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Detection of Metadata Tampering Through Discrepancy Between Image Content and Metadata Using Multi-task Deep Learning

机译:使用多任务深度学习通过图像内容和元数据之间的差异检测元数据篡改

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Image content or metadata editing software availability and ease of use has resulted in a high demand for automatic image tamper detection algorithms. Most previous work has focused on detection of tampered image content, whereas we develop techniques to detect metadata tampering in outdoor images using sun altitude angle and other meteorological information like temperature, humidity and weather, which can be observed in most outdoor image scenes. To train and evaluate our technique, we create a large dataset of outdoor images labeled with sun altitude angle and other meteorological data (AMOS+M2), which to our knowledge, is the largest publicly available dataset of its kind. Using this dataset, we train separate regression models for sun altitude angle, temperature and humidity and a classification model for weather to detect any discrepancy between image content and its metadata. Finally, a joint multi-task network for these four features shows a relative improvement of 15.5% compared to each of them individually. We include a detailed analysis for using these networks to detect various types of modification to location and time information in image metadata.
机译:图像内容或元数据编辑软件的可用性和易用性对自动图像篡改检测算法提出了很高的要求。以前的大多数工作都集中在检测被篡改的图像内容上,而我们开发的技术是使用太阳高度角和其他气象信息(如温度,湿度和天气)来检测室外图像中的元数据被篡改,这些信息可以在大多数室外图像场景中观察到。为了训练和评估我们的技术,我们创建了一个大型室外图像数据集,上面标有太阳高度角和其他气象数据(AMOS + M2),据我们所知,这是同类中最大的可公开获得的数据集。使用此数据集,我们训练了针对太阳高度角,温度和湿度的单独回归模型以及针对天气的分类模型,以检测图像内容及其元数据之间的任何差异。最后,与这四个功能相比,这四个功能的联合多任务网络显示相对改善了15.5%。我们对使用这些网络检测图像元数据中的位置和时间信息的各种类型的修改进行了详细的分析。

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