A Flexible Distributed Maximum Log-Likelihood Scheme for UWB Indoor Positioning

B. Denis, Liyun He, L. Ouvry
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引用次数: 17

Abstract

In this paper, we show that the distributed maximum log-likelihood (DMLL) algorithm, which was originally proposed in (Denis, 2005) as a positioning solution for ultra wideband (UWB) indoor ad hoc networks, exhibits fine flexibility. Indeed, distinct implementation options are offered regarding the integration of range measurements or the distribution of required calculi. One important point is the use of synergetic cooperative protocol transactions that can handle simultaneously ranging, local contributions to the iterative optimization of a global objective, as well as the exchange of positional information. In addition, depending on the retained underlying models and the amount of prior statistical information, either a "blind" approach or more advanced options (e.g. aided by a preliminary channel identification step) could be adopted within a unique generic framework. This algorithm also proves to mitigate the harmful effects of non line of sight (NLOS) ranging biases by incorporating refined time of arrival (TOA) models. Finally, it claims to benefit from redundancy and spatial diversity as network completeness increases. At first, we make a short description of possible algorithmic embodiments. Then, we provide new simulation results obtained under realistic indoor scenarios with various ranging models. Subsequently, we discuss the impact of a few critical parameters on positioning precision and/or reliability.
一种用于超宽带室内定位的柔性分布式最大对数似然方案
在本文中,我们证明了(Denis, 2005)最初作为超宽带(UWB)室内自组织网络的定位解决方案而提出的分布式最大对数似然(DMLL)算法具有良好的灵活性。实际上,对于量程测量的集成或所需演算的分布,提供了不同的实现选择。重要的一点是使用协同合作协议事务,可以同时处理范围,局部贡献到全局目标的迭代优化,以及位置信息的交换。此外,根据保留的基础模型和先前统计信息的数量,可以在一个独特的通用框架内采用“盲”方法或更高级的选择(例如,借助于初步的渠道识别步骤)。该算法还通过引入精确的到达时间(TOA)模型来减轻非视线(NLOS)测距偏差的有害影响。最后,它声称随着网络完整性的增加,从冗余和空间多样性中受益。首先,我们对可能的算法实施例做一个简短的描述。在此基础上,给出了各种测距模型在真实室内场景下的仿真结果。随后,我们讨论了一些关键参数对定位精度和/或可靠性的影响。
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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