Population dynamics
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'''Population dynamics''' is the study of marginal and long-term changes in the numbers, individual weights and age composition of individuals in one or several [[population]]s, and [[biology|biological]] and [[The environment|environment]]al processes influencing those changes. Population dynamics also attempts to study topics such as [[aging population]]s or [[population decline]].
==History==
Population dynamics has traditionally been the dominant branch of [[mathematical biology]], which has a history of more than 210 years, although more recently the scope of [[mathematical biology]] has greatly expanded. The first principle of population dynamics is widely regarded as the exponential law of [[Malthus]], as modelled by the [[Malthusian growth model]]. The early period was dominated by [[demography|demographic]] studies such as the work of [[Benjamin Gompertz]] and [[Pierre François Verhulst]] in the early 19th century, who refined and adjusted the Malthusian demographic model.
A more general model formulation was proposed by [[F.J. Richards]] in 1959, by which the models of Gompertz, Verhulst and also [[Ludwig von Bertalanffy]] are covered as special cases of the general formulation.
The [[computer game]] [[SimCity]] and the [[MMORPG]] [[Ultima Online]], among others, tried to [[computer simulation|simulate]] some of these population dynamics.
==Fisheries and wildlife management==
{{Main|Population dynamics of fisheries}}
In [[fisheries]] and [[wildlife management]], population is affected by three dynamic rate functions.
*Natality or [[birth rate]], often recruitment, which means reaching a certain size or reproductive stage. Usually refers to the age a fish can be caught and counted in nets
*[[Growth rate]], which measures the growth of individuals in size and length. More important in fisheries, where population is often measured in biomass.
*[[Mortality rate|Mortality]], which includes harvest mortality and natural mortality. Natural mortality includes non-human predation, disease and old age.
If N<sub>1</sub> is the number of individuals at time 1 then
::::N<sub>1</sub> = N<sub>0</sub> + B - D + I - E
where N<sub>0</sub> is the number of individuals at time 0, B is the number of individuals born, D the number that died, I the number that immigrated, and E the number that emigrated between time 0 and time 1.
If we measures these rates over many time intervals, we can determine how a population's density changes over time. Immigration and emigration are present, but are usually not measured.
All of these are measured to determine the harvestable surplus, which is the number of individuals that can be harvested from a population without affecting long term stability, or average population size. The harvest within the harvestable surplus is considered compensatory mortality, where the harvest deaths are substituting for the deaths that would occur naturally. Harvest beyond that is additive mortality, harvest in addition to all the animals that would have died naturally. These terms are not the universal good and evil of population management, for example, in deer, the DNR are trying to reduce deer population size overall to an extent, since hunters have reduced buck competition and increased deer population unnaturally.
==Intrinsic rate of increase==
The rate at which a population increases in size, i.e. the change in population size over a particular period of time is known as the ''intrinsic rate of increase''. The concept is commonly used in insect population biology to determine how environmental factors affect the rate at which pest populations increase (e.g. Jahn et al. 2005).
==See also==
<div style="-moz-column-count:3; column-count:3;">
*[[Lotka–Volterra equation]]
*[[Minimum viable population]]
*[[Nicholson-Bailey model]]
*[[Nurgaliev's law]]
*[[Population cycle]]
*[[Population ecology]]
*[[Population genetics]]
*[[Population modeling]]
*[[Ricker model]]
*[[Societal collapse]]
*[[System dynamics]]
*[[Population dynamics of fisheries]]
</div>
==References==
*Introduction to Social Macrodynamics: Compact Macromodels of the World System Growth by Andrey Korotayev, Artemy Malkov, and Daria Khaltourina. ISBN 5-484-00414-4 [http://urss.ru/cgi-bin/db.pl?cp=&page=Book&id=34250&lang=en&blang=en&list=14]
*Jahn, GC, LP Almazan, and J Pacia. 2005. Effect of nitrogen fertilizer on the intrinsic rate of increase of the rusty plum aphid, ''Hysteroneura setariae'' (Thomas) (Homoptera: Aphididae) on rice (''Oryza sativa'' L.). Environmental Entomology 34 (4): 938-943. [http://docserver.esa.catchword.org/deliver/cw/pdf/esa/freepdfs/0046225x/v34n4s26.pdf]
* [[Peter Turchin|Turchin, P.]] 2003. Complex Population Dynamics: a Theoretical/Empirical Synthesis. Princeton, NJ: Princeton University Press.
* Weiss, V. 2007. The population cycle drives human history - from a eugenic phase into a dysgenic phase and eventual collapse. The Journal of Social, Political and Economic Studies 32: 327-358 [http://www.jspes.org/fall2007_weiss.html]
==External links==
* [http://iugo-cafe.org/greenboxes GreenBoxes code sharing network]. Greenboxes (Beta) is a repository for open-source population modelling and PVA code. Greenboxes allows users an easy way to share their code and to search for others shared code.
[[Category:Population ecology]]
[[Category:Fisheries science]]
[[Category:Population]]
[[Category:Demography]]
[[de:Populationsdynamik]]
[[et:Populatsioonidünaamika]]
[[es:Dinámica de poblaciones]]
[[fr:Dynamique des populations]]
[[it:Dinamica delle popolazioni]]
[[hu:Populációdinamika]]
[[no:Populasjonsdynamikk]]
[[pt:Dinâmica populacional]]
[[sv:Populationsdynamik]]
[[uk:Популяційна динаміка]]