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

Spatiotemporal distributions of two sympatric sawsharks (Pristiophorus cirratus and P. nudipinnis) in south-eastern Australian waters

V. Raoult https://orcid.org/0000-0001-9459-111X A B E , V. Peddemors C , K. Rowling C and J. E. Williamson A D
+ Author Affiliations
- Author Affiliations

A Department of Biological Sciences, Macquarie University, Sydney, NSW 2109, Australia.

B School of Environmental and Life Sciences, University of Newcastle, Ourimbah, NSW 2258, Australia.

C Fisheries NSW, Sydney Institute of Marine Science, 19 Chowder Bay Road, Mosman, NSW 2088, Australia.

D Sydney Institute of Marine Science, 19 Chowder Bay Road, Mosman, NSW 2088, Australia.

E Corresponding author. Email: vincent.raoult@newcastle.edu.au

Marine and Freshwater Research 71(10) 1342-1354 https://doi.org/10.1071/MF19277
Submitted: 15 August 2019  Accepted: 19 February 2020   Published: 18 March 2020

Abstract

Sawsharks are one of the least well-known groups of sharks globally, yet they are caught in large numbers in south-eastern Australia. In this study we assessed spatiotemporal patterns of distribution of two co-occurring species of sawsharks, namely the common sawshark (Pristiophorus cirratus) and the southern sawshark (Pristiophorus nudipinnis), to guide future research in this area. To identify where the animals may occur in greater numbers, this study used the major commercial fishery datasets in the region, containing nearly 180 000 catch records from 1990 to 2017. Several general patterns were evident. Sawsharks occurred at shallower and deeper depths than previously thought, and their geographical range was larger than documented in previous studies. Depth distributions of both species overlapped, but P. cirratus appeared more common in deeper water (at depths up to 500 m), with peak common sawshark catch rates at ~400 m. Seasonal standardised catch patterns across fishing methods suggested that migrations from deeper to shallower waters may occur in the Australasian autumn and winter. The greatest concentration of sawsharks, inferred by standardised catch rates, occurred to the east and west of Bass Strait between Tasmania and mainland Australia. Although standardised catch rates of sawsharks declined in gill-net fisheries by ~30%, primarily in the Bass Strait and Tasmania, sawsharks appear to be caught at consistent rates since the 1990s, inferring a possible resilience of these sharks to current levels of fishing pressure.

Additional keywords: biomass (ecology), catch per unit effort, CPUE, depth distribution, migrations, population dynamics, Pristiophoridae, stock assessment.


References

Andrews, K. S., and Harvey, C. J. (2013). Ecosystem-level consequences of movement: seasonal variation in the trophic impact of a top predator. Marine Ecology Progress Series 473, 247–260.
Ecosystem-level consequences of movement: seasonal variation in the trophic impact of a top predator.Crossref | GoogleScholarGoogle Scholar |

Bass, N. C., Mourier, J., Knott, N. A., Day, J., Guttridge, T., and Brown, C. (2017). Long-term migration patterns and bisexual philopatry in a benthic shark species. Marine and Freshwater Research 68, 1414–1421.
Long-term migration patterns and bisexual philopatry in a benthic shark species.Crossref | GoogleScholarGoogle Scholar |

Bates, D., Maechler, M., Bolker, B., Walker, S., Bojesen Christensen, R. H., Singmann, H., Dai, B., Scheipl, F., Grothendieck, G., Green, P., and Fox, J. (2019). Package ‘lme4’. Reference manual. Available at https://cran.r-project.org/web/packages/lme4/lme4.pdf [Verified 9 March 2020].

Baum, J. K., and Myers, R. A. (2004). Shifting baselines and the decline of pelagic sharks in the Gulf of Mexico. Ecology Letters 7, 135–145.
Shifting baselines and the decline of pelagic sharks in the Gulf of Mexico.Crossref | GoogleScholarGoogle Scholar |

Baum, J. K., and Worm, B. (2009). Cascading top-down effects of changing oceanic predator abundances. Journal of Animal Ecology 78, 699–714.
Cascading top-down effects of changing oceanic predator abundances.Crossref | GoogleScholarGoogle Scholar | 19298616PubMed |

Booth, D., and Beretta, G. (1994). Seasonal recruitment, habitat associations and survival of pomacentrid reef fish in the US Virgin Islands. Coral Reefs 13, 81–89.
Seasonal recruitment, habitat associations and survival of pomacentrid reef fish in the US Virgin Islands.Crossref | GoogleScholarGoogle Scholar |

Braccini, M., Van Rijn, J., and Frick, L. (2012). High post-capture survival for sharks, rays and chimaeras discarded in the main shark fishery of Australia? PLoS One 7, e32547.
High post-capture survival for sharks, rays and chimaeras discarded in the main shark fishery of Australia?Crossref | GoogleScholarGoogle Scholar | 22384270PubMed |

Burke, P. (2019). Movement, vertebral morphology and age dynamics of the common sawshark Pristiophorus cirratus. M.Res. Thesis, Macquarie University, Sydney, NSW, Australia.

Campbell, R. A. (2004). CPUE standardisation and the construction of indices of stock abundance in a spatially varying fishery using general linear models. Fisheries Research 70, 209–227.
CPUE standardisation and the construction of indices of stock abundance in a spatially varying fishery using general linear models.Crossref | GoogleScholarGoogle Scholar |

Carruthers, T. R., Walters, C. J., and McAllister, M. K. (2012). Evaluating methods that classify fisheries stock status using only fisheries catch data. Fisheries Research 119–120, 66–79.
Evaluating methods that classify fisheries stock status using only fisheries catch data.Crossref | GoogleScholarGoogle Scholar |

Carvalho, F., Lee, H. H., Piner, K. R., Kapur, M., and Clarke, S. C. (2018). Can the status of pelagic shark populations be determined using simple fishery indicators? Biological Conservation 228, 195–204.
Can the status of pelagic shark populations be determined using simple fishery indicators?Crossref | GoogleScholarGoogle Scholar |

Chang, S.-K., Liu, H.-I., Fukuda, H., and Maunder, M. N. (2017). Data reconstruction can improve abundance index estimation: an example using Taiwanese longline data for Pacific bluefin tuna. PLoS One 12, e0185784.
Data reconstruction can improve abundance index estimation: an example using Taiwanese longline data for Pacific bluefin tuna.Crossref | GoogleScholarGoogle Scholar | 28968434PubMed |

Clark, M. (2001). Are deepwater fisheries sustainable? The example of orange roughy (Hoplostethus atlanticus) in New Zealand. Fisheries Research 51, 123–135.
Are deepwater fisheries sustainable? The example of orange roughy (Hoplostethus atlanticus) in New Zealand.Crossref | GoogleScholarGoogle Scholar |

Clark, M. R., Althaus, F., Schlacher, T. A., Williams, A., Bowden, D. A., and Rowden, A. A. (2016). The impacts of deep-sea fisheries on benthic communities: a review. ICES Journal of Marine Science 73, i51–i69.
The impacts of deep-sea fisheries on benthic communities: a review.Crossref | GoogleScholarGoogle Scholar |

Day, J., Clark, J. A., Williamson, J. E., Brown, C., and Gillings, M. (2019). Population genetic analyses reveal female reproductive philopatry in the oviparous Port Jackson shark. Marine and Freshwater Research 70, 986–994.
Population genetic analyses reveal female reproductive philopatry in the oviparous Port Jackson shark.Crossref | GoogleScholarGoogle Scholar |

de Mitcheson, Y. S. (2016). Mainstreaming fish spawning aggregations into fishery management calls for a precautionary approach. Bioscience 66, 295–306.
Mainstreaming fish spawning aggregations into fishery management calls for a precautionary approach.Crossref | GoogleScholarGoogle Scholar |

Ducatez, S. (2019). Which sharks attract research? Analyses of the distribution of research effort in sharks reveal significant non-random knowledge biases. Reviews in Fish Biology and Fisheries 29, 355–367.
Which sharks attract research? Analyses of the distribution of research effort in sharks reveal significant non-random knowledge biases.Crossref | GoogleScholarGoogle Scholar |

Dulvy, N. K., Fowler, S. L., Musick, J. A., Cavanagh, R. D., Kyne, P. M., Harrison, L. R., Carlson, J. K., Davidson, L. N., Fordham, S. V., and Francis, M. P. (2014). Extinction risk and conservation of the world’s sharks and rays. eLife 3, e00590.
Extinction risk and conservation of the world’s sharks and rays.Crossref | GoogleScholarGoogle Scholar | 24448405PubMed |

Dunn, M. R., and Bian, R. (2018). School shark fishery characterisation and CPUE. New Zealand Fisheries Assessment Report 2018/35, Ministry for Primary Industries, Wellington, New Zealand.

Dunn, M. R., Griggs, L., Forman, J., and Horn, P. (2010). Feeding habits and niche separation among the deep-sea chimaeroid fishes Harriotta raleighana, Hydrolagus bemisi and Hydrolagus novaezealandiae. Marine Ecology Progress Series 407, 209–225.
Feeding habits and niche separation among the deep-sea chimaeroid fishes Harriotta raleighana, Hydrolagus bemisi and Hydrolagus novaezealandiae.Crossref | GoogleScholarGoogle Scholar |

Emery, T. J., Noriega, R., Williams, A. J., and Larcombe, J. (2019). Measuring congruence between electronic monitoring and logbook data in Australian Commonwealth longline and gillnet fisheries. Ocean and Coastal Management 168, 307–321.
Measuring congruence between electronic monitoring and logbook data in Australian Commonwealth longline and gillnet fisheries.Crossref | GoogleScholarGoogle Scholar |

Félix-Hackradt, F., Hackradt, C., Treviño-Otón, J., Pérez-Ruzafa, A., and García-Charton, J. (2013). Temporal patterns of settlement, recruitment and post-settlement losses in a rocky reef fish assemblage in the south-western Mediterranean Sea. Marine Biology 160, 2337–2352.
Temporal patterns of settlement, recruitment and post-settlement losses in a rocky reef fish assemblage in the south-western Mediterranean Sea.Crossref | GoogleScholarGoogle Scholar |

Fernandez-Arcaya, U., Rotllant, G., Ramirez-Llodra, E., Recasens, L., Aguzzi, J., Flexas, M. M., Sanchez-Vidal, A., Lopez-Fernandez, P., García, J. A., and Company, J. (2013). Reproductive biology and recruitment of the deep-sea fish community from the NW Mediterranean continental margin. Progress in Oceanography 118, 222–234.
Reproductive biology and recruitment of the deep-sea fish community from the NW Mediterranean continental margin.Crossref | GoogleScholarGoogle Scholar |

Forrestal, F. C., Goodyear, C. P., and Schirripa, M. (2019). Applications of the longline simulator (LLSIM) using US pelagic longline logbook data and Atlantic blue marlin. Fisheries Research 211, 331–337.
Applications of the longline simulator (LLSIM) using US pelagic longline logbook data and Atlantic blue marlin.Crossref | GoogleScholarGoogle Scholar |

García, V. B., Lucifora, L. O., and Myers, R. A. (2008). The importance of habitat and life history to extinction risk in sharks, skates, rays and chimaeras. Proceedings of the Royal Society of London – B. Biological Sciences 275, 83–89.
The importance of habitat and life history to extinction risk in sharks, skates, rays and chimaeras.Crossref | GoogleScholarGoogle Scholar |

Georgeson, L., Stobutzki, I., and Curtotti, R. (2014). Fishery status reports 2013–14. Australian Bureau of Agricultural and Resource Economics and Sciences, Canberra, ACT, Australia.

Gibbs, C., Arnott, G., Longmore, A., and Marchant, J. (1991). Nutrient and plankton distribution near a shelf break front in the region of the Bass Strait Cascade. Marine and Freshwater Research 42, 201–217.
Nutrient and plankton distribution near a shelf break front in the region of the Bass Strait Cascade.Crossref | GoogleScholarGoogle Scholar |

Graham, K. J., Andrew, N. L., and Hodgson, K. E. (2001). Changes in relative abundance of sharks and rays on Australian south east fishery trawl grounds after twenty years of fishing. Marine and Freshwater Research 52, 549–561.
Changes in relative abundance of sharks and rays on Australian south east fishery trawl grounds after twenty years of fishing.Crossref | GoogleScholarGoogle Scholar |

Haddon, M. (2012). 31. Saw shark and elephant fish Tier 4 analyses (data 1980–). In ‘Stock Assessment for the Southern and Eastern Scalefish and Shark Fishery: 2011’. (Ed. G. N. Tuck.) pp. 490–501. (Australian Fisheries Management Authority and CSIRO Marine and Atmospheric Research: Hobart, Tas., Australia.)

Harris, G., Nilsson, C., Clementson, L., and Thomas, D. (1987). The water masses of the east coast of Tasmania: seasonal and interannual variability and the influence on phytoplankton biomass and productivity. Marine and Freshwater Research 38, 569–590.
The water masses of the east coast of Tasmania: seasonal and interannual variability and the influence on phytoplankton biomass and productivity.Crossref | GoogleScholarGoogle Scholar |

Harrison, X. A., Donaldson, L., Correa-Cano, M. E., Evans, J., Fisher, D. N., Goodwin, C. E., Robinson, B. S., Hodgson, D. J., and Inger, R. (2018). A brief introduction to mixed effects modelling and multi-model inference in ecology. PeerJ 6, e4794.
A brief introduction to mixed effects modelling and multi-model inference in ecology.Crossref | GoogleScholarGoogle Scholar | 30479902PubMed |

Irigoyen, A. J., De Wysiecki, A. M., Trobbiani, G., Bovcon, N., Awruch, C. A., Argemi, F., and Jaureguizar, A. J. (2018). Habitat use, seasonality and demography of an apex predator: sevengill shark Notorynchus cepedianus in northern Patagonia. Marine Ecology Progress Series 603, 147–160.
Habitat use, seasonality and demography of an apex predator: sevengill shark Notorynchus cepedianus in northern Patagonia.Crossref | GoogleScholarGoogle Scholar |

Izzo, C., Huveneers, C., Drew, M., Bradshaw, C. J., Donnellan, S. C., and Gillanders, B. M. (2016). Vertebral chemistry demonstrates movement and population structure of bronze whaler. Marine Ecology Progress Series 556, 195–207.
Vertebral chemistry demonstrates movement and population structure of bronze whaler.Crossref | GoogleScholarGoogle Scholar |

Jones, E., Beare, D., Dobby, H., Trinkler, N., Burns, F., Peach, K., and Blasdale, T. (2005). The potential impact of commercial fishing activity on the ecology of deepwater chondrichthyans from the west of Scotland. ICES 2005/Theme Session N, ICES CM 2005/N:16, International Council for the Exploration of the Sea, Copenhagen, Denmark.

Klaer, N. L., and Smith, D. C. (2012). Determining primary and companion species in a multi-species fishery: Implications for TAC setting. Marine Policy 36, 606–612.
Determining primary and companion species in a multi-species fishery: Implications for TAC setting.Crossref | GoogleScholarGoogle Scholar |

Knowlton, N., and Jackson, J. B. (2008). Shifting baselines, local impacts, and global change on coral reefs. PLoS Biology 6, e54.
Shifting baselines, local impacts, and global change on coral reefs.Crossref | GoogleScholarGoogle Scholar | 18303956PubMed |

Kuznetsova, A., Brockhoff, P. B., and Christensen, R. H. B. (2017). lmerTest package: tests in linear mixed effects models. Journal of Statistical Software 82, 12–34.
lmerTest package: tests in linear mixed effects models.Crossref | GoogleScholarGoogle Scholar |

Last, P. R., and Stevens, J. D. (2009). ‘Sharks and Rays of Australia.’ (CSIRO Publishing: Melbourne, Vic., Australia.)

Lenth, R., and Lenth, M. R. (2018). Package ‘lsmeans’. The American Statistician 34, 216–221.

Little, R., and Rowling, K. (2011). Update of the eastern gemfish (Rexea solandri) stock assessment. Stock assessment for the southern and eastern scalefish and shark fishery: 2010. Part 1. CSIRO Marine and Atmospheric Research, Hobart, Tas., Australia.

Macbeth, W., Butcher, P., Collins, D., McGrath, S., Provost, S., Bowling, A., Geraghty, P., and Peddemors, V. (2018). Improving reliability of species identification and logbook catch reporting by commercial fishers in an Australian demersal shark longline fishery. Fisheries Management and Ecology 25, 186–202.
Improving reliability of species identification and logbook catch reporting by commercial fishers in an Australian demersal shark longline fishery.Crossref | GoogleScholarGoogle Scholar |

Mathews, C. (1975). Note on the ecology of the ratfish, Hydrolagus collei, in the Gulf of California. California Fish and Game 61, 47–53.

Maunder, M. N., and Punt, A. E. (2004). Standardizing catch and effort data: a review of recent approaches. Fisheries Research 70, 141–159.
Standardizing catch and effort data: a review of recent approaches.Crossref | GoogleScholarGoogle Scholar |

Maunder, M. N., Sibert, J. R., Fonteneau, A., Hampton, J., Kleiber, P., and Harley, S. J. (2006). Interpreting catch per unit effort data to assess the status of individual stocks and communities. ICES Journal of Marine Science 63, 1373–1385.
Interpreting catch per unit effort data to assess the status of individual stocks and communities.Crossref | GoogleScholarGoogle Scholar |

McAuley, R. (2008). Demersal gillnet and longline fisheries status report. In ‘Status Reports of the Fisheries and Aquatic Resources of Western Australia 2006/07’. pp. 241–250. (Department of Primary Industries and Regional Development: Perth, WA, Australia.)

Mengerink, K. J., Van Dover, C. L., Ardron, J., Baker, M., Escobar-Briones, E., Gjerde, K., Koslow, J. A., Ramirez-Llodra, E., Lara-Lopez, A., Squires, D., Sutton, T., Sweetman, A. K., and Levin, L. A. (2014). A call for deep-ocean stewardship. Science 344, 696–698.
A call for deep-ocean stewardship.Crossref | GoogleScholarGoogle Scholar | 24833377PubMed |

Mobsby, D., and Koduah, A. (2017)., Australian fisheries and aquaculture statistics 2016. Fisheries Research and Development Corporation project 2017-095. ABARES, Canberra, ACT, Australia.

Nevatte, R., Williamson, J., Vella, N., Raoult, V., and Wueringer, B. (2017a). Morphometry and microanatomy of the barbels of the common sawshark Pristiophorus cirratus (Pristiophoridae): implications for pristiophorid behaviour. Journal of Fish Biology 90, 1906–1925.
Morphometry and microanatomy of the barbels of the common sawshark Pristiophorus cirratus (Pristiophoridae): implications for pristiophorid behaviour.Crossref | GoogleScholarGoogle Scholar | 28303565PubMed |

Nevatte, R., Wueringer, B., Jacob, D., Park, J., and Williamson, J. (2017b). First insights into the function of the sawshark rostrum through examination of rostral tooth microwear. Journal of Fish Biology 91, 1582–1602.
First insights into the function of the sawshark rostrum through examination of rostral tooth microwear.Crossref | GoogleScholarGoogle Scholar | 29034467PubMed |

Nevatte, R. J., Wueringer, B. E., Gillings, M. R., and Williamson, J. E. (2019). Genetic and historical evidence of common sawsharks Pristiophorus cirratus in the waters of southern Queensland. Journal of Fish Biology 95, 1342–1345.
Genetic and historical evidence of common sawsharks Pristiophorus cirratus in the waters of southern Queensland.Crossref | GoogleScholarGoogle Scholar | 31418822PubMed |

Ortiz, M., and Arocha, F. (2004). Alternative error distribution models for standardization of catch rates of non-target species from a pelagic longline fishery: billfish species in the Venezuelan tuna longline fishery. Fisheries Research 70, 275–297.
Alternative error distribution models for standardization of catch rates of non-target species from a pelagic longline fishery: billfish species in the Venezuelan tuna longline fishery.Crossref | GoogleScholarGoogle Scholar |

Peddemors, V. (2015). Sawsharks (Pristiophorus spp.) In ‘Status of Fisheries Resources in NSW 2013–14’. (Eds J. Stewart, A. Hegarty, C. Young, A. Fowler, and J. Craig.) p. 9. (NSW Department of Primary Industries: Sydney, NSW, Australia.)

Pogonoski, J., Pollard, D., and Paxton, J. (2002). Conservation overview and action plan for Australian threatened and potentially threatened marine and estuarine species. Environment Australia, Canberra, ACT, Australia.

Pope, K. L., and Willis, D. W. (1996). Seasonal influences on freshwater fisheries sampling data. Reviews in Fisheries Science 4, 57–73.
Seasonal influences on freshwater fisheries sampling data.Crossref | GoogleScholarGoogle Scholar |

Punt, A. E., Pribac, F., Walker, T. I., Taylor, B. L., and Prince, J. D. (2000). Stock assessment of school shark, Galeorhinus galeus, based on a spatially explicit population dynamics model. Marine and Freshwater Research 51, 205–220.
Stock assessment of school shark, Galeorhinus galeus, based on a spatially explicit population dynamics model.Crossref | GoogleScholarGoogle Scholar |

Raoult, V., Gaston, T. F., and Williamson, J. E. (2015). Not all sawsharks are equal: species of co-existing sawsharks show plasticity in trophic consumption both within and between species. Canadian Journal of Fisheries and Aquatic Sciences 72, 1769–1775.
Not all sawsharks are equal: species of co-existing sawsharks show plasticity in trophic consumption both within and between species.Crossref | GoogleScholarGoogle Scholar |

Raoult, V., Peddemors, V. M., Zahra, D., Howell, N., Howard, D. L., De Jonge, M. D., and Williamson, J. E. (2016). Strontium mineralization of shark vertebrae. Scientific Reports 6, 29698.
Strontium mineralization of shark vertebrae.Crossref | GoogleScholarGoogle Scholar | 27424768PubMed |

Raoult, V., Peddemors, V., and Williamson, J. (2017). Biology of angel sharks (Squatina sp.) and sawsharks (Pristiophorus sp.) caught in south-eastern Australian trawl fisheries and the New South Wales shark-meshing (bather-protection) program. Marine and Freshwater Research 68, 207–212.
Biology of angel sharks (Squatina sp.) and sawsharks (Pristiophorus sp.) caught in south-eastern Australian trawl fisheries and the New South Wales shark-meshing (bather-protection) program.Crossref | GoogleScholarGoogle Scholar |

Roff, G., Brown, C. J., Priest, M. A., and Mumby, P. J. (2018). Decline of coastal apex shark populations over the past half century. Communications Biology 1, 223.
Decline of coastal apex shark populations over the past half century.Crossref | GoogleScholarGoogle Scholar | 31924869PubMed |

Sachse, M. L., and Richardson, G. R. (2005). Moving from input controls to output controls using the partnership approach in Australia’s southern shark fishery. Journal of Northwest Atlantic Fishery Science 35, 417–428.
Moving from input controls to output controls using the partnership approach in Australia’s southern shark fishery.Crossref | GoogleScholarGoogle Scholar |

Santos, C. C., and Coelho, R. (2019). Distribution patterns and indicators of the smooth hammerhead shark (Sphyrna zygaena) in the Atlantic Ocean. Fisheries Research 212, 107–113.
Distribution patterns and indicators of the smooth hammerhead shark (Sphyrna zygaena) in the Atlantic Ocean.Crossref | GoogleScholarGoogle Scholar |

Sayed, G. I., Hassanien, A. E., Gamal, A., and Ella, H. A. (2018). An automated fish species identification system based on crow search algorithm. Advances in Intelligent Systems and Computing 723, 112–123.
An automated fish species identification system based on crow search algorithm.Crossref | GoogleScholarGoogle Scholar |

Simpfendorfer, C. A., and Kyne, P. M. (2009). Limited potential to recover from overfishing raises concerns for deep-sea sharks, rays and chimaeras. Environmental Conservation 36, 97–103.
Limited potential to recover from overfishing raises concerns for deep-sea sharks, rays and chimaeras.Crossref | GoogleScholarGoogle Scholar |

Stewart, J., Hegarty, A., Young, C., Fowler, A., and Craig, J. (2015). Status of fisheries resources in NSW 2013–14. NSW Department of Primary Industries, Sydney, NSW, Australia.

Tilzey, R. D. J., and Rowling, K. R. (2001). History of Australia’s south east fishery: a scientist’s perspective. Marine and Freshwater Research 52, 361–375.
History of Australia’s south east fishery: a scientist’s perspective.Crossref | GoogleScholarGoogle Scholar |

Tuck, G. N. (2018). Stock assessment for the southern and eastern scalefish and shark fishery 2016 and 2017. Part 2, 2017. Australian Fisheries Management Authority and CSIRO Oceans and Atmosphere, Hobart, Tas., Australia.

Walker, T. I., and Gason, A. S. (2007). Shark & other chondrichthyan byproduct and bycatch estimation in the southern and eastern scalefish and shark fishery. Final report to Fisheries Research and Development Corporation Project number 2001/007, July 2007, Primary Industries Research Victoria, Queenscliff, Vic., Australia.

Walker, T. I., and Hudson, R. J. (2005). Sawshark and elephant fish assessment and bycatch evaluation in the Southern Shark Fishery. Final report to Fisheries Research and Development Corporation, project number 1999/103, July 2005, Primary Industries Research Victoria, Queenscliff, Vic., Australia.

Walker, T. I., Hudson, R. J., and Gason, A. S. (2005). Catch evaluation of target, by-product and by-catch species taken by gillnets and longlines in the shark fishery of south-eastern Australia. Journal of Northwest Atlantic Fishery Science 35, 505–530.
Catch evaluation of target, by-product and by-catch species taken by gillnets and longlines in the shark fishery of south-eastern Australia.Crossref | GoogleScholarGoogle Scholar |

Wilson, D., Curtotti, R., and Begg, G. (2010). Fishery status reports 2009: status of fish stocks and fisheries managed by the Australian Government. Bureau of Rural Sciences & Australian Bureau of Agricultural and Resource Economics, Canberra, ACT, Australia.

Wueringer, B., Squire, L., and Collin, S. (2009). The biology of extinct and extant sawfish (Batoidea: Sclerorhynchidae and Pristidae). Reviews in Fish Biology and Fisheries 19, 445–464.
The biology of extinct and extant sawfish (Batoidea: Sclerorhynchidae and Pristidae).Crossref | GoogleScholarGoogle Scholar |

Yearsley, G., Last, P., and White, W. (2008). A new species of sawshark, Pristiophorus delicatus sp. nov. (Pristiophoriformes: Pristiophoridae), from northeastern Australia. In ‘Descriptions of New Australian Chondrichthyans’. (Eds P. R. Last, W. T. White, and J. J. Pogonoski.) CSIRO Marine and Atmospheric Research Paper 22, pp. 23–33. (CSIRO: Hobart, Tas., Australia.)

Young, H., Raoult, V., Platell, M., Williamson, J., and Gaston, T. (2019). Within-genus differences in catchability of elasmobranchs during trawling. Fisheries Research 211, 141–147.
Within-genus differences in catchability of elasmobranchs during trawling.Crossref | GoogleScholarGoogle Scholar |

Zhang, D., Lee, D.-J., Zhang, M., Tippetts, B. J., and Lillywhite, K. D. (2016). Object recognition algorithm for the automatic identification and removal of invasive fish. Biosystems Engineering 145, 65–75.
Object recognition algorithm for the automatic identification and removal of invasive fish.Crossref | GoogleScholarGoogle Scholar |