Paper
2 November 2001 Morphological filter for text extraction from textured background
Oleg G. Okun
Author Affiliations +
Abstract
A new method for text extraction from binary images with a textured background is proposed. Text extraction in such a case is very important for successful character recognition, because many character recognition methods expect text printed on a uniform (and typically white) background and their performance significantly degrades if this condition is not satisfied. The methods that have been already proposed to solve this problem, attempt to extract primitives or elements composing the textured background in order to separate text from them. From experiments with commercial character recognition software we observed that such an approach easily leads to the significant growth of errors in character recognition because of degradations in extracted characters, introduced during text extraction. On the other hand, it is hardly possible to reconstruct (more or less precisely) the degraded characters without knowing their class labels and this information is not yet available at this stage. In contrast, we explore another approach similar to symbolic compression of text, which is implemented as a morphological filter using the top-hat transform. This approach detects characters having similar shapes from an original image and it thus avoids character degradations. As a result, the accuracy of character recognition can be improved.
© (2001) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
Oleg G. Okun "Morphological filter for text extraction from textured background", Proc. SPIE 4476, Vision Geometry X, (2 November 2001); https://doi.org/10.1117/12.447271
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CITATIONS
Cited by 5 scholarly publications.
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KEYWORDS
Optical character recognition

Binary data

Image filtering

Prototyping

Bandpass filters

Image compression

Raster graphics

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