An extensive review of computational intelligence-based optimization algorithms: trends and applications

2020 ◽  
Vol 24 (21) ◽  
pp. 16519-16549
Author(s):  
Lavika Goel
2014 ◽  
Vol 1006-1007 ◽  
pp. 792-796
Author(s):  
Shun Wei Wu

Watermarking algorithms are the one of the effective methods to protect the copyright of digital products. There are many types of watermarking algorithms, in this paper, methods based on optimization algorithms, also named computational intelligence, are surveyed. The detail procedure of watermark embedding and the watermarking extraction is described, and the basic theory application of computational intelligence is also analyzed. Finally, the advice of these types of watermarking algorithm is given.


2018 ◽  
Vol 7 (1) ◽  
pp. 27-32
Author(s):  
P. Sindhuja ◽  
P. Ramamoorthy ◽  
M. Suresh Kumar

This paper presents a brief survey on various optimization algorithms. To be more precise, the paper elaborates on clever Algorithms – a class of Nature inspired Algorithms. The Nature Inspired Computing (NIC) is an emerging area of research that focuses on Physics and Biology Based approach to the Algorithms for optimization. The Algorithms briefed in this paper have understood, explained, adapted and replicated the phenomena of Nature to replicate them in the artificial systems. This Cross – fertilisation of Nature Inspired Computing (NIC) and Computational Intelligence (CI) will definitely provide optimal solutions to existing problems and also open up new arenas in Research and Development. This paper briefs the classification of clever algorithms and the key strategies employed for optimization.


Author(s):  
Kamalanand Krishnamurthy ◽  
Mannar Jawahar Ponnuswamy

Swarm intelligence is a branch of computational intelligence where algorithms are developed based on the biological examples of swarming and flocking phenomena of social organisms such as a flock of birds. Such algorithms have been widely utilized for solving computationally complex problems in fields of biomedical engineering and sociology. In this chapter, two different swarm intelligence algorithms, namely the jumping frogs optimization (JFO) and bacterial foraging optimization (BFO), are explained in detail. Further, a synergetic algorithm, namely the coupled bacterial foraging/jumping frogs optimization algorithm (BFJFO), is described and utilized as a tool for control of the heroin epidemic problem.


Mathematics ◽  
2021 ◽  
Vol 9 (21) ◽  
pp. 2665
Author(s):  
Mohammad Nasir ◽  
Ali Sadollah ◽  
Przemyslaw Grzegorzewski ◽  
Jin Hee Yoon ◽  
Zong Woo Geem

In recent years, many researchers have utilized metaheuristic optimization algorithms along with fuzzy logic theory in their studies for various purposes. The harmony search (HS) algorithm is one of the metaheuristic optimization algorithms that is widely employed in different studies along with fuzzy logic (FL) theory. FL theory is a mathematical approach to expressing uncertainty by applying the conceptualization of fuzziness in a system. This review paper presents an extensive review of published papers based on the combination of HS and FL systems. In this regard, the functional characteristics of models obtained from integration of FL and HS have been reported in various articles, and the performance of each study is investigated. The basic concept of the FL approach and its derived models are introduced to familiarize readers with the principal mechanisms of FL models. Moreover, appropriate descriptions of the primary classifications acquired from the coexistence of FL and HS methods for specific purposes are reviewed. The results show that the high efficiency of HS to improve the exploration of FL in achieving the optimal solution on the one hand, and the capability of fuzzy inference systems to provide more flexible and dynamic adaptation of the HS parameters based on human perception on the other hand, can be a powerful combination for solving optimization problems. This review paper is believed to be a useful resource for students, engineers, and professionals.


2018 ◽  
Vol 29 (12) ◽  
pp. 2966-2977 ◽  
Author(s):  
Hossam M. Zawbaa ◽  
Serena Schiano ◽  
Lucia Perez-Gandarillas ◽  
Crina Grosan ◽  
A. Michrafy ◽  
...  

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