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This two-volume handbook presents a collection of novel
methodologies with applications and illustrative examples in the
areas of data-driven computational social sciences. Throughout this
handbook, the focus is kept specifically on business and
consumer-oriented applications with interesting sections ranging
from clustering and network analysis, meta-analytics, memetic
algorithms, machine learning, recommender systems methodologies,
parallel pattern mining and data mining to specific applications in
market segmentation, travel, fashion or entertainment analytics. A
must-read for anyone in data-analytics, marketing, behavior
modelling and computational social science, interested in the
latest applications of new computer science methodologies. The
chapters are contributed by leading experts in the associated
fields.The chapters cover technical aspects at different levels,
some of which are introductory and could be used for teaching. Some
chapters aim at building a common understanding of the
methodologies and recent application areas including the
introduction of new theoretical results in the complexity of core
problems. Business and marketing professionals may use the book to
familiarize themselves with some important foundations of data
science. The work is a good starting point to establish an open
dialogue of communication between professionals and researchers
from different fields. Together, the two volumes present a number
of different new directions in Business and Customer Analytics with
an emphasis in personalization of services, the development of new
mathematical models and new algorithms, heuristics and
metaheuristics applied to the challenging problems in the field.
Sections of the book have introductory material to more specific
and advanced themes in some of the chapters, allowing the volumes
to be used as an advanced textbook. Clustering, Proximity Graphs,
Pattern Mining, Frequent Itemset Mining, Feature Engineering,
Network and Community Detection, Network-based Recommending Systems
and Visualization, are some of the topics in the first volume.
Techniques on Memetic Algorithms and their applications to Business
Analytics and Data Science are surveyed in the second volume;
applications in Team Orienteering, Competitive Facility-location,
and Visualization of Products and Consumers are also discussed. The
second volume also includes an introduction to Meta-Analytics, and
to the application areas of Fashion and Travel Analytics. Overall,
the two-volume set helps to describe some fundamentals, acts as a
bridge between different disciplines, and presents important
results in a rapidly moving field combining powerful optimization
techniques allied to new mathematical models critical for
personalization of services. Academics and professionals working in
the area of business anyalytics, data science, operations research
and marketing will find this handbook valuable as a reference.
Students studying these fields will find this handbook useful and
helpful as a secondary textbook.
Memetic Algorithms (MAs) are computational intelligence structures
combining multiple and various operators in order to address
optimization problems. The combination and interaction amongst
operators evolves and promotes the diffusion of the most successful
units and generates an algorithmic behavior which can handle
complex objective functions and hard fitness landscapes. "Handbook
of Memetic Algorithms" organizes, in a structured way, all the the
most important results in the field of MAs since their earliest
definition until now. A broad review including various algorithmic
solutions as well as successful applications is included in this
book. Each class of optimization problems, such as constrained
optimization, multi-objective optimization, continuous vs
combinatorial problems, uncertainties, are analysed separately and,
for each problem, memetic recipes for tackling the difficulties are
given with some successful examples. Although this book contains
chapters written by multiple authors, a great attention has been
given by the editors to make it a compact and smooth work which
covers all the main areas of computational intelligence
optimization. It is not only a necessary read for researchers
working in the research area, but also a useful handbook for
practitioners and engineers who need to address real-world
optimization problems. In addition, the book structure makes it an
interesting work also for graduate students and researchers is
related fields of mathematics and computer science.
Memetic Algorithms (MAs) are computational intelligence structures
combining multiple and various operators in order to address
optimization problems. The combination and interaction amongst
operators evolves and promotes the diffusion of the most successful
units and generates an algorithmic behavior which can handle
complex objective functions and hard fitness landscapes. "Handbook
of Memetic Algorithms" organizes, in a structured way, all the the
most important results in the field of MAs since their earliest
definition until now. A broad review including various algorithmic
solutions as well as successful applications is included in this
book. Each class of optimization problems, such as constrained
optimization, multi-objective optimization, continuous vs
combinatorial problems, uncertainties, are analysed separately and,
for each problem, memetic recipes for tackling the difficulties are
given with some successful examples. Although this book contains
chapters written by multiple authors, a great attention has been
given by the editors to make it a compact and smooth work which
covers all the main areas of computational intelligence
optimization. It is not only a necessary read for researchers
working in the research area, but also a useful handbook for
practitioners and engineers who need to address real-world
optimization problems. In addition, the book structure makes it an
interesting work also for graduate students and researchers is
related fields of mathematics and computer science.
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