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ICDAR
2007
IEEE

Identification of Latin-Based Languages through Character Stroke Categorization

13 years 8 months ago
Identification of Latin-Based Languages through Character Stroke Categorization
This paper presents a language identification technique that detects Latin-based languages of imaged documents without OCR. The proposed technique detects languages through the word shape coding, which converts each word image into a word shape code and accordingly transforms each document image into an electronic document vector. For each Latin-based language under study, a language template is first constructed through a corpus-based learning process. The underlying language of the query document is then determined based on the similarity between the query document vector and multiple constructed language templates. Compared with the reported methods, the proposed language identification technique is fast, accurate, and tolerant to text segmentation error caused by noise and various types of document degradation. Experimental results show some promising results.
S. J. Lu, L. Li, Chew Lim Tan
Added 16 Aug 2010
Updated 16 Aug 2010
Type Conference
Year 2007
Where ICDAR
Authors S. J. Lu, L. Li, Chew Lim Tan
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