• Multi-sensor information fusion state estimation problem for descriptor discrete-time stochastic linear systems is studied.

    研究了广义离散随机线性系统的多传感器信息融合状态估计问题。

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  • The problem of multi-sensor information fusion state estimation for descriptor discrete-time stochastic linear systems is considered.

    考虑了广义离散随机线性系统的多传感器信息融合状态估计问题。

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  • On the other hand, state estimation plays an important role in systems and control theory, signal processing and information fusion.

    另一方面,状态估计问题在系统与控制理论、信号处理与信息融合中有很重要的应用。

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  • Based on Multi_sensor Multi_model information, we present a new algorithm based on total information fusion estimation on target state. We prove the validity of this algorithm by computer.

    基于多传感器多模型信息,给出了目标状态基于全局信息融合估计的一种新算法,并通过计算机仿真验证了这种算法的有效性。

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  • This paper first introduced the kalman filter, to all sorts of navigation data information fusion, thus constituting navigation system, in order to get the optimal estimation system state.

    本文首先介绍了卡尔曼滤波器,对各种导航数据进行信息融合,从而组成导航系统,以获取系统状态的最优估计。

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  • This dissertation considers state fusion estimation of multisensor information fusion theory. The main work of here is to solve the problems when fusion estimation theory is applied in practice.

    本文的研究内容为多传感器信息融合理论中的状态融合估计理论,主要针对精确估计的实际应用中,状态融合估计理论存在的一些问题提出了解决方法。

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  • This dissertation considers state fusion estimation of multisensor information fusion theory. The main work of here is to solve the problems when fusion estimation theory is applied in practice.

    本文的研究内容为多传感器信息融合理论中的状态融合估计理论,主要针对精确估计的实际应用中,状态融合估计理论存在的一些问题提出了解决方法。

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