- حیدری مطلق، آ.، نصرالهی, ع،ح.، ویسی، ش.، و شریفی پور، م.، 1401. تاثیر بهکارگیری الگوریتمهای مختلف دمای سطح زمین در برآورد مقادیر تبخیر و تعرق واقعی. تحقیقات آب و خاک ایران، جلد 53، شماره 12، ص 2701-2720.
- گلهبان، ا.، حمزه، س.، ویسی، ش.، و علویپناه, س، ک.، 1401. برآورد تبخیروتعرق مرجع روزانه با استفاده از دادههای سنجش از دور (مطالعة موردی: استان سیستان و بلوچستان). نشریه سنجش از دور و GIS ایران, جلد 14، شماره 2، ص 50-37.
- Allen, R.G., Pereira, L.S., Raes, D., Smith, M., 1998. Crop Evapotranspiration: Guidelines for Computing Crop Water Requirements. Irrigation and Drainage Paper 56. Food and Agriculture Organization of the United Nations, Rome, p. 300. Paper 56.
- Allen, R.G., Morton, C.G., Kamble, B., Kilic, A., Huntington, J.L., Thau, D., Gorelick, N., Erickson, T.A., Moore, R., Trezza, R., Ratcliffe, I., Robison, C.W., 2015. EEFlux: a Landsat-based evapotranspiration mapping tool on the google earth engine. In: Presented at the ASABE/IA Irrigation Symposium: Emerging Technologies for Sustainable Irrigation - A Tribute to the Career of Terry Howell. Long Beach, CA. https://doi.org/10.13031/irrig.20152143511.
- Barideh, R., Veysi, S., Ebrahimipak, N. and Davatgar, N., 2022. The challenge of reference evapotranspiration between the WaPOR data set and geostatistical methods. Irrigation and Drainage, 71(5), pp.1268-1279. https://doi.org/10.1002/ird.2738.
- Balsamo, G., Beljaars, A., Scipal, K., Viterbo, P., van den Hurk, B., Hirschi, M., & Betts, A. K. 2009. A revised hydrology for the ECMWF model: Verification from field site to terrestrial water storage and impact in the Integrated Forecast System. Journal of hydrometeorology, 10(3), 623-643.
- Blankenau, P. A., Kilic, A., & Allen, R. 2020. An evaluation of gridded weather data sets for the purpose of estimating reference evapotranspiration in the United States. Agricultural Water Management, 242, 106376.
- FAO, 2020. WaPOR V2 Quality Assessment - Technical Report on the Data Quality of the WaPOR database Version 2, 2020, FAO, Rome. http://www.fao.org/3/cb2208en/cb2208en.pdf
- Ebita, A., Kobayashi, S., Ota, Y., Moriya, M., Kumabe, R., Onogi, K., Harada, Y., Yasui, S., Miyaoka, K., Takahashi, K., Kamahori, H., Kobayashi, C., Endo, H., Soma, M., Oikawa, Y., Ishimizu, T., 2011. The Japanese 55-year reanalysis “JRA-55”: an Interim Report. Sci. Online Lett. Atmos. 7, 149–152. https://doi.org/10.2151/ sola.2011-038.
- Gibson, J.K., Kållberg, P., Uppala, S., Hernandez, A., Nomura, A., Serrano, E., 1999. ERA-15 Description. ECMWF Re-Analysis Project Report Series, 1.
- Hersbach, H., Bell, B., Berrisford, P., Hirahara, S., Hor´anyi, A., Mu˜noz-Sabater, J., Nicolas, J., Peubey, C., Radu, R., Schepers, D., Simmons, A., Soci, C., Abdalla, S., Abellan, X., Balsamo, G., Bechtold, P., Biavati, G., Bidlot, J., Bonavita, M., de Chiara, G., Dahlgren, P., Dee, D., Diamantakis, M., Dragani, R., Flemming, J., Forbes, R., Fuentes, M., Geer, A., Haimberger, L., Healy, S., Hogan, R.J., H´olm, E., Janiskov´a, M., Keeley, S., Laloyaux, P., Lopez, P., Lupu, C., Radnoti, G., de Rosnay, P., Rozum, I., Vamborg, F., Villaume, S., Th´epaut, J.N., 2020. The ERA5 global reanalysis. Q. J. R. Meteorol. Soc. 146, 1999–2049. https://doi.org/10.1002/ qj.3803.
- Jensen, M.E., 1968. Water Consumption by Agricultural Plants. In: Kozlowski, T.T. (Ed.), Plant Water Consumption and Response. Water Deficits and Plant Growth, II. Academic Press, New York, pp. 1–22 (Chapter 1).
- Kalluri, S., Gilruth, P., Bergman, R., 2003. The potential of remote sensing data for decision makers at the state, local and tribal level: experiences from NASA’s Synergy program. Environ. Sci. Policy 6, 487–500.
- Kalnay, E., Kanamitsu, M., Kistler, R., Collins, W., Deaven, D., Gandin, L., et al. (1996). The NCEP/NCAR 40-year reanalysis project. Bulletin of the American Meteorological Society, 77(3), 437–471.
- Kanamitsu, M., Ebisuzaki, W., Woollen, J., Yang, S.-K., Hnilo, J.J., Fiorino, M., Potter, G. L., 2002. NCEP–DOE AMIP-II reanalysis (R-2). Bull. Am. Meteorol. Soc. 83, 1631–1644. https://doi.org/10.1175/BAMS-83-11-1631.
- Lorenz, C., &Kunstmann, H. 2012. The hydrological cycle in three state-of-the-art reanalysis: Inter comparison and performance analysis. Journal of Hydrometeorology, 13(5), 1397-1420.
- Martins, D.S., Paredes, P., Raziei, T., Pires, C., Cadima, J., Pereira, L.S., 2017. Assessing reference evapotranspiration estimation from reanalysis weather products. An application to the Iberian Peninsula. Int. J. Climatol. 37, 2378–2397. https://doi.org/ 10.1002/joc.4852.
- Nouri, M., & Homaee, M. 2022. Reference crop evapotranspiration for data-sparse regions using reanalysis products. Agricultural Water Management, 262, 107319.
- Paredes, P., Martins, D.S., Pereira, L.S., Cadima, J., Pires, C., 2018. Accuracy of daily estimation of grass reference evapotranspiration using ERA-Interim reanalysis products with assessment of alternative bias correction schemes. Agric. Water Manag. 210, 340–353. https://doi.org/10.1016/j.agwat.2018.08.003.
- Rienecker, M.M., Suarez, M.J., Gelaro, R., Todling, R., Bacmeister, J., Liu, E., Bosilovich, M.G., Schubert, S.D., Takacs, L., Kim, G., Bloom, S., Chen, J., Collins, D., Conaty, A., da Silva, A., Gu, W., Joiner, J., Koster, R.D., Lucchesi, R., Molod, A., Owens, T., Pawson, S., Pegion, P., Redder, C.R., Reichle, R., Robertson, F.R., Ruddick, A.G., Sienkiewicz, M., Woollen, J., 2011. MERRA: NASA’s Modern-Era Retrospective Analysis for Research and Applications. J. Clim. 24 (14), 3624–364 https://doi.org/10.1175/JCLI-D-11-00015.1.
- Rodell, M., 2020. LDAS Land Data Assimilation Systems. https://ldas.gsfc.nasa.gov/nl das/.
- Tarek, M., Brissette, F. P., & Arsenault, R. 2020. Evaluation of the ERA5 reanalysis as a potential reference dataset for hydrological modelling over North America. Hydrology and Earth System Sciences, 24(5), 2527-2544.
- Thomas, S. R., Nicolau, S., Martínez‐Alvarado, O., Drew, D. J., & Bloomfield, H. C. 2021. How well do atmospheric reanalyses reproduce observed winds in coastal regions of Mexico? Meteorological Applications, 28(5), e2023.
- Uppala, S.M., Kållberg, P.W., Simmons, A.J., Andrae, U., da Costa Bechtold, V., Fiorino, M., Gibson, J.K., Haseler, J., Hernandez, A., Kelly, G.A., Li, X., Onogi, K., Saarinen, S., Sokka, N., Allan, R.P., Andersson, E., Arpe, K., Balmaseda, M.A., Beljaars, A.C.M., van de Berg, L., Bidlot, J., Bormann, N., Caires, S., Chevallier, F., Dethof, A., Dragosavac, M., Fisher, M., Fuentes, M., Hagemann, S., H´olm, E., Hoskins, B.J., Isaksen, L., Janssen, P.A.E.M., Jenne, R., McNally, A.P., Mahfouf, J.F., Morcrette, J.J., Rayner, N.A., Saunders, R.W., Simon, P., Sterl, A., Trenberth, K.E., Untch, A., Vasiljevic, D., Viterbo, P., Woollen, J., 2005. The ERA-40 re-analysis. Q. J. R. Meteorol. Soc. https://doi.org/10.1256/qj.04.176.
- Wilhite, D.A., 2000. Drought as a Natural Hazard: Concepts and Definitions.Wright, J.L., Jensen, M.E., 1972. Peak water requirements of crops in southern Idaho. Proc. Am. Soc. Civ. Eng. J. Irrig. Drain. Div. 98 (IR2), 193–201.
- Xin, Y., Lu, N., Jiang, H., Liu, Y., & Yao, L. 2021. Performance of ERA5 reanalysis precipitation products in the Guangdong-Hong Kong-Macao greater Bay Area, China. Journal of Hydrology, 602, 126791.
|