Publications
Found 38 results
Author Title [ Type
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Aggregation and stability in metapopulation models. American Naturalist. :41–58.
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1992. Conservation decisions under pressure: Lessons from an exercise in rapid response to wildlife disease. Conservation Science and Practice. 2(1)
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2020. Conservation decisions under pressure: Lessons from an exercise in rapid response to wildlife disease. Conservation Science and Practice. 2(1)
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2020. Conservation decisions under pressure: Lessons from an exercise in rapid response to wildlife disease. Conservation Science and Practice. 2(1)
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2020. Cryptic diversity of a widespread global pathogen reveals expanded threats to amphibian conservation. Proceedings of the National Academy of Sciences. 116(41)
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2019. Does Host Self-Regulation Increase the Likelihood of Insect-Pathogen Population Cycles? The American Naturalist. 153:228–235.
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1999. The dynamics of insect-pathogen interactions. Theoretical approaches to biological control. :307–326.
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1999. The dynamics of insect-pathogen interactions in seasonal environments. Theoretical Population Biology. 50:149–177.
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1996. The dynamics of insect-pathogen interactions in stage-structured populations. American Naturalist. :855–887.
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1995. The dynamics of insect–pathogen interactions. Ecology of infectious diseases in natural populations. Cambridge University Press, Cambridge, UK. :295–326.
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1995. Emerging fungal threats to animal, plant and ecosystem health. Nature. 484:186–194.
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2012. Energy budgets for tadpoles approaching metamorphosis. Ecological Modelling. 436
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2020. Extreme drought, host density, sex, and bullfrogs influence fungal pathogen infection in a declining lotic amphibian. Ecosphere. 8(3)
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2017. A general consumer-resource population model. Science. 349:854–857.
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2015. Integrating the effects of ocean acidification across functional scales on tropical coral reefs. BioScience. 66(5):350-362.
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2016. .
2020. Mechanisms underlying host persistence following amphibian disease emergence determine appropriate management strategies. Ecology Letters. 24(1)
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2021. Microparasite group report: persistence of microparasites in natural populations. Ecology of infectious diseases in natural populations (eds BT Grenfell & AP Dobson). Publications of the Newton Institute. :123–143.
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1995. Microparasite group report: persistence of microparasites in natural populations. Ecology of infectious diseases in natural populations (eds BT Grenfell & AP Dobson). Publications of the Newton Institute. :123–143.
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1995. A model of insect—pathogen dynamics in which a pathogenic bacterium can also reproduce saprophytically. Proceedings of the Royal Society of London B: Biological Sciences. 266:233–240.
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1999. A model of insect—pathogen dynamics in which a pathogenic bacterium can also reproduce saprophytically. Proceedings of the Royal Society of London B: Biological Sciences. 266:233–240.
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1999. A model of Nucleopolyhedrovirus (NPV) population genetics applied to co–occlusion and the spread of the few Polyhedra (FP) phenotype. Proceedings of the Royal Society of London B: Biological Sciences. 264:315–322.
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1997. Models of intermediate complexity in insect-pathogen interactions: population dynamics of the microsporidian pathogen, Nosema pyrausta, of the European corn borer, Ostrinia nubilalis. Parasitology. 111:S71–S89.
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1995. Occurrence of Batrachochytrium dendrobatidis in anurans of the Mediterranean region of Baja California, México. Diseases of Aquatic Organisms. 127(3)
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2018. The population dynamics of pathogens that control insect outbreaks. Journal of theoretical biology. 176:125–136.
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1995.