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    A Surrogate Assisted Quantum-Behaved Algorithm for Well Placement Optimization

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    A_Surrogate_Assisted_Quantum-Behaved_Algorithm_for_Well_Placement_Optimization.pdf (2.178Mb)
    Date
    2022-01-20
    Author
    Islam, Jahedul
    Nazir, Amril
    Hossain, Md Moinul
    Alhitmi, Hitmi Khalifa
    Kabir, Muhammad Ashad
    Jallad, Abdul Halim M.
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    Abstract
    The oil and gas industry faces difficulties in optimizing well placement problems. These problems are multimodal, non-convex, and discontinuous in nature. Various traditional and non-traditional optimization algorithms have been developed to resolve these difficulties. Nevertheless, these techniques remain trapped in local optima and provide inconsistent performance for different reservoirs. This study thereby presents a Surrogate Assisted Quantum-behaved Algorithm to obtain a better solution for the well placement optimization problem. The proposed approach utilizes different metaheuristic optimization techniques such as the Quantum-inspired Particle Swarm Optimization and the Quantum-behaved Bat Algorithm in different implementation phases. Two complex reservoirs are used to investigate the performance of the proposed approach. A comparative study is carried out to verify the performance of the proposed approach. The result indicates that the proposed approach provides a better net present value for both complex reservoirs. Furthermore, it solves the problem of inconsistency exhibited in other methods for well placement optimization.
    URI
    https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85123575512&origin=inward
    DOI/handle
    http://dx.doi.org/10.1109/ACCESS.2022.3145244
    http://hdl.handle.net/10576/54265
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