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Text Proposals Based on Windowed Maximally Stable Extremal Region for Scene Text Detection

机译:基于窗口最大稳定的极值区域的文本提案用于场景文本检测

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The generation of text proposals (i.e. local candidate regions most likely containing textual components) is one critical and prerequisite step in scene text detection task. As one popular text proposal algorithm, the Maximally Stable Extremal Region (MSER), has been exploited by many successful text detection methods, while on the other hand has difficulties in handling complicated scene text involving touching characters and characters composed of multiple unconnected parts (e.g. Chinese characters and text in dot matrix fonts). In this paper, we propose a novel text proposal method for localizing text in natural images, which integrates the MSER algorithm with the multi-scale sliding window framework and efficiently extracts Windowed Maximally Stable Extremal Regions (WMSERs) as text proposals. We further present effective proposal filtering and grouping algorithms for exploiting WMSER-based proposals in text detection task. Experiments on public scene text datasets demonstrate the promising aspects of the proposed method in dealing with complicated scene text.
机译:文本提案的生成(即最可能包含文本组件的本地候选地区)是场景文本检测任务中的一个关键和先决条件。作为一种流行的文本提案算法,已经被许多成功的文本检测方法利用了最大稳定的极值区域(MSER),而另一方面则在处理涉及触摸字符和由多个未连接部分组成的字符的复杂场景文本方面具有困难(例如,汉语字符和小点矩阵字体的文本)。在本文中,我们提出了一种新的文本提案方法,用于本地化自然图像中的文本,它将MSER算法与多尺度滑动窗框集成,并有效地提取窗口最大稳定的极值区域(WMSERS)作为文本提出。我们还进一步提出了用于在文本检测任务中利用基于WMSER的提案的有效提案过滤和分组算法。公共场景文本数据集的实验证明了在处理复杂的场景文本方面提出的方法的有希望的方面。

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