Face and Facial Expressions Recognition System for Blind People Using ResNet50 Architecture and CNN

Jia-Rou Lee, Kok-Why Ng, Yih-Jian Yoong
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Abstract

Many blind individuals have difficulties in recognizing people’s facial expression which may impact their social interaction. With the recognition, the blind individuals can accurately interpret and respond to the emotions. There is a lack in the existing application with the combination of face and facial expressions recognition. The blind individuals have to rely on multiple applications to accomplish the same task, making it difficult and time-consuming for them to use. The paper aims to recognize faces and facial expressions for blind individuals and provides feedback in real-time. Three face detection algorithms of Haar Cascade Classifier, Dlib, and RetinaFace are compared. Dlib is chosen to process with Histogram of Oriented Gradients (HOG) and Support Vector Machine (SVM). It loads the pre-trained model, computes the HOG features, slide the window scanning at different scales, classify the windows using the SVM classifier, generate bounding boxes, and applying non-maximum suppression. ResNet50 architecture is employed to recognize face and Convolutional Neural Networks (CNN) is applied to recognize facial expression. The training accuracy is 70% and validation accuracy is 60%.
基于ResNet50架构和CNN的盲人面部表情识别系统
许多盲人在识别别人的面部表情方面有困难,这可能会影响他们的社会交往。通过识别,盲人可以准确地解释和回应情绪。在现有的人脸与面部表情相结合的识别应用中还存在一定的不足。盲人必须依靠多个应用程序来完成相同的任务,这使得他们使用起来既困难又耗时。本文旨在为盲人识别人脸和面部表情,并提供实时反馈。比较了Haar级联分类器、Dlib和RetinaFace三种人脸检测算法。选择Dlib,采用梯度直方图(HOG)和支持向量机(SVM)进行处理。加载预训练模型,计算HOG特征,滑动不同尺度的窗口扫描,使用SVM分类器对窗口进行分类,生成边界框,并应用非最大值抑制。采用ResNet50架构进行人脸识别,采用卷积神经网络(Convolutional Neural Networks, CNN)进行面部表情识别。训练精度为70%,验证精度为60%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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