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Real-GDSR: Real-World Guided DSM Super-Resolution via Edge-Enhancing Residual Network

Panangian, Daniel and Bittner, Ksenia (2024) Real-GDSR: Real-World Guided DSM Super-Resolution via Edge-Enhancing Residual Network. In: ISPRS Annals of the Photogrammetry, Remote Sensing and Spatial Information Sciences, X-2-20, pp. 185-192. ISPRS 2024, 2024-06-10, Las Vegas, Nevada, US. doi: 10.5194/isprs-annals-X-2-2024-185-2024. ISSN 2194-9042.

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Official URL: https://isprs-annals.copernicus.org/articles/X-2-2024/185/2024/isprs-annals-X-2-2024-185-2024.pdf

Abstract

A low-resolution digital surface model (DSM) features distinctive attributes impacted by noise, sensor limitations and data acquisition conditions, which failed to be replicated using simple interpolation methods like bicubic. This causes super-resolution models trained on synthetic data does not perform effectively on real ones. Training a model on real low and high resolution DSMs pairs is also a challenge because of the lack of information. On the other hand, the existence of other imaging modalities of the same scene can be used to enrich the information needed for large-scale super-resolution. In this work, we introduce a novel methodology to address the intricacies of real-world DSM super-resolution, named REAL-GDSR, breaking down this ill-posed problem into two steps. The first step involves the utilization of a residual local refinement network. This strategic approach departs from conventional methods that trained to directly predict height values instead of the differences (residuals) and utilize large receptive fields in their networks. The second step introduces a diffusion-based technique that enhances the results on a global scale, with a primary focus on smoothing and edge preservation. Our experiments underscore the effectiveness of the proposed method. We conduct a comprehensive evaluation, comparing it to recent state-of-the-art techniques in the domain of real-world DSM super-resolution (SR). Our approach consistently outperforms these existing methods, as evidenced through qualitative and quantitative assessments.

Item URL in elib:https://elib.dlr.de/206568/
Document Type:Conference or Workshop Item (Speech)
Title:Real-GDSR: Real-World Guided DSM Super-Resolution via Edge-Enhancing Residual Network
Authors:
AuthorsInstitution or Email of AuthorsAuthor's ORCID iDORCID Put Code
Panangian, Danieldaniel.panangian (at) dlr.deUNSPECIFIEDUNSPECIFIED
Bittner, Kseniaksenia.bittner (at) dlr.dehttps://orcid.org/0000-0002-4048-3583UNSPECIFIED
Date:10 June 2024
Journal or Publication Title:ISPRS Annals of the Photogrammetry, Remote Sensing and Spatial Information Sciences
Refereed publication:Yes
Open Access:Yes
Gold Open Access:No
In SCOPUS:Yes
In ISI Web of Science:No
Volume:X-2-20
DOI:10.5194/isprs-annals-X-2-2024-185-2024
Page Range:pp. 185-192
Editors:
EditorsEmailEditor's ORCID iDORCID Put Code
Panangian, Danieldaniel.panangianUNSPECIFIEDUNSPECIFIED
Bittner, KseniaKsenia.Bittner (at) dlr.dehttps://orcid.org/0000-0002-4048-3583UNSPECIFIED
ISSN:2194-9042
Status:Published
Keywords:AI4BuildingModeling, Super-Resolution, Digital Surface Model (DSM), Residual Network, Diffusion, Satellite Imagery
Event Title:ISPRS 2024
Event Location:Las Vegas, Nevada, US
Event Type:international Conference
Event Date:10 June 2024
HGF - Research field:other
HGF - Program:other
HGF - Program Themes:other
DLR - Research area:Digitalisation
DLR - Program:D DAT - Data
DLR - Research theme (Project):D - Digitaler Atlas 2.0, R - Optical remote sensing, V - V&V4NGC - Methoden, Prozesse und Werkzeugketten für die Validierung & Verifikation von NGC
Location: Oberpfaffenhofen
Institutes and Institutions:Remote Sensing Technology Institute > Photogrammetry and Image Analysis
Deposited By: Bittner, Ksenia
Deposited On:20 Sep 2024 07:51
Last Modified:20 Sep 2024 12:17

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