基于多任务学习的宽带水下源定位

P. Forero
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引用次数: 5

摘要

被动声呐是一种有吸引力的水下隐身声源定位技术。尽管具有吸引力,但由于水声传播的复杂性,基于被动声纳的定位具有挑战性。这项工作将宽带水下源定位作为一个多任务学习(MTL)问题,其中每个任务都涉及单个频率上的鲁棒稀疏信号逼近问题。MTL提供了一个框架,用于在各个回归问题之间交换信息,并构建一个聚合(跨频率)源定位图。针对定位问题,提出了基于分块坐标下降的高效算法。在SWellEX-3数据集上的数值测试表明了该算法的定位性能,并将其与竞争方案进行了比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Broadband underwater source localization via multitask learning
Passive sonar is an attractive technology for stealthy underwater source localization. Notwithstanding its appeal, passive-sonar-based localization is challenging due to the complexities of underwater acoustic propagation. This work casts broadband underwater source localization as a multitask learning (MTL) problem, where each task refers to a robust sparse signal approximation problem over a single frequency. MTL provides a framework for exchanging information across the individual regression problems and constructing an aggregate (across frequencies) source localization map. Efficient algorithms based on block coordinate descent are developed for solving the localization problem. Numerical tests on the SWellEX-3 dataset illustrate and compare the localization performance of the proposed algorithm to the one of competitive alternatives.
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