DocumentCode
1879841
Title
Online Character Recognition using Regression Techniques
Author
Reddy, Nirup ; Kandan, R. ; Shashikiran, K. ; Sundaram, Suresh ; Ramakrishnan, A.G.
Author_Institution
Dept. of Electr. Eng., MILE, Bangalore
fYear
2008
fDate
7-9 Jan. 2008
Firstpage
1
Lastpage
6
Abstract
This paper introduces a scheme for classification of online handwritten characters based on polynomial regression of the sampled points of the sub-strokes in a character. The segmentation is done based on the velocity profile of the written character and this requires a smoothening of the velocity profile. We propose a novel scheme for smoothening the velocity profile curve and identification of the critical points to segment the character. We also propose another method for segmentation based on the human eye perception. We then extract two sets of features for recognition of handwritten characters. Each sub-stroke is a simple curve, a part of the character, and is represented by the distance measure of each point from the first point. This forms the first set of feature vector for each character. The second feature vector are the coefficients obtained from the B-splines fitted to the control knots obtained from the segmentation algorithm. The feature vector is fed to the SVM classifier and it indicates an efficiency of 68% using the polynomial regression technique and 74% using the spline fitting method.
Keywords
curve fitting; feature extraction; handwritten character recognition; image classification; image segmentation; regression analysis; splines (mathematics); support vector machines; B-splines; SVM classifier; characters classification; characters segmentation; features extract; online character recognition; polynomial regression; spline fitting method; velocity profile curve smoothening; Acceleration; Character recognition; Filters; Handwriting recognition; Humans; Natural languages; Polynomials; Speech recognition; Spline; Support vector machines;
fLanguage
English
Publisher
ieee
Conference_Titel
Applications of Computer Vision, 2008. WACV 2008. IEEE Workshop on
Conference_Location
Copper Mountain, CO
ISSN
1550-5790
Print_ISBN
978-1-4244-1913-5
Electronic_ISBN
1550-5790
Type
conf
DOI
10.1109/WACV.2008.4544038
Filename
4544038
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