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首页> 外文期刊>IEEE Transactions on Aerospace and Electronic Systems >Federated square root filter for decentralized parallel processors
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Federated square root filter for decentralized parallel processors

机译:分布式并行处理器的联合平方根滤波器

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An efficient, federated Kalman filter is developed for use in distributed multisensor systems. The design accommodates sensor-dedicated local filters, some of which use data from a common reference subsystem. The local filters run in parallel, and provide sensor data compression via prefiltering. The master filter runs at a selectable reduced rate, fusing local filter outputs via efficient square root algorithms. Common local process noise correlations are handled by use of a conservative matrix upper bound. The federated filter yields estimates that are globally optimal or conservatively suboptimal, depending upon the master filter processing rate. This design achieves a major improvement in throughput (speed), is well suited to real-time system implementation, and enhances fault detection, isolation, and recovery capability.
机译:开发了一种高效的联邦卡尔曼滤波器,用于分布式多传感器系统。该设计可容纳传感器专用的本地滤波器,其中一些使用来自公共参考子系统的数据。本地过滤器并行运行,并通过预过滤提供传感器数据压缩。主滤波器以可选的降低速率运行,通过有效的平方根算法融合本地滤波器的输出。常见的局部过程噪声相关性通过使用保守矩阵上限来处理。取决于主过滤器的处理速度,联邦过滤器得出的估计值在全局上是最佳的,或者在保守上是次优的。该设计实现了吞吐量(速度)的重大提高,非常适合实时系统实施,并增强了故障检测,隔离和恢复能力。

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