Extended GNSS Ambiguity Resolution Models with Regularization Criterion and Constraints

Bofeng Li
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引用次数: 4

Abstract

This paper firstly presents an extended ambiguity resolution model that deals with an ill-posed problem and constraints among the estimated parameters. In the extended model, the regularization criterion is used instead of the traditional least squares in order to estimate the float ambiguities better. The existing models can be derived from the general model. Secondly, the paper examines the existing ambiguity searching methods from four aspects: exclusion of nuisance integer candidates based on the available integer constraints; integer rounding; integer bootstrapping and integer least squares estimations. Finally, this paper systematically addresses the similarities and differences between the generalized TCAR and decorrelation methods from both theoretical and practical aspects.
基于正则化准则和约束的扩展GNSS模糊度解决模型
本文首先提出了一种扩展的模糊度求解模型,该模型处理了估计参数之间的不适定问题和约束。在扩展模型中,为了更好地估计浮点数的模糊性,采用正则化准则代替传统的最小二乘法。现有的模型可以由一般模型推导出来。其次,从四个方面对现有的模糊度搜索方法进行了分析:基于可用整数约束排除有害整数候选;整圆;整数自举和整数最小二乘估计。最后,从理论和实践两个方面系统地分析了广义TCAR与去相关方法的异同。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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