Event-based Stereo Depth Estimation: A Survey
Suman Ghosh, Guillermo Gallego

TL;DR
This survey comprehensively reviews event-based stereo depth estimation, covering recent deep learning methods, datasets, and challenges, aiming to guide future research and facilitate advancements in high-speed, high-dynamic-range 3D perception.
Contribution
It is the first extensive survey to include deep learning approaches and stereo datasets, providing practical suggestions and identifying research gaps in event-based stereo depth estimation.
Findings
Deep learning methods have significantly advanced stereo depth estimation.
Availability of stereo datasets is crucial for benchmarking and progress.
Challenges remain in optimizing accuracy and efficiency in event-based stereo systems.
Abstract
Stereopsis has widespread appeal in robotics as it is the predominant way by which living beings perceive depth to navigate our 3D world. Event cameras are novel bio-inspired sensors that detect per-pixel brightness changes asynchronously, with very high temporal resolution and high dynamic range, enabling machine perception in high-speed motion and broad illumination conditions. The high temporal precision also benefits stereo matching, making disparity (depth) estimation a popular research area for event cameras ever since its inception. Over the last 30 years, the field has evolved rapidly, from low-latency, low-power circuit design to current deep learning (DL) approaches driven by the computer vision community. The bibliography is vast and difficult to navigate for non-experts due its highly interdisciplinary nature. Past surveys have addressed distinct aspects of this topic, in…
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Taxonomy
TopicsAdvanced Vision and Imaging · Advanced Image Processing Techniques · Image Processing Techniques and Applications
