Abstract
This paper analyzes the statistic properties of the systematic error in terms of range and bearing during the transformation process. Furthermore, we rely on a weighted nonlinear least square method to calculate the biases based on the proposed models. The results show the high performance of the proposed approach for error modeling and bias estimation.
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APA
Zhang, F., & Knoll, A. (2016). Systematic error modeling and bias estimation. Sensors (Switzerland), 16(5). https://doi.org/10.3390/s16050729
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