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Cheolkon Jung

20 accepted papers

2020

Multispectral Fusion of RGB and NIR Images Using Weighted Least Squares and Alternating Guidance

ICASSP 2020accepted

In low light condition, color (RGB) images captured by camera contain much noise and loss of details and color. However, near infrared (NIR) images are robust to noise and have clear textures without color. In this paper, we propose multi-spectral fusion of RGB and NIR images using weighted least sq…

Cited by 0SourceScholar
2019

Alternately Guided Depth Super-resolution Using Weighted Least Squares and Zero-order Reverse Filtering

ICASSP 2019accepted

Due to the structural inconsistency between color and depth, texture copying and edge blurring artifacts appear in color-guided depth super-resolution. In this paper, we propose alternately guided depth super-resolution using weighted least squares (WLS) and zero-order reverse filtering. We adopt WL…

Cited by 0SourceScholar
2019

SPFEMD: Super-pixel Based Finger Earth Mover's Distance for Hand Gesture Recognition

ICASSP 2019accepted

In this paper, we propose super-pixel based finger earth mover's distance (SPFEMD) for hand gesture recognition. For finger representation, we design SPFEMD for similarity measurement between fingers and hand gestures, and use it as the distance metric for hand gesture recognition. First, we extract…

Cited by 0SourceScholar
2018

Automatic Segmentation and Cardiopathy Classification in Cardiac Mri Images Based on Deep Neural Networks

ICASSP 2018accepted

Segmentation of cardiac MRI images plays a key role in clinical diagnosis. In the traditional diagnostic process, clinical experts manually segment left ventricle (LV), right ventricle (RV) and myocardium to obtain guideline for cardiopathy diagnosis. However, manual segmentation is time-consuming a…

Cited by 0SourceScholar
2018

Deep Feature Embedding Learning for Person Re-Identification Using Lifted Structured Loss

ICASSP 2018accepted

In this paper, we propose deep feature embedding learning for person re-identification (re-id) using lifted structured loss. Although triplet loss has been commonly used in deep neural networks for person re-id, the triplet loss-based framework is not effective in fully using the batch information.…

Cited by 0SourceScholar
2016

Adaptive enhancement of luminance and details in images under ambient light

ICASSP 2016accepted

Image quality of mobile displays are significantly influenced by ambient light. In the daylight condition, displayed images on mobile displays are darkly perceived by human visual system (HVS), which suffer from significant detail loss. However, only luminance enhancement seriously affects image det…

Cited by 0SourceScholar
2016

Readability enhancement of low light images based on dual-tree complex wavelet transform

ICASSP 2016accepted

Since images captured under low light conditions have low dynamic range and are seriously degraded by noise, it is a challengeable task to achieve both contrast enhancement and noise reduction from low light images. In this paper, we propose a readability enhancement method of low light images based…

Cited by 0SourceScholar