DocumentCode :
157931
Title :
Real time action recognition using histograms of depth gradients and random decision forests
Author :
Rahmani, Hossein ; Mahmood, Arif ; Huynh, D.Q. ; Mian, Ajmal
Author_Institution :
Sch. of Comput. Sci. & Software Eng., Univ. of Western Australia, Crawley, WA, Australia
fYear :
2014
fDate :
24-26 March 2014
Firstpage :
626
Lastpage :
633
Abstract :
We propose an algorithm which combines the discriminative information from depth images as well as from 3D joint positions to achieve high action recognition accuracy. To avoid the suppression of subtle discriminative information and also to handle local occlusions, we compute a vector of many independent local features. Each feature encodes spatiotemporal variations of depth and depth gradients at a specific space-time location in the action volume. Moreover, we encode the dominant skeleton movements by computing a local 3D joint position difference histogram. For each joint, we compute a 3D space-time motion volume which we use as an importance indicator and incorporate in the feature vector for improved action discrimination. To retain only the discriminant features, we train a random decision forest (RDF). The proposed algorithm is evaluated on three standard datasets and compared with nine state-of-the-art algorithms. Experimental results show that, on the average, the proposed algorithm outperform all other algorithms in accuracy and have a processing speed of over 112 frames/second.
Keywords :
gesture recognition; gradient methods; vectors; 3D joint position difference histogram; 3D space-time motion volume; RDF; action discrimination; action recognition accuracy; depth gradients; depth images; discriminant features; discriminative information; feature vector; histograms; importance indicator; independent local feature; random decision forests; real time action recognition; skeleton movement; space-time location; spatiotemporal variation; Feature extraction; Histograms; Image recognition; Joints; Three-dimensional displays; Vectors;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Applications of Computer Vision (WACV), 2014 IEEE Winter Conference on
Conference_Location :
Steamboat Springs, CO
Type :
conf
DOI :
10.1109/WACV.2014.6836044
Filename :
6836044
Link To Document :
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