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State fusion with unknown correlation: Ellipsoidal intersection

机译:相关性未知的状态融合:椭球交点

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This article focuses on the problem of fusing two prior Gaussian estimates into a single estimate, when the correlation is unknown. Existing solutions either lead to a conservative fusion result, as the chosen parametrization focuses on the fusion formulas instead of correlations, or they are computationally expensive. The contribution of this article is a novel parametrization, in which the correlation is explicitly characterized a priori to deriving the fusion formulas. Then, maximizing the correlation ensures that the fusion result is based on independent parts of the prior estimates and, simultaneously, addresses the fact that the correlation is unknown. In addition, a guaranteed improvement of the accuracy after fusion is attained. An illustrative example demonstrates the benefits of the proposed method compared to an existing fusion method.
机译:本文着重探讨在相关性未知的情况下将两个先前的高斯估计融合为一个估计的问题。现有的解决方案或者导致保守的融合结果,因为所选参数化的重点是融合公式而不是相关性,或者它们的计算量很大。本文的贡献是一种新颖的参数化,其中先验地推导了相关性,然后推导了融合公式。然后,最大化相关性可确保融合结果基于先前估计的独立部分,并且同时解决了相关性未知的事实。另外,可以确保融合后精度的提高。举例说明,与现有的融合方法相比,该方法的优势。

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