• Applied Nature-Inspired Computing: Algorithms and Case Studies

Applied Nature-Inspired Computing: Algorithms and Case Studies

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Overview

This book presents a cutting-edge research procedure in the Nature-Inspired Computing (NIC) domain and its connections with computational intelligence areas in real-world engineering applications. It introduces readers to a broad range of algorithms, such as genetic algorithms, particle swarm optimization, the firefly algorithm, flower pollination algorithm, collision-based optimization algorithm, bat algorithm, ant colony optimization, and multi-agent systems. In turn, it provides an overview of meta-heuristic algorithms, comparing the advantages and disadvantages of each. Moreover, the book provides a brief outline of the integration of nature-inspired computing techniques and various computational intelligence paradigms, and highlights nature-inspired computing techniques in a range of applications, including: evolutionary robotics, sports training planning, assessment of water distribution systems, flood simulation and forecasting, traffic control, gene expression analysis, antenna array design, and scheduling/dynamic resource management.

Product Details

ISBN-13: 9789811392627
ISBN-10: 9811392625
Publisher: Springer Nature Singapore
Publication date: 2019-08-24
Edition description: 1
Pages: 275
Product dimensions: Height: 9.21 Inches, Length: 6.14 Inches, Weight: 1.322773572 Pounds, Width: 0.69 Inches
Author: Nilanjan Dey, Amira S. Ashour, Siddhartha Bhattacharyya
Language: en
Binding: Hardcover

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