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Integrating soft computing into stra...
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SpringerLink (Online service)
Integrating soft computing into strategic prospective methodstowards an adaptive learning environment supported by futures studies /
Record Type:
Electronic resources : Monograph/item
Title/Author:
Integrating soft computing into strategic prospective methodsby Raul Trujillo-Cabezas, Jose Luis Verdegay.
Reminder of title:
towards an adaptive learning environment supported by futures studies /
Author:
Trujillo-Cabezas, Raul.
other author:
Verdegay, Jose Luis.
Published:
Cham :Springer International Publishing :2020.
Description:
xxii, 230 p. :ill., digital ;24 cm.
Contained By:
Springer Nature eBook
Subject:
Soft computing.
Online resource:
https://doi.org/10.1007/978-3-030-25432-2
ISBN:
9783030254322$q(electronic bk.)
Integrating soft computing into strategic prospective methodstowards an adaptive learning environment supported by futures studies /
Trujillo-Cabezas, Raul.
Integrating soft computing into strategic prospective methods
towards an adaptive learning environment supported by futures studies /[electronic resource] :by Raul Trujillo-Cabezas, Jose Luis Verdegay. - Cham :Springer International Publishing :2020. - xxii, 230 p. :ill., digital ;24 cm. - Studies in fuzziness and soft computing,v.3871434-9922 ;. - Studies in fuzziness and soft computing ;v.273..
Introduction -- Strategic Prospective: Definitions and Key Concepts -- Fuzzy Optimization and Reasoning Approaches -- Constructing Models -- Modeling and Simulation of the Future -- Experimental Applications: An Overview of New Ways -- Meta-Prospective Toolbox -- A Cloud Environment: A first demo.
This book discusses how to build optimization tools able to generate better future studies. It aims at showing how these tools can be used to develop an adaptive learning environment that can be used for decision making in the presence of uncertainties. The book starts with existing fuzzy techniques and multicriteria decision making approaches and shows how to combine them in more effective tools to model future events and take therefore better decisions. The first part of the book is dedicated to the theories behind fuzzy optimization and fuzzy cognitive map, while the second part presents new approaches developed by the authors with their practical application to trend impact analysis, scenario planning and strategic formulation. The book is aimed at two groups of readers, interested in linking the future studies with artificial intelligence. The first group includes social scientists seeking for improved methods for strategic prospective. The second group includes computer scientists and engineers seeking for new applications and current developments of Soft Computing methods for forecasting in social science, but not limited to this.
ISBN: 9783030254322$q(electronic bk.)
Standard No.: 10.1007/978-3-030-25432-2doiSubjects--Topical Terms:
182083
Soft computing.
LC Class. No.: QA76.9.S63 / T78 2020
Dewey Class. No.: 006.3
Integrating soft computing into strategic prospective methodstowards an adaptive learning environment supported by futures studies /
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Introduction -- Strategic Prospective: Definitions and Key Concepts -- Fuzzy Optimization and Reasoning Approaches -- Constructing Models -- Modeling and Simulation of the Future -- Experimental Applications: An Overview of New Ways -- Meta-Prospective Toolbox -- A Cloud Environment: A first demo.
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This book discusses how to build optimization tools able to generate better future studies. It aims at showing how these tools can be used to develop an adaptive learning environment that can be used for decision making in the presence of uncertainties. The book starts with existing fuzzy techniques and multicriteria decision making approaches and shows how to combine them in more effective tools to model future events and take therefore better decisions. The first part of the book is dedicated to the theories behind fuzzy optimization and fuzzy cognitive map, while the second part presents new approaches developed by the authors with their practical application to trend impact analysis, scenario planning and strategic formulation. The book is aimed at two groups of readers, interested in linking the future studies with artificial intelligence. The first group includes social scientists seeking for improved methods for strategic prospective. The second group includes computer scientists and engineers seeking for new applications and current developments of Soft Computing methods for forecasting in social science, but not limited to this.
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Intelligent Technologies and Robotics (SpringerNature-42732)
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EB QA76.9.S63 T866 2020 2020
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https://doi.org/10.1007/978-3-030-25432-2
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