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J.M. Hyman 1 ; F. Milner 2 ; J. Saldaña 3
@article{MMNP_2014_9_2_a0, author = {J.M. Hyman and F. Milner and J. Salda\~na}, title = {Preface}, journal = {Mathematical modelling of natural phenomena}, pages = {1--3}, publisher = {mathdoc}, volume = {9}, number = {2}, year = {2014}, doi = {10.1051/mmnp/20149201}, language = {en}, url = {http://geodesic.mathdoc.fr/articles/10.1051/mmnp/20149201/} }
J.M. Hyman; F. Milner; J. Saldaña. Preface. Mathematical modelling of natural phenomena, Tome 9 (2014) no. 2, pp. 1-3. doi : 10.1051/mmnp/20149201. http://geodesic.mathdoc.fr/articles/10.1051/mmnp/20149201/
[1] J. R. Statist. Soc. A 1988 66 93
[2]
[3] O. Diekmann, J.A.P. Heesterbeek, T. Britton, Mathematical tools for understanding infectious diseases dynamics, Princeton University Press, Princeton, 2013.
[4] Math. Model. Nat. Phenom. 2014 153 160
[5] Sex. Transm. Infect. 2002 i145 i151
,[6] Math. Model. Nat. Phenom. 2014 108 120
,[7] J. Theor. Biol. 2005 71 81
, , , ,[8] Math. Model. Nat. Phenom. 2014 161 177
, , , ,[9] Math. Model. Nat. Phenom. 2014 4 42
,[10] Math. Model. Nat. Phenom. 2014 43 57
, ,[11] Math. Model. Nat. Phenom. 2014 58 81
, ,[12] Math. Model. Nat. Phenom. 2014 82 88
[13] Science 2003 1961 1966
[14] Math. Model. Nat. Phenom. 2014 121 135
, ,[15] Math. Model. Nat. Phenom. 2014 136 152
, , ,[16] Math. Model. Nat. Phenom. 2014 89 107
,[17] Sex. Transm. Dis. 1978 51 56
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