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A survey on human detection surveillance systems for Raspberry Pi

机译:覆盆子PI人体检测监测系统调查

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摘要

Building reliable surveillance systems is critical for security and safety. A core component of any surveillance system is the human detection model. With the recent advances in the hardware and embedded devices, it becomes possible to make a real-time human detection system with low cost. This paper surveys different systems and techniques that have been deployed on embedded devices such as Raspberry Pi. The characteristics of datasets, feature extraction techniques, and machine learning models are covered. A unified dataset is utilized to compare different systems with respect to accuracy and performance time. New enhancements are suggested, and future research directions are highlighted. (C) 2019 Elsevier B.V. All rights reserved.
机译:建立可靠的监控系统对于安全和安全至关重要。任何监测系统的核心组分是人类检测模型。随着硬件和嵌入式设备的最近进步,可以使具有低成本的实时人类检测系统。本文调查已部署在嵌入式设备(如覆盆子PI)上部署的不同系统和技术。覆盖了数据集,特征提取技术和机器学习模型的特性。统一数据集用于比较不同的系统关于准确性和性能时间。建议新的增强功能,并突出了未来的研究方向。 (c)2019 Elsevier B.v.保留所有权利。

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