Abstract
In spite ofmedical breakthroughs, the emergence of pathogens continues to pose threats to both human and animal populations.We present candidate approaches for anticipating disease emergence prior to large-scale outbreaks. Through use of ideas fromthe theories of dynamical systems and stochastic processeswe develop approaches which are not specific to a particular disease system or model, but instead have general applicability. The indicators of disease emergence detailed in this paper can be classified into two parallel approaches: a set of early-warning signals based around the theory of critical slowing down and a likelihood-based approach. To test the reliability of these two approaches we contrast theoretical predictions with simulated data. We find good support for our methods across a range of different model structures and parameter values.
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Brett, T. S., Drake, J. M., & Rohani, P. (2017). Anticipating the emergence of infectious diseases. Journal of the Royal Society Interface, 14(132). https://doi.org/10.1098/rsif.2017.0115
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