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Focus Is All You Need: Loss Functions for Event-Based Vision

Gallego, Guillermo; Gehrig, Mathias; Scaramuzza, Davide (2019). Focus Is All You Need: Loss Functions for Event-Based Vision. In: 2019 IEEE/CVF Conference on Computer Vision and Pattern Recognition (CVPR), Long Beach, CA, USA, 15 July 2019 - 20 July 2019. IEEE, 12272-12281.

Abstract

Event cameras are novel vision sensors that output pixel-level brightness changes ("events") instead of traditional video frames. These asynchronous sensors offer several advantages over traditional cameras, such as, high temporal resolution, very high dynamic range, and no motion blur. To unlock the potential of such sensors, motion compensation methods have been recently proposed. We present a collection and taxonomy of twenty two objective functions to analyze event alignment in motion compensation approaches. We call them focus loss functions since they have strong connections with functions used in traditional shape-from-focus applications. The proposed loss functions allow bringing mature computer vision tools to the realm of event cameras. We compare the accuracy and runtime performance of all loss functions on a publicly available dataset, and conclude that the variance, the gradient and the Laplacian magnitudes are among the best loss functions. The applicability of the loss functions is shown on multiple tasks: rotational motion, depth and optical flow estimation. The proposed focus loss functions allow to unlock the outstanding properties of event cameras.

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:20 July 2019
Deposited On:26 Jan 2021 10:35
Last Modified:06 Mar 2024 14:33
Publisher:IEEE
ISBN:978-1-7281-3293-8
OA Status:Green
Publisher DOI:https://doi.org/10.1109/cvpr.2019.01256
Other Identification Number:merlin-id:20290
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