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AI-Driven Optimization of a Cascaded H-Bridge 11-Level Converter Using Reinforcement Learning

  • 2025
  • OriginalPaper
  • Chapter
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Abstract

This chapter explores the application of reinforcement learning (RL) for optimizing the performance of cascaded H-bridge 11-level converters. The focus is on reducing total harmonic distortion (THD), minimizing switching losses, and enhancing fault tolerance. The text delves into the reinforcement learning algorithm, specifically the Deep Q-Network (DQN) approach, and its implementation in controlling the switching patterns of the converter. Simulation results using MATLAB/Simulink demonstrate significant improvements in power quality, efficiency, and system robustness compared to traditional control methods. The chapter also discusses the practical implementation of the proposed control strategy, including hardware setup and experimental validation. The conclusion highlights the potential of RL to revolutionize power electronics control, offering a promising direction for future research and development in the field.

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Title
AI-Driven Optimization of a Cascaded H-Bridge 11-Level Converter Using Reinforcement Learning
Authors
B. Priya
M. Kanimozhi
M. Rajasubasri
V. Aakash
M. Suresh Kumar
Copyright Year
2025
Publisher
Springer Nature Singapore
DOI
https://doi.org/10.1007/978-981-96-9975-9_3
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