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Genuine Selfie detection Algorithm for Social media Using Image Quality Measures

机译:利用图像质量度量的社交媒体正版自拍照检测算法

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Selfies are the self-speaking photographs that express oneself. Selfies portraits a person's emotion and in turn it became an effective way of expressing oneself. In recent scenario selfies in social media are also considered for authentication enactment. Face recognition is an extensively used authentication technique for security applications. Face recognition security systems go through vulnerabilities such as printed photo, replayed video and 3d mask attacks. Selfie photographs are considered as the most trustful information from social media. Selfies can be forged for untruthful purposes arise security concern in the recent scenario. This paper proposes an anti-spoofing algorithm to detect fake faces from selfies to get rid of spoofing attacks. Image quality measures and local binary pattern are extracted features from data. Naïve Bayes classifier algorithm is employed here to classify data as real or fake. This algorithm is successfully tested with DSI-1 and DSO-1 datasets and exhibit 92.82% accuracy, 93.54% sensitivity, and 92.15% specificity.
机译:自拍照是表达自我的自语照片。自拍照描绘了一个人的情感,反过来又成为表达自己的有效方式。在最近的场景中,社交媒体中的自拍照也被考虑用于认证制定。人脸识别是安全应用程序中广泛使用的身份验证技术。人脸识别安全系统会遇到诸如打印照片,重播视频和3d蒙版攻击等漏洞。自拍照照片被认为是来自社交媒体的最可靠的信息。可以出于不正当目的伪造自拍照,这在最近的情况下引起了安全问题。本文提出了一种反欺骗算法,可以从自拍中检测出假脸,从而摆脱了欺骗攻击。图像质量度量和局部二进制模式是从数据中提取的特征。此处采用朴素贝叶斯分类器算法将数据分类为真实还是伪造。该算法已在DSI-1和DSO-1数据集上成功进行了测试,显示出92.82%的准确性,93.54%的灵敏度和92.15%的特异性。

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