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Face photo-sketch recognition based on joint dictionary learning

机译:基于联合字典学习的人脸照片素描识别

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Face recognition technology is widely used in law enforcement agencies. Face photo-sketch recognition is one of possible ways to identify suspects. We propose a method using joint dictionary learning for face photo-sketch recognition. Our method bypasses the image synthesis procedure used by previous joint dictionary learning based methods. Compared with other methods such as coupled dictionary learning which projects features from two different modalities into a common space for recognition, our method does not need extra projections, and avoids the expensive optimization of coupled dictionary learning. By using the cosine distance nearest neighbor classifier, our method performs equally well as coupled dictionary learning based method with much less computation. In the experiments on a popular face photo-sketch database, our method achieves recognition rates higher than or comparable to that of the state-of-art methods.
机译:人脸识别技术已在执法机构中广泛使用。人脸照片素描识别是识别犯罪嫌疑人的一种可能方法。我们提出了一种使用联合字典学习进行人脸照片素描识别的方法。我们的方法绕过了以前基于联合字典学习的方法所使用的图像合成过程。与其他方法(如耦合字典学习)将特征从两个不同模态投影到一个公共空间进行识别相比,我们的方法不需要额外的投影,并且避免了耦合字典学习的昂贵优化。通过使用余弦距离最近邻分类器,我们的方法与基于字典学习的耦合方法的性能相当好,而计算量却少得多。在流行的面部照片素描数据库上进行的实验中,我们的方法获得的识别率高于或可与最新方法相媲美。

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