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  • Reconstruction and Intelligent Control for Power Plant

    Reconstruction and Intelligent Control for Power Plant by Peng, Chen; Cheng, Chuanliang; Wang, Ling;

      • GET 20% OFF

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      • Publisher's listprice EUR 106.99
      • The price is estimated because at the time of ordering we do not know what conversion rates will apply to HUF / product currency when the book arrives. In case HUF is weaker, the price increases slightly, in case HUF is stronger, the price goes lower slightly.

        44 374 Ft (42 261 Ft + 5% VAT)
      • Discount 20% (cc. 8 875 Ft off)
      • Discounted price 35 499 Ft (33 809 Ft + 5% VAT)

    44 374 Ft

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    Product details:

    • Edition number 1st ed. 2023
    • Publisher Springer Nature Singapore
    • Date of Publication 23 September 2023
    • Number of Volumes 1 pieces, Book

    • ISBN 9789811955761
    • Binding Paperback
    • See also 9789811955730
    • No. of pages208 pages
    • Size 235x155 mm
    • Weight 349 g
    • Language English
    • Illustrations XV, 208 p. 100 illus., 90 illus. in color. Illustrations, black & white
    • 489

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    Long description:

    The authors' innovative research ideas in power plant control are presented in this book. This book focuses on 1) cognition and reconstruction of the temperature field; 2) intelligent setting and learning of power plants; 3) energy efficiency optimization and intelligent control for power plants, and so on, using historical power plant operation data and creative methods such as reconstruction of the combustion field, deep reinforcement learning, and networked collaborative control. It could help researchers, industrial engineers, and graduate students in the areas of signal detection, image processing, and control engineering.

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    Table of Contents:

    Introduction.- Adaptive mixed edge detection of furnace flame image.- Intelligent flame image segmentation of furnace flame image.- Reconstruction of temperature field based on limited flame image information.- Furnace temperature prediction based on optimized kernel extreme learning machine.- Process modeling of power plant.- Fuzzy K-means network based generalized predictive control for power plant.- Deep-neural-network based nonlinear predictive control for power plant.- Intelligent virtual reference feedback tuning based data driven control for power plant.

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