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A Measurement Methodology for Dynamic Angle of Sight Errors in Hardware-in-the-loop Simulation

机译:硬件在环仿真中动态视野误差的测量方法

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In order to precisely measure dynamic angle of sight for hardware-in-the-loop simulation, a dynamic measurement methodology was established and a set of measurement system was built. The errors and drifts, such as synchronization delay, CCD measurement error and drift, laser spot error on diffuse reflection plane and optics axis drift of laser, were measured and analyzed. First, by analyzing and measuring synchronization time between laser and time of controlling data, an error control method was devised and lowered synchronization delay to 21 μs. Then, the relationship between CCD device and laser spot position was calibrated precisely and fitted by two-dimension surface fitting. CCD measurement error and drift were controlled below 0.26mrad. Next, angular resolution was calculated, and laser spot error on diffuse reflection plane was estimated to be 0.065mrad. Finally, optics axis drift of laser was analyzed and measured which did not exceed 0.06mrad. The measurement results indicate that the maximum of errors and drifts of the measurement methodology is less than 0.275mrad. The methodology can satisfy the measurement on dynamic angle of sight of higher precision and lager scale.
机译:为了精确地测量动态视点以进行硬件在环仿真,建立了一种动态测量方法,并建立了一套测量系统。测量并分析了同步延迟,CCD测量误差和漂移,漫反射平面上的激光光斑误差以及激光的光轴漂移等误差和漂移。首先,通过分析和测量激光器与控制数据之间的同步时间,设计了一种误差控制方法,将同步延迟降低到21μs。然后,精确校准CCD器件与激光光斑位置之间的关系,并通过二维表面拟合进行拟合。 CCD的测量误差和漂移控制在0.26mrad以下。接下来,计算角分辨率,并且在漫反射平面上的激光光斑误差估计为0.065mrad。最后,分析并测量了激光光轴漂移不超过0.06mrad。测量结果表明,该测量方法的最大误差和漂移小于0.275mrad。该方法可以满足更高精度和更大标度的动态视角的测量。

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