This book is about algebraic and differential methods, as well as
fractional calculus, applied to diagnose and reject faults in nonlinear
systems, which are of integer or fractional order. This represents an
extension of a very important and widely studied problem in control
theory, namely fault diagnosis and rejection (using differential
algebraic approaches), to systems presenting fractional dynamics, i.e.
systems whose dynamics are represented by derivatives and integrals of
non-integer order.
The authors offer a thorough overview devoted to fault diagnosis and
fault-tolerant control applied to fractional-order and integer-order
dynamical systems, and they introduce new methodologies for control and
observation described by fractional and integer models, together with
successful simulations and real-time applications. The basic concepts
and tools of mathematics required to understand the methodologies
proposed are all clearly introduced and explained. Consequently, the
book is useful as supplementary reading in courses of applied
mathematics and nonlinear control theory.
This book is meant for engineers, mathematicians, physicists and, in
general, to researchers and postgraduate students in diverse areas who
have a minimum knowledge of calculus. It also contains advanced topics
for researchers and professionals interested in the area of states and
faults estimation.