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Papers/HyperE2VID: Improving Event-Based Video Reconstruction via...

HyperE2VID: Improving Event-Based Video Reconstruction via Hypernetworks

Burak Ercan, Onur Eker, Canberk Saglam, Aykut Erdem, Erkut Erdem

2023-05-10Video ReconstructionEvent-Based Video Reconstruction
PaperPDFCode(official)

Abstract

Event-based cameras are becoming increasingly popular for their ability to capture high-speed motion with low latency and high dynamic range. However, generating videos from events remains challenging due to the highly sparse and varying nature of event data. To address this, in this study, we propose HyperE2VID, a dynamic neural network architecture for event-based video reconstruction. Our approach uses hypernetworks to generate per-pixel adaptive filters guided by a context fusion module that combines information from event voxel grids and previously reconstructed intensity images. We also employ a curriculum learning strategy to train the network more robustly. Our comprehensive experimental evaluations across various benchmark datasets reveal that HyperE2VID not only surpasses current state-of-the-art methods in terms of reconstruction quality but also achieves this with fewer parameters, reduced computational requirements, and accelerated inference times.

Results

TaskDatasetMetricValueModel
3DMVSECLPIPS0.476HyperE2VID
3DMVSECMean Squared Error0.076HyperE2VID
3DEvent-Camera DatasetLPIPS0.212HyperE2VID
3DEvent-Camera DatasetMean Squared Error0.033HyperE2VID
Event-based visionEvent-Camera DatasetMean Squared Error0.033HyperE2VID
Video ReconstructionMVSECLPIPS0.476HyperE2VID
Video ReconstructionMVSECMean Squared Error0.076HyperE2VID
Video ReconstructionEvent-Camera DatasetLPIPS0.212HyperE2VID
Video ReconstructionEvent-Camera DatasetMean Squared Error0.033HyperE2VID

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