Wan Zhenhua, Zhao Kaichun, Cheng Haoyuan, Fu Peng
School of Mechanical Engineering, Guangxi University, Nanning 530004, China.
Department of Precision Instrument, Tsinghua University, Beijing 100084, China.
Sensors (Basel). 2024 Jan 13;24(2):0. doi: 10.3390/s24020498.
The bionic polarimetric imaging navigation sensor (BPINS) is a navigation sensor that provides absolute heading, and it is of practical engineering significance to model the measurement error of BPINS. The existing BPINSs are still modeled using photodiode-based measurements rather than imaging measurements and are not modeled systematically enough. This paper proposes a measurement performance analysis method of BPINS that takes into account the geometric and polarization errors of the optical system. Firstly, the key error factors affecting the overall measurement performance of BPINS are investigated, and the Stokes vector-based measurement error model of BPINS is introduced. Secondly, based on its measurement error model, the effect of the error source on the measurement performance of BPINS is quantitatively analyzed using Rayleigh scattering to generate scattered sunlight as a known incident light source. The numerical results show that in angle of E-vector (AoE) measurement, the coordinate deviation of the principal point has a greater impact, followed by grayscale response inconsistency of CMOS and integration angle error of micro-polarization array, and finally lens attenuation; in degree of linear polarization (DoLP) measurement, the grayscale response inconsistency of CMOS has a more significant impact. This finding can accurately guide the subsequent calibration of BPINS, and the quantitative results provide an important theoretical reference for its optimal design.
仿生偏振成像导航传感器(BPINS)是一种能提供绝对航向的导航传感器,对BPINS的测量误差进行建模具有实际工程意义。现有的BPINS仍采用基于光电二极管的测量而非成像测量进行建模,且系统性不足。本文提出一种考虑光学系统几何和偏振误差的BPINS测量性能分析方法。首先,研究影响BPINS整体测量性能的关键误差因素,引入基于斯托克斯矢量的BPINS测量误差模型。其次,基于其测量误差模型,以瑞利散射产生的散射太阳光作为已知入射光源,定量分析误差源对BPINS测量性能的影响。数值结果表明,在E矢量角度(AoE)测量中,主点坐标偏差影响较大,其次是CMOS的灰度响应不一致和微偏振阵列的积分角度误差,最后是透镜衰减;在线偏振度(DoLP)测量中,CMOS的灰度响应不一致影响更为显著。这一发现能准确指导BPINS后续的校准工作,定量结果为其优化设计提供重要理论参考。