Multisensor Data-Fusion-Based Approach to Airspeed Measurement Fault Detection for Unmanned Aerial Vehicles
Guo, Dingfei1; Zhong, Maiying2
刊名IEEE Transactions on Instrumentation and Measurement
2018-02
卷号67期号:2页码:317-327
关键词Airspeed estimation fault detection kinematics model pitot tube unmanned aerial vehicle
英文摘要

Fault detection (FD) plays an important role in
guaranteeing system safety and reliability for unmanned aerial
vehicles (UAVs). This paper focuses on developing an alternative
approach to FD for airspeed sensor in UAVs by using data
from gyros, accelerometers, global positioning system, and wind
vanes. Based on the kinematics model of the UAV, an estimator
is proposed to provide analytical redundancy using information
from the above-mentioned sensors, which are commonly
implemented on UAVs. This filter process is independent of
the airspeed measurement and the aircraft dynamics model.
Furthermore, we employ the observability rank criterion based
on Lie derivatives and prove that the nonlinear system describing
the airspeed kinematics is observable. The χ2 test and cumulative
sum detector are employed to detect the occurrence of
airspeed measurement faults together. Finally, the performance
of the proposed methodology has been evaluated through flight
experiments of UAVs.

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语种英语
内容类型期刊论文
源URL[http://ir.ia.ac.cn/handle/173211/47450]  
专题仿生进化机器人
通讯作者Zhong, Maiying
作者单位1.Institute of Automation Chinese Academy of Sciences
2.Beihang University
推荐引用方式
GB/T 7714
Guo, Dingfei,Zhong, Maiying. Multisensor Data-Fusion-Based Approach to Airspeed Measurement Fault Detection for Unmanned Aerial Vehicles[J]. IEEE Transactions on Instrumentation and Measurement,2018,67(2):317-327.
APA Guo, Dingfei,&Zhong, Maiying.(2018).Multisensor Data-Fusion-Based Approach to Airspeed Measurement Fault Detection for Unmanned Aerial Vehicles.IEEE Transactions on Instrumentation and Measurement,67(2),317-327.
MLA Guo, Dingfei,et al."Multisensor Data-Fusion-Based Approach to Airspeed Measurement Fault Detection for Unmanned Aerial Vehicles".IEEE Transactions on Instrumentation and Measurement 67.2(2018):317-327.
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