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On Classifying Facial Races with Partial Occlusions and Pose Variations

机译:在用部分闭塞和姿势变化对面部种族进行分类

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Many biometrics and security systems use facial information to obtain an individual identification and recognition. Classifying a race from a face image can provide a strong hint to search for facial identity and criminal identification. Current facial race classification methods are confined only to constrained non-partially occluded frontal faces. Challenges remain under unconstrained environments such as partial occlusions and pose variations. In this paper, we propose a Convolutional Neural Network (CNN) model to classify facial races with partial occlusions and pose variations. The proposed model is trained using a broad and balanced racial distributed face image dataset. The model is trained on four major human races, Caucasian, Indian, Mongolian, and Negroid. Our model is evaluated against the state-of-the-art methods on a constrained face test dataset. Also, an evaluation of the proposed model and human performance is conducted and compared on our new unconstrained facial race benchmark (CIMN) dataset. Our results show that our model achieves 95.1% of race classification accuracy on constrained frontal faces. Also, the proposed model achieves a comparable classification accuracy result compared to human performance with a margin of 6.2% under the current challenges in the unconstrained environment.
机译:许多生物识别和安全系统使用面部信息来获得个人识别和识别。对面部图像进行种族可以提供强烈提示,以寻找面部身份和刑事识别。目前的面部种族分类方法仅限于约束的非部分闭塞的正面面。挑战仍然存在于偏心环境,如部分闭塞和姿势变化。在本文中,我们提出了一种卷积神经网络(CNN)模型,以分类具有部分闭塞和姿势变化的面部种族。所提出的模型使用广泛且平衡的种族分布式面部图像数据集进行培训。该模型培训了四个主要人类赛,白种人,印度,蒙古和黑人。我们的模型用于对受约束的脸部测试数据集的最先进的方法进行评估。此外,对拟议的模型和人类性能进行了评估,并在我们的新不受约束的面部竞赛基准(CIMN)数据集中进行了比较。我们的研究结果表明,我们的模型在约束的额面面上达到了95.1%的种族分类准确性。此外,拟议的模型与人类性能相比,达到了可比的分类精度结果,在不受约束环境中的当前挑战下,具有6.2%的人类性能。

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