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hl=es&source=gbs_toc_r&cad=4#v=onepage&q&f=false
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4.004
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57. Zaragoza CA, García IF, Perea RG, Poyato EC, Díaz JAR (2019) REUTIVAR: model for
precision fertigation scheduling for olive orchards using reclaimed Water. Water (Switzerland)
11(12). https://doi.org/10.3390/w11122632
C. M. Flores-Cayuela et al.
43. Mérida García A, Fernández García I, Camacho Poyato E, Montesinos Barrios P, Rodríguez
Díaz JA (2018) Coupling irrigation scheduling with solar energy production in a smart irrigation
management system. J Clean Prod 175:670–682. https://doi.org/10.1016/j.jclepro.2017.12.093
44. Odorico PD, Rodriguez-iturbe I (2020) Health of people, health of planet and our responsibility.
Health People Health Planet Our Responsib: 149–163. https://doi.org/10.1007/978-3-030-311
25-4
45. Pfister S, Koehler A, Hellweg S (2009) Assessing the environmental impacts of freshwater
consumption in LCA. Environ Sci Technol 43(11):4098–4104. https://doi.org/10.1021/es8
02423e
46. Sanz BG (1990) Población mundial y recursos alimenticios. Reis:Revista Española de
Investigaciones Sociológicas 49:27–75. https://doi.org/10.2307/40183429
47. Schaap MG (1999) ROSETTA model. J Hydrol 251:163–176
48. Smith M (1992) CROPWAT A computer program for irrigation planning and managment.
FAO. https://books.google.it/books?id=p9tB2ht47NAC&pg=PP1&source=kp_read_button&
redir_esc=y#v=onepage&q&f=false
49. Smith R, Baillie J, McCarthy A, Raine SR, Baillie CP (2010) Review of precision irrigation
technologies and their application. National Centre for …, November
50. UNESCO (2009) The United Nations world water development report 3-water in a changing
world (Paris, France). https://doi.org/10.1142/9781848160682_0002
51. UNESCO (2015) The United Nations world water development report 2015: water for a sustainable world. UNESCO Publishing, Paris. https://doi.org/http://www.unesco.org/new/es/naturalsciences/environment/water/wwap/wwdr/2015-water-for-a-sustainable-world/
52. UNESCO (2019) The United Nations world water development report 2019: leaving no one
behind. In: UNESCO Digital Library. UNESCO. https://doi.org/10.1037//0033-2909.I26.1.78
53. Villalobos FJ, Mateos L, Orgaz F, Fereres E (2009) Fitotecnia: Bases y tecnologías de la producción agrícola (Ediciones). https://books.google.es/books?id=2kS9V8M03HMC&pg=PA91&
hl=es&source=gbs_toc_r&cad=4#v=onepage&q&f=false
54. Vélez Sánchez JE, Intrigliolo DS, Castel Sánches JR (2011) Irrigation scheduling in citrus
based on soil and plant water status measuring sensors
55. WEF (2019) Informe de riesgos mundiales 2019. https://doi.org/10.1017/CBO978110741532
4.004
56. Wanjura DF, Upchurch DR, Mahan JR (2004) Establishing differential irrigation levels using
temperature-time thresholds. Appl Eng Agric 20(2):201–206
57. Zaragoza CA, García IF, Perea RG, Poyato EC, Díaz JAR (2019) REUTIVAR: model for
precision fertigation scheduling for olive orchards using reclaimed Water. Water (Switzerland)
11(12). https://doi.org/10.3390/w11122632
