The primary purpose of this book is to show that a multilayer
neural network can be considered as a multistage system, and then
that the learning of this class of neural networks can be treated
as a special sort of the optimal control problem. In this way, the
optimal control problem methodology, like dynamic programming, with
modifications, can yield a new class of learning algorithms for
multilayer neural networks.
Another purpose of this book is to show that the generalized net
theory can be successfully used as a new description of multilayer
neural networks. Several generalized net descriptions of neural
networks functioning processes are considered, namely: the
simulation process of networks, a system of neural networks and the
learning algorithms developed in this book.
The generalized net approach to modelling of real systems may be
used successfully for the description of a variety of technological
and intellectual problems, it can be used not only for representing
the parallel functioning of homogenous objects, but also for
modelling non-homogenous systems, for example systems which consist
of a different kind of subsystems.
The use of the generalized nets methodology shows a new way to
describe functioning of discrete dynamic systems.
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