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Computational intelligence (CI) lies at the interface between
engineering and computer science; control engineering, where
problems are solved using computer-assisted methods. Thus, it can
be regarded as an indispensable basis for all artificial
intelligence (AI) activities. This book collects surveys of most
recent theoretical approaches focusing on fuzzy systems,
neurocomputing, and nature inspired algorithms. It also presents
surveys of up-to-date research and application with special focus
on fuzzy systems as well as on applications in life sciences and
neuronal computing.
The sequential analysis of data and information gathered from past
to present is called time series analysis. Time series data are of
high dimension, large size and updated continuously. A time series
depends on various factors like trend, seasonality, cycle and
irregular data set, and is basically a series of data points
well-organized in time. Time series forecasting is a significant
area of machine learning. There are various prediction problems
that are time-dependent and these problems can be handled through
time series analysis. Computational intelligence (CI) is a
developing computing approach for the forthcoming several years. CI
gives the litheness to model the problem according to given
requirements. It helps to find swift solutions to the problems
arising in numerous disciplines. These methods mimic human
behavior. The main objective of CI is to develop intelligent
machines to provide solutions to real world problems, which are not
modelled or too difficult to model mathematically. This book aims
to cover the recent advances in time series and applications of CI
for time series analysis.
Future predictions are always a topic of interest. Precise
estimates are crucial in many activities as forecasting errors can
lead to big financial loss. The sequential analysis of data and
information gathered from past to present is call time series
analysis. This book covers the recent advancements in time series
forecasting. The book includes theoretical as well as recent
applications of time series analysis. It focuses on the recent
techniques used, discusses a combination of methodology and
applications, presents traditional and advanced tools, new
applications, and identifies the gaps in knowledge in engineering
applications. This book is aimed at scientists, researchers,
postgraduate students and engineers in the areas of supply chain
management, production, inventory planning, and statistical quality
control.
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