空间指纹测量特征双精简下的室内定位算法
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TN92 TH89

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国家自然科学基金(61702228)、江苏省自然基金(BK20170198)、中国高校产学研创新基金(2021ITA10003)项目资助


Indoor localization algorithm with dual refinement of spatial fingerprint measurement features
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    摘要:

    针对空间结构阻隔、信号弱穿透力等因素导致的参考点和接入点定位匹配冗余问题,提出一种“水平精简参考点,垂直 精简接入点”的空间双精简定位算法。 首先以最强接收信号的高阶统计信息替代传统均值表征各参考点,并结合小区域融合 和边界参考点共享的处理方式,实现目标空间模糊聚类,以此弱化边缘绝对判别的不良影响;其次基于该降维子空间,综合衡量 各接入点的空间区分度和覆盖可靠性,为各子空间筛选出高识别价值、高稳定性的精简接入点集合;最后通过判断最强接收信 号信源执行一级区域判别,并利用 WKNN 算法实现二级位置估计。 经实际路演测试,所提水平精简策略聚类规整也更符合场 景结构约束,垂直精简策略较传统接入点选配算法平均定位精度至少提升 17% ,并在参考点 1 m×1 m 的分布密度条件下,滤除 了约 4. 5 m 以上的大定位误差。

    Abstract:

    Considering the redundancy of localization matching between reference point and access point due to the spatial structure obstruction and weak signal penetration, a spatial dual-refinement localization algorithm named “horizontal refinement of reference points and vertical refinement of access points” is proposed. Firstly, the traditional mean value is replaced with the high-order statistical information of the strongest received signal to characterize each reference point, and the processing methods of small-area fusion and boundary reference point sharing are combined to achieve the fuzzy clustering in the target space, so as to weaken the adverse effect of absolute discrimination at the edges; secondly, based on the dimensionality-reduced subspace, the spatial differentiation and coverage reliability of each access point are measured comprehensively to screen out the subspace with high recognition value and high stability. Finally, the first-level area discrimination is performed by judging the strongest received signal source, and the second-level location estimation is achieved with the WKNN algorithm. The proposed horizontal streamlining strategy possesses the regular clustering and complies with the structural constraints of the scene more precisely according to the realistic roadshow test. It′s found that the vertical streamlining strategy improves the average positioning accuracy by at least 17% compared to the traditional access point selection algorithm, and filters out the large positioning error of more than 4. 5 m under the condition of distribution density of 1 m×1 m reference points.

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郑安琪,秦宁宁.空间指纹测量特征双精简下的室内定位算法[J].仪器仪表学报,2023,44(10):80-89

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  • 在线发布日期: 2024-01-25
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