论文标题

这张照片来自哪个国家?基于DNN的国家认可的新数据和方法

Which country is this picture from? New data and methods for DNN-based country recognition

论文作者

Alamayreh, Omran, Dimitri, Giovanna Maria, Wang, Jun, Tondi, Benedetta, Barni, Mauro

论文摘要

认识到拍摄图片的国家有许多潜在的应用,例如识别假新闻和预防虚假信息。以前的作品着重于拍摄图片的地理坐标的估计。然而,从语义和法医学的角度来看,与估计其空间坐标相比,认识到在哪个国家中拍摄的图像可能更为重要。在上述框架中,本文提供了两种贡献。首先,我们介绍了Vippgeo数据集,其中包含380万个地理标签图像。其次,我们使用数据集来训练一个模型,将国家识别问题作为分类问题。实验表明,我们的模型比当前的最新状态提供了更好的结果。值得注意的是,我们发现要求网络识别该国提供的结果比估计地理坐标,然后将它们追溯到拍摄图片的国家。

Recognizing the country where a picture has been taken has many potential applications, such as identification of fake news and prevention of disinformation campaigns. Previous works focused on the estimation of the geo-coordinates where a picture has been taken. Yet, recognizing in which country an image was taken could be more critical, from a semantic and forensic point of view, than estimating its spatial coordinates. In the above framework, this paper provides two contributions. First, we introduce the VIPPGeo dataset, containing 3.8 million geo-tagged images. Secondly, we used the dataset to train a model casting the country recognition problem as a classification problem. The experiments show that our model provides better results than the current state of the art. Notably, we found that asking the network to identify the country provides better results than estimating the geo-coordinates and then tracing them back to the country where the picture was taken.

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