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Multi-scale image hashing using adaptive local feature extraction for robust tampering detection

机译:使用自适应局部特征提取的多尺度图像哈希用于鲁棒的篡改检测

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摘要

The main problem addressed in this paper is the robust tampering detection of the image received in a transmission under various content-preserving attacks. To this aim the multi-scale image hashing method is proposed by using the location-context information of the features generated by adaptive and local feature extraction techniques. The generated hash is attached to the image before transmission and analyzed at destination to filter out the geometric transformations occurred in the received image by image restoration firstly. Based on the restored image, the image authentication using the global and color hash component is performed to determine whether the received image has the same contents as the trusted one or has been maliciously tampered, or just different. After regarding the received image as being tampered, the tampered regions will be localized through the multi-scale hash component. Lots of experiments are conducted to indicate that our tampering detection scheme outperforms the existing state-of-the-art methods and is very robust against the content-preserving attacks, including both common signal processing and geometric distortions.
机译:本文解决的主要问题是在各种内容保留攻击下对传输中接收到的图像进行鲁棒的篡改检测。为此,通过利用自适应和局部特征提取技术生成的特征的位置上下文信息,提出了一种多尺度图像哈希方法。生成的哈希值在传输之前被附加到图像上,并在目的地进行分析,以首先通过图像恢复过滤掉接收到的图像中发生的几何变换。基于恢复的图像,执行使用全局哈希和彩色哈希组件的图像身份验证,以确定接收到的图像的内容是否与受信任的图像相同或已被恶意篡改,或者只是不同。在将接收到的图像视为篡改之后,将通过多尺度哈希组件对篡改区域进行定位。进行了大量实验表明,我们的篡改检测方案优于现有的最新方法,并且对于包括常规信号处理和几何失真在内的内容保留攻击非常健壮。

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