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Titel:

TUMTraf Event: Calibration and Fusion Resulting in a Dataset for Roadside Event-Based and RGB Cameras

Dokumenttyp:
Zeitschriftenaufsatz
Autor(en):
Creß, Christian; Zimmer, Walter; Purschke, Nils; Doan, Bach Ngoc; Kirchner, Sven; Lakshminarasimhan, Venkatnarayanan; Strand, Leah; Knoll, Alois C.
Abstract:
Event-based cameras are predestined for Intelligent Transportation Systems (ITS). They provide very high temporal resolution and dynamic range, which can eliminate motion blur and improve detection performance at night. However, eventbased images lack color and texture compared to images from a conventional RGB camera. Considering that, data fusion between event-based and conventional cameras can combine the strengths of both modalities. For this purpose, extrinsic calibration is necessary. To t...     »
Stichworte:
Event-Based Cameras, RGB Cameras, Sensor Fusion, Targetless Calibration, Multi-modal Dataset, Intelligent Transportation Systems
Dewey Dezimalklassifikation:
000 Informatik, Wissen, Systeme
Zeitschriftentitel:
IEEE Transactions on Intelligent Vehicles
Jahr:
2024
Band / Volume:
9
Heft / Issue:
7
Seitenangaben Beitrag:
5186 - 5203
Reviewed:
ja
Sprache:
en
Volltext / DOI:
doi:10.1109/TIV.2024.3393749
WWW:
https://ieeexplore.ieee.org/document/10508494
Verlag / Institution:
IEEE
Publikationsdatum:
25.04.2024
TUM Einrichtung:
Chair of Robotics, Artificial Intelligence and Real-time Systems
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