Acoustic telemetry detection probability and location accuracy in a freshwater wetland embayment

被引:7
作者
Stott, Nathan D. [1 ]
Faust, Matthew D. [2 ]
Vandergoot, Christopher S. [3 ]
Miner, Jeffrey G. [1 ]
机构
[1] Bowling Green State Univ, Aquat Ecol & Fisheries Lab, 217 Life Sci, Bowling Green, OH 43403 USA
[2] Ohio Dept Nat Resources, Div Wildlife, Sandusky Fisheries Res Stn, 305 E Shoreline Dr, Sandusky, OH 44870 USA
[3] Michigan State Univ, Ctr Syst Integrat & Sustainabil, Dept Fisheries & Wildlife, 115 Manly Miles Bldg,1405 S Harrison Rd, E Lansing, MI 48823 USA
关键词
NORTHERN PIKE; ACTIVITY PATTERNS; LAKE; MOVEMENTS; TRACKING; FISHERIES; SCALE; FISH;
D O I
10.1186/s40317-021-00243-1
中图分类号
X176 [生物多样性保护];
学科分类号
090705 ;
摘要
Background In recent years, large-scale acoustic telemetry observation networks have become established globally to gain a better understanding of the ecology, movements and population dynamics of fish stocks. When studying a species that uses different habitats throughout its life history difficulty may arise where acoustically suboptimal habitats are used, such as shallow, vegetated areas. To test the feasibility of active tracking in these acoustically suboptimal habitats, we quantified detection probability and location error as a function of several environmental variables with two transmitter types in a shallow freshwater embayment. Results When placed in nearshore areas (< 1 m deep), the higher-powered transmitter (158 dB) had significantly greater detection probability than the lower-powered transmitter (152 dB). For both transmitter types, detection probability declined at 200 m; however, at the 100 m distance the higher-powered transmitter had greater than 50% detection probability per ping cycle (50.4%) while the lower-powered transmitter was substantially less (29.4%). Additionally, detection probability increased when the transmitter was deployed within sparse, senescent Phragmites spp. vegetation (14%). Estimated positional accuracy of transmitters deployed at known locations (location error) was variable (error range: 13-259 m), and was generally higher for the more powerful transmitter. Location error was minimized when the lower-powered transmitter was located near softened shoreline areas compared to near man-made armored shorelines (i.e., rip-rap). Conclusion While benefits exist for maximizing transmitter power (e.g., increased detection range in open-water environments), use of a lower-powered transmitter may be advantageous for active tracking specific locations of fish inhabiting shallow water environments, such as in estuarine tidal marshes and shallow wetlands. Thus, when planning acoustic telemetry studies, researchers should conduct site-specific preliminary detection probability/location error experiments to better understand the utility of acoustic telemetry to investigate fish movements in acoustically suboptimal conditions.
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页数:10
相关论文
共 48 条
[1]  
[Anonymous], 2012, Northern pike: Ecology, conservation, and management history
[2]  
Atkinson Beth, 2023, CRAN
[3]   Detection Range of Acoustic Receivers in a Large Hydropower Reservoir [J].
Babin, Amanda ;
Fitzpatrick, Lauren ;
Linnansaari, Tommi ;
Curry, R. Allen .
FISHES, 2019, 4 (04)
[4]   Performance Assessment of Two Whole-Lake Acoustic Positional Telemetry Systems - Is Reality Mining of Free-Ranging Aquatic Animals Technologically Possible? [J].
Baktoft, Henrik ;
Zajicek, Petr ;
Klefoth, Thomas ;
Svendsen, Jon C. ;
Jacobsen, Lene ;
Pedersen, Martin Waever ;
Morla, David March ;
Skov, Christian ;
Nakayama, Shinnosuke ;
Arlinghaus, Robert .
PLOS ONE, 2015, 10 (05)
[5]   Fitting Linear Mixed-Effects Models Using lme4 [J].
Bates, Douglas ;
Maechler, Martin ;
Bolker, Benjamin M. ;
Walker, Steven C. .
JOURNAL OF STATISTICAL SOFTWARE, 2015, 67 (01) :1-48
[6]  
Binder TR., 2016, Anim Biotelem, V4, P4, DOI [DOI 10.1186/S40317-016-0097-4, 10.1186/s40317-016-0097-4]
[7]   A practical method to account for variation in detection range in acoustic telemetry arrays to accurately quantify the spatial ecology of aquatic animals [J].
Brownscombe, Jacob W. ;
Griffin, Lucas P. ;
Chapman, Jacqueline M. ;
Morley, Danielle ;
Acosta, Alejandro ;
Crossin, Glenn T. ;
Iverson, Sara J. ;
Adams, Aaron J. ;
Cooke, Steven J. ;
Danylchuk, Andy J. .
METHODS IN ECOLOGY AND EVOLUTION, 2020, 11 (01) :82-94
[8]  
Burnham K.P, 2002, MODEL SELECTION MULT, VSecond
[9]   Arctic Grayling Movements through a Nature-Like Fishpass in Northern Canada [J].
Cahill, Christopher L. ;
Howland, Kimberly L. ;
Hulsman, Mark F. ;
Noddin, Fred ;
Tonn, William M. ;
Courtice, Gregory ;
Zhu, David Z. .
TRANSACTIONS OF THE AMERICAN FISHERIES SOCIETY, 2016, 145 (05) :951-963
[10]   Habitat requirements of northern pike (Esox lucius) [J].
Casselman, JM ;
Lewis, CA .
CANADIAN JOURNAL OF FISHERIES AND AQUATIC SCIENCES, 1996, 53 :161-174