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首页> 外文期刊>IEEE Transactions on Circuits and Systems for Video Technology >Egocentric Analysis of Dash-Cam Videos for Vehicle Forensics
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Egocentric Analysis of Dash-Cam Videos for Vehicle Forensics

机译:车辆取证型仪表录像的Egocentric分析

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Video acquisition using dashboard-mounted cameras has recently achieved massive popularity around the world. One of the major developments following the dash-cam's popularity is that videos captured by them can be used as testimony during scenarios, like traffic violations and accidents. The widespread deployment of dash-cams brings new problems ranging from the compromise of privacy by uploading these videos on public websites using videos captured from other cars for making fraudulent claims. Therefore, there is a compelling need to address the problems associated with the usage of dash-cam videos. In this paper, we discuss and highlight the importance of the emerging area of multimedia vehicle forensics. We propose an algorithm for linking a dash-cam video to a specific car. The proposed algorithm is useful for various applications, for example, insurance companies can authenticate the origin of video before processing the claim. In a different scenario of illegitimate video upload on the Web, the video can be traced back to the car it originated from. To this end, we make use of motion blur extracted from dash-cam videos for generating a discriminative feature. We observe that the subtle motion pattern of every vehicle can serve as its unique signature. We extract motion blur from dash-cam videos and use random forest trees for classifying the vehicle correctly. The experimental results on thousands of frames obtained from dash-cam videos of several cars show the effectiveness of our approach. We further investigate the process of forging the signature of a car and propose a counter forensics method to detect such forgery. Also, we discuss the application of our technique to other potential platforms where the camera can be mounted, for example, on the chest of a person. We believe that ours is the first work that describes this new area of research.
机译:使用仪表板安装的摄像机的视频采集最近在全球上实现了大规模的普及。 Dash-Cam受欢迎程度之后的主要发展之一是,它们捕获的视频可以在场景中用作证词,如交通违规和事故。 Dash-Cams的广泛部署带来了新的问题,从隐私的折衷范围通过在公共网站上传这些视频使用从其他汽车捕获的视频来制作欺诈性索赔。因此,有一个令人信服的需要解决与模具凸轮视频的使用相关的问题。在本文中,我们讨论并突出了多媒体车辆取证的新兴地区的重要性。我们提出了一种将DASH-CAM视频连接到特定车的算法。该算法对于各种应用有用,例如,保险公司可以在处理索赔之前验证视频的起源。在Web上的非法视频上传的不同场景中,视频可以追溯到它起源于它的汽车。为此,我们利用从Dash-CAM视频中提取的运动模糊以产生辨别特征。我们观察到每个车辆的微妙运动模式都可以作为其独特的签名。我们从Dash-CAM视频中提取运动模糊,并使用随机林树正确分类车辆。实验结果对几辆汽车的仪表架视频获得的数千帧展示了我们方法的有效性。我们进一步调查了锻造汽车签名的过程,并提出了一种抵抗法医方法来检测这种伪造。此外,我们讨论了我们的技术在其他潜在平台上的应用,例如相机可以安装在一个人的胸部。我们相信,我们的是第一个描述了这个新的研究领域的工作。

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