3D Scene Reconstruction from a Single Viewport

Maximilian Denninger, Rudolph Triebel

Publikation: Beitrag in Buch/Bericht/KonferenzbandKonferenzbeitragBegutachtung

17 Zitate (Scopus)

Abstract

We present a novel approach to infer volumetric reconstructions from a single viewport, based only on an RGB image and a reconstructed normal image. To overcome the problem of reconstructing regions in 3D that are occluded in the 2D image, we propose to learn this information from synthetically generated high-resolution data. To do this, we introduce a deep network architecture that is specifically designed for volumetric TSDF data by featuring a specific tree net architecture. Our framework can handle a 3D resolution of 5123 by introducing a dedicated compression technique based on a modified autoencoder. Furthermore, we introduce a novel loss shaping technique for 3D data that guides the learning process towards regions where free and occupied space are close to each other. As we show in experiments on synthetic and realistic benchmark data, this leads to very good reconstruction results, both visually and in terms of quantitative measures.

OriginalspracheEnglisch
TitelComputer Vision – ECCV 2020 - 16th European Conference, 2020, Proceedings
Redakteure/-innenAndrea Vedaldi, Horst Bischof, Thomas Brox, Jan-Michael Frahm
Herausgeber (Verlag)Springer Science and Business Media Deutschland GmbH
Seiten51-67
Seitenumfang17
ISBN (Print)9783030585419
DOIs
PublikationsstatusVeröffentlicht - 2020
Veranstaltung16th European Conference on Computer Vision, ECCV 2020 - Glasgow, Großbritannien/Vereinigtes Königreich
Dauer: 23 Aug. 202028 Aug. 2020

Publikationsreihe

NameLecture Notes in Computer Science (including subseries Lecture Notes in Artificial Intelligence and Lecture Notes in Bioinformatics)
Band12367 LNCS
ISSN (Print)0302-9743
ISSN (elektronisch)1611-3349

Konferenz

Konferenz16th European Conference on Computer Vision, ECCV 2020
Land/GebietGroßbritannien/Vereinigtes Königreich
OrtGlasgow
Zeitraum23/08/2028/08/20

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