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Hi there πŸ‘‹ I'm Jinsu Kim

About me

I'm interested in AI applications in nuclear fusion and plasma physics. During my undergraduate and graduate school, I majored in nuclear engineering and physics, focusing on the effect of RMP on electron heat transport in KSTAR. Recently, I studied plasma disruption prediction using Bayesian probabilistic deep learning and data-driven modeling of fusion plasma dynamics combined with autonomous control based on reinforcement learning. As a fusion AI researcher, I prioritize combining plasma physics and machine learning to achieve a physically consistent data-driven model. Several works are shared in my GitHub, so please see the repositories and share your opinions.

Feel free to contact me if you are interested in my research, work, or whatever you want to know from me.

Research area

Fusion Plasma Application

  • Disruption prediction using Deep Learning
    • Disruption prediction using IVIS dataset(Video data) in KSTAR
    • Disruption prediction using 0D data in KSTAR
    • Multi-modal learning for disruption prediction
  • Tokamak plasma operation control using Reinforcement Learning
    • Development of a Transformer-based virtual KSTAR environment
    • Development of PINN-based Grad-Shfranov solver
    • 0D parameters / shape parameters control using RL algorithms(DDPG, SAC) under the virtual KSTAR environment
    • Application of Multi-agent reinforcement learning for autonomous tokamak operation control
  • Design optimization of a tokamak fusion reactor based on reinforcement learning
    • Development of design computation code of virtual tokamak fusion reactor
    • Single-step reinforcement learning for optimizing the design configuration of the tokamak reactor

Virtual Metrology for Semiconductor industry

  • ML application on plasma etching process in Virtual Metrology
  • Physics-based plasma etching process control

Development

Frontend

Backend / AI

Tech stack

General

PythonΒ  JavaScriptΒ  TypeScriptΒ  JavaΒ  CΒ  C++Β 

Computing

OpenMPΒ  MPIΒ  CUDAΒ 

ML/DL

PyTorchΒ  TensorFlowΒ 

Frontend

HTMLΒ  CSSΒ  ReactΒ  AndroidΒ 

Backend

Node.jsΒ  MySQLΒ 

Team Collaboration Tool

GitΒ  GitHubΒ  SlackΒ 

Jinsu Kim's Projects

080229 icon 080229

<Node.js κ΅κ³Όμ„œ> κ°œμ •2판 μ†ŒμŠ€ μ½”λ“œ

centernet icon centernet

an implement for CenterNet by keras and tensorflow

dacon_kwra_competition icon dacon_kwra_competition

νŒ”λ‹ΉλŒ ν™μˆ˜ μ•ˆμ „μš΄μ˜μ— λ”°λ₯Έ ν•œκ°• μˆ˜μœ„μ˜ˆμΈ‘ AI κ²½μ§„λŒ€νšŒ

deep-learning-from-scratch icon deep-learning-from-scratch

γ€Žλ°‘λ°”λ‹₯λΆ€ν„° μ‹œμž‘ν•˜λŠ” λ”₯λŸ¬λ‹γ€(ν•œλΉ›λ―Έλ””μ–΄, 2017)

deep-learning-from-scratch-2 icon deep-learning-from-scratch-2

γ€Žλ°‘λ°”λ‹₯λΆ€ν„° μ‹œμž‘ν•˜λŠ” λ”₯λŸ¬λ‹ ❷』(ν•œλΉ›λ―Έλ””μ–΄, 2019)

deep-learning-from-scratch-3 icon deep-learning-from-scratch-3

γ€Žλ°‘λ°”λ‹₯λΆ€ν„° μ‹œμž‘ν•˜λŠ” λ”₯λŸ¬λ‹ ❸』(ν•œλΉ›λ―Έλ””μ–΄, 2020)

diya icon diya

- λ¨Έμ‹ λŸ¬λ‹/λ”₯λŸ¬λ‹ 연ꡬ 동아리 DIYA

fusion-reactor-design-project icon fusion-reactor-design-project

Fusion reactor design project : parameter search, verification of the operation limit, and application to the reinforcement learning

gausslabs-mini-project icon gausslabs-mini-project

Review : Reversible Instance Normalization for accurate time-series-forecasting against distribution shift

jobcare_competition icon jobcare_competition

Dacon μž‘μΌ€μ–΄ μΆ”μ²œ μ•Œκ³ λ¦¬μ¦˜ κ²½μ§„λŒ€νšŒ

k-molocr-detection icon k-molocr-detection

Project : K-MolOCR, detection code for recognizing the Molecular structure in the text PDF

keras icon keras

γ€ŠμΌ€λΌμŠ€λ‘œ κ΅¬ν˜„ν•˜λŠ” κ³ κΈ‰ λ”₯λŸ¬λ‹ μ•Œκ³ λ¦¬μ¦˜γ€‹ 예제 μ½”λ“œ

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