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Multi-Sensor Data Fusion in A Real-Time Support System for On-Duty Firefighters

机译:值班消防员实时支持系统中的多传感器数据融合

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摘要

While working on fire ground, firefighters risk their well-being in a state where any incident might cause not only injuries, but also fatality. They may be incapacitated by unpredicted falls due to floor cracks, holes, structure failure, gas explosion, exposure to toxic gases, or being stuck in narrow path, etc. Having acknowledged this need, in this study, we focus on developing an efficient portable system to detect firefighter’s falls, loss of physical performance, and alert high CO level by using a microcontroller carried by a firefighter with data fusion from a 3-DOF (degrees of freedom) accelerometer, 3-DOF gyroscope, 3-DOF magnetometer, barometer, and a MQ7 sensor using our proposed fall detection, loss of physical performance detection, and CO monitoring algorithms. By the combination of five sensors and highly efficient data fusion algorithms to observe the fall event, loss of physical performance, and detect high CO level, we can distinguish among falling, loss of physical performance, and the other on-duty activities (ODAs) such as standing, walking, running, jogging, crawling, climbing up/down stairs, and moving up/down in elevators. Signals from these sensors are sent to the microcontroller to detect fall, loss of physical performance, and alert high CO level. The proposed algorithms can achieve 100% of accuracy, specificity, and sensitivity in our experimental datasets and 97.96%, 100%, and 95.89% in public datasets in distinguishing between falls and ODAs activities, respectively. Furthermore, the proposed algorithm perfectly distinguishes between loss of physical performance and up/down movement in the elevator based on barometric data fusion. If a firefighter is unconscious following the fall or loss of physical performance, an alert message will be sent to their incident commander (IC) via the nRF224L01 module.
机译:在火场上工作时,消防员冒着任何事故都可能造成伤害和死亡的危险,威胁他们的健康。由于地板开裂,孔洞,结构破坏,气体爆炸,暴露于有毒气体或卡在狭窄的道路等原因,它们可能会因无法预料的跌落而丧失工作能力。在认识到这一需求之后,我们在本研究中致力于开发一种高效的便携式产品。该系统通过使用由消防员携带的微控制器来检测消防员的跌倒,身体机能下降并警告高CO水平,并具有来自3自由度(自由度)加速度计,3自由度陀螺仪,3自由度磁力计,气压计的数据融合,以及使用我们建议的跌倒检测,物理性能检测损失和CO监测算法的MQ7传感器。通过结合使用五个传感器和高效的数据融合算法来观察跌倒事件,身体机能丧失和检测高CO水平,我们可以区分跌倒,身体机能丧失和其他值班活动(ODA)例如站立,步行,跑步,慢跑,爬行,爬上/下楼梯以及在电梯中上下移动。来自这些传感器的信号被发送到微控制器,以检测跌落,物理性能损失并警告高CO水平。所提出的算法在区分跌倒和ODA活动方面可以分别在我们的实验数据集中达到100%的准确性,特异性和敏感性,在公共数据集中可以达到97.96%,100%和95.89%。此外,基于大气数据融合,所提出的算法可以完美地区分物理性能损失和电梯中的上下运动。如果消防员在摔倒或丧失体力后失去知觉,则警报消息将通过nRF224L01模块发送给其事故征候指挥官(IC)。

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