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      Progress of artificial neural networks applications in hydrogen production

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          Review and evaluation of hydrogen production methods for better sustainability

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            Is Open Access

            State-of-the-art in artificial neural network applications: A survey

            This is a survey of neural network applications in the real-world scenario. It provides a taxonomy of artificial neural networks (ANNs) and furnish the reader with knowledge of current and emerging trends in ANN applications research and area of focus for researchers. Additionally, the study presents ANN application challenges, contributions, compare performances and critiques methods. The study covers many applications of ANN techniques in various disciplines which include computing, science, engineering, medicine, environmental, agriculture, mining, technology, climate, business, arts, and nanotechnology, etc. The study assesses ANN contributions, compare performances and critiques methods. The study found that neural-network models such as feedforward and feedback propagation artificial neural networks are performing better in its application to human problems. Therefore, we proposed feedforward and feedback propagation ANN models for research focus based on data analysis factors like accuracy, processing speed, latency, fault tolerance, volume, scalability, convergence, and performance. Moreover, we recommend that instead of applying a single method, future research can focus on combining ANN models into one network-wide application.
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              Hydrogen production for energy: An overview

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                Author and article information

                Journal
                Chemical Engineering Research and Design
                Chemical Engineering Research and Design
                Elsevier BV
                02638762
                June 2022
                June 2022
                : 182
                : 66-86
                Article
                10.1016/j.cherd.2022.03.030
                774a0c1d-9791-4740-92f9-dcf02ee64e06
                © 2022

                https://www.elsevier.com/tdm/userlicense/1.0/

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