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LEE HOJUN

Mechanical Engineering undergraduate interested in physics-informed and data-driven modeling for mechanical systems.

I use GitHub to organize undergraduate projects and self-study work before graduate research. My current focus is on applying machine learning, simulation, and physical modeling to mechanical system analysis, diagnosis, and control.

Research Interests

  • Physics-Informed Machine Learning
  • Mechanical System Modeling and Vibration
  • Data-driven Fault Diagnosis and PHM
  • Simulation-based Analysis and Control

Selected Projects

Project Role in My Research Direction Description
PINN Physics-informed modeling Modified and studied a PINN example for a damped mass-spring system from a mechanical engineering perspective.
NASA-Airfoil-Self-Noise Noise and signal/data analysis Exploratory analysis and regression modeling on NASA airfoil self-noise data.
manufacturing-quality-dnn Process data and fault classification DNN-based quality classification on KAMP precision machining process data.
mechanical-design-projects Physics-based simulation Undergraduate mechanical design projects using ANSYS, MATLAB, FEA, and design optimization.
2025-CARSA Simulation-based control study Steering-control study using MATLAB/Simulink and IPG CarMaker, with simulation-based training data expansion.
public-safety-first-response Safety-aware system prototype Prototype workflow linking risk recognition with safety-aware drone response.

Current Direction

I am especially interested in combining physical laws, simulation data, and sensor/process data for mechanical system modeling, fault diagnosis, and control.

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