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DETECTION AND CLASSIFICATION OF NORTH ATLANTIC RIGHT WHALES IN THE BAY OF FUNDY USING INDEPENDENT COMPONENT ANALYSIS

机译:基于独立分量分析的芬迪湾北大西洋右鲸的检测与分类

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摘要

A novel method of detection and classification for marine mammals is presented which uses techniques from independent component analysis to solve the blind source separation problem for North Atlantic right whales (Eubalaena glacialis). Using the fundamentally non-Gaussian nature of marine mammal vocalizations and data collected on multiple hydrophones, we are able to separate right whale source spectra, up to an unknown scale, from ambient noise. This technique assumes that the array data is a linear combination of non-Gaussian source signals but does not require specific knowledge of the array geometry. A detection algorithm which separates right whale vocalizations from ambient background using a Kolmogorov-Smimov test statistic, is presented and tested on data collected in the Bay of Fundy. The performance of the detector was found to be such that it was possible to achieve a probability of detection of about three-fourths with a false alarm probability of about one-third. Independent component analysis was found to provide little improvement over standard principle component analysis, which was used as preprocessing step.
机译:提出了一种新的海洋哺乳动物检测和分类方法,该方法使用了独立成分分析技术来解决北大西洋露脊鲸(Eubalaena glacialis)的盲源分离问题。利用海洋哺乳动物发声的基本非高斯性质以及在多个水听器上收集的数据,我们能够将右鲸鱼源光谱(至未知规模)与环境噪声分开。该技术假定阵列数据是非高斯源信号的线性组合,但不需要特定的阵列几何知识。提出了一种检测算法,该算法使用Kolmogorov-Smimov测试统计数据将右鲸发声与周围背景分离开来,并根据芬迪湾收集的数据进行测试。发现检测器的性能使得可以以大约三分之一的错误警报概率实现大约四分之三的检测概率。发现独立成分分析与标准主成分分析(用作预处理步骤)相比没有什么改进。

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