Event Probability Mask (EPM) and Event Denoising Convolutional Neural Network (EDnCNN) for Neuromorphic Cameras
R. Wes Baldwin, Mohammed Almatrafi, Vijayan K. Asari, Keigo Hirakawa
Abstract
This paper presents a novel method for labeling realworld neuromorphic camera sensor data by calculating the likelihood of generating an event at each pixel within a short time window, which we refer to as "event probability mask" or EPM. Its applications include (i) objective benchmarking of event denoising performance, (ii) training convolutional neural networks for noise removal called "event denoising convolutional neural network" (EDnCNN), and (iii) estimating internal neuromorphic camera parameters. We provide the first dataset (DVSNOISE20) of real-world labeled neuromorphic camera events for noise removal.
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Install the CLIlune papers fulltext 2db6febe-a258-48a5-a2b1-6e8f0b6d1b46Cited by top-tier papers16
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Builds on2
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- Event-Based Motion Segmentation by Motion CompensationTimo Stoffregen, Guillermo Gallego, Tom Drummond, Lindsay Kleeman et al.ICCV 2019 · 164 citations
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