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Multifont recognition System for Ethiopic Script

Assabie Lake, Yaregal, 1975- (författare)
Högskolan i Halmstad,Halmstad Embedded and Intelligent Systems Research (EIS)
Bigun, Josef, Professor (preses)
Högskolan i Halmstad,Halmstad Embedded and Intelligent Systems Research (EIS)
 (creator_code:org_t)
Göteborg : Department of Signals and Systems, Chalmers University of Technology, 2006
Engelska 46 s.
Serie: Technical report ; 2006:21
  • Licentiatavhandling (övrigt vetenskapligt/konstnärligt)
Abstract Ämnesord
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  • In this thesis, we present a general framework for multi-font, multi-size and multi-style Ethiopic character recognition system. We propose structural and syntactic techniques for recognition of Ethiopic characters where the graphically comnplex characters are represented by less complex primitive structures and their spatial interrelationships. For each Ethiopic character, the primitive structures and their spatial interrelationships form a unique set of patterns.The interrelationships of primitives are represented by a special tree structure which resembles a binary search tree in the sense that it groups child nodes as left and right, and keeps the spatial position of primitives in orderly manner. For a better computational efficiency, the primitive tree is converted into string pattern using in-order traversal, which generates a base of the alphabet that stores possibly occuring string patterns for each character. The recognition of characters is then achieved by matching the generated patterns with each pattern in a stored knowledge base of characters.Structural features are extracted using direction field tensor, which is also used for character segmentation. In general, the recognition system does not need size normalization, thinning or other preprocessing procedures. The only parameter that needs to be adjusted during the recognition process is the size of Gaussian window which should be chosen optimally in relation to font sizes. We also constructed an Ethiopic Document Image Database (EDIDB) from real life documents and the recognition system is tested with respect to variations in font type, size, style, document skewness and document type. Experimental results are reported.

Ämnesord

NATURVETENSKAP  -- Data- och informationsvetenskap -- Datorseende och robotik (hsv//swe)
NATURAL SCIENCES  -- Computer and Information Sciences -- Computer Vision and Robotics (hsv//eng)

Nyckelord

Ethiopic character recognition
OCR
Multifont recognition
Amharic
Direction fields
Structural and syntactic pattern recognition
Image analysis
Bildanalys

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