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点卷积神经网络:基于局部特征描述符和特征增强机制的3D人脸识别

Point CNN:3D Face Recognition with Local Feature Descriptor and Feature Enhancement Mechanism.

作者信息

Wang Qi, Lei Hang, Qian Weizhong

机构信息

School of Information and Software Engineering, University of Electronic Science and Technology of China, Chengdu 610054, China.

出版信息

Sensors (Basel). 2023 Sep 6;23(18):7715. doi: 10.3390/s23187715.

Abstract

Three-dimensional face recognition is an important part of the field of computer vision. Point clouds are widely used in the field of 3D vision due to the simple mathematical expression. However, the disorder of the points makes it difficult for them to have ordered indexes in convolutional neural networks. In addition, the point clouds lack detailed textures, which makes the facial features easily affected by expression or head pose changes. To solve the above problems, this paper constructs a new face recognition network, which mainly consists of two parts. The first part is a novel operator based on a local feature descriptor to realize the fine-grained features extraction and the permutation invariance of point clouds. The second part is a feature enhancement mechanism to enhance the discrimination of facial features. In order to verify the performance of our method, we conducted experiments on three public datasets: CASIA-3D, Bosphorus, and Lock3Dface. The results show that the accuracy of our method is improved by 0.7%, 0.4%, and 0.8% compared with the latest methods on these three datasets, respectively.

摘要

三维人脸识别是计算机视觉领域的重要组成部分。点云由于其简单的数学表达式而在三维视觉领域得到广泛应用。然而,点的无序性使得它们在卷积神经网络中难以拥有有序的索引。此外,点云缺乏详细的纹理,这使得面部特征容易受到表情或头部姿势变化的影响。为了解决上述问题,本文构建了一种新的人脸识别网络,它主要由两部分组成。第一部分是基于局部特征描述符的新型算子,以实现点云的细粒度特征提取和排列不变性。第二部分是特征增强机制,以增强面部特征的辨别力。为了验证我们方法的性能,我们在三个公共数据集上进行了实验:CASIA - 3D、博斯普鲁斯海峡和Lock3Dface。结果表明,与这三个数据集上的最新方法相比,我们方法的准确率分别提高了0.7%、0.4%和0.8%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7723/10537083/4c4173f00999/sensors-23-07715-g001.jpg

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