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Marine and Freshwater Research Marine and Freshwater Research Society
Advances in the aquatic sciences
RESEARCH ARTICLE

Underwater video surveys provide a more complete picture of littoral fish populations than seine samples in clear Florida springs

Kirsten Work A B and Coramarie Jifu Jennings A
+ Author Affiliations
- Author Affiliations

A Biology Department, Stetson University, 421 N. Woodland Boulevard, Unit 8264, DeLand, FL 32723, USA.

B Corresponding author. Email: kwork@stetson.edu

Marine and Freshwater Research 70(8) 1178-1184 https://doi.org/10.1071/MF18288
Submitted: 9 August 2018  Accepted: 17 January 2019   Published: 9 April 2019

Abstract

Traditional fish-sampling methods may be problematic because of public use or safety concerns. In this study, we compared one common sampling method with video assessment of fish abundance and diversity in three springs that differed in water clarity and structure. At each of four or five sites per spring, we placed one GoPro camera on each bank for 12 min and followed the filming with seine sampling. On the video, we counted the maximum number of individuals of each species observed within one frame (MaxN) and summed these counts to produce an estimate of fish abundance (SumMaxN). Then we compared abundance (SumMaxN), species richness and diversity between seine and video samples across all three springs. Video produced higher estimates of abundance (SumMaxN), species richness, and diversity than did seine sampling. However, this effect was largely confined to species richness and diversity differences between sample methods in the structurally complex spring; differences were subtle or non-existent in the low-structure spring and in the turbid spring. In all three springs, video captured relatively more centrarchids; these taxa were captured only rarely in seine samples. Therefore, video sampling performed as well or better than did seine sampling for fish-assemblage assessment in these clear springs.

Additional keywords: diversity, macrophyte structure, species richness, water clarity.


References

Bonar, S. A., Hubert, W. A., and Willis, D. W. (Eds) (2009). ‘Standard Methods for Sampling North America Freshwater Fishes.’ (American Fisheries Society: Bethesda, MD, USA.)

Butler, G. L., and Rowland, S. J. (2009). Using underwater cameras to describe the reproductive behaviour of the endangered eastern freshwater cod Maccullochella ikei. Ecology Freshwater Fish 18, 337–349.
Using underwater cameras to describe the reproductive behaviour of the endangered eastern freshwater cod Maccullochella ikei.Crossref | GoogleScholarGoogle Scholar |

Ebner, B. C., and Morgan, D. L. (2013). Using remote underwater video to estimate freshwater fish species richness. Journal of Fish Biology 82, 1592–1612.
Using remote underwater video to estimate freshwater fish species richness.Crossref | GoogleScholarGoogle Scholar | 23639156PubMed |

Ebner, B., Clear, R., Godschalx, S., and Beitzel, M. (2009). In-stream behaviour of threatened fishes and their food organisms based on remote video monitoring. Aquatic Ecology 43, 569–576.
In-stream behaviour of threatened fishes and their food organisms based on remote video monitoring.Crossref | GoogleScholarGoogle Scholar |

Ebner, B. C., Starrs, D., Morgan, D. L., Fulton, C. J., Donaldson, J. A., Doody, J. S., Cousins, S., Kennard, M., Butler, G., Tonkin, Z., Beatty, S., Boadhurst, B., Clear, R., Lintermans, M., and Fletcher, C. S. (2014). Emergence of field-based underwater video for understanding the ecology of freshwater fishes and crustaceans in Australia. Journal of the Royal Society of Western Australia 97, 287–296.

Ebner, B. C., Fulton, C. J., Cousins, S., Donaldson, J. A., Kennard, M. J., Meynecke, J.-O., and Schaffer, J. (2015). Filming and snorkelling as visual techniques to survey fauna in difficult to access tropical rainforest streams. Marine and Freshwater Research 66, 120–126.
Filming and snorkelling as visual techniques to survey fauna in difficult to access tropical rainforest streams.Crossref | GoogleScholarGoogle Scholar |

Ellender, B. C., Becker, A., Weyl, O. L. F., and Swartz, E. R. (2012). Underwater video analysis as a non-destructive alternative to electrofishing for sampling imperiled headwater stream fishes. Aquatic Conservation 22, 58–65.
Underwater video analysis as a non-destructive alternative to electrofishing for sampling imperiled headwater stream fishes.Crossref | GoogleScholarGoogle Scholar |

Frezza, T. L., Carl, L. M., and Reid, S. M. (2003). Evaluation of a portable underwater video camera to study fish communities in two Lake Ontario tributaries. Journal of Freshwater Ecology 18, 269–276.
Evaluation of a portable underwater video camera to study fish communities in two Lake Ontario tributaries.Crossref | GoogleScholarGoogle Scholar |

Fulton, C. J., Starrs, D., Ruibal, M. P., and Ebner, B. C. (2012). Counting crayfish: active searching and baited cameras trump conventional hoop netting in detecting Euastacus armatus. Endangered Species Research 19, 39–45.
Counting crayfish: active searching and baited cameras trump conventional hoop netting in detecting Euastacus armatus.Crossref | GoogleScholarGoogle Scholar |

Harvey, E. S., Cappo, M., Butler, J. J., Hall, N., and Kendrick, G. A. (2007). Bait attraction affects the performance of remote underwater video stations in assessment of demersal fish community structure. Marine Ecology Progress Series 350, 245–254.
Bait attraction affects the performance of remote underwater video stations in assessment of demersal fish community structure.Crossref | GoogleScholarGoogle Scholar |

Harvey, E. S., Newman, S. J., McLean, D. L., Cappo, M., Meeuwig, J. J., and Skepper, C. L. (2012). Comparison of the relative efficacies of stereo-BRUVs and traps for sampling tropical continental shelf demersal fishes. Fisheries Research 125–126, 108–120.
Comparison of the relative efficacies of stereo-BRUVs and traps for sampling tropical continental shelf demersal fishes.Crossref | GoogleScholarGoogle Scholar |

Holmes, T. H., Wilson, S. K., Travers, M. J., Langlois, T. J., Evans, R. D., Moore, G. I., Douglas, R. A., Shedrawi, G., Harvey, E. S., and Hickey, K. (2013). A comparison of visual- and stereo-video based fish community assessment methods in tropical and temperate marine waters of Western Australia. Limnology and Oceanography, Methods 11, 337–350.
A comparison of visual- and stereo-video based fish community assessment methods in tropical and temperate marine waters of Western Australia.Crossref | GoogleScholarGoogle Scholar |

Kennard, M. J., Pusey, B. J., Harch, B. D., Dore, E., and Arthington, A. H. (2006). Estimating local stream fish assemblage attributes: sampling effort and efficiency at two spatial scales. Marine and Freshwater Research 57, 635–653.
Estimating local stream fish assemblage attributes: sampling effort and efficiency at two spatial scales.Crossref | GoogleScholarGoogle Scholar |

King, A. J., George, A., Buckle, D. J., Novak, P. A., and Fulton, C. J. (2018). Efficacy of remote underwater video cameras for monitoring tropical wetland fishes. Hydrobiologia 807, 145–164.
Efficacy of remote underwater video cameras for monitoring tropical wetland fishes.Crossref | GoogleScholarGoogle Scholar |

Lowry, M., Folpp, H., Gregson, M., and Suthers, I. (2012). Comparison of baited remote underwater video (BRUV) and underwater visual census (UVC) for assessment of artificial reefs in estuaries. Journal of Experimental Marine Biology and Ecology 416–417, 243–253.
Comparison of baited remote underwater video (BRUV) and underwater visual census (UVC) for assessment of artificial reefs in estuaries.Crossref | GoogleScholarGoogle Scholar |

Marsh-Matthews, E., and Matthews, W. J. (2000). Geographic, terrestrial and aquatic factors: which most influence the structure of stream fish assemblages in the Midwestern United States? Ecology Freshwater Fish 9, 9–21.
Geographic, terrestrial and aquatic factors: which most influence the structure of stream fish assemblages in the Midwestern United States?Crossref | GoogleScholarGoogle Scholar |

McIntyre, F. D., Neat, F., Collie, N., Stewart, M., and Fernandes, P. G. (2015). Visual surveys can reveal rather different ‘pictures’ of fish densities: comparison of trawl and video camera surveys in the Rockall Bank, NE Atlantic Ocean. Deep-sea Research – I. Oceanographic Research Papers 95, 67–74.
Visual surveys can reveal rather different ‘pictures’ of fish densities: comparison of trawl and video camera surveys in the Rockall Bank, NE Atlantic Ocean.Crossref | GoogleScholarGoogle Scholar |

Oberdorff, T., Hugueny, B., and Vigneron, T. (2001). Is assemblage variability related to environmental variability? An answer for riverine fish. Oikos 93, 419–428.
Is assemblage variability related to environmental variability? An answer for riverine fish.Crossref | GoogleScholarGoogle Scholar |

Portt, C. B., Coker, G. A., Ming, D. L., and Randall, R. G. (2006). A review of fish sampling methods commonly used in Canadian freshwater habitats. Canadian Technical Report of Fisheries and Aquatic Sciences 2604. Fisheries and Oceans Canada, Burlington, ON, Canada.

Power, M. (1983). Grazing responses of tropical freshwater fishes to different scales of variation in their food. Environmental Biology of Fishes 9, 103–115.
Grazing responses of tropical freshwater fishes to different scales of variation in their food.Crossref | GoogleScholarGoogle Scholar |

Stobart, B., Díaz, D., Álvarez, F., Alonso, C., Mallol, S., and Goñi, R. (2015). Performance of baited underwater video: does it underestimate abundance at high population densities? PLoS One 10, e0127559.
Performance of baited underwater video: does it underestimate abundance at high population densities?Crossref | GoogleScholarGoogle Scholar | 26010738PubMed |

Watson, D. L., Harvey, E. S., Anderson, M. J., and Kendrick, G. A. (2005). A comparison of temperate reef fish assemblages recorded by three underwater stereo-video techniques. Marine Biology 148, 415–425.
A comparison of temperate reef fish assemblages recorded by three underwater stereo-video techniques.Crossref | GoogleScholarGoogle Scholar |