DocumentCode :
2645583
Title :
Computer Vision Techniques for Hidden Conditional Random Field-Based Mandarin Phonetic Symbols I Recognition
Author :
Lee, Chien-Cheng ; Li, Yi-Fang
Author_Institution :
Dept. of Commun. Eng., Yuan Ze Univ., Chungli, Taiwan
fYear :
2011
fDate :
26-28 Oct. 2011
Firstpage :
455
Lastpage :
459
Abstract :
This paper presents a handwritten recognition method using camera as human-computer interaction device (HCI) for Mandarin Phonetic Symbols I (MPS1). The method is based on a hidden conditional random field (HCRF) model, which is an extension of the conditional random field (CRF) framework that incorporates hidden variables. The main advantage of the proposed method is that it avoids limitations of the traditional hidden Markov model (HMM)-based methods. This work built an HCRF for each symbol of MPS1 and used twelve-dimensional features. The features in the proposed system include the stroke length ratio feature, the horizontal stroke feature, the vertical stroke feature, the stroke-based loci features, and the stroke curvature feature. The recognition rate achieved 94.05% on 1532 handwritten word samples covering 37 symbols.
Keywords :
cameras; computer vision; handwriting recognition; hidden Markov models; speech processing; HCI device; HCRF model; HMM-based method; MPS1; camera; computer vision technique; handwritten recognition method; hidden Markov model-based method; hidden conditional random field model; horizontal stroke feature; human-computer interaction device; mandarin phonetic symbol I; stroke curvature feature; stroke length ratio feature; stroke-based loci feature; twelve-dimensional feature; vertical stroke feature; Accuracy; Cameras; Conferences; Feature extraction; Handwriting recognition; Hidden Markov models; Human computer interaction; HCRF; MPS1; handwritten recognition;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Broadband and Wireless Computing, Communication and Applications (BWCCA), 2011 International Conference on
Conference_Location :
Barcelona
Print_ISBN :
978-1-4577-1455-9
Type :
conf
DOI :
10.1109/BWCCA.2011.75
Filename :
6103075
Link To Document :
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