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Deep learning assisted portable IR active imaging sensor spots and identifies live humans through fire

机译:深度学习辅助便携式红外主动成像传感器可以发现并通过火灾识别活人

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摘要

Achieving clear imaging through fire is a highly pursued goal and various active field-portable devices have been recently proposed to improve the capabilities of existing thermographic cameras. Here we combine an Infrared active imaging sensor and artificial intelligence to obtain automatic detection of people hidden behind flames. We show the successful use of a pre-trained Convolutional Neural Network in recognizing a static or moving person through fire when this is imaged by the proposed system. Remarkably, the network is able to detect the person even in the case the imaging system we propose cannot reject the flame disturbance in full, thus improving its robustness. These results pave the way to the development of automatic surveillance systems able to generate alerts in the case a fire spreads and persons are detected inside rooms invaded by flames, without relying on the subjective human interpretation of the videos.
机译:通过火灾实现清晰的成像是一个高度追求的目标,并且最近提出了各种有源现场便携式设备来提高现有热像仪的性能。在这里,我们将红外主动成像传感器和人工智能相结合,以自动检测隐藏在火焰后的人员。我们展示了一种预训练的卷积神经网络在通过拟议系统成像时通过火灾识别静态或移动人的成功使用。值得注意的是,即使在我们提出的成像系统无法完全拒绝火焰干扰的情况下,网络也能够检测到该人,从而提高了鲁棒性。这些结果为开发自动监视系统铺平了道路,该系统可以在火灾蔓延和在被火焰入侵的房间内检测到人员的情况下生成警报,而无需依赖于人为的视频主观解释。

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