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An analysis of automatic gender detection by first-order configural relations

机译:一阶配置关系自动性别检测分析

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Automatic gender detection from face images is a challenging problem. In the literature, different techniques have been applied so far on face images for gender detection. In contrast to these existing methods, we have analyzed the usage of first-order configural relations of the face to predict gender from images by using machine learning algorithms. In experiments on the dataset of Wikipedia profile pictures, 83% of general accuracy, 83.3% detection rate for male faces and 82.7% detection rate for female faces have been achieved by Logistic Regression. These results indicate that first-order configural relations are effective in automatic gender prediction from digital face images.
机译:面部图像自动性别检测是一个具有挑战性的问题。在文献中,到目前为止已经应用了不同的技术进行性别检测。与这些现有方法相比,我们分析了使用机器学习算法预测来自图像的一阶配置关系的一阶配置关系。在Wikipedia配置文件数据集上的实验中,通过Logistic回归实现了83 %的通用精度,83.3%的雄性脸的检测率和女性面的82.7%的检测率。这些结果表明,一阶配置关系在数字面部图像的自动性别预测中是有效的。

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