DocumentCode :
1987358
Title :
4-Camera model for sign language recognition using elliptical fourier descriptors and ANN
Author :
Kishore, P.V.V. ; Prasad, M.V.D. ; Prasad, C. Raghava ; Rahul, R.
Author_Institution :
Dept. of E.C.E, K.L. Univ., Guntur, India
fYear :
2015
fDate :
2-3 Jan. 2015
Firstpage :
34
Lastpage :
38
Abstract :
Sign language recognition (SLR) is considered a multidisciplinary research area engulfing image processing, pattern recognition and artificial intelligence. The major hurdle for a SLR is the occlusions of one hand on another. This results in poor segmentations and hence the feature vector generated result in erroneous classifications of signs resulting in deprived recognition rate. To overcome this difficulty we propose in this paper a 4 camera model for recognizing gestures of Indian sign language. Segmentation for hand extraction, shape feature extraction with elliptical Fourier descriptors and pattern classification using artificial neural networks with backpropagation training algorithm. The classification rate is computed and which provides experimental evidence that 4 camera model outperforms single camera model.
Keywords :
backpropagation; cameras; feature extraction; image classification; image segmentation; neural nets; shape recognition; sign language recognition; 4-camera model; ANN; SLR; artificial neural network; backpropagation training algorithm; elliptical Fourier descriptors; gesture recognition; hand extraction segmentation; occlusions; pattern classification; shape feature extraction; sign classification; sign language recognition; Artificial neural networks; Assistive technology; Cameras; Feature extraction; Gesture recognition; Image recognition; Shape; 4 camera model; Sign language recognition; artificial neural networks; elliptical Fourier descriptors(EFD);
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Signal Processing And Communication Engineering Systems (SPACES), 2015 International Conference on
Conference_Location :
Guntur
Type :
conf
DOI :
10.1109/SPACES.2015.7058288
Filename :
7058288
Link To Document :
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