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This book gathers selected papers presented at International
Conference on Machine Learning, Advances in Computing, Renewable
Energy and Communication (MARC 2020), held in Krishna Engineering
College, Ghaziabad, India, during December 17-18, 2020. This book
discusses key concepts, challenges, and potential solutions in
connection with established and emerging topics in advanced
computing, renewable energy, and network communications.
This book is a collection of papers presented at the International
Conference on Renewable Power (ICRP 2020), held during 13-14 July
2020 in Rajouri, Jammu, India. The book covers different topics of
renewable energy sources in modern power systems. The book focusses
on smart grid technologies and applications, renewable power
systems including solar PV, solar thermal, wind, power generation,
transmission and distribution, transportation electrification and
automotive technologies, power electronics and applications in
renewable power system, energy management and control system,
energy storage in modern power system, active distribution network,
artificial intelligence in renewable power systems, and
cyber-physical systems and Internet of things in smart grid and
renewable power.
This book embodies principles and applications of advanced soft
computing approaches in engineering, healthcare and allied domains
directed toward the researchers aspiring to learn and apply
intelligent data analytics techniques. The first part covers AI,
machine learning and data analytics tools and techniques and their
applications to the class of several hospital and health real-life
problems. In the later part, the applications of AI, ML and data
analytics shall be covered over the wide variety of applications in
hospital, health, engineering and/or applied sciences such as the
clinical services, medical image analysis, management support,
quality analysis, bioinformatics, device analysis and operations.
The book presents knowledge of experts in the form of chapters with
the objective to introduce the theme of intelligent data analytics
and discusses associated theoretical applications. At last, it
presents simulation codes for the problems included in the book for
better understanding for beginners.
This book addresses the principles and applications of
metaheuristic approaches in engineering and related fields. The
first part covers metaheuristics tools and techniques such as ant
colony optimization and Tabu search, and their applications to
several classes of optimization problems. In turn, the book's
second part focuses on a wide variety of metaheuristics
applications in engineering and/or the applied sciences, e.g. in
smart grids and renewable energy. In addition, the simulation codes
for the problems discussed are included in an appendix for ready
reference. Intended for researchers aspiring to learn and apply
metaheuristic techniques, and gathering contributions by prominent
experts in the field, the book offers readers an essential
introduction to metaheuristics, its theoretical aspects and
applications.
This book is a collection of papers presented at the International
Conference on Renewable Power (ICRP 2020), held during 13-14 July
2020 in Rajouri, Jammu, India. The book covers different topics of
renewable energy sources in modern power systems. The book focusses
on smart grid technologies and applications, renewable power
systems including solar PV, solar thermal, wind, power generation,
transmission and distribution, transportation electrification and
automotive technologies, power electronics and applications in
renewable power system, energy management and control system,
energy storage in modern power system, active distribution network,
artificial intelligence in renewable power systems, and
cyber-physical systems and Internet of things in smart grid and
renewable power.
This book addresses a range of complex issues associated with
condition monitoring (CM), fault diagnosis and detection (FDD) in
smart buildings, wide area monitoring (WAM), wind energy conversion
systems (WECSs), photovoltaic (PV) systems, structures, electrical
systems, mechanical systems, smart grids, etc. The book's goal is
to develop and combine all advanced nonintrusive CMFD approaches on
a common platform. To do so, it explores the main components of
various systems used for CMFD purposes. The content is divided into
three main parts, the first of which provides a brief introduction,
before focusing on the state of the art and major research gaps in
the area of CMFD. The second part covers the step-by-step
implementation of novel soft computing applications in CMFD for
electrical and mechanical systems. In the third and final part, the
simulation codes for each chapter are included in an extensive
appendix to support newcomers to the field.
This book embodies principles and applications of advanced soft
computing approaches in engineering, healthcare and allied domains
directed toward the researchers aspiring to learn and apply
intelligent data analytics techniques. The first part covers AI,
machine learning and data analytics tools and techniques and their
applications to the class of several hospital and health real-life
problems. In the later part, the applications of AI, ML and data
analytics shall be covered over the wide variety of applications in
hospital, health, engineering and/or applied sciences such as the
clinical services, medical image analysis, management support,
quality analysis, bioinformatics, device analysis and operations.
The book presents knowledge of experts in the form of chapters with
the objective to introduce the theme of intelligent data analytics
and discusses associated theoretical applications. At last, it
presents simulation codes for the problems included in the book for
better understanding for beginners.
This book addresses the principles and applications of
metaheuristic approaches in engineering and related fields. The
first part covers metaheuristics tools and techniques such as ant
colony optimization and Tabu search, and their applications to
several classes of optimization problems. In turn, the book's
second part focuses on a wide variety of metaheuristics
applications in engineering and/or the applied sciences, e.g. in
smart grids and renewable energy. In addition, the simulation codes
for the problems discussed are included in an appendix for ready
reference. Intended for researchers aspiring to learn and apply
metaheuristic techniques, and gathering contributions by prominent
experts in the field, the book offers readers an essential
introduction to metaheuristics, its theoretical aspects and
applications.
The book is a collection of high-quality, peer-reviewed innovative
research papers from the International Conference on Signals,
Machines and Automation (SIGMA 2018) held at Netaji Subhas
Institute of Technology (NSIT), Delhi, India. The conference
offered researchers from academic and industry the opportunity to
present their original work and exchange ideas, information,
techniques and applications in the field of computational
intelligence, artificial intelligence and machine intelligence. The
book is divided into two volumes discussing a wide variety of
industrial, engineering and scientific applications of the emerging
techniques.
The book is a collection of high-quality, peer-reviewed innovative
research papers from the International Conference on Signals,
Machines and Automation (SIGMA 2018) held at Netaji Subhas
Institute of Technology (NSIT), Delhi, India. The conference
offered researchers from academic and industry the opportunity to
present their original work and exchange ideas, information,
techniques and applications in the field of computational
intelligence, artificial intelligence and machine intelligence. The
book is divided into two volumes discussing a wide variety of
industrial, engineering and scientific applications of the emerging
techniques.
This book brings together state-of-the-art advances in intelligent
data analytics as driver of the future evolution of PaE systems. In
the modern power and energy (PaE) domain, the increasing
penetration of renewable energy sources (RES) and the consequent
empowerment of consumers as a central and active solution to deal
with the generation and development variability are driving the PaE
system towards a historic paradigm shift. The small-scale,
diversity, and especially the number of new players involved in the
PaE system potentiate a significant growth of generated data.
Moreover, advances in communication (between IoT devices and M2M:
machine to machine, man to machine, etc.) and digitalization hugely
increased the volume of data that results from PaE components,
installations, and systems operation. This data is becoming more
and more important for PaE systems operation, maintenance,
planning, and scheduling with relevant impact on all involved
entities, from producers, consumer,s and aggregators to market and
system operators. However, although the PaE community is fully
aware of the intrinsic value of those data, the methods to deal
with it still necessitate substantial enhancements, development and
research. Intelligent data analytics is thereby playing a
fundamental role in this domain, by enabling stakeholders to expand
their decision-making method and achieve the awareness on the PaE
environment. The editors also included demonstrated codes for
presented problems for better understanding for beginners.
This book gathers selected papers presented at International
Conference on Machine Learning, Advances in Computing, Renewable
Energy and Communication (MARC 2020), held in Krishna Engineering
College, Ghaziabad, India, during December 17-18, 2020. This book
discusses key concepts, challenges, and potential solutions in
connection with established and emerging topics in advanced
computing, renewable energy, and network communications.
This book addresses a range of complex issues associated with
condition monitoring (CM), fault diagnosis and detection (FDD) in
smart buildings, wide area monitoring (WAM), wind energy conversion
systems (WECSs), photovoltaic (PV) systems, structures, electrical
systems, mechanical systems, smart grids, etc. The book's goal is
to develop and combine all advanced nonintrusive CMFD approaches on
a common platform. To do so, it explores the main components of
various systems used for CMFD purposes. The content is divided into
three main parts, the first of which provides a brief introduction,
before focusing on the state of the art and major research gaps in
the area of CMFD. The second part covers the step-by-step
implementation of novel soft computing applications in CMFD for
electrical and mechanical systems. In the third and final part, the
simulation codes for each chapter are included in an extensive
appendix to support newcomers to the field.
Intelligent Data-Analytics for Condition Monitoring: Smart Grid
Applications looks at intelligent and meaningful uses of data
required for an optimized, efficient engineering processes. In
addition, the book provides application perspectives of various
deep learning models for the condition monitoring of electrical
equipment. With chapters discussing the fundamentals of machine
learning and data analytics, the book is divided into two parts,
including i) The application of intelligent data analytics in Solar
PV fault diagnostics, transformer health monitoring and faults
diagnostics, and induction motor faults and ii) Forecasting issues
using data analytics which looks at global solar radiation
forecasting, wind data forecasting, and more. This reference is
useful for all engineers and researchers who need preliminary
knowledge on data analytics fundamentals and the working
methodologies and architecture of smart grid systems.
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