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Recent years have seen a rapid development of neural network
control tech niques and their successful applications. Numerous
simulation studies and actual industrial implementations show that
artificial neural network is a good candidate for function
approximation and control system design in solving the control
problems of complex nonlinear systems in the presence of different
kinds of uncertainties. Many control approaches/methods, reporting
inventions and control applications within the fields of adaptive
control, neural control and fuzzy systems, have been published in
various books, journals and conference proceedings. In spite of
these remarkable advances in neural control field, due to the
complexity of nonlinear systems, the present research on adaptive
neural control is still focused on the development of fundamental
methodologies. From a theoretical viewpoint, there is, in general,
lack of a firmly mathematical basis in stability, robustness, and
performance analysis of neural network adaptive control systems.
This book is motivated by the need for systematic design approaches
for stable adaptive control using approximation-based techniques.
The main objec tives of the book are to develop stable adaptive
neural control strategies, and to perform transient performance
analysis of the resulted neural control systems analytically. Other
linear-in-the-parameter function approximators can replace the
linear-in-the-parameter neural networks in the controllers
presented in the book without any difficulty, which include
polynomials, splines, fuzzy systems, wavelet networks, among
others. Stability is one of the most important issues being
concerned if an adaptive neural network controller is to be used in
practical applications."
Ethylene is a simple gaseous plant hormone produced by higher
plants, bacteria and fungi. Thanks to new tools that have become
available in biochemistry and molecular genetics, parts of the
ethylene biosynthesis, perception and signal transduction reactions
have been elucidated. This knowledge has been applied to enhance
the quality of a number of agronomically important crops. In
Biology and Biotechnology of the Plant Hormone Ethylene, leading
figures in the field provide surveys of the current state of
ethylene biosynthesis and action, perception and signal
transduction pathways, senescence, biotechnological control, and
the involvement of ethylene in pathogenesis and stress. Audience:
Indispensable to all academic, industrial and agricultural
researchers as well as undergraduates and graduates in plant
biology, biochemistry, genetics, molecular biology and food
science.
The inflorescence of the monoecious maize plant is unique among the
Gramineae in the sharp separation of the male and female
structures. The male tassel at the terminus of the plant most often
sheds pollen before the visual appearance of the receptive silks of
th the female ear at a lateral bud, normally at the 10 leaf [I].
Earlier studies examined the ontogeny of the growing tissues
beginning with the embryo in the kernel through to the obvious
protuberances of the growing point as the kernel germinates. The
differentiated developing soon-to-become tassel and the lateral
bulges that develop into the ears on the lateral buds become
apparent very early in the germinating kernel [2, 3, 46]. A certain
number of cells are destined for tassel and ear development [8]. As
the plant develops, there is a phase transition [\3, 16] from the
vegetative lateral buds to the reproductive lateral buds. This
change in phase has been ascribed to genotypic control as evidenced
in the differences among different genotypes in the initiation of
the reproductive [I]. The genetic control of tassel and ear
initiation has been gleaned from anatomical observations. Lejeune
and Bernier [I2] found that maize plants terminate the initiation
of additional axillary meristems at the time of tassel initiation.
This would indicate that the top-most ear shoot is initiated on the
same day as the initiation of tassel development and this event
signals the end of the undifferentiated growing point.
The inflorescence of the monoecious maize plant is unique among the
Gramineae in the sharp separation of the male and female
structures. The male tassel at the terminus of the plant most often
sheds pollen before the visual appearance of the receptive silks of
th the female ear at a lateral bud, normally at the 10 leaf [I].
Earlier studies examined the ontogeny of the growing tissues
beginning with the embryo in the kernel through to the obvious
protuberances of the growing point as the kernel germinates. The
differentiated developing soon-to-become tassel and the lateral
bulges that develop into the ears on the lateral buds become
apparent very early in the germinating kernel [2, 3, 46]. A certain
number of cells are destined for tassel and ear development [8]. As
the plant develops, there is a phase transition [\3, 16] from the
vegetative lateral buds to the reproductive lateral buds. This
change in phase has been ascribed to genotypic control as evidenced
in the differences among different genotypes in the initiation of
the reproductive [I]. The genetic control of tassel and ear
initiation has been gleaned from anatomical observations. Lejeune
and Bernier [I2] found that maize plants terminate the initiation
of additional axillary meristems at the time of tassel initiation.
This would indicate that the top-most ear shoot is initiated on the
same day as the initiation of tassel development and this event
signals the end of the undifferentiated growing point.
Ethylene is a simple gaseous plant hormone produced by higher
plants, bacteria and fungi. Thanks to new tools that have become
available in biochemistry and molecular genetics, parts of the
ethylene biosynthesis, perception and signal transduction reactions
have been elucidated. This knowledge has been applied to enhance
the quality of a number of agronomically important crops. In
Biology and Biotechnology of the Plant Hormone Ethylene, leading
figures in the field provide surveys of the current state of
ethylene biosynthesis and action, perception and signal
transduction pathways, senescence, biotechnological control, and
the involvement of ethylene in pathogenesis and stress. Audience:
Indispensable to all academic, industrial and agricultural
researchers as well as undergraduates and graduates in plant
biology, biochemistry, genetics, molecular biology and food
science.
Recent years have seen a rapid development of neural network
control tech niques and their successful applications. Numerous
simulation studies and actual industrial implementations show that
artificial neural network is a good candidate for function
approximation and control system design in solving the control
problems of complex nonlinear systems in the presence of different
kinds of uncertainties. Many control approaches/methods, reporting
inventions and control applications within the fields of adaptive
control, neural control and fuzzy systems, have been published in
various books, journals and conference proceedings. In spite of
these remarkable advances in neural control field, due to the
complexity of nonlinear systems, the present research on adaptive
neural control is still focused on the development of fundamental
methodologies. From a theoretical viewpoint, there is, in general,
lack of a firmly mathematical basis in stability, robustness, and
performance analysis of neural network adaptive control systems.
This book is motivated by the need for systematic design approaches
for stable adaptive control using approximation-based techniques.
The main objec tives of the book are to develop stable adaptive
neural control strategies, and to perform transient performance
analysis of the resulted neural control systems analytically. Other
linear-in-the-parameter function approximators can replace the
linear-in-the-parameter neural networks in the controllers
presented in the book without any difficulty, which include
polynomials, splines, fuzzy systems, wavelet networks, among
others. Stability is one of the most important issues being
concerned if an adaptive neural network controller is to be used in
practical applications."
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