基于PCA-GA算法的Rasberry Pi智能家居门安全人脸识别系统

S. Subiyanto, Dina Priliyana, Moh. Eki Riyadani, N. Iksan, Hari Wibawanto
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引用次数: 2

摘要

遗传算法(GA)可以改进主成分分析(PCA)中人脸识别过程的分类。然而,该算法对于智能家居安防系统的准确性还没有得到进一步的分析。本文介绍了基于PCA-GA的树莓派智能家居安防系统人脸识别的准确性。采用主成分分析作为人脸识别算法,采用遗传算法提高人脸图像搜索的分类性能。在树莓派上实现了PCA-GA算法。如果一个授权的人进入房子的门,继电器电路将打开门。并与其他人脸识别算法(LBPH-GA和PCA)的准确率进行了比较。结果表明,PCA- ga人脸识别准确率为90%,PCA和LBPH-GA人脸识别准确率分别为80%和90%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Face recognition system with PCA-GA algorithm for smart home door security using Rasberry Pi
Genetic algorithm (GA) can improve the classification of the face recognition process in the principal component analysis (PCA). However, the accuracy of this algorithm for the smart home security system has not been further analyzed. This paper presents the accuracy of face recognition using PCA-GA for the smart home security system on Raspberry Pi. PCA was used as the face recognition algorithm, while GA to improve the classification performance of face image search. The PCA-GA algorithm was implemented on the Raspberry Pi. If an authorized person accesses the door of the house, the relay circuit will unlock the door. The accuracy of the system was compared to other face recognition algorithms, namely LBPH-GA and PCA. The results show that PCA-GA face recognition has an accuracy of 90 %, while PCA and LBPH-GA have 80 % and 90 %, respectively.
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