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RSS-Based Localization: Ensuring Consistency and Asymptotic Efficiency

RSS-Based Localization: Ensuring Consistency and Asymptotic Efficiency

来源:Arxiv_logoArxiv
英文摘要

We study the problem of signal source localization using received signal strength measurements. We begin by presenting verifiable geometric conditions for sensor deployment that ensure the model's asymptotic localizability. Then we establish the consistency and asymptotic efficiency of the maximum likelihood (ML) estimator. However, computing the ML estimator is challenging due to its reliance on solving a non-convex optimization problem. To overcome this, we propose a two-step estimator that retains the same asymptotic properties as the ML estimator while offering low computational complexity, linear in the number of measurements. The main challenge lies in obtaining a consistent estimator in the first step. To address this, we construct two linear least-squares estimation problems by applying algebraic transformations to the nonlinear measurement model, leading to closed-form solutions. In the second step, we perform a single Gauss-Newton iteration using the consistent estimator from the first step as the initialization, achieving the same asymptotic efficiency as the ML estimator. Finally, simulation results validate the theoretical property and practical effectiveness of the proposed two-step estimator.

Shenghua Hu、Guangyang Zeng、Wenchao Xue、Haitao Fang、Junfeng Wu、Biqiang Mu

无线通信无线电、电信测量技术及仪器

Shenghua Hu,Guangyang Zeng,Wenchao Xue,Haitao Fang,Junfeng Wu,Biqiang Mu.RSS-Based Localization: Ensuring Consistency and Asymptotic Efficiency[EB/OL].(2025-05-19)[2025-06-03].https://arxiv.org/abs/2505.13070.点此复制

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