Referencias

Addabbo, Pia, Mariano Focareta, Salvo Marcuccio, Claudio Votto, and Silvia Liberata Ullo. 2016. “Contribution of Sentinel-2 Data for Applications in Vegetation Monitoring.” ACTA IMEKO 5 (2): 44. https://doi.org/10.21014/acta_imeko.v5i2.352.
Ali, Olivier, Ibrahim Cheddadi, Benoit Landrein, and Yuchen Long. 2023. “Revisiting the Relationship Between Turgor Pressure and Plant Cell Growth.” New Phytologist 238 (1): 62–69. https://doi.org/10.1111/nph.18683.
Arribillaga, Diego. 2013. “Manejo de Pre y Post Cosecha Del Cultivo Del Cerezo (Prunus Avium l.) En Chile Chico, Región de Aysén.” INIA.
Avium, Equipo Técnico. 2021. “Reportes Fenológicos. TP2021-22.” AVIUM.
Bader, Martin K.‐F., Wilhelm Ehrenberger, Rebecca Bitter, Jason Stevens, Ben P. Miller, Jerome Chopard, Simon Rüger, et al. 2014. “Spatio‐temporal Water Dynamics in Mature Banksia Menziesii Trees During Drought.” Physiologia Plantarum 152 (2): 301–15. https://doi.org/10.1111/ppl.12170.
Beck, Hylke E., Niklaus E. Zimmermann, Tim R. McVicar, Noemi Vergopolan, Alexis Berg, and Eric F. Wood. 2018. “Present and Future Köppen-Geiger Climate Classification Maps at 1-Km Resolution.” Scientific Data 5 (1): 180214. https://doi.org/10.1038/sdata.2018.214.
Blanco, Víctor, Ginés Benito Martínez-Hernández, Francisco Artés-Hernández, Pedro José Blaya-Ros, Roque Torres-Sánchez, and Rafael Domingo. 2019. “Water Relations and Quality Changes Throughout Fruit Development and Shelf Life of Sweet Cherry Grown Under Regulated Deficit Irrigation.” Agricultural Water Management 217. https://doi.org/10.1016/j.agwat.2019.02.028.
Blanco, Victor, Roque Torres-Sánchez, Pedro José Blaya-Ros, Alejandro Pérez-Pastor, and Rafael Domingo. 2019. “Vegetative and Reproductive Response of ‘Prime Giant’ Sweet Cherry Trees to Regulated Deficit Irrigation.” Scientia Horticulturae 249. https://doi.org/10.1016/j.scienta.2019.02.016.
Carrasco-Benavides, Marcos, Javiera Antunez-Quilobrán, Antonella Baffico-Hernández, Carlos Ávila-Sánchez, Samuel Ortega-Farías, Sergio Espinoza, John Gajardo, Marco Mora, and Sigfredo Fuentes. 2020. “Performance Assessment of Thermal Infrared Cameras of Different Resolutions to Estimate Tree Water Status from Two Cherry Cultivars: An Alternative to Midday Stem Water Potential and Stomatal Conductance.” Sensors (Switzerland) 20. https://doi.org/10.3390/s20123596.
Carrasco-Benavides, Marcos, Claudia Gonzáles, Eden Tongson, Antonella Baffico-Hénandez, Carlos Ávila-Sánchez, Marcos Mora, and Sigfredo Fuentes. 2022. “Water Status Estimation of Cherry Trees Using Infrared Thermal Imagery Coupled with Supervised Machine Learning Modeling.” Computers and Electronics in Agriculture 200 (September).
Carrasco-Benavides, Marcos, Sergio Espinoza Meza, Jeissy Olguín-Cáceres, Diego Muñoz-Concha, Eduardo von Bennewitz, Carlos Ávila-Sánchez, and Samuel Ortega-Farías. 2020. “Effects of Regulated Post-Harvest Irrigation Strategies on Yield, Fruit Quality and Water Productivity in a Drip-Irrigated Cherry Orchard.” New Zealand Journal of Crop and Horticultural Science 48. https://doi.org/10.1080/01140671.2020.1721544.
Chen, Tianqi, and Carlos Guestrin. 2016. XGBoost: A Scalable Tree Boosting System.” In Proceedings of the 22nd ACM SIGKDD International Conference on Knowledge Discovery and Data Mining, 785–94. San Francisco California USA: ACM. https://doi.org/10.1145/2939672.2939785.
Chile, Dirección Meteorológica de. 2025. “Portal de Servicios Meteorológicos.” https://www.meteochile.gob.cl/PortalDMC-web/index.xhtml.
Cleveland, William S. 1979. “Robust Locally Weighted Regression and Smoothing Scatterplots.” Journal of the American Statistical Association 74 (368): 829–36. https://doi.org/10.1080/01621459.1979.10481038.
Cortes, Corinna, and Vladimir Vapnik. 1995. “Support-Vector Networks.” Machine Learning 20 (3): 273–97. https://doi.org/10.1007/BF00994018.
E, Houghton, Bevandick K, Neilsen D, Hannam K, and Nelson L. 2023. “Effects of Postharvest Deficit Irrigation on Sweet Cherry (Prunus Avium) in Five Okanagan Valley, Canada, Orchards: II. Phenology, Cold Hardiness, Fruit Yield, and Quality.” Canadian Journal of Plant Science 100 (January): 1–17.
Fernández, J. E., C. M. Rodriguez-Dominguez, A. Perez-Martin, U. Zimmermann, S. Rüger, M. J. Martín-Palomo, J. M. Torres-Ruiz, et al. 2011. “Online-Monitoring of Tree Water Stress in a Hedgerow Olive Orchard Using the Leaf Patch Clamp Pressure Probe.” Agricultural Water Management 100 (1): 25–35. https://doi.org/10.1016/j.agwat.2011.08.015.
Garofalo, Simone Pietro, Vincenzo Giannico, Leonardo Costanza, Salem Alhajj Ali, Salvatore Camposeo, Giuseppe Lopriore, Francisco Pedrero Salcedo, and Gaetano Alessandro Vivaldi. 2023. “Prediction of Stem Water Potential in Olive Orchards Using High-Resolution Planet Satellite Images and Machine Learning Techniques.” Agronomy 14 (1): 1. https://doi.org/10.3390/agronomy14010001.
Garreaud, René D., Juan P. Boisier, Roberto Rondanelli, Aldo Montecinos, Hector H. Sepúlveda, and Daniel Veloso-Aguila. 2020. “The Central Chile Mega Drought (2010–2018): A Climate Dynamics Perspective.” International Journal of Climatology 40. https://doi.org/10.1002/joc.6219.
González, Manuel. 2022. “La Inserción Comercial Chilena En China: El Caso de Las Cerezas.” Universidad de Chile.
Greenwell, Brandon, M., and Bradley Boehmke C. 2020. “Variable Importance PlotsAn Introduction to the Vip Package.” The R Journal 12 (1): 343. https://doi.org/10.32614/RJ-2020-013.
Halbritter, Aud H., Amy Eycott, Sabine Reinsch, and Hans De Boeck. 2020. “The Handbook for Standardised Field and Laboratory Measurements in Terrestrial Climate-Change Experiments and Observational Studies (ClimEx).” Methods in Ecology and Evolution 11 (1): 22–37.
Hurlbert, Margot, and Joyeeta Gupta. 2017. “The Adaptive Capacity of Institutions in Canada, Argentina, and Chile to Droughts and Floods.” Regional Environmental Change 17. https://doi.org/10.1007/s10113-016-1078-0.
Jamshidi, Sajad, Shahrokh Zand-Parsa, and Dev Niyogi. 2021. “Assessing Crop Water Stress Index of Citrus Using In-Situ Measurements, Landsat, and Sentinel-2 Data.” International Journal of Remote Sensing 42 (5): 1893–1916. https://doi.org/10.1080/01431161.2020.1846224.
Jiménez-Suancha, Sonia Constanza, Oscar Humberto Álvarado S., and Helber Enrique Balaguera-López. 2015. “Fluorescencia Como Indicador de Estrés En <i>helianthus Annuus</i> l. Una Revisión.” Revista Colombiana de Ciencias Hortícolas 9. https://doi.org/10.17584/rcch.2015v9i1.3753.
Jones, H. G. 2004. “Irrigation Scheduling: Advantages and Pitfalls of Plant-Based Methods.” Journal of Experimental Botany 55 (407): 2427–36. https://doi.org/10.1093/jxb/erh213.
Küpper, Hendrik, Zuzana Benedikty, Filis Morina, Elisa Andresen, Archana Mishra, and Martin Trtílek. 2019. “Analysis of OJIP Chlorophyll Fluorescence Kinetics and QA Reoxidation Kinetics by Direct Fast Imaging.” Plant Physiology 179 (February): 369–81.
Lee, Kang M., Steven M. Driever, Ep Heuvelink, Simon Rüger, Ulrich Zimmermann, Arie De Gelder, and Leo F. M. Marcelis. 2012. “Evaluation of Diel Patterns of Relative Changes in Cell Turgor of Tomato Plants Using Leaf Patch Clamp Pressure Probes.” Physiologia Plantarum 146 (4): 439–47. https://doi.org/10.1111/j.1399-3054.2012.01637.x.
Linke, Manfred, Werner B. Herppich, and Martin Geyer. 2010. “Green Peduncles May Indicate Postharvest Freshness of Sweet Cherries.” Postharvest Biology and Technology 58. https://doi.org/10.1016/j.postharvbio.2010.05.014.
López-Olivari, R., and F. Ortega-Klose. 2021. “Response of Red Clover to Deficit Irrigation: Dry Matter Yield, Populations, and Irrigation Water Use Efficiency in Southern Chile.” Irrigation Science 39. https://doi.org/10.1007/s00271-020-00693-0.
Marsal, Jordi, G. Lopez, J. del Campo, M. Mata, A. Arbones, and J. Girona. 2010. “Postharvest Regulated Deficit Irrigation in ’Summit’ Sweet Cherry: Fruit Yield and Quality in the Following Season.” Irrigation Science 28. https://doi.org/10.1007/s00271-009-0174-z.
McCutchan, Harold, and K. A. Shackel. 2019. “Stem-Water Potential as a Sensitive Indicator of Water Stress in Prune Trees (Prunus Domestica l. Cv. French).” Journal of the American Society for Horticultural Science 117. https://doi.org/10.21273/jashs.117.4.607.
Meinzer, Frederick C., David R. Woodruff, Danielle E. Marias, Duncan D. Smith, Katherine A. McCulloh, Ava R. Howard, and Alicia L. Magedman. 2016. “Mapping ‘Hydroscapes’ Along the Iso‐ to Anisohydric Continuum of Stomatal Regulation of Plant Water Status.” Edited by Josep Penuelas. Ecology Letters 19 (11): 1343–52. https://doi.org/10.1111/ele.12670.
Microsoft Open Source, Matt McFarland, Rob Emanuele, Dan Morris, and Tom Augspurger. 2022. “Microsoft/PlanetaryComputer: October 2022.” Zenodo. https://zenodo.org/record/7261897.
Moreno, González, Perales Vela, and Martha O Salcedo Alvarez. 2008. “LA FLUORESCENCIA DE LA CLOROFILA a COMO HERRAMIENTA EN LA INVESTIGACIÓN DE EFECTOS TÓXICOS EN EL APARATO FOTOSINTÉTICO DE PLANTAS y ALGAS.” Revista de Educación Bioquímica 27.
Moriana, A., D. Pérez-López, M. H. Prieto, M. Ramírez-Santa-Pau, and J. M. Pérez-Rodriguez. 2012. “Midday Stem Water Potential as a Useful Tool for Estimating Irrigation Requirements in Olive Trees.” Agricultural Water Management 112 (September): 43–54. https://doi.org/10.1016/j.agwat.2012.06.003.
Naor, A. 2000. MIDDAY STEM WATER POTENTIAL AS A PLANT WATER STRESS INDICATOR FOR IRRIGATION SCHEDULING IN FRUIT TREES.” Acta Horticulturae, no. 537 (October): 447–54. https://doi.org/10.17660/ActaHortic.2000.537.52.
Pechan, Paul, Fabian Obster, Marchioro Linda, and Bohle Heidi. 2023. “Climate Change Impact on Fruit Farm Operations in Chile and Tunisia.climate Change Impact on Fruit Farm Operations in Chile and Tunisia.” AgriRxiv, January.
Peña-Guerrero, M. D., A. Nauditt, C. Muñoz-Robles, L. Ribbe, and F. Meza. 2020. “Drought Impacts on Water Quality and Potential Implications for Agricultural Production in the Maipo River Basin, Central Chile.” Hydrological Sciences Journal 65. https://doi.org/10.1080/02626667.2020.1711911.
Savchik, Peter, Mallika Nocco, and Isaya Kisekka. 2025. “Mapping Almond Stem Water Potential Using Machine Learning and Multispectral Imagery.” Irrigation Science 43 (1): 105–20. https://doi.org/10.1007/s00271-024-00932-8.
Scholander, P. F., H. T. Hammel, E. A. Hemmingsen, and E. D. Bradstreet. 1964. HYDROSTATIC PRESSURE AND OSMOTIC POTENTIAL IN LEAVES OF MANGROVES AND SOME OTHER PLANTS.” Proceedings of the National Academy of Sciences 52 (1): 119–25. https://doi.org/10.1073/pnas.52.1.119.
Tin Kam Ho. 1995. “Random Decision Forests.” In Proceedings of 3rd International Conference on Document Analysis and Recognition, 1:278–82. Montreal, Que., Canada: IEEE Comput. Soc. Press. https://doi.org/10.1109/ICDAR.1995.598994.
Tyree, M. T., and H. T. Hammel. 1972. “The Measurement of the Turgor Pressure and the Water Relations of Plants by the Pressure-Bomb Technique.” Journal of Experimental Botany 23 (1): 267–82. https://doi.org/10.1093/jxb/23.1.267.
Yoon, Tae Myung, and Hanno Richter. 1990. “Seasonal Changes in Stomatal Responses of Sweet Cherry and Plum to Water Status in Detached Leaves.” Physiologia Plantarum 80. https://doi.org/10.1111/j.1399-3054.1990.tb05673.x.
Zhang, Tianxiang, Jinya Su, Cunjia Liu, Wen-Hua Chen, Hui Liu, and Guohai Liu. 2017. “Band Selection in Sentinel-2 Satellite for Agriculture Applications.” In 2017 23rd International Conference on Automation and Computing (ICAC), 1–6. Huddersfield, United Kingdom: IEEE. https://doi.org/10.23919/IConAC.2017.8081990.