Thermal Face Detection for High-Speed AI Thermometer

W. Lee, Hyucksung Kwon, Jungwook Choi
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Abstract

In the era of COVID-19, temperature measurement becomes a crucial procedure for protecting public spaces against the virus. Artificial intelligence techniques such as object detection deep neural networks (DNNs) have been adopted to enhance the accuracy of contactless temperature measurement. However, the computation-demanding nature of DNNs, along with the time-consuming fusion of video and thermal camera frames, raises hurdles for the cost-effective deployment of such AI thermometer systems. In this work, we propose a high-speed and cost-effective implementation of an AI thermometer. We develop a thermal face detection network to detect faces for temperature measurement without a video camera. We optimize the proposed network's precision and structure to exploit high-throughput reduced-precision computations available in the embedded AI platforms. The resulting AI thermometer system demonstrates a live temperature measurement with a speed of 160 frames per second.
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高速人工智能温度计的热人脸检测
在新冠肺炎时代,温度测量成为保护公共场所免受病毒感染的关键程序。人工智能技术如物体检测深度神经网络(dnn)已被用于提高非接触式温度测量的准确性。然而,深度神经网络的计算需求特性,以及视频和热像仪帧的耗时融合,为这种人工智能温度计系统的成本效益部署带来了障碍。在这项工作中,我们提出了一种高速且具有成本效益的人工智能温度计实现方法。我们开发了一个热人脸检测网络,可以在没有摄像机的情况下检测人脸进行温度测量。我们优化了所提出的网络的精度和结构,以利用嵌入式人工智能平台中可用的高通量低精度计算。由此产生的人工智能温度计系统以每秒160帧的速度演示了实时温度测量。
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