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Advanced Driver Intention Inference: Theory and Design describes
one of the most important function for future ADAS, namely, the
driver intention inference. The book contains the state-of-art
knowledge on the construction of driver intention inference system,
providing a better understanding on how the human driver intention
mechanism will contribute to a more naturalistic on-board decision
system for automated vehicles.
iHorizon-Enabled Energy Management for Electrified Vehicles
proposes a realistic solution that assumes only scarce information
is available prior to the start of a journey and that limited
computational capability can be allocated for energy management.
This type of framework exploits the available resources and closely
emulates optimal results that are generated with an offline global
optimal algorithm. In addition, the authors consider the present
and future of the automotive industry and the move towards
increasing levels of automation. Driver vehicle-infrastructure is
integrated to address the high level of interdependence of hybrid
powertrains and to comply with connected vehicle infrastructure.
This book targets upper-division undergraduate students and
graduate students interested in control applied to the automotive
sector, including electrified powertrains, ADAS features, and
vehicle automation.
Modelling, Dynamics and Control of Electrified Vehicles provides a
systematic overview of EV-related key components, including
batteries, electric motors, ultracapacitors and system-level
approaches, such as energy management systems, multi-source energy
optimization, transmission design and control, braking system
control and vehicle dynamics control. In addition, the book covers
selected advanced topics, including Smart Grid and connected
vehicles. This book shows how EV work, how to design them, how to
save energy with them, and how to maintain their safety. The book
aims to be an all-in-one reference for readers who are interested
in EVs, or those trying to understand its state-of-the-art
technologies and future trends.
This book studies the design optimization, state estimation, and
advanced control methods for cyber-physical vehicle systems (CPVS)
and their applications in real-world automotive systems. First, in
Chapter 1, key challenges and state-of-the-art of vehicle design
and control in the context of cyber-physical systems are
introduced. In Chapter 2, a cyber-physical system (CPS) based
framework is proposed for high-level co-design optimization of the
plant and controller parameters for CPVS, in view of vehicle's
dynamic performance, drivability, and energy along with different
driving styles. System description, requirements, constraints,
optimization objectives, and methodology are investigated. In
Chapter 3, an Artificial-Neural-Network-based estimation method is
studied for accurate state estimation of CPVS. In Chapter 4, a
high-precision controller is designed for a safety-critical CPVS.
The detailed control synthesis and experimental validation are
presented. The application results presented throughout the book
validate the feasibility and effectiveness of the proposed
theoretical methods of design, estimation, control, and
optimization for cyber-physical vehicle systems.
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