DocumentCode
3428818
Title
MAV indoor navigation based on a closed-form solution for absolute scale velocity estimation using Optical Flow and inertial data
Author
Lippiello, Vincenzo ; Loianno, Giuseppe ; Siciliano, Bruno
Author_Institution
Dipt. di Inf. e Sist., Univ. degli Studi di Napoli Federico II, Naples, Italy
fYear
2011
fDate
12-15 Dec. 2011
Firstpage
3566
Lastpage
3571
Abstract
A new vision-based obstacle avoidance technique for indoor navigation of Micro Aerial Vehicles (MAVs) is presented in this paper. The vehicle trajectory is modified according to the obstacles detected through the Depth Map of the surrounding environment, which is computed online using the Optical Flow provided by a single onboard omnidirectional camera. An existing closed-form solution for the absolute-scale velocity estimation based on visual correspondences and inertial measurements is generalized and here employed for the Depth Map estimation. Moreover, a dynamic region-of-interest for image features extraction and a self-limitation control for the navigation velocity are proposed to improve safety in view of the estimated vehicle velocity. The proposed solutions are validated by means of simulations.
Keywords
aerospace robotics; aircraft control; collision avoidance; feature extraction; image sequences; microrobots; mobile robots; robot vision; absolute scale velocity estimation; absolute-scale velocity estimation; closed-form solution; depth map estimation; dynamic region-of-interest; image features extraction; inertial data; inertial measurement; micro aerial vehicle indoor navigation; navigation velocity; obstacles detection; onboard omnidirectional camera; optical flow; self-limitation control; vehicle trajectory; vehicle velocity estimation; vision-based obstacle avoidance technique; visual correspondences; Cameras; Collision avoidance; Navigation; Optical imaging; Vectors; Vehicles; Visualization;
fLanguage
English
Publisher
ieee
Conference_Titel
Decision and Control and European Control Conference (CDC-ECC), 2011 50th IEEE Conference on
Conference_Location
Orlando, FL
ISSN
0743-1546
Print_ISBN
978-1-61284-800-6
Electronic_ISBN
0743-1546
Type
conf
DOI
10.1109/CDC.2011.6160577
Filename
6160577
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