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Bio‐Inspired Optimisation Methods Applied to Low Carbon Power and Energy Problems: A Survey

Tianyu Hu et al · Wiley · 2026

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ABSTRACT Bio‐inspired optimisation methods have been widely applied to complex real‐world problems, particularly in low‐carbon power and energy systems, where optimisation tasks often involve high‐dimensional, constrained and mixed‐integer characteristics. Traditional approaches struggle with these challenges due to nonconvexity, nonlinearity and computational complexity. This paper provides a comprehensive review of bio‐inspired optimisation techniques applied to key low‐carbon energy problems, including economic load dispatch, unit commitment, optimal power flow, distributed generation planning, heat exchanger design, and parameter estimation for PEM fuel cells and solar cell models. By analysing the strengths and limitations of existing methods, we highlight their effectiveness in addressing computational efficiency, constraint handling and convergence behaviour. The paper also identifies research gaps and discusses future directions, providing a structured reference for algorithm developers and practitioners. This review aims to enhance the adoption and refinement of bio‐inspired optimisation techniques for sustainable energy solutions.

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APA 7

al, T. H. E. (2026). Bio‐Inspired Optimisation Methods Applied to Low Carbon Power and Energy Problems: A Survey. https://doi.org/10.1049/cit2.70069

MLA

al, Tianyu Hu et. "Bio‐Inspired Optimisation Methods Applied to Low Carbon Power and Energy Problems: A Survey." 2026. https://doi.org/10.1049/cit2.70069.

Chicago

al, Tianyu Hu et. 2026. "Bio‐Inspired Optimisation Methods Applied to Low Carbon Power and Energy Problems: A Survey.". https://doi.org/10.1049/cit2.70069.

Harvard

al, T. H. E. 2026, Bio‐Inspired Optimisation Methods Applied to Low Carbon Power and Energy Problems: A Survey, Wiley, available at: https://doi.org/10.1049/cit2.70069 [Accessed 7 Aug. 2026].

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Title
Bio‐Inspired Optimisation Methods Applied to Low Carbon Power and Energy Problems: A Survey
Author / contributors
Tianyu Hu et al
Publisher
Wiley
Publication year
2026
ISSN
2468-2322
ISSN
2468-2322
Language
English

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