DocumentCode
2948524
Title
3D Convolutional Neural Networks for landing zone detection from LiDAR
Author
Maturana, Daniel ; Scherer, Sebastian
Author_Institution
Robot. Inst., Carnegie Mellon Univ., Pittsburgh, PA, USA
fYear
2015
fDate
26-30 May 2015
Firstpage
3471
Lastpage
3478
Abstract
We present a system for the detection of small and potentially obscured obstacles in vegetated terrain. The key novelty of this system is the coupling of a volumetric occupancy map with a 3D Convolutional Neural Network (CNN), which to the best of our knowledge has not been previously done. This architecture allows us to train an extremely efficient and highly accurate system for detection tasks from raw occupancy data. We apply this method to the problem of detecting safe landing zones for autonomous helicopters from LiDAR point clouds. Current methods for this problem rely on heuristic rules and use simple geometric features. These heuristics break down in the presence of low vegetation, as they do not distinguish between vegetation that may be landed on and solid objects that should be avoided. We evaluate the system with a combination of real and synthetic range data. We show our system outperforms various benchmarks, including a system integrating various hand-crafted point cloud features from the literature.
Keywords
aerospace computing; air safety; autonomous aerial vehicles; helicopters; neural nets; object detection; optical radar; 3D convolutional neural networks; CNN; LiDAR point clouds; autonomous helicopters; geometric features; hand-crafted point cloud features; heuristic rules; landing zone detection; potentially obscured obstacle detection; raw occupancy data; real range data; safe landing zone detection; synthetic range data; vegetated terrain; volumetric occupancy map coupling; Blades; Laser radar; Neural networks; Safety; Solid modeling; Three-dimensional displays; Vegetation mapping;
fLanguage
English
Publisher
ieee
Conference_Titel
Robotics and Automation (ICRA), 2015 IEEE International Conference on
Conference_Location
Seattle, WA
Type
conf
DOI
10.1109/ICRA.2015.7139679
Filename
7139679
Link To Document