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A journal dedicated to conservation and wildlife management in the Pacific region.
REVIEW

Avian nest predation in Australian temperate forest and woodland: a review

Graham R. Fulton
+ Author Affiliations
- Author Affiliations

Centre for Biodiversity and Conservation Science, University of Queensland, Brisbane, Qld 4072, Australia and School of Veterinary and Life Sciences, Murdoch University, South Street, Murdoch, WA 6150, Australia. Email: grahamf2001@yahoo.com.au

Pacific Conservation Biology 24(2) 122-133 https://doi.org/10.1071/PC17035
Submitted: 9 September 2017  Accepted: 25 March 2018   Published: 30 April 2018

Abstract

Many forest and woodland birds are threatened by landscape modifications and predation, particularly nest predation. Nest predation affects a critical stage in avian life histories, which impacts the recruitment of new generations of adult birds. This review discusses the main issues in nest predation research in Australia: mesopredators, the use of artificial nests, ‘edge-effects’, the identification and role of nest predators and the responses of their prey. One conservation strategy is to selectively remove introduced mesopredators, but mesopredators iteratively replace one another, so the net benefit may be negligible. Authors have questioned the utility of artificial nests: they often provide results that vary from natural nests, thus I propose they are best seen as generators of hypotheses to be tested at natural nests. Many studies investigated nest success based on the distance to the edge of the forest or woodland, with equivocal results. Yet fragment size, structure and faunal assemblage set in a more complex paradigm may better explain the presence or absence of effects at edges. There are various types of evidence used to identify nest predators. I argue that cameras are the most functional and direct observations are the most informative. A large number and variety of nest predators are reported yet reviews of nest predation call for more information on the identity and roles of nest predators, particularly on those that add predation pressure beyond what the prey might be able to sustain. The impact of nest characteristics: type, height, vegetation layer, concealment and re-nesting were found to be equivocal in relation to nest predation and in need of focussed research on phylogenetic groups and guilds present within assemblages and within the context of assemblages. A handful of research studies have looked at the possible conservation actions of culling nest-predators and placing cages around threatened birds. More such studies are needed because they provide direct information about practical interventions. Research within assemblages is required to identify and elucidate the roles of nest predators and prey responses and to generate broad and useful theories, which may better inform conservation models.


References

Algar, D., and Smith, R. (1998). Approaching Eden. Landscape 13, 28–34.

Andersen, A. N. (2002). Common names for Australian ants (Hymenoptera: Formicidae). Australian Journal of Entomology 41, 285–293.
Common names for Australian ants (Hymenoptera: Formicidae).Crossref | GoogleScholarGoogle Scholar |

Angel, A., Wanless, R. M., and Cooper, J. (2009). Review of impacts of the introduced house mouse on islands in the Southern Ocean: are mice equivalent to rats? Biological Invasions 11, 1743–1754.
Review of impacts of the introduced house mouse on islands in the Southern Ocean: are mice equivalent to rats?Crossref | GoogleScholarGoogle Scholar |

Antos, M. J., and Bennett, A. F. (2005). How important are different types of temperate woodlands for ground-foraging birds? Wildlife Research 32, 557–572.
How important are different types of temperate woodlands for ground-foraging birds?Crossref | GoogleScholarGoogle Scholar |

Banks, P. B., and Hughes, N. K. (2012). A review of the evidence for potential impacts of black rats (Rattus rattus) on wildlife and humans in Australia. Wildlife Research 39, 78–88.
A review of the evidence for potential impacts of black rats (Rattus rattus) on wildlife and humans in Australia.Crossref | GoogleScholarGoogle Scholar |

Barnes, C. P., Zillmann, E. E., Rose, A. B., and Debus, S. J. S. (2001). Diet and biology of the square-tailed kite Lophoictinia isura in south-eastern Queensland: nest-building to post-fledging. Australian Bird Watcher 19, 28–43.

Barrett, G., Silcocks, A., Cunningham, R., Oliver, D., Weston, M., and Baker, J. (2007). Comparison of atlas data to determine the conservation status of bird species in New South Wales, with an emphasis on woodland-dependent species. Australian Zoologist 34, 37–77.
Comparison of atlas data to determine the conservation status of bird species in New South Wales, with an emphasis on woodland-dependent species.Crossref | GoogleScholarGoogle Scholar |

Bass, D. A. (1989). Seasonal changes in the behaviour and abundance of pied currawongs Strepera graculina and the consequences for seed dispersal. Australian Bird Watcher 13, 78–80.

Bass, D. A. (1990). Pied currawongs and seed dispersal. Corella 14, 24–27.

Bass, D. A. (1995). The contribution of introduced fruits to the winter diet of pied currawongs in Armidale, NSW. Corella 19, 127–132.

Beckmann, C., and Martin, K. (2016). Testing hypotheses about the function of repeated nest abandonment as a life history strategy in a passerine bird. The Ibis 158, 335–342.
Testing hypotheses about the function of repeated nest abandonment as a life history strategy in a passerine bird.Crossref | GoogleScholarGoogle Scholar |

Beckmann, C., and McDonald, P. G. (2016). Placement of re-nests following predation: are birds managing risk? Emu 116, 9–13.
Placement of re-nests following predation: are birds managing risk?Crossref | GoogleScholarGoogle Scholar |

Beckmann, C., Biro, P. A., and Martin, K. (2015). Hierarchical analysis of avian re-nesting behavior: mean, across-individual, and intra-individual responses. Behavioral Ecology and Sociobiology 69, 1631–1638.
Hierarchical analysis of avian re-nesting behavior: mean, across-individual, and intra-individual responses.Crossref | GoogleScholarGoogle Scholar |

Bentley, J. M., and Catterall, C. P. (1997). The use of bushland, corridors, and linear remnants by birds in southeastern Queensland, Australia. Conservation Biology 11, 1173–1189.
The use of bushland, corridors, and linear remnants by birds in southeastern Queensland, Australia.Crossref | GoogleScholarGoogle Scholar |

Berger-Tal, R., Berger-Tal, O., and Munro, K. (2010). Nest desertion by grey fantails during nest building in response to perceived predation risk. Journal of Field Ornithology 81, 151–154.
Nest desertion by grey fantails during nest building in response to perceived predation risk.Crossref | GoogleScholarGoogle Scholar |

Berry, L. (2002a). Predation rates of artificial nests in the edge and interior of a southern Victorian forest. Wildlife Research 29, 341–345.
Predation rates of artificial nests in the edge and interior of a southern Victorian forest.Crossref | GoogleScholarGoogle Scholar |

Berry, L. (2002b). Identifying nest-predator species in southern Victorian woodland using remotely triggered cameras at artificial nests. Corella 26, 24–26.

Berry, L., and Lill, A. (2003). Do predation rates on artificial nests accurately predict predation rates on natural nests? Emu 103, 207–214.
Do predation rates on artificial nests accurately predict predation rates on natural nests?Crossref | GoogleScholarGoogle Scholar |

Best, L. B., and Stauffer, D. F. (1980). Factors affecting nesting success in riparian bird communities. The Condor 82, 149–158.
Factors affecting nesting success in riparian bird communities.Crossref | GoogleScholarGoogle Scholar |

Boulton, R. L., and Clarke, M. F. (2003). Do yellow-faced honeyeater (Lichenostomus chrysops) nests experience higher predation at forest edges? Wildlife Research 30, 119–125.
Do yellow-faced honeyeater (Lichenostomus chrysops) nests experience higher predation at forest edges?Crossref | GoogleScholarGoogle Scholar |

Brooker, M., and Brooker, L. (2001). Breeding biology, reproductive success and survival of blue-breasted fairy-wrens in fragmented habitat in the Western Australian wheatbelt. Wildlife Research 28, 205–214.
Breeding biology, reproductive success and survival of blue-breasted fairy-wrens in fragmented habitat in the Western Australian wheatbelt.Crossref | GoogleScholarGoogle Scholar |

Brooker, L., Brooker, M., and Cale, P. (1999). Annual dispersal in fragmented habitat: measuring habitat connectivity, corridor use, and dispersal mortality. Ecologic Science 3, 1–14.

Brown, F. D., and Veltman, C. J. (1987). Ethogram of the Australian magpie (Gymnorhina tibicen) in comparison to other Cracticidae and Corvus species. Ethology 76, 309–333.
Ethogram of the Australian magpie (Gymnorhina tibicen) in comparison to other Cracticidae and Corvus species.Crossref | GoogleScholarGoogle Scholar |

Brown, K. P., Innes, J. G., and Shorten, R. M. (1993). Evidence that possums prey on and scavenge birds’ eggs, birds and mammals. Notornis 40, 1–9.

Brown, K. P., Moller, H., and Innes, J. (1996). Sign left by brushtail possums after feeding on birds eggs and chicks. New Zealand Journal of Ecology 20, 277–284.

Burbidge, A. A., and McKenzie, N. L. (1989). Patterns in the modern decline of Western Australia’s vertebrate fauna: causes and conservation implications. Biological Conservation 50, 143–198.
Patterns in the modern decline of Western Australia’s vertebrate fauna: causes and conservation implications.Crossref | GoogleScholarGoogle Scholar |

Burke, D. M., Elliott, K., Moore, L., Dunford, W., Nol, E., Phillips, J., Holmes, S., and Freemark, K. (2004). Patterns of nest predation on artificial and natural nests in forests. Conservation Biology 18, 381–388.
Patterns of nest predation on artificial and natural nests in forests.Crossref | GoogleScholarGoogle Scholar |

Christidis, L., and Boles, W. E. (2008). ‘Systematics and Taxonomy of Australian Birds.’ (CSIRO Publishing: Melbourne.)

Cogger, H. G. (2014). ‘Reptiles and Amphibians of Australia.’ 7th edn. (CSIRO Publishing: Melbourne.)

Cogger, H., Ford, H., Johnson, C., Holman, J., and Butler, D. (2003). Impacts of land clearing on Australian wildlife in Queensland. WWF Australia report, Brisbane.

Collias, N. E. (1997). On the origin and evolution of nest building by passerine birds. The Condor 99, 253–270.
On the origin and evolution of nest building by passerine birds.Crossref | GoogleScholarGoogle Scholar |

Collias, N. E., and Collias, E. C. (1984). ‘Nest Building and Bird Behavior.’ (Princeton University Press: Princeton, NJ.)

Colombelli-Négrel, D., and Kleindorfer, S. (2009). Nest height, nest concealment, and predator type predict nest predation in superb fairy-wrens (Malurus cyaneus). Ecological Research 24, 921–928.
Nest height, nest concealment, and predator type predict nest predation in superb fairy-wrens (Malurus cyaneus).Crossref | GoogleScholarGoogle Scholar |

Colombelli-Négrel, D., Robertson, J., and Kleindorfer, S. (2009). A new audio-visual technique for effectively monitoring nest predation and the behaviour of nesting birds. Emu 109, 83–88.
A new audio-visual technique for effectively monitoring nest predation and the behaviour of nesting birds.Crossref | GoogleScholarGoogle Scholar |

Cooney, S. J., and Watson, D. M. (2008). An experimental approach to understanding the use of mistletoe as a nest substrate for birds: nest predation. Wildlife Research 35, 65–71.
An experimental approach to understanding the use of mistletoe as a nest substrate for birds: nest predation.Crossref | GoogleScholarGoogle Scholar |

Cooney, S. J. N., Watson, D. M., and Young, J. (2006). Mistletoe nesting in Australian birds: a review. Emu 106, 1–12.
Mistletoe nesting in Australian birds: a review.Crossref | GoogleScholarGoogle Scholar |

Crooks, K. R., and Soulé, M. E. (1999). Mesopredator release and avifaunal extinctions in a fragmented system. Nature 400, 563–566.
Mesopredator release and avifaunal extinctions in a fragmented system.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DyaK1MXltFKrsrw%3D&md5=cd20b3733b6e8df30aaad660b4643552CAS |

Debus, S. J. S. (2006). The role of intense nest predation in the decline of scarlet robins and eastern yellow robins in remnant woodland near Armidale, New South Wales. Pacific Conservation Biology 12, 279–287.
The role of intense nest predation in the decline of scarlet robins and eastern yellow robins in remnant woodland near Armidale, New South Wales.Crossref | GoogleScholarGoogle Scholar |

Dickman, C. R. (1996). Overview of the impacts of feral cats on Australian native fauna. Australian Nature Conservation Agency, Canberra.

Dickman, C. R. (2009). House cats as predators in the Australian environment: impacts and management. Human–Wildlife Interactions 3, 41–48.

Dorfman, E. J., and Read, J. (1996). Nest predation by corvids on cormorants in Australia. Emu 96, 132–135.
Nest predation by corvids on cormorants in Australia.Crossref | GoogleScholarGoogle Scholar |

Dow, D. D. (1977). Indiscriminate interspecific aggression leading to almost sole occupancy of space by a single species of bird. Emu 77, 115–121.
Indiscriminate interspecific aggression leading to almost sole occupancy of space by a single species of bird.Crossref | GoogleScholarGoogle Scholar |

Faaborg, J. (2004). Truly artificial nest studies. Conservation Biology 18, 369–370.
Truly artificial nest studies.Crossref | GoogleScholarGoogle Scholar |

Fahrig, L. (2017a). Ecological responses to habitat fragmentation per se. Annual Review of Ecology Evolution and Systematics 48, 1–23.
Ecological responses to habitat fragmentation per se.Crossref | GoogleScholarGoogle Scholar |

Fahrig, L. (2017b). Forty years of bias in habitat fragmentation research. In ‘Effective Conservation Science: Data Not Dogma’. (Eds P. Kareiva, M. Marvier, and B. Silliman.) pp. 32–38. (Oxford University Press: Oxford.)

Fischer, J., and Lindenmayer, D. B. (2007). Landscape modification and habitat fragmentation: a synthesis. Global Ecology and Biogeography 16, 265–280.
Landscape modification and habitat fragmentation: a synthesis.Crossref | GoogleScholarGoogle Scholar |

Ford, H. A. (1999). Nest site selection and breeding success in large Australian honeyeaters: are there benefits in being different? Emu 99, 91–99.
Nest site selection and breeding success in large Australian honeyeaters: are there benefits in being different?Crossref | GoogleScholarGoogle Scholar |

Ford, H. A. (2011). Twinkling lights or turning down the dimmer switch? Are there two patterns of extinction debt in fragmented landscapes? Pacific Conservation Biology 17, 303–309.
Twinkling lights or turning down the dimmer switch? Are there two patterns of extinction debt in fragmented landscapes?Crossref | GoogleScholarGoogle Scholar |

Ford, H. A., Barrett, G., Saunders, D., and Recher, H. (2001). Why have birds in woodlands of southern Australia declined? Biological Conservation 97, 71–88.
Why have birds in woodlands of southern Australia declined?Crossref | GoogleScholarGoogle Scholar |

Ford, H. A., Walters, J. R., Cooper, C. B., Debus, S. J. S., and Doerr, V. A. J. (2009). Extinction debt or habitat change? – Ongoing losses of woodland birds in north eastern New South Wales, Australia. Biological Conservation 142, 3182–3190.
Extinction debt or habitat change? – Ongoing losses of woodland birds in north eastern New South Wales, Australia.Crossref | GoogleScholarGoogle Scholar |

Fraser, F. J., and Whitehead, P. J. (2005). Predation of artificial ground nests in Australian tropical savannas: inverse edge effects. Wildlife Research 32, 313–319.
Predation of artificial ground nests in Australian tropical savannas: inverse edge effects.Crossref | GoogleScholarGoogle Scholar |

Friend, T., Anthony, C., and Thomas, N. (2001). Return to Dryandra. Landscope 16, 10–16.

Fulton, G. R. (2004). Ejah – birds of the desert fringe. Western Australian Bird Notes 110, 11–13.

Fulton, G. R. (2006a). Identification of nest predators with remote cameras and artificial nests in extensive old-growth woodland of south-western Australia. Corella 30, 35–39.

Fulton, G. R. (2006b). Direct observations of predation, nest-predation and other disturbance events, at Dryandra, in south-western Australia. II: Birds as prey of other animals. Australian Field Ornithology 23, 152–158.

Fulton, G. R. (2006c). Direct observations of predation, nest-predation and other disturbance events, at Dryandra, in south-western Australia. I: Birds as predators. Australian Field Ornithology 23, 144–151.

Fulton, G. R. (2007). Willie wagtail No. 51: an Australian Christmas story for a friend in Tokyo. Wingspan 17, 20–23.

Fulton, G. R. (2008). A possible territorial and nesting association between pied and grey butcherbirds (Cracticus nigrogularis and C. torquatus) and the yellow-throated miner (Manorina flavigula). Corella 32, 30–34.

Fulton, G. R. (2013). Woodland birds persisting in a least disturbed environment: birds of Dryandra Woodland 1953–2008. Pacific Conservation Biology 19, 58–75.
Woodland birds persisting in a least disturbed environment: birds of Dryandra Woodland 1953–2008.Crossref | GoogleScholarGoogle Scholar |

Fulton, G. R. (2017). The Bramble Cay melomys: the first mammalian extinction due to human-induced climate change. Pacific Conservation Biology 23, 1–3.
The Bramble Cay melomys: the first mammalian extinction due to human-induced climate change.Crossref | GoogleScholarGoogle Scholar |

Fulton, G. R., and Ford, H. A. (2001a). The pied currawong’s (Strepera graculina) role in avian nest predation: an artificial nest and predator removal experiment. Pacific Conservation Biology 7, 154–160.
The pied currawong’s (Strepera graculina) role in avian nest predation: an artificial nest and predator removal experiment.Crossref | GoogleScholarGoogle Scholar |

Fulton, G. R., and Ford, H. A. (2001b). Stomach contents of parental and young pied currawongs Strepera graculina. Corella 25, 94–96.

Fulton, G. R., and Ford, H. A. (2003). Quail eggs, modelling clay eggs, imprints and small mammals in Australian woodland. Emu 103, 255–258.
Quail eggs, modelling clay eggs, imprints and small mammals in Australian woodland.Crossref | GoogleScholarGoogle Scholar |

Fulton, G. R., and Majer, J. D. (2006). The effect of recent chaining on birds in the eastern wheatbelt of Western Australia. Pacific Conservation Biology 12, 168–174.
The effect of recent chaining on birds in the eastern wheatbelt of Western Australia.Crossref | GoogleScholarGoogle Scholar |

Fulton, G. R., Smith, M., Choi, M. N., and Takahashi, S. (2008). Road ecology from a road-side assemblage of forest birds in south-western Australia. Ornithological Science 7, 47–57.
Road ecology from a road-side assemblage of forest birds in south-western Australia.Crossref | GoogleScholarGoogle Scholar |

Gardner, J. L. (1998). Experimental evidence for edge-related predation in a fragmented agricultural landscape. Australian Journal of Ecology 23, 311–321.
Experimental evidence for edge-related predation in a fragmented agricultural landscape.Crossref | GoogleScholarGoogle Scholar |

Garnett, S. T., Pedler, L. P., and Crowley, G. M. (1999). The breeding biology of the glossy black-cockatoo Calyptorhynchus lathami on Kangaroo Island, South Australia. Emu 99, 262–279.
The breeding biology of the glossy black-cockatoo Calyptorhynchus lathami on Kangaroo Island, South Australia.Crossref | GoogleScholarGoogle Scholar |

Glen, A. S., Dickman, C. R., Soulé, M. E., and Mackey, B. G. (2007). Evaluating the role of the dingo as a trophic regulator in Australian ecosystems. Austral Ecology 32, 492–501.
Evaluating the role of the dingo as a trophic regulator in Australian ecosystems.Crossref | GoogleScholarGoogle Scholar |

Griffiths, H., Lutter, H., Rose, A. B., and Debus, S. J. S. (2002). Breeding and diet of a pair of square-tailed kites Lophoictinia isura on the mid-north coast of New South Wales. Australian Bird Watcher 19, 184–193.

Guppy, M., Guppy, S., Priddel, D., and Fullagar, P. (2014). Nest predators of a woodland bird community in south-east Australia. Australian Zoologist 37, 105–116.
Nest predators of a woodland bird community in south-east Australia.Crossref | GoogleScholarGoogle Scholar |

Guppy, M., Guppy, S., Carlisle, N., and Fullagar, P. (2016). The eastern spinebill Acanthorhynchus tenuirostris as a nest-predator. Australian Field Ornithology 33, 20–21.
The eastern spinebill Acanthorhynchus tenuirostris as a nest-predator.Crossref | GoogleScholarGoogle Scholar |

Guppy, M., Guppy, S., Marchant, R., Priddel, D., Carlile, N., and Fullagar, P. (2017). Nest predation of woodland birds in south-east Australia: importance of unexpected predators. Emu 117, 1–5.

Heinsohn, R., Webb, M., Lacy, R., Terauds, A., Alderman, R., and Stojanovic, D. (2015). A severe predator induced population decline predicted for endangered, migratory swift parrots (Lathamus discolor). Biological Conservation 186, 75–82.
A severe predator induced population decline predicted for endangered, migratory swift parrots (Lathamus discolor).Crossref | GoogleScholarGoogle Scholar |

Jackson, S., and Groves, C. (2015). ‘Taxonomy of Australian Mammals.’ (CSIRO Publishing: Melbourne.)

Kendeigh, S. C. (1942). Analysis of losses in the nesting of birds. Journal of Wildlife Management 6, 19–26.
Analysis of losses in the nesting of birds.Crossref | GoogleScholarGoogle Scholar |

Kennedy, S. J. (2003). A four year study of a bird community in woodland remnant near Moyston, western Victoria. Corella 27, 33–44.

Kitchener, D. J., Dell, J., Muir, B. G., and Palmer, M. (1982). Birds in the Western Australian wheatbelt reserves – implications for conservation. Biological Conservation 22, 127–163.
Birds in the Western Australian wheatbelt reserves – implications for conservation.Crossref | GoogleScholarGoogle Scholar |

Lack, D. (1954). ‘The Natural Regulation of Animal Numbers.’ (Clarendon Press: Oxford.)

Lambert, S., and Kleindorfer, S. (2006). Nest concealment but not human visitation predicts predation of New Holland honeyeater nests. Emu 106, 63–68.
Nest concealment but not human visitation predicts predation of New Holland honeyeater nests.Crossref | GoogleScholarGoogle Scholar |

Laurance, W. F., and Grant, J. D. (1994). Photographic identification of ground-nest predators in Australian tropical rainforest. Wildlife Research 21, 241–248.
Photographic identification of ground-nest predators in Australian tropical rainforest.Crossref | GoogleScholarGoogle Scholar |

Ley, A. J., Oliver, D. L., and Williams, M. B. (1997). Theft of nesting material involving honeyeaters (Meliphagidae). Corella 21, 119–123.

Lindenmayer, D. B., Pope, M. L., and Cunningham, R. B. (1999). Roads and nest predation: an experimental study in a modified forest system. Emu 99, 148–152.
Roads and nest predation: an experimental study in a modified forest system.Crossref | GoogleScholarGoogle Scholar |

Luck, G. W. (2003). Differences in reproductive success and survival of the rufous treecreeper (Climacteris rufa) between a fragmented and unfragmented landscape. Biological Conservation 109, 1–14.
Differences in reproductive success and survival of the rufous treecreeper (Climacteris rufa) between a fragmented and unfragmented landscape.Crossref | GoogleScholarGoogle Scholar |

Luck, G. W., Possingham, H. P., and Paton, D. C. (1999). Bird responses at inherent and induced edges in the Murray Mallee, South Australia. 2. Nest predation as an edge effect. Emu 99, 170–175.
Bird responses at inherent and induced edges in the Murray Mallee, South Australia. 2. Nest predation as an edge effect.Crossref | GoogleScholarGoogle Scholar |

Ludwig, J. A., Tongway, D. J., and Marsden, S. G. (1999). Stripes, strands or stipples: modelling the influence of three landscape banding patterns on resource capture and productivity in semi-arid woodlands, Australia. Catena 37, 257–273.
Stripes, strands or stipples: modelling the influence of three landscape banding patterns on resource capture and productivity in semi-arid woodlands, Australia.Crossref | GoogleScholarGoogle Scholar |

Mac Nally, R., and Horrocks, G. (2002). Relative influences of patch, landscape and historical factors on birds in an Australian fragmented landscape. Journal of Biogeography 29, 395–410.
Relative influences of patch, landscape and historical factors on birds in an Australian fragmented landscape.Crossref | GoogleScholarGoogle Scholar |

Mac Nally, R., Soderquist, T. R., and Tzaros, C. (2000). The conservation value of mesic gullies in dry forest landscapes: avian assemblages in the box–ironbark ecosystem of southern Australia. Biological Conservation 93, 293–302.
The conservation value of mesic gullies in dry forest landscapes: avian assemblages in the box–ironbark ecosystem of southern Australia.Crossref | GoogleScholarGoogle Scholar |

Mac Nally, R., Parkinson, A., Horrocks, G., Conole, L., and Tzaros, C. (2001). Relationships between terrestrial vertebrate diversity, abundance and availability of coarse woody debris on south-eastern Australian floodplains. Biological Conservation 99, 191–205.
Relationships between terrestrial vertebrate diversity, abundance and availability of coarse woody debris on south-eastern Australian floodplains.Crossref | GoogleScholarGoogle Scholar |

Mac Nally, R., Bowen, M., Howes, A., McAlpine, C. A., and Maron, M. (2012). Despotic, high‐impact species and the subcontinental scale control of avian assemblage structure. Ecology 93, 668–678.
Despotic, high‐impact species and the subcontinental scale control of avian assemblage structure.Crossref | GoogleScholarGoogle Scholar |

Major, R. E. (1990). The effect of human observers on the intensity of nest predation. The Ibis 132, 608–612.
The effect of human observers on the intensity of nest predation.Crossref | GoogleScholarGoogle Scholar |

Major, R. E. (1991a). Identification of nest predators by photography, dummy eggs, and adhesive tape. The Auk 108, 190–195.

Major, R. E., and Gowing, G. (1994). An inexpensive photographic technique for identifying nest predators at active nests of birds. Wildlife Research 21, 657–666.
An inexpensive photographic technique for identifying nest predators at active nests of birds.Crossref | GoogleScholarGoogle Scholar |

Major, R. E., and Kendal, C. E. (1996). The contributions of artificial nest experiments to our understanding of avian reproductive success: a review of methods and conclusions. The Ibis 138, 298–307.
The contributions of artificial nest experiments to our understanding of avian reproductive success: a review of methods and conclusions.Crossref | GoogleScholarGoogle Scholar |

Major, R. E., Gowing, G., and Kendal, C. E. (1996). Nest predation in Australian urban environments and the role of the pied currawong, Strepera graculina. Australian Journal of Ecology 21, 399–409.
Nest predation in Australian urban environments and the role of the pied currawong, Strepera graculina.Crossref | GoogleScholarGoogle Scholar |

Major, R. E., Christie, F. J., Gowing, G., and Ivison, T. J. (1999). Elevated rates of predation on artificial nests in linear strips of habitat. Journal of Field Ornithology 70, 351–364.

Major, R. E., Ashcroft, M. B., and Davis, A. (2014). Nest caging as a conservation tool for threatened songbirds. Wildlife Research 41, 598–605.
Nest caging as a conservation tool for threatened songbirds.Crossref | GoogleScholarGoogle Scholar |

Marlow, N. J., Thomas, N. D., Williams, A. A. E., Macmahon, B., Lawson, L., Hitchen, Y., Angus, J., and Berry, O. (2015a). Lethal 1080 baiting continues to reduce European red fox (Vulpes vulpes) abundance after more than 25 years of continuous use in south-west Western Australia. Ecological Management & Restoration 16, 131–141.
Lethal 1080 baiting continues to reduce European red fox (Vulpes vulpes) abundance after more than 25 years of continuous use in south-west Western Australia.Crossref | GoogleScholarGoogle Scholar |

Marlow, N. J., Thomas, N. D., Williams, A. A. E., Macmahon, B., Lawson, L., Hitchen, Y., Angus, J., and Berry, O. (2015b). Cats (Felis catus) are more abundant and are the dominant predator of woylies (Bettongia penicillata) after sustained fox (Vulpes vulpes) control. Australian Journal of Zoology 63, 18–27.
Cats (Felis catus) are more abundant and are the dominant predator of woylies (Bettongia penicillata) after sustained fox (Vulpes vulpes) control.Crossref | GoogleScholarGoogle Scholar |

Maron, M. (2009). Nesting, foraging and aggression of noisy miners relative to road edges in an extensive Queensland forest. Emu 109, 75–81.
Nesting, foraging and aggression of noisy miners relative to road edges in an extensive Queensland forest.Crossref | GoogleScholarGoogle Scholar |

Maron, M., Grey, M. J., Catterall, C. P., Major, R. E., Oliver, D. L., Clarke, M. F., Loyn, R. H., Mac Nally, R., Davidson, I., and Thomson, J. R. (2013). Avifaunal disarray due to a single despotic species. Diversity & Distributions 19, 1468–1479.
Avifaunal disarray due to a single despotic species.Crossref | GoogleScholarGoogle Scholar |

Martin, T. E. (1988). Processes organizing open-nesting bird assemblages: competition or nest predation? Evolutionary Ecology 2, 37–50.
Processes organizing open-nesting bird assemblages: competition or nest predation?Crossref | GoogleScholarGoogle Scholar |

Martin, T. E. (1992a). Breeding productivity considerations: what are the appropriate habitat features for management? In ‘Ecology and Conservation of Neotropical Migrant Landbirds’. (Eds J. M. Hagan, and D. W. Johnston.) pp. 455–473. (Smithsonian Institution Press: Washington, DC.)

Martin, T. E. (1992b). Interaction of nest predation and food limitation in reproductive strategies. Current Ornithology 9, 163–197.
Interaction of nest predation and food limitation in reproductive strategies.Crossref | GoogleScholarGoogle Scholar |

Martin, T. E. (1993a). Nest predation among vegetation layers and habitat types: revising the dogmas. American Naturalist 141, 897–913.
Nest predation among vegetation layers and habitat types: revising the dogmas.Crossref | GoogleScholarGoogle Scholar | 1:STN:280:DC%2BD1Mzjt1Gksg%3D%3D&md5=65f58040e92313b6c99fa92726618dc9CAS |

Martin, T. E. (1993b). Nest predation and nest sites: new perspectives on old patterns. Bioscience 43, 523–532.
Nest predation and nest sites: new perspectives on old patterns.Crossref | GoogleScholarGoogle Scholar |

Martin, T. E., Scott, J., and Menge, C. (2000). Nest predation increases with parental activity: separating nest sites and parental activity effects. Proceedings of the Royal Society of London. Series B, Biological Sciences 267, 2287–2293.
Nest predation increases with parental activity: separating nest sites and parental activity effects.Crossref | GoogleScholarGoogle Scholar | 1:STN:280:DC%2BD3MzltFSltg%3D%3D&md5=c0582a89a0eed504e7e810440231743fCAS |

Martin, T. G., McIntyre, S., Catterall, C. P., and Possingham, H. P. (2006). Is landscape context important for riparian conservation? Birds in grassy woodland. Biological Conservation 127, 201–214.
Is landscape context important for riparian conservation? Birds in grassy woodland.Crossref | GoogleScholarGoogle Scholar |

Martin, T. E., Boyce, A. J., Fierro-Calderón, K., Mitchell, A. E., Armstad, C. E., Mouton, J. C., and Bin Soudi, E. E. (2017). Enclosed nests may provide greater thermal than nest predation benefits compared with open nests across latitudes. Functional Ecology 31, 1231–1240.
Enclosed nests may provide greater thermal than nest predation benefits compared with open nests across latitudes.Crossref | GoogleScholarGoogle Scholar |

Matthews, A., Dickman, C. R., and Major, R. E. (1999). The influence of fragment size on nest predation in urban bushland. Ecography 22, 349–356.
The influence of fragment size on nest predation in urban bushland.Crossref | GoogleScholarGoogle Scholar |

McDonald, P. G., Wilson, D. R., and Evans, C. S. (2009). Nestling begging increases predation risk, regardless of spectral characteristics or avian mobbing. Behavioral Ecology 20, 821–829.
Nestling begging increases predation risk, regardless of spectral characteristics or avian mobbing.Crossref | GoogleScholarGoogle Scholar |

McGuire, A., and Kleindorfer, S. (2007). Nesting success and apparent nest-adornment in diamond firetails (Stagonopleura guttata). Emu 107, 44–51.
Nesting success and apparent nest-adornment in diamond firetails (Stagonopleura guttata).Crossref | GoogleScholarGoogle Scholar |

Molsher, R., Newsome, A., and Dickman, C. (1999). Feeding ecology and population dynamics of the feral cat (Felis catus) in relation to the availability of prey in central-eastern New South Wales. Wildlife Research 26, 593–607.
Feeding ecology and population dynamics of the feral cat (Felis catus) in relation to the availability of prey in central-eastern New South Wales.Crossref | GoogleScholarGoogle Scholar |

Moore, R. P., and Robinson, W. D. (2004). Artificial bird nests, external validity, and bias in ecological field studies. Ecology 85, 1562–1567.
Artificial bird nests, external validity, and bias in ecological field studies.Crossref | GoogleScholarGoogle Scholar |

Moorhouse, R., Greene, T., Dilks, P., Powlesland, R., Moran, L., Taylor, G., Jones, A., Knegtmans, J., Will, D., Pryde, M., Fraser, I., August, A., and August, C. (2003). Control of introduced mammalian predators improves kaka Nestor meridionalis breeding success: reversing the decline of a threatened New Zealand parrot. Biological Conservation 110, 33–44.
Control of introduced mammalian predators improves kaka Nestor meridionalis breeding success: reversing the decline of a threatened New Zealand parrot.Crossref | GoogleScholarGoogle Scholar |

Nice, M. M. (1957). Nesting success in altricial birds. The Auk 74, 305–321.
Nesting success in altricial birds.Crossref | GoogleScholarGoogle Scholar |

Noske, R. (1998). Breeding biology, demography and success of the rufous-banded honeyeater, Conopophila albogularis, in Darwin, a monsoonal tropical city. Wildlife Research 25, 339–356.
Breeding biology, demography and success of the rufous-banded honeyeater, Conopophila albogularis, in Darwin, a monsoonal tropical city.Crossref | GoogleScholarGoogle Scholar |

Noske, R. A. (2001). The breeding biology of the mangrove gerygone, Gerygone laevigaster, in the Darwin region, with notes on brood parasitism by the little bronze-cuckoo, Chrysococcyx minutillus. Emu 101, 129–135.
The breeding biology of the mangrove gerygone, Gerygone laevigaster, in the Darwin region, with notes on brood parasitism by the little bronze-cuckoo, Chrysococcyx minutillus.Crossref | GoogleScholarGoogle Scholar |

Noske, R., Fischer, S., and Brook, B. (2008). Artificial nest predation rates vary among habitats in the Australian monsoon tropics. Ecological Research 23, 519–527.
Artificial nest predation rates vary among habitats in the Australian monsoon tropics.Crossref | GoogleScholarGoogle Scholar |

Noske, R. A., Mulyani, Y. A., and Lloyd, P. (2013). Nesting beside old nests, but not over water, increases current nest survival in a tropical mangrove-dwelling warbler. Journal of Ornithology 154, 517–523.
Nesting beside old nests, but not over water, increases current nest survival in a tropical mangrove-dwelling warbler.Crossref | GoogleScholarGoogle Scholar |

Paton, D. C. (1991). Loss of wildlife to domestic cats. In ‘The Impact of Cats on Native Wildlife’. (Ed. C. Potter.) pp. 64–69. (Australian National Parks and Wildlife Service: Canberra.)

Paton, P. W. C. (1994). The effect of edge on avian nest success. Conservation Biology 8, 17–26.
The effect of edge on avian nest success.Crossref | GoogleScholarGoogle Scholar |

Piper, S. D., and Catterall, C. P. (2004). Effects of edge type and nest height on predation of artificial nests within subtropical Australian eucalypt forests. Forest Ecology and Management 203, 361–372.
Effects of edge type and nest height on predation of artificial nests within subtropical Australian eucalypt forests.Crossref | GoogleScholarGoogle Scholar |

Piper, S. D., and Catterall, C. P. (2006a). Is the conservation value of small urban remnants of eucalypt forest limited by increased levels of nest predation? Emu 106, 119–125.
Is the conservation value of small urban remnants of eucalypt forest limited by increased levels of nest predation?Crossref | GoogleScholarGoogle Scholar |

Piper, S., Catterall, C. P., and Olsen, M. (2002). Does adjacent land use affect predation of artificial shrub-nests near eucalypt forest edges? Wildlife Research 29, 127–133.
Does adjacent land use affect predation of artificial shrub-nests near eucalypt forest edges?Crossref | GoogleScholarGoogle Scholar |

Prawiradilaga, D. M. (1996). Foraging ecology of pied currawongs Strepera graculina in recently colonised areas of their range. Ph.D. Thesis, Australian National University, Canberra.

Price, C. J., and Banks, P. B. (2012). Exploiting olfactory learning in alien rats to protect birds’ eggs. Proceedings of the National Academy of Sciences of the United States of America 109, 19304–19309.
Exploiting olfactory learning in alien rats to protect birds’ eggs.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BC38XhvVagtrbI&md5=c45bd5ceaefbd417742f7685e17ec61cCAS |

Priddel, D., and Carlile, N. (1995). Mortality of adult Gould’s petrels Pterodroma leucoptera at the nesting site on Cabbage Tree Island, New South Wales. Emu 95, 259–264.
Mortality of adult Gould’s petrels Pterodroma leucoptera at the nesting site on Cabbage Tree Island, New South Wales.Crossref | GoogleScholarGoogle Scholar |

Priddel, D., and Wheeler, R. (1997). Efficacy of fox control in reducing the mortality of released captive-reared malleefowl, Leipoa ocellata. Wildlife Research 24, 469–482.
Efficacy of fox control in reducing the mortality of released captive-reared malleefowl, Leipoa ocellata.Crossref | GoogleScholarGoogle Scholar |

Reid, J. R. W. (1999). Threatened and declining birds in the New South Wales Sheep–Wheat Belt: 1. Diagnosis, characteristics and management. Consultancy report to NSW National Parks and Wildlife Service. CSIRO Wildlife & Ecology, Canberra.

Reitsma, L. R. (1992). Is nest predation density dependent? A test using artificial nests. Canadian Journal of Zoology 70, 2498–2500.
Is nest predation density dependent? A test using artificial nests.Crossref | GoogleScholarGoogle Scholar |

Remeš, V. (2005). Birds and rodents destroy different nests: a study of blackcap Sylvia atricapilla using the removal of nest concealment. The Ibis 147, 213–216.
Birds and rodents destroy different nests: a study of blackcap Sylvia atricapilla using the removal of nest concealment.Crossref | GoogleScholarGoogle Scholar |

Remeš, V., Matysioková, B., and Cockburn, A. (2012). Long-term and large-scale analyses of nest predation patterns in Australian songbirds and a global comparison of nest predation rates. Journal of Avian Biology 43, 435–444.
Long-term and large-scale analyses of nest predation patterns in Australian songbirds and a global comparison of nest predation rates.Crossref | GoogleScholarGoogle Scholar |

Reside, A. E., Beher, J., Cosgrove, A. J., Evans, M. C., Seabrook, L., Silcock, J. L., Wenger, A. S., and Maron, M. (2017). Ecological consequences of land clearing and policy reform in Queensland. Pacific Conservation Biology 23, 219–230.
Ecological consequences of land clearing and policy reform in Queensland.Crossref | GoogleScholarGoogle Scholar |

Richardson, T., Gardali, T., and Jenkins, S. H. (2009). Review and meta-analysis of camera effects on avian nest success. Journal of Wildlife Management 73, 287–293.
Review and meta-analysis of camera effects on avian nest success.Crossref | GoogleScholarGoogle Scholar |

Ricklefs, R. E. (1969). An analysis of nesting mortality in birds. Smithsonian Contributions to Zoology 9, 1–48.
An analysis of nesting mortality in birds.Crossref | GoogleScholarGoogle Scholar |

Risbey, D. A., Calver, M. C., and Short, J. (1999). The impact of cats and foxes on the small vertebrate fauna of Heirisson Prong, Western Australia. I. Exploring potential impact using diet analysis. Wildlife Research 26, 621–630.
The impact of cats and foxes on the small vertebrate fauna of Heirisson Prong, Western Australia. I. Exploring potential impact using diet analysis.Crossref | GoogleScholarGoogle Scholar |

Robertson, O., Maron, M., Buckley, Y., House, A., and McAlpine, C. (2014). An ecological paradox: more woodland predators and less artificial nest predation in landscapes colonized by noisy miners. Austral Ecology 39, 255–266.
An ecological paradox: more woodland predators and less artificial nest predation in landscapes colonized by noisy miners.Crossref | GoogleScholarGoogle Scholar |

Roper, J. J. (1992). Nest predation experiments with quail eggs: too much to swallow. Oikos 65, 528–530.
Nest predation experiments with quail eggs: too much to swallow.Crossref | GoogleScholarGoogle Scholar |

Roper, J. J., and Goldstein, R. R. (1997). A test of the Skutch hypothesis: does activity at nests increase nest predation risk? Journal of Avian Biology 28, 111–116.
A test of the Skutch hypothesis: does activity at nests increase nest predation risk?Crossref | GoogleScholarGoogle Scholar |

Rose, T. A., and Banks, P. B. (2007). Impacts of black rats Rattus rattus across an urban/bushland interface at Sydney’s North Head. In ‘Pest or Guest: the Zoology of Overabundance’. (Eds D. Lunney, P. Eby, P. Hutchings, and S. Burgin.) pp. 66–75. (Royal Zoological Society of New South Wales: Sydney.)

Rowley, I. (1973a). Comparative ecology of Australian corvids. VI. Why five species? Wildlife Research 18, 157–169.
Comparative ecology of Australian corvids. VI. Why five species?Crossref | GoogleScholarGoogle Scholar |

Rowley, I., Brooker, M., and Russell, E. (1991). The breeding biology of the splendid fairy-wren Malurus splendens: the significance of multiple broods. Emu 91, 197–221.
The breeding biology of the splendid fairy-wren Malurus splendens: the significance of multiple broods.Crossref | GoogleScholarGoogle Scholar |

Russell, E. M., Brown, R. J., and Brown, M. N. (2004). Life history of the white breasted robin, Eopsaltria georgiana (Petroicidae), in south-western Australia. Australian Journal of Zoology 52, 111–145.
Life history of the white breasted robin, Eopsaltria georgiana (Petroicidae), in south-western Australia.Crossref | GoogleScholarGoogle Scholar |

Ruxton, G. D., and Humphries, S. (2001). Why didn’t I think of that? Avian nest predation and parental activity. Trends in Ecology & Evolution 16, 123.
Why didn’t I think of that? Avian nest predation and parental activity.Crossref | GoogleScholarGoogle Scholar |

Saunders, D. A. (1991). The effect of land clearing on the ecology of Carnaby’s cockatoo and the inland red-tailed black-cockatoo in the wheatbelt of Western Australia. Acta XX Congressus Internationalis Ornithologici 1, 658–665.

Saunders, D. A., Hobbs, R. J., and Margules, C. R. (1991). Biological consequences of ecosystem fragmentation: a review. Conservation Biology 5, 18–32.
Biological consequences of ecosystem fragmentation: a review.Crossref | GoogleScholarGoogle Scholar |

Shine, R. (1991). Strangers in a strange land: ecology of the Australian colubrid snakes. Copeia 1991, 120–131.
Strangers in a strange land: ecology of the Australian colubrid snakes.Crossref | GoogleScholarGoogle Scholar |

Skutch, A. F. (1949). Do tropical birds rear as many young as they can nourish? The Ibis 91, 430–455.
Do tropical birds rear as many young as they can nourish?Crossref | GoogleScholarGoogle Scholar |

Skutch, A. F. (1985). Clutch size, nesting success, and predation on nests of Neotropical birds, reviewed. Ornithological Monographs 36, 575–594.
Clutch size, nesting success, and predation on nests of Neotropical birds, reviewed.Crossref | GoogleScholarGoogle Scholar |

Smith, R. K., Pullin, A. S., Stewart, G. B., and Sutherland, W. J. (2011). Is nest predator exclusion an effective strategy for enhancing bird populations? Biological Conservation 144, 1–10.
Is nest predator exclusion an effective strategy for enhancing bird populations?Crossref | GoogleScholarGoogle Scholar |

Smith, H. M., Dickman, C. R., and Banks, P. B. (2016). Nest predation by commensal rodents in urban bushland remnants. PLoS One 11, e0156180.
Nest predation by commensal rodents in urban bushland remnants.Crossref | GoogleScholarGoogle Scholar |

Soulé, M. E., Bolger, D. T., Alberts, A. C., Wrights, J., Sorice, M., and Hill, S. (1988). Reconstructed dynamics of rapid extinctions of chaparral-requiring birds in urban habitat islands. Conservation Biology 2, 75–92.
Reconstructed dynamics of rapid extinctions of chaparral-requiring birds in urban habitat islands.Crossref | GoogleScholarGoogle Scholar |

Stojanovic, D., Webb, M. H., Alderman, R., Porfirio, L. L., and Heinsohn, R. (2014). Discovery of a novel predator reveals extreme but highly variable mortality for an endangered migratory bird. Diversity & Distributions 20, 1200–1207.
Discovery of a novel predator reveals extreme but highly variable mortality for an endangered migratory bird.Crossref | GoogleScholarGoogle Scholar |

Storr, G. M. (1991). Birds of the south-west division of Western Australia. Records of the Western Australian Museum Supplement 35.

Taylor, L. N. H., and Ford, H. A. (1998). Predation of artificial nests in a fragmented landscape on New England Tablelands of New South Wales. Wildlife Research 25, 587–594.
Predation of artificial nests in a fragmented landscape on New England Tablelands of New South Wales.Crossref | GoogleScholarGoogle Scholar |

Taylor, R. S., Watson, S. J., Nimmo, D. G., Kelly, L. T., Bennett, A. F., and Clarke, M. F. (2012). Landscape-scale effects of fire on bird assemblages: does pyrodiversity beget biodiversity? Diversity & Distributions 18, 519–529.
Landscape-scale effects of fire on bird assemblages: does pyrodiversity beget biodiversity?Crossref | GoogleScholarGoogle Scholar |

Taylor, R. S., Watson, S. J., Bennett, A. F., and Clarke, M. F. (2013). Which fire management strategies benefit biodiversity? A landscape-perspective case study using birds in mallee ecosystems of south-eastern Australia. Biological Conservation 159, 248–256.
Which fire management strategies benefit biodiversity? A landscape-perspective case study using birds in mallee ecosystems of south-eastern Australia.Crossref | GoogleScholarGoogle Scholar |

Thompson, F. R., and Burhans, D. E. (2004). Difference in predators of artificial and real songbird nests: evidence of a bias in artificial nest studies. Conservation Biology 18, 373–380.
Difference in predators of artificial and real songbird nests: evidence of a bias in artificial nest studies.Crossref | GoogleScholarGoogle Scholar |

Tilman, D., May, R. M., Lehman, C. L., and Nowak, M. A. (1994). Habitat destruction and the extinction debt. Nature 371, 65–66.
Habitat destruction and the extinction debt.Crossref | GoogleScholarGoogle Scholar |

Vestjens, W. J. M. (1977a). Reptilian predation on birds and eggs at Lake Cowal, NSW. Emu 77, 36–37.
Reptilian predation on birds and eggs at Lake Cowal, NSW.Crossref | GoogleScholarGoogle Scholar |

Villard, M., and Pärt, T. (2004). Don’t put all your eggs in real nests. Conservation Biology 18, 371–372.
Don’t put all your eggs in real nests.Crossref | GoogleScholarGoogle Scholar |

Watson, D. M. (2011). A productivity-based explanation for woodland bird declines: poorer soils yield less food. Emu 111, 10–18.
A productivity-based explanation for woodland bird declines: poorer soils yield less food.Crossref | GoogleScholarGoogle Scholar |

Willebrand, T., and Marcström, V. (1988). On the danger of using dummy nests to study predation. The Auk 105, 378–379.
On the danger of using dummy nests to study predation.Crossref | GoogleScholarGoogle Scholar |

Woinarski, J. C. Z. (1985). Breeding biology and life history of small insectivorous birds in Australian forests: response to a stable environment? Proceedings of the Ecological Society of Australia 14, 159–168.

Zanette, L. (1997). Predation of an eastern yellow robin nest by a small bird, the brown-headed honeyeater. Australian Bird Watcher 17, 158–159.

Zanette, L. (2002). What do artificial nests tells us about nest predation? Biological Conservation 103, 323–329.
What do artificial nests tells us about nest predation?Crossref | GoogleScholarGoogle Scholar |

Zanette, L., and Jenkins, B. (2000). Nesting success and nest predators in forest fragments: a study using real and artificial nests. The Auk 117, 445–454.
Nesting success and nest predators in forest fragments: a study using real and artificial nests.Crossref | GoogleScholarGoogle Scholar |

Zanette, L., Smith, J. N. M., van Oort, H., and Clinchy, M. (2003). Synergistic effects of food and predators on annual reproductive success in song sparrows. Proceedings of the Royal Society of London. Series B, Biological Sciences 270, 799–803.
Synergistic effects of food and predators on annual reproductive success in song sparrows.Crossref | GoogleScholarGoogle Scholar |