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The Event-Camera Dataset and Simulator: Event-based Data for Pose Estimation, Visual Odometry, and SLAM

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arxiv 1610.08336 v4 pith:K7K62QHD submitted 2016-10-26 cs.RO cs.CV

classification cs.ROcs.CV
keywords dataalgorithmsevent-basedsensorsensorsvisionasynchronouscamera
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New vision sensors, such as the Dynamic and Active-pixel Vision sensor (DAVIS), incorporate a conventional global-shutter camera and an event-based sensor in the same pixel array. These sensors have great potential for high-speed robotics and computer vision because they allow us to combine the benefits of conventional cameras with those of event-based sensors: low latency, high temporal resolution, and very high dynamic range. However, new algorithms are required to exploit the sensor characteristics and cope with its unconventional output, which consists of a stream of asynchronous brightness changes (called "events") and synchronous grayscale frames. For this purpose, we present and release a collection of datasets captured with a DAVIS in a variety of synthetic and real environments, which we hope will motivate research on new algorithms for high-speed and high-dynamic-range robotics and computer-vision applications. In addition to global-shutter intensity images and asynchronous events, we provide inertial measurements and ground-truth camera poses from a motion-capture system. The latter allows comparing the pose accuracy of ego-motion estimation algorithms quantitatively. All the data are released both as standard text files and binary files (i.e., rosbag). This paper provides an overview of the available data and describes a simulator that we release open-source to create synthetic event-camera data.

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Cited by 1 Pith paper

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  1. A Survey of 3D Reconstruction with Event Cameras

    cs.CV 2025-05 conditional novelty 5.0 of 10

    A dedicated survey categorizes event-based 3D reconstruction methods by input setup and reconstruction strategy, and catalogs datasets, metrics, and open challenges.

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