Department of Intelligent Machines & Communication Systems, CSIR-Central Scientific Instruments Organisation, Chandigarh 160030, India.
Department of Aerospace and Mechanical Engineering, University at Buffalo, The State University of New York, Buffalo, NY 14260-4400, USA.
Sensors (Basel). 2022 Jul 15;22(14):5310. doi: 10.3390/s22145310.
Fixed-lag smoothing has been used across different disciplines for offline analysis in many applications. With rising computational power and parallel processing architectures, fixed-lag smoothers are increasingly integrated into online processing system with small delays. This delay is directly related to the lag-length used in system design, which needs to be chosen appropriately. In this work, an adaptive approach is devised to choose an appropriate lag-length that provides a good trade-off between accuracy and computational requirements. The analysis shown in this paper for the error dynamics of the fixed-lag smoother over the lags helps in understanding its saturation over increasing lags. In order to provide the empirical results, simulations are carried out over a second-order Newtonian system, single-axis attitude estimation, Van der Pol's oscillator, and three-axis attitude estimation. The simulation results demonstrate the performance achieved with an adaptive-lag smoother as compared to a fixed-lag smoother with very high lag-length.
固定时滞平滑已在多个应用领域的不同学科中得到广泛应用,用于离线分析。随着计算能力的提高和并行处理架构的发展,固定时滞平滑器越来越多地被集成到具有小延迟的在线处理系统中。这个延迟与系统设计中使用的时滞长度直接相关,需要进行适当的选择。在这项工作中,设计了一种自适应方法来选择适当的时滞长度,以在准确性和计算要求之间取得良好的折衷。本文对固定时滞平滑器在时滞上的误差动力学的分析有助于理解其在增加时滞时的饱和情况。为了提供经验结果,在二阶牛顿系统、单轴姿态估计、范德波尔振荡器和三轴姿态估计上进行了仿真。仿真结果表明,与具有非常大时滞长度的固定时滞平滑器相比,自适应时滞平滑器的性能得到了提高。