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Face image retrieval based on shape and texture feature fusion

机译:基于形状和纹理特征融合的人脸图像检索

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Abstract Humongous amounts of data bring various challenges to face image retrieval. This paper proposes an efficient method to solve those problems. Firstly, we use accurate facial landmark locations as shape features. Secondly, we utilise shape priors to provide discriminative texture features for convolutional neural networks. These shape and texture features are fused to make the learned representation more robust. Finally, in order to increase efficiency, a coarse-tofine search mechanism is exploited to efficiently find similar objects. Extensive experiments on the CASIAWebFace, MSRA-CFW, and LFW datasets illustrate the superiority of our method.
机译:摘要大量数据给人脸图像检索带来了各种挑战。本文提出了一种解决这些问题的有效方法。首先,我们使用准确的面部标志位置作为形状特征。其次,我们利用形状先验为卷积神经网络提供判别纹理特征。这些形状和纹理特征融合在一起,使学习到的表示更鲁棒。最后,为了提高效率,利用了粗略搜索机制来有效地找到相似的对象。在CASIAWebFace,MSRA-CFW和LFW数据集上的大量实验说明了我们方法的优越性。

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