4.5 Article

Automated tracking of dolphin whistles using Gaussian mixture probability hypothesis density filters

Journal

JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA
Volume 140, Issue 3, Pages 1981-1991

Publisher

ACOUSTICAL SOC AMER AMER INST PHYSICS
DOI: 10.1121/1.4962980

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Funding

  1. Slovene human resources development and scholarship fund (Ad futura)

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This work considers automated multi target tracking of odontocete whistle contours. An adaptation of the Gaussian mixture probability hypothesis density (GM-PHD) filter is described and applied to the acoustic recordings from six odontocete species. From the raw data, spectral peaks are first identified and then the GM-PHD filter is used to simultaneously track the whistles' frequency contours. Overall over 9000 whistles are tracked with a precision of 85% and recall of 71.8%. The proposed filter is shown to track whistles precisely (with mean deviation of 104 Hz, about one frequency bin, from the annotated whistle path) and 80% coverage. The filter is computationally efficient, suitable for real-time implementation, and is widely applicable to different odontocete species. (C) 2016 Acoustical Society of America.

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