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RESEARCH ARTICLE (Open Access)

Population dynamics of chital deer (Axis axis) in northern Queensland: effects of drought and culling

Anthony Pople https://orcid.org/0000-0002-5172-3407 A * , Matt Amos A and Michael Brennan A
+ Author Affiliations
- Author Affiliations

A Queensland Department of Agriculture and Fisheries, 41 Boggo Road, Dutton Park, Qld 4102, Australia.

* Correspondence to: tony.pople@daf.qld.gov.au

Handling Editor: David Forsyth

Wildlife Research 50(9) 728-745 https://doi.org/10.1071/WR22130
Submitted: 15 July 2022  Accepted: 25 May 2023   Published: 15 June 2023

© 2023 The Author(s) (or their employer(s)). Published by CSIRO Publishing. This is an open access article distributed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License (CC BY-NC-ND)

Abstract

Context: Chital deer (Axis axis) are long established in the northern Queensland dry tropics, and at high densities are considered pests by cattle graziers. Cost-effective management is difficult for widespread, fluctuating populations of vertebrate pests such as these deer. Historically, control of chital deer has been limited to recreational and some commercial ground-shooting and trapping. Concerns over chital deer impacts were heightened during drought in 2015 and funding became available for aerial culling.

Aim: This study set out to determine (1) distribution and abundance, (2) seasonal reproductive output, (3) potential and actual rates of increase and their determinants, and (4) efficient management strategies for chital deer in the northern Queensland dry tropics.

Methods: In 2014, ~13 000 km2 of the main distribution was surveyed by helicopter. Multiple vehicle ground surveys per year monitored chital deer density on two properties during 2013–2022. Seasonal shot samples of deer on both properties assessed reproductive output during 2014–2016. Aerial surveys during 2016–2020 determined chital deer densities on seven properties, prior to aerial culling on four properties. Finally, the maximum rate of increase of chital deer was calculated from life-history data.

Key results: Regionally, chital deer are patchily distributed and so are best monitored locally where densities can be >50 deer km−2. Vehicle ground surveys recorded an ~80% decline in chital deer populations on two properties over 7–10 months during drought in early 2015, with a similar rate being recorded by aerial survey at a third site. There was little recruitment during the drought, but the decline was seemingly driven by adult mortality. Aerial shooting further reduced populations by 39–88% to <3 deer km−2 on four properties. Where there was no continuing control, culled populations recovered to pre-cull densities or higher after 2.4 years. One unculled property recovered to its pre-drought density after 6 years. Rates of recovery were at or higher than the maximum annual rate of increase for chital deer estimated here as 26–41%.

Conclusions: Drought has a lasting effect on this chital deer population, because of the resulting large population decline and the modest rate of any recovery in the absence of culling. Culling can reduce populations to low density, but the removal rate needs to be sustained to suppress future growth.

Implications: Drought provides a strategic opportunity to further reduce chital deer populations for enduring control. Large reductions are feasible given the clumped dispersion of populations within properties and in the region.

Keywords: aerial shooting, aerial survey, axis deer, numerical response, pest management, population dispersion, rainfall, rate of increase, reproduction, strategic control, ungulate.


References

Anderson DR, Burnham KP (1976) Population ecology of the mallard: VI. The effect of exploitation on survival. Resource Publication 128. US Fish and Wildlife Service.

Baillie D (2014) Ground truthing helicopter surveys: the relationship between habitat density and accuracy for a range of large vertebrate species. Masters thesis, The University of Queensland, Gatton, Qld, Australia.

Bartmann, RM, White, GC, and Carpenter, LH (1992). Compensatory mortality in a Colorado mule deer population. Wildlife Monographs 121, 1–39.

Bayliss P (1987) Kangaroo dynamics. In ‘Kangaroos: their ecology and management in the sheep rangelands of Australia’. (Eds G Caughley, N Shepherd, J Short) pp. 119–134. (Cambridge University Press: Cambridge)

Bengsen, AJ, Forsyth, DM, Pople, A, Brennan, M, Amos, M, Leeson, M, Cox, TE, Gray, B, Orgill, O, Hampton, JO, Crittle, T, and Haebich, K (2022). Effectiveness and costs of helicopter-based shooting of deer. Wildlife Research , .
Effectiveness and costs of helicopter-based shooting of deer.Crossref | GoogleScholarGoogle Scholar |

Bentley A (1995) Chital deer. In ‘The mammals of Australia’. (Ed. R Strahan) pp. 739–740. (Australian Museum/Reed New Holland: Sydney, NSW, Australia)

Buchholz MJ (2022) Ecology of free-ranging axis deer (Axis axis) in the Edwards plateau ecoregion of central Texas: population density, genetics, and impacts of an invasive deer species. PhD thesis, Texas Tech University, Lubbock, TX, USA. Available at https://hdl.handle.net/2346/89209

Buckland ST, Anderson DR, Burnham KP, Laake JL (1993) ‘Distance sampling: estimating abundance of biological populations.’ (Chapman and Hall: London, UK)

Buckland ST, Rexstad EA, Marques TA, Oedekoven CS (2015) ‘Distance sampling: methods and applications.’ (Springer: London, UK)

Burgman MA, Ferson S, Akcakaya HR (1993) ‘Risk assessment in conservation biology.’ (Chapman and Hall: London, UK)

Burnham KP, Anderson DA (1998) ‘Model selection and inference: a practical information-theoretic approach.’ (Springer: Berlin, Germany)

Burt, ML, Borchers, DL, Jenkins, KJ, and Marques, TA (2014). Using mark–recapture distance sampling methods on line transect surveys. Methods in Ecology and Evolution 5, 1180–1191.
Using mark–recapture distance sampling methods on line transect surveys.Crossref | GoogleScholarGoogle Scholar |

Cairns, SC, and Grigg, GC (1993). Population dynamics of red kangaroos (Macropus rufus) in relation to rainfall in the South Australian pastoral zone. Journal of Applied Ecology 30, 444–458.
Population dynamics of red kangaroos (Macropus rufus) in relation to rainfall in the South Australian pastoral zone.Crossref | GoogleScholarGoogle Scholar |

Cairns, SC, Lollback, GW, and Payne, N (2008). Design of aerial surveys for population estimation and the management of macropods in the Northern Tablelands of New South Wales, Australia. Wildlife Research 35, 331–339.
Design of aerial surveys for population estimation and the management of macropods in the Northern Tablelands of New South Wales, Australia.Crossref | GoogleScholarGoogle Scholar |

Caley, P (1993). Population dynamics of feral pigs (Sus scrofa) in a tropical riverine habitat complex. Wildlife Research 20, 625–636.
Population dynamics of feral pigs (Sus scrofa) in a tropical riverine habitat complex.Crossref | GoogleScholarGoogle Scholar |

Carter JO, Hall WB, Brook KD, McKeon GM, Day KA, Paull CJ (2000) AussieGRASS: Australian grassland and rangeland assessment by spatial simulation. In ‘Applications of seasonal climate forecasting in agricultural and natural ecosystems’. (Eds GL Hammer, N Nicholls, C Mitchell) pp. 329–349. (Springer Netherlands: Dordrecht, Netherlands)

Caughley, G (1963). Dispersal rates of several ungulates introduced into New Zealand. Nature 200, 280–281.
Dispersal rates of several ungulates introduced into New Zealand.Crossref | GoogleScholarGoogle Scholar |

Caughley G (1977) ‘Analysis of vertebrate populations.’ (Wiley and Sons: London, UK)

Caughley G (1987) Ecological relationships. In ‘Kangaroos: their ecology and management in the sheep rangelands of Australia’. (Eds G Caughley, N Shepherd, J Short) pp. 159–187. (Cambridge University Press: Cambridge)

Caughley, G, and Gunn, A (1993). Dynamics of large herbivores in deserts: kangaroos and caribou. Oikos 67, 47–55.
Dynamics of large herbivores in deserts: kangaroos and caribou.Crossref | GoogleScholarGoogle Scholar |

Caughley, G, and Krebs, CJ (1983). Are big mammals simply little mammals writ large? Oecologia 59, 7–17.
Are big mammals simply little mammals writ large?Crossref | GoogleScholarGoogle Scholar |

Choquenot, D (1998). Testing the relative influence of instrinsic and extrinsic variation in food availability on feral pig populations in Australia’s rangelands. Journal of Animal Ecology 67, 887–907.
Testing the relative influence of instrinsic and extrinsic variation in food availability on feral pig populations in Australia’s rangelands.Crossref | GoogleScholarGoogle Scholar |

Crawley MJ (2013) ‘The R book.’ 2nd edn. (John Wiley & Sons: Chichester, UK)

Crittle T, Millynn B (2020) Pest animal mapping 2020 final report. NSW Department of Primary Industries, Orange, NSW, Australia.

Cunningham, CX, Perry, GLW, Bowman, DMJS, Forsyth, DM, Driessen, MM, Appleby, M, Brook, BW, Hocking, G, Buettel, JC, French, BJ, Hamer, R, Bryant, SL, Taylor, M, Gardiner, R, Proft, K, Scoleri, VP, Chiu-Werner, A, Travers, T, Thompson, L, Guy, T, and Johnson, CN (2022). Dynamics and predicted distribution of an irrupting ‘sleeper’ population: fallow deer in Tasmania. Biological Invasions 24, 1131–1147.
Dynamics and predicted distribution of an irrupting ‘sleeper’ population: fallow deer in Tasmania.Crossref | GoogleScholarGoogle Scholar |

Davis, SA, Pech, RP, and Catchpole, EA (2002). Populations in variable environments: the effect of variability in a species’ primary resource. Philosophical Transactions of the Royal Society of London. Series B: Biological Sciences 357, 1249–1257.
Populations in variable environments: the effect of variability in a species’ primary resource.Crossref | GoogleScholarGoogle Scholar |

Davis, NE, Forsyth, DM, and Bengsen, AJ (). Diet and impacts of non-native fallow deer (Dama dama) on pastoral properties during severe drought. Wildlife Research , .

Dobbie WR, Berman DM, Braysher ML (1993) ‘Managing vertebrate pests: feral horses.’ (Australian Government Publishing Service: Canberra, ACT, Australia)

Duckworth J, Kumar N, Anwarul Islam M, Sagar Baral H, Timmins R (2015) Axis axis. The IUCN red list of threatened species, 2015-2014: e.T41783A22158006. Available at https://dx.doi.org/10.2305/IUCN.UK.2015-4.RLTS.T41783A22158006.en [Accessed 07 June 2023]

Eco Logical Australia (2015) Distribution and abundance of deer in the Wollongong LGA. Unpublished 2015 monitoring report. Prepared for Wollongong City Council, NSW, Australia.

English AW (1992) Management strategies for farmed chital deer. In ‘The biology of deer’. (Ed. RD Brown) pp. 189–196. (Springer: New York, NY, USA) https://doi.org/10.1007/978-1-4612-2782-3_46

Ernest, SKM (2003). Life history characteristics of placental nonvolant mammals: ecological archives e084-093. Ecology 84, 3402–3402.
Life history characteristics of placental nonvolant mammals: ecological archives e084-093.Crossref | GoogleScholarGoogle Scholar |

Fewster, RM, and Pople, AR (2008). A comparison of mark–recapture distance-sampling methods applied to aerial surveys of eastern grey kangaroos. Wildlife Research 35, 320–330.
A comparison of mark–recapture distance-sampling methods applied to aerial surveys of eastern grey kangaroos.Crossref | GoogleScholarGoogle Scholar |

Finch, N, Pople, A, McLeod, SR, and Wallace, G (2021). Advances in aerial survey methods for macropods in New South Wales and Queensland. Ecological Management & Restoration 22, 99–105.
Advances in aerial survey methods for macropods in New South Wales and Queensland.Crossref | GoogleScholarGoogle Scholar |

Foley, AM, Lewis, JS, Cortez, O, Hellickson, MW, Hewitt, DG, DeYoung, RW, DeYoung, CA, and Schnupp, MJ (2022). Accuracies and biases of ageing white-tailed deer in semiarid environments. Wildlife Research 49, 237–249.
Accuracies and biases of ageing white-tailed deer in semiarid environments.Crossref | GoogleScholarGoogle Scholar |

Forsyth, DM, and Caley, P (2006). Testing the irruptive paradigm of large-herbivore dynamics. Ecology 87, 297–303.
Testing the irruptive paradigm of large-herbivore dynamics.Crossref | GoogleScholarGoogle Scholar |

Forsyth, DM, Caley, P, Davis, NE, Latham, ADM, Woolnough, AP, Woodford, LP, Stamation, KA, Moloney, PD, and Pascoe, C (2018). Functional responses of an apex predator and a mesopredator to an invading ungulate: dingoes, red foxes and sambar deer in south-east Australia. Austral Ecology 43, 375–384.
Functional responses of an apex predator and a mesopredator to an invading ungulate: dingoes, red foxes and sambar deer in south-east Australia.Crossref | GoogleScholarGoogle Scholar |

Forsyth, DM, Pople, A, Woodford, L, Brennan, M, Amos, M, Moloney, PD, Fanson, B, and Story, G (2019). Landscape-scale effects of homesteads, water, and dingoes on invading chital deer in Australia’s dry tropics. Journal of Mammalogy 100, 1954–1965.
Landscape-scale effects of homesteads, water, and dingoes on invading chital deer in Australia’s dry tropics.Crossref | GoogleScholarGoogle Scholar |

Forsyth, DM, Comte, S, Davis, NE, Bengsen, AJ, Côté, SD, Hewitt, DG, Morellet, N, and Mysterud, A (2022). Methodology matters when estimating deer abundance: a global systematic review and recommendations for improvements. The Journal of Wildlife Management 86, e22207.
Methodology matters when estimating deer abundance: a global systematic review and recommendations for improvements.Crossref | GoogleScholarGoogle Scholar |

Gaillard, J-M, Festa-Bianchet, M, Yoccoz, NG, Loison, A, and Toigo, C (2000). Temporal variation in fitness components and population dynamics of large herbivores. Annual Review of Ecology and Systematics 31, 367–393.
Temporal variation in fitness components and population dynamics of large herbivores.Crossref | GoogleScholarGoogle Scholar |

Gentle, M, and Pople, A (2013). Effectiveness of commercial harvesting in controlling feral-pig populations. Wildlife Research 40, 459–469.
Effectiveness of commercial harvesting in controlling feral-pig populations.Crossref | GoogleScholarGoogle Scholar |

Gentle, M, Pople, A, Scanlan, JC, and Carter, J (2019). The dynamics of feral pig (Sus scrofa) populations in response to food supply. Wildlife Research 46, 191–204.
The dynamics of feral pig (Sus scrofa) populations in response to food supply.Crossref | GoogleScholarGoogle Scholar |

Graf, W, and Nichols, L (1966). The axis deer in Hawaii. The Journal of the Bombay Natural History Society 63, 629–734.

Greenwell, BM, and Kabban, CMS (2014). investr: an R package for inverse estimation. The R Journal 6, 90–100.
investr: an R package for inverse estimation.Crossref | GoogleScholarGoogle Scholar |

Gürtler, RE, Rodríguez-Planes, LI, Gil, G, Izquierdo, VM, Cavicchia, M, and Maranta, A (2018). Differential long-term impacts of a management control program of axis deer and wild boar in a protected area of north-eastern Argentina. Biological Invasions 20, 1431–1447.
Differential long-term impacts of a management control program of axis deer and wild boar in a protected area of north-eastern Argentina.Crossref | GoogleScholarGoogle Scholar |

Hamlin, KL, Pac, DF, Sime, CA, DeSimone, RM, and Dusek, GL (2000). Evaluating the accuracy of ages obtained by two methods for Montana ungulates. The Journal of Wildlife Management 64, 441–449.
Evaluating the accuracy of ages obtained by two methods for Montana ungulates.Crossref | GoogleScholarGoogle Scholar |

Hampton, JO, Bengsen, AJ, Pople, A, Brennan, M, Leeson, M, and Forsyth, DM (2022). Animal welfare outcomes of helicopter-based shooting of deer in Australia. Wildlife Research 49, 264–273.
Animal welfare outcomes of helicopter-based shooting of deer in Australia.Crossref | GoogleScholarGoogle Scholar |

Hone J (2007) ‘Wildlife damage control.’ (CSIRO Publishing: Melbourne, Vic., Australia)

Hone, J, Duncan, RP, and Forsyth, DM (2010). Estimates of maximum annual population growth rates (rm) of mammals and their application in wildlife management. Journal of Applied Ecology 47, 507–514.
Estimates of maximum annual population growth rates (rm) of mammals and their application in wildlife management.Crossref | GoogleScholarGoogle Scholar |

Jeffrey, SJ, Carter, JO, Moodie, KB, and Beswick, AR (2001). Using spatial interpolation to construct a comprehensive archive of Australian climate data. Environmental Modelling & Software 16, 309–330.
Using spatial interpolation to construct a comprehensive archive of Australian climate data.Crossref | GoogleScholarGoogle Scholar |

Jesser P (2005) ‘Deer in Queensland.’ (Department of Natural Resources and Mines: Brisbane, Qld, Australia)

Kelly CL (2021) Ecology of chital deer in north Queensland. PhD thesis, James Cook University, Townsville, Qld, Australia. Available at https://researchonline.jcu.edu.au/74335/

Kelly, CL, Schwarzkopf, L, Gordon, IJ, Pople, A, Kelly, DL, and Hirsch, BT (2022). Dancing to a different tune: changing reproductive seasonality in an introduced chital deer population. Oecologia 200, 285–294.
Dancing to a different tune: changing reproductive seasonality in an introduced chital deer population.Crossref | GoogleScholarGoogle Scholar |

Krebs, CJ (2009). Population dynamics of large and small mammals: Graeme Caughley’s grand vision. Wildlife Research 36, 1–7.
Population dynamics of large and small mammals: Graeme Caughley’s grand vision.Crossref | GoogleScholarGoogle Scholar |

Laake, J, Dawson, MJ, and Hone, J (2008). Visibility bias in aerial survey: mark–recapture, line-transect or both? Wildlife Research 35, 299–309.
Visibility bias in aerial survey: mark–recapture, line-transect or both?Crossref | GoogleScholarGoogle Scholar |

Marques, TA, Thomas, L, Fancy, SG, and Buckland, ST (2007). Improving estimates of bird density using multiple – covariate distance sampling. The Auk 124, 1229–1243.
Improving estimates of bird density using multiple – covariate distance sampling.Crossref | GoogleScholarGoogle Scholar |

McCallum H (2000) ‘Population parameters: estimation for ecological models.’ (Blackwell Science: London, UK)

McIvor J (2012) ‘Sustainable management of the Burdekin grazing lands – a technical guide of options for stocking rate management, pasture spelling, infrastructure development and prescribed burning to optimise animal production, profitability, land condition and water quality outcomes.’ (Department of Agriculture, Fisheries and Forestry: Brisbane, Qld, Australia)

McKeon, GM, Day, KA, Howden, SM, Mott, JJ, Orr, DM, Scattini, WJ, and Weston, EJ (1990). Northern Australian savannas: management for pastoral production. Journal of Biogeography 17, 355–372.
Northern Australian savannas: management for pastoral production.Crossref | GoogleScholarGoogle Scholar |

McLeod, SR, Finch, N, Wallace, G, and Pople, AR (2021). Assessing the spatial and temporal organization of Red Kangaroo, Western Grey Kangaroo and Eastern Grey Kangaroo populations in eastern Australia using multivariate autoregressive state-space models. Ecological Management & Restoration 22, 106–123.
Assessing the spatial and temporal organization of Red Kangaroo, Western Grey Kangaroo and Eastern Grey Kangaroo populations in eastern Australia using multivariate autoregressive state-space models.Crossref | GoogleScholarGoogle Scholar |

Miller, DL, Burt, ML, Rexstad, EA, and Thomas, L (2013). Spatial models for distance sampling data: recent developments and future directions. Methods in Ecology and Evolution 4, 1001–1010.
Spatial models for distance sampling data: recent developments and future directions.Crossref | GoogleScholarGoogle Scholar |

Moloney, PD, Gormley, AM, Toop, SD, Flesch, JS, Forsyth, DM, Ramsey, DSL, and Hampton, JO (2022). Bayesian modelling reveals differences in long-term trends in the harvest of native and introduced species by recreational hunters in Australia. Wildlife Research 49, 673–685.
Bayesian modelling reveals differences in long-term trends in the harvest of native and introduced species by recreational hunters in Australia.Crossref | GoogleScholarGoogle Scholar |

Mott JJ, Tothill JC (1984) Tropical and subtropical woodlands. In ‘Management of Australia’s rangelands’. (Eds GN Harrington, AD Wilson, MD Young) pp. 255–269. (CSIRO: Melbourne, Vic., Australia)

Noy-Meir, I (1973). Desert ecosystems: environment and producers. Annual Review of Ecology and Systematics 4, 25–51.
Desert ecosystems: environment and producers.Crossref | GoogleScholarGoogle Scholar |

Ogutu, JO, and Owen-Smith, N (2005). Oscillations in large mammal populations: are they related to predation or rainfall? African Journal of Ecology 43, 332–339.
Oscillations in large mammal populations: are they related to predation or rainfall?Crossref | GoogleScholarGoogle Scholar |

Owens, IPF (2002). Sex differences in mortality rate. Science 297, 2008–2009.
Sex differences in mortality rate.Crossref | GoogleScholarGoogle Scholar |

Pople, AR (2008). Frequency and precision of aerial surveys for kangaroo management. Wildlife Research 35, 340–348.
Frequency and precision of aerial surveys for kangaroo management.Crossref | GoogleScholarGoogle Scholar |

Pople T, Froese J (2012) Distribution, abundance and harvesting of feral goats in the Australian rangelands 1984-2011. Final report to the ACRIS Management Committee.

Pople AR, McLeod SR (2000) Kangaroo management and the sustainable use of rangelands. In ‘Management for sustainable ecosystems’. (Eds PT Hale, A Petrie, D Moloney, P Sattler) pp. 78–86. (Centre for Conservation Biology, The University of Queensland: Brisbane, Qld, Australia)

Pople, AR, Clancy, TF, Thompson, JA, and Boyd-Law, S (1998). Aerial survey methodology and the cost of control for feral goats in western Queensland. Wildlife Research 25, 393–407.
Aerial survey methodology and the cost of control for feral goats in western Queensland.Crossref | GoogleScholarGoogle Scholar |

Pople AR, Grigg GC, Phinn SR, Menke N, McAlpine C, Possingham HP (2010) Reassessing spatial and temporal dynamics of kangaroo populations. In ‘Macropods: the biology of kangaroos, wallabies and rat-kangaroos’. (Eds G Coulson, MDB Eldridge) pp. 197–210. (CSIRO Publishing: Melbourne, Vic., Australia)

R Core Team (2021) ‘R: a language and environment for statistical computing.’ (R Foundation for Statistical Computing: Vienna, Austria) Available at https://www.R-project.org/

Roff, C (1960). Deer in Queensland. Queensland Journal of Agricultural Science 17, 43–58.

Sæther, B-E (1997). Environmental stochasticity and population dynamics of large herbivores: a search for mechanisms. Trends in Ecology & Evolution 12, 143–149.
Environmental stochasticity and population dynamics of large herbivores: a search for mechanisms.Crossref | GoogleScholarGoogle Scholar |

Schaller GB (1967) ‘The deer and the tiger. A study of wildlife in India.’ (The University of Chicago Press: Chicago, IL, USA)

Sinclair, ARE, and Pech, RP (1996). Density dependence, stochasticity, compensation and predator regulation. Oikos 75, 164–173.
Density dependence, stochasticity, compensation and predator regulation.Crossref | GoogleScholarGoogle Scholar |

Stafford Smith, DM, and Morton, SR (1990). A framework for the ecology of arid Australia. Journal of Arid Environments 18, 225–278.

Standing Committee on Agriculture, Animal Health Committee (2002) Model code of practice for the welfare of animals. Feral Livestock Animals. Destruction or Capture, Handling and Marketing. SCARM Report 34. CSIRO, Melbourne, Vic., Australia.

Thomas, L, Buckland, ST, Rexstad, EA, Laake, JL, Strindberg, S, Hedley, SL, Bishop, JRB, Marques, TA, and Burnham, KP (2010). Distance software: design and analysis of distance sampling surveys for estimating population size. Journal of Applied Ecology 47, 5–14.
Distance software: design and analysis of distance sampling surveys for estimating population size.Crossref | GoogleScholarGoogle Scholar |

Toïgo, C, and Gaillard, J-M (2003). Causes of sex-biased adult survival in ungulates: sexual size dimorphism, mating tactic or environment harshness? Oikos 101, 376–384.
Causes of sex-biased adult survival in ungulates: sexual size dimorphism, mating tactic or environment harshness?Crossref | GoogleScholarGoogle Scholar |

Tuljapurkar, SD, and Orzack, SH (1980). Population dynamics in variable environments. I. Long-run growth rates and extinction. Theoretical Population Biology 18, 314–342.
Population dynamics in variable environments. I. Long-run growth rates and extinction.Crossref | GoogleScholarGoogle Scholar |

Watter, K, Baxter, G, Brennan, M, Pople, A, and Murray, P (2019a). Decline in body condition and high drought mortality limit the spread of wild chital deer in north-east Queensland, Australia. The Rangeland Journal 41, 293–299.
Decline in body condition and high drought mortality limit the spread of wild chital deer in north-east Queensland, Australia.Crossref | GoogleScholarGoogle Scholar |

Watter, K, Baxter, GS, Pople, T, and Murray, PJ (2019b). Effects of wet season mineral nutrition on chital deer distribution in northern Queensland. Wildlife Research 46, 499–508.
Effects of wet season mineral nutrition on chital deer distribution in northern Queensland.Crossref | GoogleScholarGoogle Scholar |

Watter, K, Baxter, G, Brennan, M, Pople, T, and Murray, P (2020). Seasonal diet preferences of chital deer in the northern Queensland dry tropics, Australia. The Rangeland Journal 42, 211–220.
Seasonal diet preferences of chital deer in the northern Queensland dry tropics, Australia.Crossref | GoogleScholarGoogle Scholar |

Williams K, Parer I, Coman B, Burley J, Braysher M (1995) ‘Managing vertebrate pests: rabbits.’ (Australian Government Publishing Service: Canberra, ACT, Australia)

Zhang, B, and Carter, J (2018). FORAGE – an online system for generating and delivering property-scale decision support information for grazing land and environmental management. Computers and Electronics in Agriculture 150, 302–311.
FORAGE – an online system for generating and delivering property-scale decision support information for grazing land and environmental management.Crossref | GoogleScholarGoogle Scholar |