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    Identification of suspicious behaviour through anomalies in the tracking data of fishing vessels

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    Name:
    2211.04438.pdf
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    3.484Mb
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    Description:
    Preprint
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    Type
    Preprint
    Authors
    Rodríguez, Jorge P.
    Irigoien, Xabier
    Duarte, Carlos M. cc
    Eguíluz, Víctor M.
    KAUST Department
    Red Sea Research Center (RSRC), and Computational Biosciences Research Center (CBRC), King Abdullah University of Science and Technology (KAUST), Thuwal, Kingdom of Saudi Arabia
    Marine Science Program
    Red Sea Research Center (RSRC)
    Biological and Environmental Science and Engineering (BESE) Division
    Computational Bioscience Research Center (CBRC)
    Date
    2022-10-10
    Permanent link to this record
    http://hdl.handle.net/10754/685765
    
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    Abstract
    Automated positioning devices can generate large datasets with information on the movement of humans, animals and objects, revealing patterns of movement, hot spots and overlaps among others. This information is obtained after cleaning the data from errors of different natures. However, in the case of Automated Information Systems (AIS), attached to vessels, these errors can come from intentional manipulation of the electronic device. Thus, the analysis of anomalies can provide valuable information on suspicious behaviour. Here, we analyse anomalies of fishing vessel trajectories obtained with the Automatic Identification System. The map of silence anomalies, those occurring when positioning data is absent for more than 24 h, shows that they occur more likely closer to land, observing 94.9% of the anomalies at less than 100 km from the shore. This behaviour suggests the potential of identifying silence anomalies as a proxy for illegal activities. With the increasing availability of high-resolution positioning of vessels and the development of powerful statistical analytical tools, we provide hints on the automatic detection of illegal activities that may help optimise monitoring, control and surveillance measures.
    Sponsors
    J.P.R. is supported by Juan de la Cierva Formación program (Ref. FJC2019-040622-I) funded by MCIN/AEI/ 10.13039/501100011033.
    Publisher
    arXiv
    arXiv
    2211.04438
    Additional Links
    https://arxiv.org/pdf/2211.04438.pdf
    Collections
    Biological and Environmental Science and Engineering (BESE) Division; Red Sea Research Center (RSRC); Preprints; Marine Science Program; Computational Bioscience Research Center (CBRC)

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