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An Embedded Non-Contact Body Temperature Measurement System with Automatic Face Tracking and Neural Network Regression

机译:具有面部自动跟踪和神经网络回归功能的嵌入式非接触式体温测量系统

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In the last decade, many advances have been made in the field of automatic temperature estimation, including wearable sensor technologies (WST), infrared thermography (IRT), and non-contact infrared thermometer (NCIT). In contrast with the WST and IRT, NCIT is inexpensive without the risk of potential skin irritation. Nevertheless, NCIT is limited in short valid estimation distance (<;12 cm), resulting in the non-satisfaction of the surging application requirements nowadays. This paper proposed an algorithm based on Neural Network Regression not only to reduce the error from 0.6° to 0.12°, which is close to the medical instrument level, but as well to lengthen the valid distance to the range between 50 cm and 100 cm. Furthermore, this study developed an embedded automatic body temperature estimation system which could continuously and unconsciously measure the human temperature in real-time. Integrated with face tracking and fuzzy-control of Pan-tilt unit, the system ensures that human face is focused while measuring. With wireless communication techniques, users can review their physiological Information via App and Web, which is beneficial to remote healthcare.
机译:在过去的十年中,自动温度估算领域取得了许多进步,包括可穿戴传感器技术(WST),红外热成像(IRT)和非接触红外温度计(NCIT)。与WST和IRT相比,NCIT价格低廉,没有潜在的皮肤刺激风险。但是,NCIT的有效估计距离短(<; 12 cm)受限制,导致当今对不断增长的应用程序要求不满意。本文提出了一种基于神经网络回归的算法,不仅可以将误差从0.6°减小到0.12°(接近医疗仪器水平),而且可以将有效距离延长到50 cm至100 cm之间。此外,本研究开发了一种嵌入式自动体温估计系统,该系统可以连续,不自觉地实时测量人体温度。该系统与人脸跟踪和旋转云台单元的模糊控制集成在一起,可确保测量时人脸聚焦。借助无线通信技术,用户可以通过App和Web查看其生理信息,这对远程医疗保健很有帮助。

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