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Semi-Automated Data Processing and Semi-Supervised Machine Learning for the Detection and Classification of Water-Column Fish Schools and Gas Seeps with a Multibeam Echosounder

Articolo
Data di Pubblicazione:
2021
Abstract:
Multibeam echosounders are widely used for 3D bathymetric mapping, and increasingly for water column studies. However, they rapidly collect huge volumes of data, which poses a challenge for water column data processing that is often still manual and time-consuming, or affected by low efficiency and high false detection rates if automated. This research describes a comprehensive and reproducible workflow that improves efficiency and reliability of target detection and classification, by calculating metrics for target cross-sections using a commercial software before feeding into a feature-based semi-supervised machine learning framework. The method is tested with data collected from an uncalibrated multibeam echosounder around an offshore gas platform in the Adriatic Sea. It resulted in more-efficient target detection, and, although uncertainties regarding user labelled training data need to be underlined, an accuracy of 98% in target classification was reached by using a final pre-trained stacking ensemble model.
Tipologia CRIS:
01.01 Articolo in rivista
Keywords:
multibeam echosounder; water column imaging; machine learning; fish schools; gas plumes; target detection and classification
Elenco autori:
Minelli, Annalisa; Fabi, Gianna; Tassetti, ANNA NORA
Autori di Ateneo:
FABI GIANNA
TASSETTI ANNA NORA
Link alla scheda completa:
https://iris.cnr.it/handle/20.500.14243/443139
Pubblicato in:
SENSORS (BASEL)
Journal
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URL

https://www.mdpi.com/1424-8220/21/9/2999
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