Comparative Analysis of Clustering Algorithm for Facial Recognition System

S. Jain, Md. Umar Farooque, Vinayak Sharma
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引用次数: 2

Abstract

A large part of the video surveillance systems involves dealing with face detection techniques on unlabeled faces. We define several classes of faces to detect them from a surveillance footage defined using different clustering algorithms. In this paper, authors have proposed a facial clustering technique for low-resolution facial dataset obtained from video surveillance footage with the help of HAAR cascade classifier. Different models like ResNet 50 and Inception ResNet V2 were used for feature extraction with weights pre-trained on ImageNet Dataset. Further, several combinations of Scaling and calculated Dimensionality Reduction techniques were applied before being fed into clustering algorithms and finally accuracy was calculated on obtained clusters.
人脸识别系统聚类算法的比较分析
很大一部分视频监控系统涉及处理未标记人脸的人脸检测技术。我们定义了几类人脸,以从使用不同聚类算法定义的监控录像中检测它们。本文提出了一种基于HAAR级联分类器的低分辨率视频监控数据集聚类技术。使用不同的模型,如ResNet 50和Inception ResNet V2,在ImageNet Dataset上预训练权值进行特征提取。此外,在将缩放和计算降维技术的几种组合应用于聚类算法之前,最后计算得到的聚类的精度。
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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