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A robust position estimation algorithm for a local positioning measurement system

机译:用于局部定位测量系统的鲁棒位置估计算法

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Precise position estimation has always been a challenging but highly requested task in many technical problems. The time-difference of arrival (TDOA) based local position measurement system LPM uses the well-known Bancroft algorithm, which computes a closed-form solution to the non-linear range measurement equations. A critical issue of this computation method is that outliers in the measurements will decrease the quality of the position estimate significantly. In this contribution a least median of squares (LMS) algorithm for position estimation is developed which delivers an appropriate position estimate even if the raw data contain corrupted measurements.
机译:在许多技术问题中,精确的位置估计一直是一项具有挑战性但要求很高的任务。基于到达时间差(TDOA)的本地位置测量系统LPM使用了著名的Bancroft算法,该算法计算非线性范围测量方程的闭式解。这种计算方法的一个关键问题是测量中的异常值会大大降低位置估计的质量。在这种贡献中,开发了用于位置估计的最小二乘平方中值(LMS)算法,即使原始数据包含损坏的测量值,该算法也可以提供适当的位置估计。

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