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Wallach, D., Nissanka, S. P., Karunaratne, A. S., Weerakoon, W. M. W., Thorburn, P. J., Boote, K. J., et al. (2016). Accounting for both parameter and model structure uncertainty in crop model predictions of phenology: A case study on rice. European Journal of Agronomy, .
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Mansouri, M., Dumont, B., & Destain, M. - F. (2012). Bayesian methods for predicting LAI and soil moisture..
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Manevski, K., Børgesen, D., Andersen, N., & Olesen, J. E. (2014). Maize production and nitrogen dynamics under current and warmer climate in Denmark: simulations with the DAISY model..
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Mansouri, M. (2013). Modeling and Prediction of Time-Varying Environmental Data Using Advanced Bayesian Methods. In P. Masegosa, C. Villacorta, S. Cruz-Corona, M. Garcia-Cascales, J. Lamata, & A. Verdegay (Eds.), (pp. 112–137). Exploring Innovative and Successful Applications of Soft Computing. Hershey PA: IGI Global.
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Maggio, A., De Pascale, S., Orsini, F., & Barbieri, G. Addressing cultivation practices and nutritional quality of tomato crops to improve the sustainability of organic farming systems.
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