How Fuzzy Concepts Contribute To Machine Learning


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How Fuzzy Concepts Contribute to Machine Learning


How Fuzzy Concepts Contribute to Machine Learning

Author: Mahdi Eftekhari

language: en

Publisher: Springer Nature

Release Date: 2022-02-15


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This book introduces some contemporary approaches on the application of fuzzy and hesitant fuzzy sets in machine learning tasks such as classification, clustering and dimension reduction. Many situations arise in machine learning algorithms in which applying methods for uncertainty modeling and multi-criteria decision making can lead to a better understanding of algorithms behavior as well as achieving good performances. Specifically, the present book is a collection of novel viewpoints on how fuzzy and hesitant fuzzy concepts can be applied to data uncertainty modeling as well as being used to solve multi-criteria decision making challenges raised in machine learning problems. Using the multi-criteria decision making framework, the book shows how different algorithms, rather than human experts, are employed to determine membership degrees. The book is expected to bring closer the communities of pure mathematicians of fuzzy sets and data scientists.

2020 International Conference on Data Mining Workshops (ICDMW)


2020 International Conference on Data Mining Workshops (ICDMW)

Author: IEEE Staff

language: en

Publisher:

Release Date: 2020-11-17


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The conference covers all aspects of data mining, including algorithms, software and systems, and applications

Deep Learning and Neural Networks: Concepts, Methodologies, Tools, and Applications


Deep Learning and Neural Networks: Concepts, Methodologies, Tools, and Applications

Author: Management Association, Information Resources

language: en

Publisher: IGI Global

Release Date: 2019-10-11


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Due to the growing use of web applications and communication devices, the use of data has increased throughout various industries. It is necessary to develop new techniques for managing data in order to ensure adequate usage. Deep learning, a subset of artificial intelligence and machine learning, has been recognized in various real-world applications such as computer vision, image processing, and pattern recognition. The deep learning approach has opened new opportunities that can make such real-life applications and tasks easier and more efficient. Deep Learning and Neural Networks: Concepts, Methodologies, Tools, and Applications is a vital reference source that trends in data analytics and potential technologies that will facilitate insight in various domains of science, industry, business, and consumer applications. It also explores the latest concepts, algorithms, and techniques of deep learning and data mining and analysis. Highlighting a range of topics such as natural language processing, predictive analytics, and deep neural networks, this multi-volume book is ideally designed for computer engineers, software developers, IT professionals, academicians, researchers, and upper-level students seeking current research on the latest trends in the field of deep learning.