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Chinese text-line detection from web videos with fully convolutional networks

机译:具有完全卷积网络的网络视频中的中文文本行检测

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BackgroundIn recent years, video becomes the dominant resource of information on the Web, where the text within video usually carries significant semanticinformation. Video text extraction and recognition plays an essential role in web multimedia understanding and retrieval for big visual data analytics and applications. To deal with challenging backgrounds and embedding noises, most conventional approaches usually tend to design sophisticated pre-processing and post-progressing steps before and after text detection. In this paper, we present a simple yet powerful pipeline that directly and uniformly detects Chinese text lines for embedded captions from web videos. ResultsIn this Chinese text-line detection system, a fully convolutional network with local context is adopted to localize via an end-to-end learning way. The produced caption predictions are with the word level that could be directly fed into the character classifier. Text-line construction is then performed by heuristic strategies. A variety of experiments are conducted on several real-world web video datasets and demonstrated the effectiveness and efficiency of our proposed method. ConclusionThe proposed system can directly detect the English word and Chinese characters in the caption text-lines without word or character segmentation with the high performance on real-world web video datasets.
机译:背景技术近年来,视频成为Web上主要的信息资源,视频中的文本通常带有重要的语义信息。视频文本的提取和识别在网络多媒体理解和大视觉数据分析和应用的检索中起着至关重要的作用。为了处理具有挑战性的背景和嵌入噪声,大多数常规方法通常倾向于在文本检测之前和之后设计复杂的预处理和后处理步骤。在本文中,我们提出了一个简单但功能强大的管道,该管道可直接和统一地检测来自网络视频的嵌入式字幕的中文文本行。结果在该中文文本行检测系统中,采用具有局部上下文的全卷积网络通过端到端学习方式进行本地化。产生的字幕预测具有可以直接输入到字符分类器中的单词级别。然后通过启发式策略执行文本行构造。在几个真实世界的网络视频数据集上进行了各种实验,证明了我们提出的方法的有效性和效率。结论所提出的系统可以直接检测字幕文本行中的英文单词和汉字,而无需对单词或字符进行切分,在真实的网络视频数据集上具有很高的性能。

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