首页> 外文会议>Conference on Unattended/Unmanned Ground, Ocean, and Air Sensor Technologies and Applications VI; 20040412-20040415; Orlando,FL; US >Wideband DOA Estimation Algorithms for Multiple Target Detection and Tracking Using Unattended Acoustic Sensors
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Wideband DOA Estimation Algorithms for Multiple Target Detection and Tracking Using Unattended Acoustic Sensors

机译:使用无人值守的声传感器进行多目标检测和跟踪的宽带DOA估计算法

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摘要

The problem of detection, tracking and localization of multiple wideband sources (ground vehicles) using unattended passive acoustic sensors is considered in this paper. Existing methods typically fail to detect, resolve and track multiple closely spaced sources in tight formations, especially in the presence of clutter and wind noise. In this paper, several existing wideband direction of arrival (DOA) estimation algorithms are extended and applied to this problem. A modified version of the Steered Covariance Matrix (STCM) algorithm is presented that uses a two-step search process. To overcome the problems of existing DOA estimation methods, new wideband versions of the narrowband Capon beamforming method are proposed that use various algorithms for combining power spectra from different frequency bins. These methods are then implemented and benchmarked on a real acoustic signature data set that contains multiple ground targets moving in tight formations.
机译:本文考虑了使用无人值守的无源声学传感器对多个宽带源(地面车辆)进行检测,跟踪和定位的问题。现有方法通常无法检测,分辨和跟踪紧密地层中的多个紧密间隔的源,尤其是在存在杂波和风噪声的情况下。在本文中,扩展了几种现有的宽带到达方向(DOA)估计算法并将其应用于此问题。提出了修正协方差矩阵(STCM)算法的版本,该算法使用了两步搜索过程。为了克服现有DOA估计方法的问题,提出了窄带Capon波束成形方法的新宽带版本,该方法使用各种算法来组合来自不同频率仓的功率谱。然后,在包含多个以紧密地层运动的地面目标的真实声学特征数据集上实施和基准这些方法。

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