A Robust Approach for Scene Text Localization Using Rule-Based Confidence Map and Grouping

Author:

Ghanei Shaho1,Faez Karim1

Affiliation:

1. Electrical Engineering Department, Amirkabir University of Technology, Tehran 15914, Iran

Abstract

This study presents a robust algorithm to localize both Farsi/Arabic and Latin scene texts with different sizes, fonts and orientations even the low luminance contrast and poor quality ones. First, a new region detector is proposed to extract the candidate text regions. It is an integration of the weighted median filtering, contrast preserving decolorization and MSER techniques. It is robust to the low luminance contrast and poor quality scene texts. Afterwards, a novel method based on the fuzzy inference systems (FIS) is proposed to build a confidence map. This map indicates the likelihood of being text for the extracted candidate regions. Therefore it is exploited to filter the nontext candidates. Finally, a new fuzzy-based approach is proposed to create the single arbitrarily oriented text lines. It is based on the clustering, FIS, minimum area rectangle as well as radon transform techniques. It could also retrieve some of the discarded isolated characters or subwords in the filtering stage. To validate the proposed algorithm, we created a collection of natural images containing both Farsi/Arabic and Latin texts. Compared with the state-of-the-art methods, the proposed method achieves the best performance on our and Epshtein datasets and competitive performances on the ICDAR dataset.

Publisher

World Scientific Pub Co Pte Lt

Subject

Artificial Intelligence,Computer Vision and Pattern Recognition,Software

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2. Deep-learning based end-to-end system for text reading in the wild;Multimedia Tools and Applications;2022-03-21

3. Effective Detection and Localization of the Text in Natural Scene Images Using Adaptive Kuwahara Filter;Advances in Information Communication Technology and Computing;2022

4. Text Region Extraction From Scene Images Using AGF and MSER;International Journal of Image and Graphics;2020-04

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