DocumentCode
663754
Title
Action-grounded push affordance bootstrapping of unknown objects
Author
Ridge, Barry ; Ude, Ales
Author_Institution
Dept. of Autom., Jozef Stefan Inst., Ljubljana, Slovenia
fYear
2013
fDate
3-7 Nov. 2013
Firstpage
2791
Lastpage
2798
Abstract
When it comes to learning how to manipulate objects from experience with minimal prior knowledge, robots encounter significant challenges. When the objects are unknown to the robot, the lack of prior object models demands a robust feature descriptor such that the robot can reliably compare objects and the effects of their manipulation. In this paper, using an experimental platform that gathers 3-D data from the Kinect RGB-D sensor, as well as push action trajectories from a tracking system, we address these issues using an action-grounded 3-D feature descriptor. Rather than using pose-invariant visual features, as is often the case with object recognition, we ground the features of objects with respect to their manipulation, that is, by using shape features that describe the surface of an object relative to the push contact point and direction. Using this setup, object push affordance learning trials are performed by a human and both pre-push and post-push object features are gathered, as well as push action trajectories. A self-supervised multi-view online learning algorithm is employed to bootstrap both the discovery of affordance classes in the post-push view, as well as a discriminative model for predicting them in the pre-push view. Experimental results demonstrate the effectiveness of self-supervised class discovery, class prediction and feature relevance determination on a collection of unknown objects.
Keywords
learning (artificial intelligence); mobile robots; object recognition; object tracking; 3D data; action-grounded 3D feature descriptor; action-grounded push affordance bootstrapping; class prediction; discriminative model; feature relevance determination; kinect RGB-D sensor; object push affordance learning trials; object recognition; pose-invariant visual features; post-push view; pre-push view; prior object models; push action trajectory; push contact direction; push contact point; robots; robust feature descriptor; selfsupervised class discovery; selfsupervised multiview online learning algorithm; shape features; tracking system; unknown objects; Feature extraction; Prototypes; Robots; Shape; Training; Trajectory; Vectors;
fLanguage
English
Publisher
ieee
Conference_Titel
Intelligent Robots and Systems (IROS), 2013 IEEE/RSJ International Conference on
Conference_Location
Tokyo
ISSN
2153-0858
Type
conf
DOI
10.1109/IROS.2013.6696751
Filename
6696751
Link To Document