Cramer-Rao界分析在汽车中的实际应用

M. Rydstrom, E. Strom, A. Svensson, A. Urruela
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引用次数: 3

摘要

Cramer-Rao下界在均方意义上对所有无偏估计量的性能设置了一个界限。在本文中,作为讨论的基础,我们提供了移动节点位置估计器的这种边界的直接推导,操作在异步网络中实体之间的距离的观测。虽然Cramer-Rao界分析在定位界非常常见,但它主要用于各种估计器的分析评估,比较目的和传感器信息融合。在这项工作中,我们提出了这些工具在性能评估方面的一些更多的商业和实际应用。我们首先讨论在整个交通基础设施中部署信标,作为提供全球汽车(可能是GPS增强)定位服务的第一步,该服务具有碰撞警告和碰撞避免等应用。然后,我们继续描述如何通过依赖节点间距离测量和我们称为灯塔方案的动态信标方案来大幅降低与此类信标部署相关的成本。我们还提出了一种降低相对节点坐标估计和Cramer-Rao性能度量评估复杂性的方法。
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Practical automotive applications of Cramer-Rao bound analysis
The Cramer-Rao lower bound places a bound, in a mean squared sense, on the performance of all unbiased estimators. In this paper, as a base for discussion, we provide a straight forward derivation of such bounds for estimators of mobile node positions, operating on observations of distances between entities in an asynchronous network. While Cramer-Rao bound analysis is very common in the positioning community, it is mostly used for analytical evaluation of various estimators, for comparison purposes and for sensor information fusion. In this work, we present some more commercial and practical applications of these tools for performance evaluation. We first discuss the deployment of beacons throughout a transportation infrastructure as a first step towards providing global automotive, possibly GPS augmented, positioning services with applications such as collision warning and collision avoidance. We then move on to describe how the cost associated with the deployment of such beacons can be drastically reduced through relying on inter-node range measurements and a dynamic beaconing scheme we call the lighthouse scheme. We also present a method for complexity reduction in the estimation of relative node coordinates and evaluation of Cramer-Rao performance measures.
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