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Seongyong Lee

Pohang University of Science and Technology · Computer Science

About the Lab

Professor Seongyong Lee's research lab specializes in computer vision and image processing, with a focus on advanced techniques for image morphing, semantic segmentation, and image decomposition. The lab explores multi-modal feature fusion in deep learning for RGB-D semantic segmentation, develops efficient and smooth warping methods using B-spline and free-form deformation models, and investigates gradient-based filtering and curvature-driven algorithms for image abstraction and texture-structure separation. Their work emphasizes intuitive, high-quality image transformations with strong geometric and photometric fidelity.

image morphingsemantic segmentationgradient filteringdeformable modelsimage abstraction

Research Overview

Papers
241
Total Citations
7,509
Papers (5y)
52
Primary Field
Computer Science

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
52total
2021
2022
2023
2024
2025
Citations per year (5y)
591total
20212022202320242025

Selected Papers

15
1
Article|303 citations·2017
RDFNet: RGB-D Multi-level Residual Feature Fusion for Indoor Semantic Segmentation
Seungyong Lee, Seongjin Park, Ki-Sang Hong

In multi-class indoor semantic segmentation using RGB-D data, it has been shown that incorporating depth feature into RGB feature is helpful to improve segmentation accuracy. However, previous studies have not fully exploited the potentials of multi-modal feature fusion, e.g., simply concatenating RGB and depth features or averaging RGB and depth score maps. To learn the optimal fusion of multimodal features, this paper presents a novel network that extends the core idea of residual learning to

Computer Vision and Pattern RecognitionComputer Science
2
Article|210 citations·1996
Image metamorphosis with scattered feature constraints
Seungyong Lee, George Wolberg, Kyung‐Yong Chwa, Sung Yong Shin
SJR Q1IEEE Transactions on Visualization and Computer Graphics

This paper describes an image metamorphosis technique to handle scattered feature constraints specified with points, polylines, and splines. Solutions to the following three problems are presented: feature specification, warp generation, and transition control. We demonstrate the use of snakes to reduce the burden of feature specification. Next, we propose the use of multilevel free-form deformations (MFFD) to compute C/sup 2/-continuous and one-to-one mapping functions among the specified featu

Computer Vision and Pattern RecognitionComputer Science
3
Article|159 citations·2005
Mesh scissoring with minima rule and part salience
Yunjin Lee, Seungyong Lee, Ariel Shamir, Daniel Cohen‐Or, Hans‐Peter Seidel
SJR Q2Computer Aided Geometric Design
Computational MechanicsEngineering
4
Article|116 citations·1996
Image Morphing Using Deformation Techniques
Seungyong Lee, Kyung‐Yong Chwa, James K. Hahn, Sung Yong Shin
The Journal of Visualization and Computer Animation

This paper presents a new image morphing method using a two-dimensional deformation technique which provides an intuitive model for a warp. The deformation technique derives aC1-continuous and one-to-one warp from a set of point pairs overlaid on two images. The resulting in-between image precisely reflects the correspondence of features specified by an animator. We also control the transition behaviour in a metamorphosis sequence by taking another deformable surface model, which is simpler and

Computational MechanicsEngineering
5
Article|95 citations·2000
Injectivity Conditions of 2D and 3D Uniform Cubic B-Spline Functions
Yongchoel Choi, Seungyong Lee
SJR Q2Graphical Models
Computational MechanicsEngineering
6
Article|70 citations·1998
Polymorph: morphing among multiple images
Seungyong Lee, George Wolberg, Sung Yong Shin
SJR Q3IEEE Computer Graphics and Applications

Polymorph extends conventional morphing to derive morphed images from more than two images at once, effectively integrating geometric manipulations and color blending. We present a general framework for polymorphing by extending the traditional image morphing paradigm that applies to two images. The authors formulate each input image as a vertex of an (n-1)-dimensional simplex, where n equals the number of input images. They look at the mathematical framework for polymorph, followed by warp func

Computer Vision and Pattern RecognitionComputer Science
7
Article|62 citations·2007
Surface and normal ensembles for surface reconstruction
Mincheol Yoon, Yunjin Lee, Seungyong Lee, Ioannis Ivrissimtzis, Hans‐Peter Seidel
SJR Q1Computer-Aided DesignOA
Computational MechanicsEngineering
8
Article|59 citations·2002
Mesh parameterization with a virtual boundary
Yunjin Lee, Hyoung Seok Kim, Seungyong Lee
SJR Q2Computers & Graphics
Computational MechanicsEngineering
9
Article|55 citations·2016
Structure‐Texture Decomposition of Images with Interval Gradient
Hyunjoon Lee, Junho Jeon, Junho Kim, Seungyong Lee
SJR Q1Computer Graphics Forum

Abstract This paper presents a novel filtering‐based method for decomposing an image into structures and textures. Unlike previous filtering algorithms, our method adaptively smooths image gradients to filter out textures from images. A new gradient operator, the interval gradient, is proposed for adaptive gradient smoothing. Using interval gradients, textures can be distinguished from structure edges and smoothly varying shadings. We also propose an effective gradient‐guided algorithm to produc

Computer Vision and Pattern RecognitionComputer Science
10
Article|54 citations·2008
Shape‐simplifying Image Abstraction
Henry Kang, Seungyong Lee
SJR Q1Computer Graphics Forum

Abstract This paper presents a simple algorithm for producing stylistic abstraction of a photograph. Based on mean curvature flow in conjunction with shock filter, our method simplifies both shapes and colors simultaneously while preserving important features. In particular, we develop a constrained mean curvature flow, which outperforms the original mean curvature flow in conveying the directionality of features and shape boundaries. The proposed algorithm is iterative and incremental, and ther

Computer Graphics and Computer-Aided DesignComputer Science
11
Article|40 citations·2010
Acclimation and activity of ammonia-oxidizing bacteria with respect to variations in zinc concentration, temperature, and microbial population
Seungyong Lee, Kyungjin Cho, Juntaek Lim, Woong Kim, Seokhwan Hwang
SJR Q1Bioresource Technology
PollutionEnvironmental Science
12
Article|39 citations·2003
Motion retargeting and evaluation for VR-based training of free motions
Seongmin Baek, Seungyong Lee, Gerard Jounghyun Kim
SJR Q2The Visual Computer
Control and Systems EngineeringEngineering
13
Article|34 citations·1999
Interactive Multiresolution Editing of Arbitrary Meshes
Seungyong Lee
SJR Q1Computer Graphics Forum

This paper presents a novel approach to multiresolution editing of a triangular mesh. The basic idea is to embed an editing area of a mesh onto a 2D rectangle and interpolate the user‐specified editing information over the 2D rectangle. The result of the interpolation is mapped back to the editing area and then used to update the mesh. We adopt harmonic maps for the embedding and multilevel B‐splines for the interpolation. The proposed mesh editing technique can handle an arbitrary mesh without

Computational MechanicsEngineering
14
Article|29 citations·2017
Robust upright adjustment of 360 spherical panoramas
Jin Woong Jung, Beomseok Kim, Joon‐Young Lee, Byung Moon Kim, Seungyong Lee
SJR Q2The Visual Computer
Computer Vision and Pattern RecognitionComputer Science
15
Article|29 citations·2016
Texture map generation for 3D reconstructed scenes
Junho Jeon, Yeongyu Jung, Haejoon Kim, Seungyong Lee
SJR Q2The Visual Computer
Aerospace EngineeringEngineering

Research Areas

Computer Vision and Pattern RecognitionComputer Graphics and Computer-Aided DesignComputational MechanicsBuilding and ConstructionAerospace EngineeringMedia Technology

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