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M
E. Braudeaua and Mohtar, R. H., Modeling the soil system: Bridging the gap between pedology and soil–water physics, Global and Planetary Change, vol. 67, no. 1-2, pp. 51-61, 2009.
M. Kariuki, Modelling the impacts of various thinning intensities on tree growth and survival in a mixed species eucalypt forest in central Gippsland, Victoria, Australia, Forest Ecology and Management, vol. 256, no. 12, pp. 2007-2017, 2008.
P. Wingo, Brookes, A., and Bolte, J., Modular and spatially explicit: A novel approach to system dynamics, Environmental Modelling & Software, vol. 94, pp. 48 - 62, 2017.
Y. H. Chew, Wenden, B., Flis, A., Mengin, V., Taylor, J., Davey, C. L., Tindal, C., Thomas, H., Ougham, H. J., de Reffye, P., Stitt, M., Williams, M., Muetzelfeldt, R., Halliday, K. J., and Millar, A. J., Multiscale digital Arabidopsis predicts individual organ and whole-organism growth, Proceedings of the National Academy of Sciences, 2014.
A. Peringer, Schulze, K. A., Stupariu, I., Stupariu, M. - S., Rosenthal, G., Buttler, A., and Gillet, F., Multi-scale feedbacks between tree regeneration traits and herbivore behavior explain the structure of pasture-woodland mosaics, Landscape Ecology, vol. 31, no. 4, pp. 913 - 927, 2016.
R. Boumans, Roman, J., Altman, I., and Kaufman, L., The Multiscale Integrated Model of Ecosystem Services (MIMES): Simulating the interactions of coupled human and natural systems, Ecosystem Services, vol. 12, pp. 30 - 41, 2015.
M. E. G. C. S. R. H. N. Braudeau, E. and Martin, P., A multi-scale ''soil water structure'' model based on the pedostructure concept, Hydrol. Earth Syst. Sci. Discuss., vol. 6, no. 1, pp. 1111-1163, 2009.
R. Filgueira, Strople, L. C., Strohmeier, T., Rastrick, S., and Strand, Ø., Mussels or tunicates: That is the question. Evaluating efficient and sustainable resource use by low-trophic species in aquaculture settings, Journal of Cleaner Production, vol. 231, pp. 132 - 143, 2019.
S
A. E. Rizzoli, Donatelli, M., Athanasiadis, I. N., Villa, F., and Huber, D., Semantic links in integrated modelling frameworks, Mathematics and Computers in Simulation, vol. 78, no. 2-3, pp. 412-423, 2008.
J. Fang, Peringer, A., Stupariu, M. - S., Pătru-Stupariu, I., Buttler, A., Golay, F., and Porté-Agel, F., Shifts in wind energy potential following land-use driven vegetation dynamics in complex terrain, Science of The Total Environment, vol. 639, pp. 374 - 384, 2018.
R. I. Muetzelfeldt and Massheder, J., The Simile visual modelling environment., European Journal of Agronomy, vol. 18, pp. 345-358 , 2003.
J. V. C. A. C. K. Information, Spatially-explicit competition indices and the analysis of mixed-species plantings with the Simile modelling environment , Forest Ecology and Management, vol. 233, no. 2-3, pp. 295-302, 2006.
T. O. Randhir and Tsvetkova, O., Spatiotemporal dynamics of landscape pattern and hydrologic process in watershed systems, Journal of Hydrology, vol. 404, no. 1-2, pp. 1 - 12, 2011.
D. R. Brown, A spatiotemporal model of shifting cultivation and forest cover dynamics, Environment and Development Economics 13: , vol. 13, p. 28, 2008.
R. Filgueira, Guyondet, T., Comeau, L. A., and Grant, J., Storm-induced changes in coastal geomorphology control estuarine secondary productivity, Earth's Future, p. n/a - n/a, 2014.
S. D. A. L. S. Vamvakeridou-Lyroudiaa, System Dynamics Modelling: A Tool for Participatory Simulation of Complex Water Systems within AquaStress, International Congress on Environmental Modelling and Software Meeting 2008. 2008.
A. A. Voinov, Systems Science and Modeling for Ecological Economics. Academic Press, 2008, p. 432.

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