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Underdetermined passive localisation of emitters based on multi-dimensional spectrum estimation techniques

机译:基于多维频谱估计技术的欠定辐射源无源定位

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摘要

One-step passive localisation methods are verified to outperform the conventional two-step methods in terms of estimation accuracy and identifiability. However, the existing one-step algorithms still cannot work in the scenario where the number of emitters exceeds the total number of sensors from all the base stations. Based on a spatio-temporal processing procedure, the authors propose a novel localisation model, which has the form of multi-dimensional harmonic retrieval. By utilising multi-dimensional spectrum estimation techniques, the underdetermined localisation problem can be handled thanks to the increase of model's degree of freedom. To further improve the identifiability, a nested-array-based localisation model is also given based on the multi-dimensional processing framework. Simulation results demonstrate that the novel-model-based Capon algorithm can achieve higher localisation accuracy without the prior knowledge about the number of emitters, and is robust to the correlated noise.
机译:经过验证,单步被动定位方法在估计精度和可识别性方面优于传统的两步方法。但是,现有的单步算法仍然无法在发射器数量超过所有基站传感器总数的情况下工作。基于时空处理过程,作者提出了一种新颖的定位模型,具有多维谐波检索的形式。通过使用多维频谱估计技术,由于模型的自由度增加,可以解决欠定的定位问题。为了进一步提高可识别性,还基于多维处理框架给出了基于嵌套数组的定位模型。仿真结果表明,基于新型模型的Capon算法无需事先知道发射器的数量即可实现更高的定位精度,并且对相关噪声具有鲁棒性。

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