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Dongki Jung

10 accepted papers

2026

UAV4D: Dynamic Neural Rendering of Human-Centric UAV Imagery Using Gaussian Splatting

AAAI 2026technical

Despite significant advancements in dynamic neural rendering, existing methods fail to address the unique challenges posed by UAV-captured scenarios, particularly those involving monocular camera setups, top-down perspective, and multiple small, moving humans, which are not adequately represented in

Cited by 0SourcePDFScholar
2025

EDM: Equirectangular Projection-Oriented Dense Kernelized Feature Matching

CVPR 2025poster

We introduce the first learning-based dense matching algorithm, termed Equirectangular Projection-Oriented Dense Kernelized Feature Matching (EDM), specifically designed for omnidirectional images. Equirectangular projection (ERP) images, with their large fields of view, are particularly suited for…

2025

RPG360: Robust 360 Depth Estimation with Perspective Foundation Models and Graph Optimization

NeurIPS 2025poster

The increasing use of 360$^\circ$ images across various domains has emphasized the need for robust depth estimation techniques tailored for omnidirectional images. However, obtaining large-scale labeled datasets for 360$^\circ$ depth estimation remains a significant challenge. In this paper, we prop…

Cited by 0SourceScholar
2024

WayIL: Image-based Indoor Localization with Wayfinding Maps

ICRA 2024poster

This paper tackles a localization problem in large-scale indoor environments with wayfinding maps. A wayfinding map abstractly portrays the environment, and humans can localize themselves based on the map. However, when it comes to using it for robot localization, large geometrical discrepancies bet…

Cited by 3SourcecodeScholar
2023

TMO: Textured Mesh Acquisition of Objects With a Mobile Device by Using Differentiable Rendering

CVPR 2023poster

We present a new pipeline for acquiring a textured mesh in the wild with a single smartphone which offers access to images, depth maps, and valid poses. Our method first introduces an RGBD-aided structure from motion, which can yield filtered depth maps and refines camera poses guided by correspondi…

Cited by 11SourcePDFScholar
2022

SelfTune: Metrically Scaled Monocular Depth Estimation through Self-Supervised Learning

ICRA 2022poster

Monocular depth estimation in the wild inherently predicts depth up to an unknown scale. To resolve scale ambiguity issue, we present a learning algorithm that leverages monocular simultaneous localization and mapping (SLAM) with proprioceptive sensors. Such monocular SLAM systems can provide metric…

Cited by 5SourceScholar
2021

DnD: Dense Depth Estimation in Crowded Dynamic Indoor Scenes

ICCV 2021poster

We present a novel approach for estimating depth from a monocular camera as it moves through complex and crowded indoor environments, e.g., a department store or a metro station. Our approach predicts absolute scale depth maps over the entire scene consisting of a static background and multiple movi…

Cited by 6PDFScholar
2021

Just a Few Points Are All You Need for Multi-View Stereo: A Novel Semi-Supervised Learning Method for Multi-View Stereo

ICCV 2021poster

While learning-based multi-view stereo (MVS) methods have recently shown successful performances in quality and efficiency, limited MVS data hampers generalization to unseen environments. A simple solution is to generate various large-scale MVS datasets, but generating dense ground truth for 3D stru…

Cited by 8PDFScholar
2021

SelfDeco: Self-Supervised Monocular Depth Completion in Challenging Indoor Environments

ICRA 2021poster

We present a novel algorithm for self-supervised monocular depth completion. Our approach is based on training a neural network that requires only sparse depth measurements and corresponding monocular video sequences without dense depth labels. Our self-supervised algorithm is designed for challengi…

Cited by 27SourceScholar