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Automatic focus personage identification in multi-lingual news image

机译:多语言新闻图像中的焦点人物自动识别

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This paper presents a novel method for automatic focus personage identification in multi-lingual news image. Other existing methods resolved the problem of person recognition in single-lingual news images, but there is no proposed method to handle the problem of multi-lingual character identification. This method incorporates the complementary and commonality information of multi-lingual news to identify person. It includes two main steps. Firstly, positive training samples are obtained by clustering ensemble approach. Secondly, recurrent convolutional neural network (RCNN) is applied to train model and classify images. The experiment is performed on the news data set, which consists of half twenty thousand news picture-caption pairs from Google image search and Baidu image search. The proposed method yields a much better performance than other methods.
机译:本文提出了一种新的多语言新闻图像焦点人物自动识别方法。现有的其他方法解决了单语言新闻图像中人的识别问题,但是没有提出解决多语言字符识别问题的方法。该方法结合了多语言新闻的补充性和共性信息来识别人。它包括两个主要步骤。首先,通过聚类集成方法获得正训练样本。其次,将递归卷积神经网络(RCNN)应用于训练模型和图像分类。实验是对新闻数据集执行的,新闻数据集由来自Google图像搜索和百度图像搜索的两万条新闻图片字幕对组成。所提出的方法产生了比其他方法更好的性能。

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