Metamorphic Testing for Edge Real-Time Face Recognition and Intrusion Detection Solution

Mourad Raif, El Mehdi Ouafiq, Abdessamad El Rharras, A. Chehri, Rachid Saadane
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Abstract

Smart city applications are using extensively artificial intelligence for decision-making. Among the fields of application are facial recognition and intrusion detection. The subject is old, but processing techniques and hardware are constantly evolving. This paper will review the most widely known practices and apply them to a smart parking and intrusion detection system using the “JetsonNano” board. Nowadays, quality assurance for machine learning systems is becoming increasingly important. This article focuses on detecting bugs in implementing two classical face recognition algorithms: Eigenface (EF) and Local binary pattern histogram (LBPH). We tested the efficiency of our system using metamorphic testing depending on many factors: weather conditions, pixel noise, and distortion.
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变形测试边缘实时人脸识别及入侵检测解决方案
智慧城市应用正在广泛使用人工智能进行决策。应用领域包括人脸识别和入侵检测。这个主题是古老的,但处理技术和硬件在不断发展。本文将回顾最广为人知的实践,并将其应用于使用“JetsonNano”板的智能停车和入侵检测系统。如今,机器学习系统的质量保证变得越来越重要。本文重点研究了两种经典人脸识别算法:特征脸(EF)和局部二值模式直方图(LBPH)的错误检测。我们使用变质测试来测试系统的效率,这取决于许多因素:天气条件、像素噪声和失真。
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