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Inwook Shim

9 accepted papers

2024

Close Imitation of Expert Retouching for Black-and-White Photography

CVPR 2024poster

Since the widespread availability of cameras black-and-white (BW)photography has been a popular choice for artistic and aesthetic expression. It highlights the main subject in varying tones of gray creating various effects such as drama and contrast. However producing BW photography often demands hi…

2023

ScaTE: A Scalable Framework for Self- Supervised Traversability Estimation in Unstructured Environments

RA-L 2023

For the safe and successful navigation of autonomous vehicles in unstructured environments, the traversability of terrain should vary based on the driving capabilities of the vehicles. Actual driving experience can be utilized in a self-supervised fashion to learn vehicle-specific traversability. Ho

Cited by 52SourceScholar
2022

SLiDE: Self-Supervised LiDAR De-Snowing through Reconstruction Difficulty

ECCV 2022poster

"LiDAR is widely used to capture accurate 3D outdoor scene structures. However, LiDAR produces many undesirable noise points in snowy weather, which hamper analyzing meaningful 3D scene structures. Semantic segmentation with snow labels would be a straightforward solution for removing them, but it r…

Cited by 17SourcePDFScholar
2021

Distinctiveness Oriented Positional Equilibrium for Point Cloud Registration

ICCV 2021poster

Recent state-of-the-art learning-based approaches to point cloud registration have largely been based on graph neural networks (GNN). However, these prominent GNN backbones suffer from the indistinguishable features problem associated with over-smoothing and structural ambiguity of the high-level fe…

Cited by 21PDFScholar
2021

Improving Gradient Flow with Unrolled Highway Expectation Maximization

AAAI 2021technical

Integrating model-based machine learning methods into deep neural architectures allows one to leverage both the expressive power of deep neural nets and the ability of model-based methods to incorporate domain-specific knowledge. In particular, many works have employed the expectation maximization (…

Cited by 2SourcePDFScholar
2016

Object proposal using 3D point cloud for DRC-HUBO+

IROS 2016poster

We present an object proposal method which utilizes the 3D data obtained from a depth sensor as well as the color information of images. Our object proposal method is designed to improve the performance of the object detection for a mobile robot equipped with a camera and a laser scanner. Compared t…

Cited by 4SourceScholar
2016

Vision system and depth processing for DRC-HUBO+

ICRA 2016

This paper presents a vision system and a depth processing algorithm for DRC-HUBO+, the winner of the DRC finals 2015. Our system is designed to reliably capture 3D information of a scene and objects and to be robust to challenging environment conditions. We also propose a depth-map upsampling metho

Cited by 13SourceScholar