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This book presents a comprehensive overview of the recent advances
in the domain of optimal guidance, exploring the characteristics of
various optimal guidance algorithms and their pros and cons.
Optimal guidance is based on the concept of trajectory
optimization, which minimizes the meaningful performance index
while satisfying certain terminal constraints, and by properly
designing the cost function the guidance command can serve as a
desired pattern for a variety of mission objectives. The book
allows readers to gain a deeper understanding of how optimal
guidance law can be utilized to achieve different mission
objectives for missiles and UAVs, and also explores the physical
meaning and working principle of different new optimal guidance
laws. In practice, this information is important in ensuring
confidence in the performance and reliability of the guidance law
when implementing it in a real-world system, especially in
aerospace engineering where reliability is the first priority.
This book explores the design of optimal trajectories for space
maneuver vehicles (SMVs) using optimal control-based techniques. It
begins with a comprehensive introduction to and overview of three
main approaches to trajectory optimization, and subsequently
focuses on the design of a novel hybrid optimization strategy that
combines an initial guess generator with an improved gradient-based
inner optimizer. Further, it highlights the development of
multi-objective spacecraft trajectory optimization problems, with a
particular focus on multi-objective transcription methods and
multi-objective evolutionary algorithms. In its final sections, the
book studies spacecraft flight scenarios with noise-perturbed
dynamics and probabilistic constraints, and designs and validates
new chance-constrained optimal control frameworks. The
comprehensive and systematic treatment of practical issues in
spacecraft trajectory optimization is one of the book's major
features, making it particularly suited for readers who are seeking
practical solutions in spacecraft trajectory optimization. It
offers a valuable asset for researchers, engineers, and graduate
students in GNC systems, engineering optimization, applied optimal
control theory, etc.
This book presents a comprehensive overview of the recent advances
in the domain of optimal guidance, exploring the characteristics of
various optimal guidance algorithms and their pros and cons.
Optimal guidance is based on the concept of trajectory
optimization, which minimizes the meaningful performance index
while satisfying certain terminal constraints, and by properly
designing the cost function the guidance command can serve as a
desired pattern for a variety of mission objectives. The book
allows readers to gain a deeper understanding of how optimal
guidance law can be utilized to achieve different mission
objectives for missiles and UAVs, and also explores the physical
meaning and working principle of different new optimal guidance
laws. In practice, this information is important in ensuring
confidence in the performance and reliability of the guidance law
when implementing it in a real-world system, especially in
aerospace engineering where reliability is the first priority.
This book explores the design of optimal trajectories for space
maneuver vehicles (SMVs) using optimal control-based techniques. It
begins with a comprehensive introduction to and overview of three
main approaches to trajectory optimization, and subsequently
focuses on the design of a novel hybrid optimization strategy that
combines an initial guess generator with an improved gradient-based
inner optimizer. Further, it highlights the development of
multi-objective spacecraft trajectory optimization problems, with a
particular focus on multi-objective transcription methods and
multi-objective evolutionary algorithms. In its final sections, the
book studies spacecraft flight scenarios with noise-perturbed
dynamics and probabilistic constraints, and designs and validates
new chance-constrained optimal control frameworks. The
comprehensive and systematic treatment of practical issues in
spacecraft trajectory optimization is one of the book's major
features, making it particularly suited for readers who are seeking
practical solutions in spacecraft trajectory optimization. It
offers a valuable asset for researchers, engineers, and graduate
students in GNC systems, engineering optimization, applied optimal
control theory, etc.
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