Proceedings of the International Conference on Document Analysis and Recognition · 2007 · 38 citations · 10 references
Natural Language ProcessingImage AnalysisComputer VisionEngineeringOptical Character RecognitionPattern RecognitionText RecognitionStroke Detection AlgorithmCharacter-stroke DetectionText SegmentationText LocalizationCharacter RecognitionIcdar 2003Document ProcessingText MiningSpeech Recognition
In this paper, we present a new approach for analysis of images for text-localization and extraction. Our approach puts very few constraints on the font, size and color of text and is capable of handling both scene text and artificial text well. In this paper, we exploit two well-known features of text: approximately constant stroke width and local contrast, and develop a fast, simple, and effective algorithm to detect character strokes. We also show how these can be used for accurate extraction and motivate some advantages of using this approach for text localization over other color-space segmentation based approaches. We analyze the performance of our stroke detection algorithm on images collected for the robust-reading competitions at ICDAR 2003.
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