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Face Detection and Recognition, Face Emotion Recognition Through NVIDIA Jetson Nano

机译:面对检测和识别,通过NVIDIA Jetson Nano面对情感识别

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This paper focuses on implementing face detection, face recognition and face emotion recognition through NVIDIA's state-of-the-art Jetson Nano. Face detection is implemented using OpenCV's deep learning-based DNN face detector, supported by a ResNet architecture, for achieving better accuracy than the previously developed models. The result computed by framework libraries of OpenCV, with the support of the above-mentioned hardware, displayed reliable accuracy even with the change in lighting and angle. For face recognition, the approach of deep metric learning using OpenCV, supported by a ResNet-34 architecture, is used. Face emotion recognition is achieved by developing a system in which the areas of eyes and mouth are used to convey the analysis of the information into a merged new image, classifying the image into displaying any of the seven basic facial emotions. A powerful and a low-power platform, Jetson Nano carried out intensive computations of algorithms easily, contributing in high video processing frame.
机译:本文侧重于通过NVIDIA的最先进的Jetson Nano实现面部检测,面部识别和面对情感认可。使用OpenCV的基于深度学习的DNN面部探测器来实现面部检测,由Reset架构支持,以实现比以前开发的模型更好的精度。通过opencv的框架库计算的结果,随着上述硬件的支持,即使在照明和角度的变化也表现出可靠的精度。对于人脸识别,使用OpenCV的深度度量学习方法,由Reset-34架构支持的OpenCV。通过开发一种系统来实现脸部情感识别,其中用于将信息的分析传达到合并的新图像中,将图像分析到显示任何七个基本面部情绪中的任何系统。强大而低功耗平台,Jetson Nano轻松进行了算法的密集计算,在高视频处理框架中有所贡献。

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