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Face spoof detection using image distortion analysis and image quality assessment

机译:使用图像失真分析和图像质量评估进行面对欺骗检测

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Secure face spoof detection systems demand the capability to identify whether a face is from a real client or a portrait from a spoofer. Spoofing induces distortion in the image and also degrades the image quality. Analysis of distortion and the quality assessment of an image to identify spoof attack is the main consideration here. The existing methods in image distortion analysis, extracts the features that capture the facial details. It extracts four different features (specular reflection, blurriness, chromatic moment, and color diversity) to form the IDA (Image Distortion Analysis) feature vector. The existing methods in image quality assessment, extracts several general image quality features to form IQA (Image Quality Assessment) feature vector. The designed system utilizes a hybrid scheme of both IDA and IQA. In addition, it also extracts the Fourier based and Wavelet based features of the image. A Neural Network (NN) classifier is used for the training. It is seen that the designed hybrid system face spoof detection achieves high performance than the existing system
机译:安全面欺骗检测系统要求识别面部是否来自真实客户端或来自解释器的肖像的能力。欺骗引起图像中的失真,并且还降低了图像质量。对图像的扭曲和质量评估分析,以识别欺骗攻击是这里的主要考虑因素。现有方法在图像失真分析中,提取捕获面部细节的功能。它提取四种不同的特征(镜面反射,模糊,色矩和色彩分集)以形成IDA(图像失真分析)特征向量。现有方法在图像质量评估中,提取几种通用图像质量特征以形成IQA(图像质量评估)特征向量。设计的系统利用IDA和IQA的混合动力方案。另外,它还提取基于傅立叶的和小波的图像特征。神经网络(NN)分类器用于培训。可以看出,设计的混合系统面部欺骗检测实现比现有系统高的性能高

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