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A framework for image classification for an efficient dictionary based face recognition system

机译:基于有效字典的人脸识别系统的图像分类框架

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The digital multimedia image processing and its functionality of Face recognition have become more flexible. In a variety of digital forensic applications such as source identification, content analysis and authentication, it is necessary to recognize the source with training set. The proposed red length based image classification algorithm is to perform face recognition based on class specific dictionaries and to train the samples from / to each class. The class specific dictionaries are formed with some fixed number of color components. Then compares the test image with the threshold specific class and extract the minimal training set stored in the dictionary. The time taken for the image comparison leads to efficient dictionary based facial recognition which can be then used as proof of evidence towards image forensics.
机译:数字多媒体图像处理及其面部识别的功能变得更加灵活。在各种数字法医应用中,源识别,内容分析和认证,有必要通过训练集识别源。所提出的红色长度的图像分类算法是基于类特定词典执行面部识别,并培训来自每个类的样本。类特定词典由一些固定数量的颜色组件形成。然后将测试图像与阈值特定类进行比较,并提取存储在字典中的最小训练集。图像比较所采取的时间导致有效的基于词典的面部识别,然后可以用作对图像取证的证据证明。

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