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Time Lens++: Event-based Frame Interpolation with Parametric Nonlinear Flow and Multi-scale Fusion

Tulyakov, Stepan; Bochicchio, Alfredo; Gehrig, Daniel; Georgoulis, Stamatios; Li, Yuanyou; Scaramuzza, Davide (2022). Time Lens++: Event-based Frame Interpolation with Parametric Nonlinear Flow and Multi-scale Fusion. In: 2022 IEEE/CVF Conference on Computer Vision and Pattern Recognition, CVPR 2022, New Orleans, LA, United States of America, 19 June 2022 - 24 June 2022. Institute of Electrical and Electronics Engineers, 17734-17743.

Abstract

Recently, video frame interpolation using a combination of frame- and event-based cameras has surpassed traditional image-based methods both in terms of performance and memory efficiency. However, current methods still suffer from (i) brittle image-level fusion of complementary interpolation results, that fails in the presence of artifacts in the fused image, (ii) potentially temporally inconsistent and inefficient motion estimation procedures, that run for every inserted frame and (iii) low contrast regions that do not trigger events, and thus cause events-only motion estimation to generate artifacts. Moreover, previous methods were only tested on datasets consisting of planar and far-away scenes, which do not capture the full complexity of the real world. In this work, we address the above problems by introducing multi-scale feature-level fusion and computing one-shot non-linear inter-frame motion-which can be efficiently sampled for image warping-from events and images. We also collect the first large-scale events and frames dataset consisting of more than 100 challenging scenes with depth variations, captured with a new experimental setup based on a beamsplitter. We show that our method improves the reconstruction quality by up to 0.2 dB in terms of PSNR and up to 15% in LPIPS score.

Additional indexing

Item Type:Conference or Workshop Item (Paper), refereed, original work
Communities & Collections:03 Faculty of Economics > Department of Informatics
Dewey Decimal Classification:000 Computer science, knowledge & systems
Scopus Subject Areas:Physical Sciences > Software
Physical Sciences > Computer Vision and Pattern Recognition
Scope:Discipline-based scholarship (basic research)
Language:English
Event End Date:24 June 2022
Deposited On:27 Feb 2024 14:49
Last Modified:28 Feb 2024 03:00
Publisher:Institute of Electrical and Electronics Engineers
Series Name:IEEE Conference on Computer Vision and Pattern Recognition. Proceedings
ISSN:1063-6919
ISBN:978-1-6654-6946-3
OA Status:Green
Publisher DOI:https://doi.org/10.1109/CVPR52688.2022.01723
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  • Content: Accepted Version
  • Language: English
  • Licence: Creative Commons: Attribution 4.0 International (CC BY 4.0)

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