利用热板调制的便携式MOx传感器系统快速识别嗅觉场景

Damien Drix, N. Dennler, M. Schmuker
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引用次数: 1

摘要

咖啡馆、地铁、超市、书店——许多日常生活的场所都有一种特殊的气味。识别这样的嗅觉场景可以为个人活动跟踪、环境监测和辅助机器人导航提供信息。然而,目前尚不清楚的是,目前的金属氧化物(MOx)传感器技术是否足够敏感和特异,以实现这一目标。传感器漂移、对环境湿度和温度的敏感性等因素进一步使嗅觉场景的识别复杂化。热板温度调制已被建议作为一种方法来克服这些缺点。我们提出了一种基于MEMS-MOx传感器的电子鼻,支持150毫秒周期的快速热板温度调制。我们在城市环境中记录了不同的自然嗅觉场景。在同一天训练和测试时,线性支持向量机能够在单个热板循环中识别出四个嗅觉场景,表现近乎完美,第二天在同一地点测试时准确率为73%。与湿度、温度和压力相比,气体传感器的响应产生了更高的识别精度,这也是部分特定于位置的。我们的研究结果表明,热板调制使识别自然气味场景跨越延长的时间跨度。这些发现鼓励在自然、不受控制的环境中使用mox传感器作为快速传感设备。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Rapid Recognition of Olfactory Scenes with a Portable MOx Sensor System using Hotplate Modulation
A café, the metro, a supermarket, a book store - many locations of everyday life have a specific smell. Recognising such olfactory scenes could inform personal activity tracking, environmental monitoring, and assist robotic navigation. Yet it is unclear if current Metal-oxide (MOx) sensor technology is sensitive and specific enough to achieve this. Factors like sensor drift, and sensitivity to ambient humidity and temperature further complicate the recognition of olfactory scenes. Hotplate temperature modulation has been suggested as a method to counter these drawbacks. We present an electronic nose based on MEMS-MOx sensors that support rapid hotplate temperature modulation with a 150 ms period. We recorded different natural olfactory scenes in an urban context. A linear SVM was able to recognise four olfactory scenes in single hotplate cycles with near-perfect performance when trained and tested on the same day, and 73% accuracy when tested in the same locations on the next day. Gas sensor responses yielded higher recognition accuracy than humidity, temperature, and pressure, which were also partly-location specific. Our results indicate that hotplate modulation enables recognition of natural odor scenes across extended timespans. These findings encourage the use of MOx-sensors as rapid sensing devices in natural, uncontrolled environments.
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