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Efficient distributed algorithms for data fusion and node localization in mobile ad-hoc networks

机译:高效分布式算法,用于移动临时网络中的数据融合和节点本地化

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Efficient distributed algorithms are an important enabling technology for large-scale ad-hoc wireless sensor and communications networks. In this paper, optimal Bayesian data fusion under the assumption of linear Gaussian state and measurement models is presented. Within this framework, an efficient algorithm for distributed state estimation in ad-hoc networks is developed. Approximate algorithms are then developed for further improvements in network resource efficiency. These include a parameterizable tradeoff of improved communications efficiency for increased latency in the rate at which information propagates through the network. It is also shown that the algorithms are well-suited for use with non-linear measurements. Finally, for distributed node position estimation in a mobile ad-hoc network, simulation results show that accurate, efficient node localization is achieved.
机译:高效分布式算法是大型临时无线传感器和通信网络的重要推动技术。本文介绍了在线性高斯状态和测量模型的假设下最佳贝叶斯数据融合。在该框架内,开发了一种有效的Ad-hoc网络中的分布式状态估计算法。然后开发近似算法以进一步改进网络资源效率。这些包括改进通信效率的可参数化折衷,以便在信息传播通过网络的速率下增加延迟。还表明该算法非常适合使用非线性测量。最后,对于移动ad-hoc网络中的分布式节点位置估计,仿真结果表明,实现了准确,有效的节点本地化。

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