Artificial intelligence assisted model-based and model-free control for 3-level inverters3레벨 인버터를 위한 인공지능을 활용한 모델 기반 및 모델 없는 제어 기법 연구

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dc.contributor.advisor박기범-
dc.contributor.authorYang, Xinliang-
dc.contributor.author양신량-
dc.date.accessioned2024-07-25T19:31:28Z-
dc.date.available2024-07-25T19:31:28Z-
dc.date.issued2023-
dc.identifier.urihttp://library.kaist.ac.kr/search/detail/view.do?bibCtrlNo=1045979&flag=dissertationen_US
dc.identifier.urihttp://hdl.handle.net/10203/320744-
dc.description학위논문(석사) - 한국과학기술원 : 조천식모빌리티대학원, 2023.8,[v, 61 p. :]-
dc.description.abstractTraditional control ideas for power converters are, to most extent, physical model-based, which starts from time-domain or frequency-domain modeling progress. For model construction, the main procedures, first principle-based mathematical deduction and manual experiments, are considerably time-consuming and cost-expensive, which is not generic and restarts facing different systems. After model construction, a particular control scheme is designed according to the trade-off of model property, cost, work requirements, and so on. One of the model-based evergreen tree schemes, transfer function-based proportion integration differentiation (PID) control, occupies industry for a long time. With the fast-developing computing ability of industrial chips, real-time optimization and nonlinear control becomes more and more promising, such as the recently popular model predictive control (MPC) which is a representative of model-based control method and mainly discussed in this thesis. By the constructed math models, future-horizontal behaviors of the power electronics system could be predicted, which is used for the selection of optimal switch state according to work requirements. However, while facing much longer prediction horizon demand or complex topologies, like the popular multi-level modular converters (MMC), even the most advanced field programmable gate arrays (FPGA) or digital signal processors (DSP) meet computing resource limitations and cost problems. To generalize the advantages of MPC in more applications, inspiration comes from artificial intelligence (AI). After the introduction of MPC and fusion examples of AI-assisted power electronics like surrogate models, as the ratio of data-driven or AI components of control loops increases, we show gradient-free hyper-parameters adjustment, imitator concept of developed controllers, and sparse-prior-knowledge reinforcement learning-based model-free control without effort paid for modeling. Like the coupled DNA spiral structure, on the interactive roads of model-based and model-free motivation, the first and rough step towards generic, systematical, physics-informed, and data-driven control design is embarked for the power electronics system in this dissertation.-
dc.languageeng-
dc.publisher한국과학기술원-
dc.subject전기 전자▼a인공 지능▼a모델 예측 제어▼a신경 네트워크▼a강화 학습▼a전력 변환기▼a데이터 구동-
dc.subjectPower electronics▼aArtificial intelligence▼aModel predictive control▼aNeural network▼aReinforcement learning▼aPower converter▼aData-driven-
dc.titleArtificial intelligence assisted model-based and model-free control for 3-level inverters-
dc.title.alternative3레벨 인버터를 위한 인공지능을 활용한 모델 기반 및 모델 없는 제어 기법 연구-
dc.typeThesis(Master)-
dc.identifier.CNRN325007-
dc.description.department한국과학기술원 :조천식모빌리티대학원,-
dc.contributor.alternativeauthorPark, Ki-Bum-
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GT-Theses_Master(석사논문)
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