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非线性估计滤波器在船舶动力定位系统的应用
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作者 周静 谭亮 《舰船科学技术》 北大核心 2018年第7X期82-84,共3页
随着人类对海洋资源开发规模的不断提高,远洋航运和远洋资源开发成为国民经济中的重要组成部分,由于传统的船舶抛锚系泊方式具有海上定位精度差、成本高、稳定性差等缺点,难以满足远洋舰船的海上定位需求。动力定位技术是利用舰船四周... 随着人类对海洋资源开发规模的不断提高,远洋航运和远洋资源开发成为国民经济中的重要组成部分,由于传统的船舶抛锚系泊方式具有海上定位精度差、成本高、稳定性差等缺点,难以满足远洋舰船的海上定位需求。动力定位技术是利用舰船四周的推进器和船舶动力控制器等装置,产生具有一定方向和大小的推进作用力,抵消海风、海浪等干扰作用力和力矩,使船舶的定位精度和稳定性显著改善。本文的研究对象是船舶动力定位系统,详细介绍了一种非线性估计滤波器的工作原理,并研究了该滤波器在舰船动力定位系统的应用。 展开更多
关键词 动力定位系统 非线性估计滤波器 动力控制器
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State estimation of connected vehicles using a nonlinear ensemble filter
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作者 刘江 陈华展 +1 位作者 蔡伯根 王剑 《Journal of Central South University》 SCIE EI CAS CSCD 2015年第6期2406-2415,共10页
The concept of connected vehicles is with great potentials for enhancing the road transportation systems in the future. To support the functions and applications under the connected vehicles frame, the estimation of d... The concept of connected vehicles is with great potentials for enhancing the road transportation systems in the future. To support the functions and applications under the connected vehicles frame, the estimation of dynamic states of the vehicles under the cooperative environments is a fundamental issue. By integrating multiple sensors, localization modules in OBUs(on-board units) require effective estimation solutions to cope with various operation conditions. Based on the filtering estimation framework for sensor fusion, an ensemble Kalman filter(En KF) is introduced to estimate the vehicle's state with observations from navigation satellites and neighborhood vehicles, and the original En KF solution is improved by using the cubature transformation to fulfill the requirements of the nonlinearity approximation capability, where the conventional ensemble analysis operation in En KF is modified to enhance the estimation performance without increasing the computational burden significantly. Simulation results from a nonlinear case and the cooperative vehicle localization scenario illustrate the capability of the proposed filter, which is crucial to realize the active safety of connected vehicles in future intelligent transportation. 展开更多
关键词 connected vehicles state estimation cooperative positioning nonlinear ensemble filter global navigation satellite system (GNSS) dedicated short range communication (DSRC)
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