Byoung Kyu Choi
Korea Advanced Institute of Science and Technology · 工学
研究室紹介
Professor Byoung Kyu Choi's research lab specializes in computer-aided design and manufacturing (CAD/CAM), with a strong focus on advanced surface modeling, numerical control (NC) programming, and the development of integrated systems for flexible manufacturing. The lab's work spans from fundamental geometric modeling techniques—such as Bézier curves, NURBS, and surface construction from 3D data—to practical applications in automated process planning, CAM systems, and manufacturing execution systems (MES) for flexible manufacturing systems (FMS). The lab also explores business process management systems (BPMS) in the context of automotive part development and applies simulation-based methods to improve operational efficiency in healthcare settings.
Research Overview
Research Output Trend
Figures are computed from collected data and may differ slightly.
Selected Papers
151. Frameworks for Surface Modeling and Machining. 2. Basic Differential Geometry and Coordinate Transformation. 3. Polynomial Curve Models. 4. Composite Curve Fitting and 2D Curve Modeling. 5. Surface Patch Models. 6. Properties of Bezier Curves and Surfaces. 7. Surface Construction from 3D Data Array. 8. Surface Construction from Scattered 3D Data. 9. Surface Construction from 2D Cross Sections. 10. Surface Construction from 3D Curve-Nets. 11. Construction of Blending Surfaces. 12. Surface Inte
Presented in the paper is MES (manufacturing execution system) architecture, which is suitable for managing FMS (flexible manufacturing system) lines under an ERP (enterprise planning system)environment. An IDEF0-model of an 'order handling' shop floor having an FMS line is developed to identify functional requirements of MES, and then a two-tier MES architecture satisfying the functional requirements is proposed. The proposed MES is composed of a Main-MES (for the main shop floor) and an FMS-ME
This thesis describes a methodology for developing an automated process planning system for machining centers. The proposed approach is compatible with the existing CAD/CAM technologies in that the computer automated process planning (CAPP) system can take certain input workpiece descriptions directly from a computer-aided design (CAD) system, and its output process plans are easily converted to "numerical control commands". The process planning system produces practical process plans taking int
The classical activity cycle diagram (ACD), which is a bipartite directed graph, is easy to learn and use for describing the dynamic behavior of a discrete-event system . However, the complexity of the classical ACD model increases rapidly as the system size increases. This article presents an enriched ACD called the parameterized ACD (P-ACD). In P-ACD, each node is allowed to have parameter variables , and parameter values are passed to the parameter variables through a directed arc . This arti
Research Areas
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