DocumentCode
2294695
Title
Novel Approach to Segmentation of Handwritten Devnagari Word
Author
Ladwani, Vandana M. ; Malik, Latesh
Author_Institution
G.H. Raisoni Coll. of Eng., Nagpur, India
fYear
2010
fDate
19-21 Nov. 2010
Firstpage
219
Lastpage
224
Abstract
This paper makes an attempt to segment the handwritten Devnagari words. Segmentation of script is essential for handwritten script recognition. Segmentation affects recognition so accurate segmentation is important for implementing OCR. Little work had been reported towards segmentation of handwritten text. Segmentation of handwritten words is a bit complicated as the shape of the handwritten characters is uncertain due to variability in writing styles. The proposed system carries out segmentation in hierarchical order. The system deploys the morphological operations of image processing for segmentation. Neighbourhood tracing algorithm is used for finding the segmented objects in the specific zones that correspond to constituent symbols of the Devnagari script. Segmentation accuracy is found to be 57% for segmentation of top modifiers and 55% for lower modifiers and 52% for characters in core zone.
Keywords
handwritten character recognition; image segmentation; optical character recognition; Devnagari script; OCR; accurate segmentation; constituent symbols; handwritten Devnagari word segmentation; handwritten characters; handwritten script recognition; handwritten text segmentation; handwritten words segmentation; image processing; morphological operations; neighbourhood tracing algorithm; script segmentation; segmentation accuracy; segmented objects; writing styles; Bottom Modifiers; Dilation; Erosion; Fused characters; Headerline; Top Modifiers; contour tracing algorithm;
fLanguage
English
Publisher
ieee
Conference_Titel
Emerging Trends in Engineering and Technology (ICETET), 2010 3rd International Conference on
Conference_Location
Goa
ISSN
2157-0477
Print_ISBN
978-1-4244-8481-2
Electronic_ISBN
2157-0477
Type
conf
DOI
10.1109/ICETET.2010.143
Filename
5698323
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