论文标题

基于多路径的大满贯的数据融合:结合来自多个传播路径的信息

Data Fusion for Multipath-Based SLAM: Combining Information from Multiple Propagation Paths

论文作者

Leitinger, Erik, Venus, Alexander, Teague, Bryan, Meyer, Florian

论文摘要

基于多路径的同时本地化和映射(SLAM)是一个新兴的范式,用于具有有限资源的准确室内定位。基于多路径的SLAM的目的是检测和定位无线电反射表面,以支持移动代理的时变位置的估计。无线电反射表面通常由所谓的虚拟锚(VAS)表示,它们是实际表面上基站的镜像图像。在现有的基于多路径的SLAM方法中,即使目标是映射反射表面,也会为每个传播路径引入VA。并非每个反射表面而不是每个繁殖路径都由VA建模,这一事实使跨多个路径和基站的统计信息的一致组合“融合”复杂化,从而限制了现有基于多径的SLAM方法的准确性和映射速度。在本文中,我们引入了一种改进的统计模型和估计方法,该方法通过通过单个主虚拟锚(MVA)表示每个表面来实现基于多路径的大满贯的数据融合。我们进一步开发了一种基于粒子的总和产物算法(SPA),该算法执行概率数据关联以有效地计算MVA和试剂位置的边际后验分布。基于MVA的估计方法的一个关键方面是,通过射线启动来检查特定代理位置处的单次反弹和双弹跳传播路径的可用性。可用性检查通过提供概率数据关联的检测概率直接集成到统计模型中。基于模拟和真实数据的数值结果与基于最先进的多径的SLAM方法相比,估计准确性有显着提高。

Multipath-based simultaneous localization and mapping (SLAM) is an emerging paradigm for accurate indoor localization with limited resources. The goal of multipath-based SLAM is to detect and localize radio reflective surfaces to support the estimation of time-varying positions of mobile agents. Radio reflective surfaces are typically represented by so-called virtual anchors (VAs), which are mirror images of base stations at the actual surfaces. In existing multipath-based SLAM methods, a VA is introduced for each propagation path, even if the goal is to map the reflective surfaces. The fact that not every reflective surface but every propagation path is modeled by a VA, complicates a consistent combination "fusion" of statistical information across multiple paths and base stations and thus limits the accuracy and mapping speed of existing multipath-based SLAM methods. In this paper, we introduce an improved statistical model and estimation method that enables data fusion for multipath-based SLAM by representing each surface by a single master virtual anchor (MVA). We further develop a particle-based sum-product algorithm (SPA) that performs probabilistic data association to compute marginal posterior distributions of MVA and agent positions efficiently. A key aspect of the proposed estimation method based on MVAs is to check the availability of singlebounce and double-bounce propagation paths at a specific agent position by means of ray-launching. The availability check is directly integrated into the statistical model by providing detection probabilities for probabilistic data association. Numerical results based on simulated and real data demonstrate significant improvements in estimation accuracy compared to state-of-theart multipath-based SLAM methods.

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