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Video tampering dataset development in temporal domain for video forgery authentication

机译:视频篡改视频伪造验证时域的数据集开发

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摘要

Videos are tampered by the forgers to modify or remove their content for malicious purpose. Many video authentication algorithms are developed to detect this tampering. At present, very few standard and diversified tampered video dataset is publicly available for reliable verification and authentication of forensic algorithms. In this paper, we propose the development of total 210 videos for Temporal Domain Tampered Video Dataset (TDTVD) using Frame Deletion, Frame Duplication and Frame Insertion. Out of total 210 videos, 120 videos are developed based on Event/Object/Person (EOP) removal or modification and remaining 90 videos are created based on Smart Tampering (ST) or Multiple Tampering. 16 original videos from SULFA and 24 original videos from YouTube (VTD Dataset) are used to develop different tampered videos. EOP based videos include 40 videos for each tampering type of frame deletion, frame insertion and frame duplication. ST based tampered video contains multiple tampering in a single video. Multiple tampering is developed in three categories (1) 10-frames tampered (frame deletion, frame duplication or frame insertion) at 3-different locations (2) 20-frames tampered at 3- different locations and (3) 30-frames tampered at 3-different locations in the video. Proposed TDTVD dataset includes all temporal domain tampering and also includes multiple tampering videos. The resultant tampered videos have video length ranging from 6 s to 18 s with resolution 320×240 or 640×360 pixels. The database is comprised of static and dynamic videos with various activities, like traffic, sports, news, a ball rolling, airport, garden, highways, zoom in zoom out etc. This entire dataset is publicly accessible for researchers, and this will be especially valuable to test their algorithms on this vast dataset. The detailed ground truth information like tampering type, frames tampered, location of tampering is also given for each developed tampered video to support verifying tampering detection algorithms. The dataset is compared with state of the art and validated with two video tampering detection methods.
机译:Video被伪造者篡改,以修改或删除他们的内容以获取恶意目的。开发了许多视频认证算法以检测这种篡改。目前,很少有标准和多样化的篡改视频数据集是公开的,可用于法医算法的可靠验证和认证。在本文中,我们建议使用帧删除,帧复制和帧插入的时间域篡改视频数据集(TDTVD)的210个视频的开发。除了210个视频中,基于事件/对象/人(EOP)开发了120个视频,删除或修改,并且基于智能篡改(ST)或多个篡改来创建90个视频。来自youtube(VTD数据集)的Sulfa和24个原创视频的16个原创视频用于开发不同的篡改视频。基于EOP的视频包括每个篡改类型的帧删除,帧插入和帧复制的40个视频。 ST基于篡改的视频包含单个视频中的多个篡改。多种篡改是三类(1)10帧的三类(帧删除,帧复制或帧插入),在3个不同位置,在3-不同位置篡改(3)30框架视频中的3个不同的位置。提出的TDTVD数据集包括所有时间域篡改,并且还包括多个篡改视频。所得到的篡改视频的视频长度为6秒,分辨率为320×240或640×360像素。数据库由具有各种活动的静态和动态视频组成,如交通,体育,新闻,球滚,机场,花园,高速公路,放大缩小等。这整个数据集可用于研究人员,这将是特别的有价值在此庞大的数据集中测试其算法。篡改类型的详细地面真相信息,旨在篡改,篡改的位置,每个开发的篡改视频都为支持验证篡改检测算法。将数据集与现有技术进行比较并用两个视频篡改检测方法验证。

著录项

  • 来源
    《Multimedia Tools and Applications》 |2020年第34期|24553-24577|共25页
  • 作者单位

    Gujarat Technological University Nr. Vishwakarma Government Engineering College Nr. Visat Three Roads Visat - Gandhinagar Highway Chandkheda Ahmedabad Gujarat 382424 India Electronics & Communication Engineering Department Government Polytechnic Near Panjra Pol. Ambawadi Ahmedabad Gujarat 380015 India;

    Electronics & Communication Engineering Department G H Patel College of Engineering & Technology Bakrol Rd Mota Bazaar Vallabh Vidyanagar Anand Gujarat 388120 India;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Frame deletion; Frame insertion; Frame duplication; TDTVD; Smart tampering; Multiple tampering;

    机译:帧删除;框架插入;帧复制;TDTVD;聪明的篡改;多重篡改;

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