Using Modular Cascade Machines System and Classical Single Drive Electric Machine., , , and . IEEE Trans. Vehicular Technology, 67 (1): 354-361 (2018)Influence of an Energy Storage System on the Energy Consumption of a Diesel-Electric Locomotive., , , and . IEEE Trans. Vehicular Technology, 63 (3): 1032-1040 (2014)Simulation Model of a Military HEV With a Highly Redundant Architecture., , , , and . IEEE Trans. Vehicular Technology, 59 (6): 2654-2663 (2010)