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Unsupervised Segmentation of Text Fragments in Real Scenes

机译:真实场景中文本片段的无监督分割

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摘要

This paper proposes a method that aims to reduce a real scene to a set of regions that contain text fragments and keep small number of false positives. Text is modeled and characterized as a texture pattern, by employing the QMF wavelet decomposition as a texture feature extractor. Processing includes segmentation and spatial selection of regions and then content-based selection of fragments. Unlike many previous works, text fragments in different scales and resolutions laid against complex backgrounds are segmented without supervision. Tested in four image databases, the method is able to reduce visual noise to 4.69% and reaches 96.5% of coherency between the localized fragments and those generated by manual segmentation.
机译:本文提出了一种旨在将真实场景缩小为一组包含文本片段并保留少量误报的区域的方法。通过将QMF小波分解用作纹理特征提取器,将文本建模并表征为纹理图案。处理包括区域的分割和空间选择,然后是基于内容的片段选择。与许多以前的作品不同,在复杂的背景下分割了不同比例和分辨率的文本片段而无需监督。在四个图像数据库中进行了测试,该方法能够将视觉噪声降低到4.69%,并达到局部片段与手动分割生成的片段之间相干性的96.5%。

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