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Intelligent Gender Recognition System for Classification of Gender in Malaysian Demographic

机译:马来西亚人口中性别分类的智能性别识别系统

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Identification of a person gender as a man or woman based on the past experiences through features of face such as eyes, mouth, cheek can be obtained through an intelligent gender recognition system. Detection of a person's gender can be difficult but important for security purposes, especially where safety issues concerning woman in public amenities. The objectives of this research are to identify the techniques for classifying features from man and woman facial images, through which embed as a system and validify using photos within Malaysian demographic. This research is focused on utilizing facial features for gender classification in real time, emphasizing on deep learning-based gender recognition and HAAR Cascade classifier using pre-trained caffe model in OpenCV library. Results show that under Malaysian demographic, probability of 86% accuracy of gender recognition were obtained.
机译:可以通过智能性别识别系统,根据过去的经验,通过脸部特征(例如,眼睛,嘴巴,脸颊)将一个人的性别识别为男人或女人。检测一个人的性别可能很困难,但出于安全目的很重要,尤其是在公共场所中与妇女有关的安全问题上。这项研究的目的是确定用于从男女面部图像中对特征进行分类的技术,通过该技术将其嵌入系统中并使用马来西亚人口统计学中的照片进行验证。这项研究的重点是实时利用面部特征进行性别分类,强调使用OpenCV库中经过预训练的caffe模型进行基于深度学习的性别识别和HAAR级联分类器。结果表明,在马来西亚人口统计中,性别识别的准确率达到了86%。

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