The Suitability of Digital Video Surveillance and Multi-beam Sonar to Monitor Saltwater Crocodiles

被引:0
|
作者
Matthew Brien
Laurence Taplin
Richard Talmage
Simon Booth
Colby Bignell
Paul Beri
Peter Freeman
Michael Joyce
机构
[1] Northern Wildlife Operations,
[2] Wildlife and Threatened Species Operations,undefined
[3] Queensland Parks and Wildlife Services and Partnerships,undefined
[4] Department of Environment and Science,undefined
[5] LT CROCS Analysis Services,undefined
[6] Taltech,undefined
[7] Hartley’s Creek Crocodile Adventures,undefined
来源
Acoustics Australia | 2021年 / 49卷
关键词
Digital video; Monitor; Multi-beam sonar; Saltwater crocodile; Surveillance;
D O I
暂无
中图分类号
学科分类号
摘要
Despite intensive management, the increasing conflict between humans and saltwater crocodiles in places such as Queensland, Australia, has led to the investigation of alternative techniques to improve public safety. The reliability of digital video surveillance systems (DV) placed above water and multi-beam sonar (sonar) placed under water to detect and monitor saltwater crocodiles was tested in a seminatural freshwater environment over a 2 h period (16:00–18:00 h). A total of 29 crocodiles were detected within the study area using DV, and 28 with sonar. One was obscured by a section of bank, and thus not visible on sonar. Of the 28 crocodiles detected by both methods, sonar recorded both entry and exit for all, while DV recorded both entry and exit for 15 crocodiles. The length of time that crocodiles were detected was longer on average for sonar (4 min 27 s) compared with DV (2 min 50 s). This reflected the time spent above (detected by sonar and DV) or below water (not detected by DV), as only sonar was able to detect crocodiles underwater. The use of sonar may provide a valuable management tool for detecting and monitoring saltwater crocodiles in areas frequented by people (e.g. beaches, boat ramps, upper freshwater areas) where there is a high chance of a negative interaction.
引用
收藏
页码:43 / 52
页数:9
相关论文
共 50 条
  • [1] The Suitability of Digital Video Surveillance and Multi-beam Sonar to Monitor Saltwater Crocodiles
    Brien, Matthew
    Taplin, Laurence
    Talmage, Richard
    Booth, Simon
    Bignell, Colby
    Beri, Paul
    Freeman, Peter
    Joyce, Michael
    [J]. ACOUSTICS AUSTRALIA, 2021, 49 (01) : 43 - 52
  • [2] A beam interpolation algorithm in digital multi-beam sonar
    LI Qihu
    ZHANG Cunhua and LI Shuqiu(Institute of Acoustics
    [J]. Chinese Journal of Acoustics, 1995, (03) : 231 - 236
  • [3] Investigation of seabed fishing impacts on benthic structure using multi-beam sonar, sidescan sonar, and video
    Malik, Mashkoor A.
    Mayer, Larry A.
    [J]. ICES JOURNAL OF MARINE SCIENCE, 2007, 64 (05) : 1053 - 1065
  • [4] EVALUATION OF BOSUN MULTI-BEAM SONAR SYSTEM
    BURKE, R
    ROBSON, J
    [J]. INTERNATIONAL HYDROGRAPHIC REVIEW, 1975, 52 (02): : 53 - 69
  • [5] Multi-Beam Sonar Infrastructure Mapping Research
    Lovelace, Barritt
    DeWall, Petronella
    Bartelt, Nicole
    Owens, Garrett
    [J]. WORLD ENVIRONMENTAL AND WATER RESOURCES CONGRESS 2018: HYDRAULICS AND WATERWAYS, WATER DISTRIBUTION SYSTEMS ANALYSIS, AND SMART WATER, 2018, : 31 - 41
  • [6] INTRODUCING AN OPERATIONAL MULTI-BEAM ARRAY SONAR
    GLENN, MF
    [J]. INTERNATIONAL HYDROGRAPHIC REVIEW, 1970, 47 (01): : 35 - &
  • [7] Estimation and simulation of multi-beam sonar noise
    Holmin, Arne Johannes
    Korneliussen, Rolf J.
    Tjostheim, Dag
    [J]. JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 2016, 139 (02): : 851 - 862
  • [8] Estimation and simulation of multi-beam sonar noise
    [J]. Holmin, Arne Johannes (Arne.Holmin@imr.no), 1600, Acoustical Society of America (139):
  • [9] Quantifying bedform migration using multi-beam sonar
    M. A. F. Knaapen
    C. N. van Bergen Henegouw
    Y. Y. Hu
    [J]. Geo-Marine Letters, 2005, 25 (5) : 306 - 314
  • [10] Quantifying bedform migration using multi-beam sonar
    Knaapen, MAF
    Henegouw, CNV
    Hu, YY
    [J]. GEO-MARINE LETTERS, 2005, 25 (05) : 306 - 314