A New Low-Cost Device Based on Thermal Infrared Sensors for Olive Tree Canopy Temperature Measurement and Water Status Monitoring
暂无分享,去创建一个
José Manuel Andújar Márquez | Juan Manuel Ponce | Arturo Aquino | Miguel Noguera | Borja Millán | Juan José Pérez-Paredes | A. Aquino | J. Márquez | B. Millán | Miguel Noguera | J. M. Ponce
[1] Diego L. Valera,et al. Determining the emissivity of the leaves of nine horticultural crops by means of infrared thermography , 2012 .
[2] John M. Norman,et al. Automated measurement of canopy stomatal conductance based on infrared temperature , 2009 .
[3] Matthew Bardeen,et al. Selecting Canopy Zones and Thresholding Approaches to Assess Grapevine Water Status by Using Aerial and Ground-Based Thermal Imaging , 2016, Remote. Sens..
[4] S. Tyerman,et al. Computational water stress indices obtained from thermal image analysis of grapevine canopies , 2012, Irrigation science.
[5] David J. Connor,et al. Structure, management and productivity of hedgerow olive orchards: A review , 2014 .
[6] Martha C. Anderson,et al. Use of Landsat thermal imagery in monitoring evapotranspiration and managing water resources , 2012 .
[7] F. Villalobos,et al. Stomatal and photosynthetic responses of olive (Olea europaea L.) leaves to water deficits , 2002 .
[8] Manfred Stoll,et al. Use of infrared thermography for monitoring stomatal closure in the field: application to grapevine. , 2002, Journal of experimental botany.
[9] Pablo J. Zarco-Tejada,et al. Detection of water stress in an olive orchard with thermal remote sensing imagery , 2006 .
[10] Hamlyn G. Jones,et al. Use of infrared thermometry for estimation of stomatal conductance as a possible aid to irrigation scheduling , 1999 .
[11] Samuel Ortega-Farías,et al. Plant water stress detection based on aerial and terrestrial infrared thermography: a study case from vineyard and olive orchard , 2016 .
[12] Pablo J. Zarco-Tejada,et al. Applicability and limitations of using the crop water stress index as an indicator of water deficits in citrus orchards , 2014 .
[13] Jiang Bian,et al. Simplified Evaluation of Cotton Water Stress Using High Resolution Unmanned Aerial Vehicle Thermal Imagery , 2019, Remote. Sens..
[14] E. Nicolás,et al. Seasonal evolution of diffusional limitations and photosynthetic capacity in olive under drought. , 2007, Plant, cell & environment.
[15] Juan Fernández-Novales,et al. Vineyard water status assessment using on-the-go thermal imaging and machine learning , 2018, PloS one.
[16] Manuel Perez-Ruiz,et al. Assessing a crop water stress index derived from aerial thermal imaging and infrared thermometry in super-high density olive orchards , 2017 .
[17] Pablo J. Zarco-Tejada,et al. Vineyard irrigation scheduling based on airborne thermal imagery and water potential thresholds , 2016 .
[18] Paul R. Petrie,et al. The accuracy and utility of a low cost thermal camera and smartphone-based system to assess grapevine water status , 2019, Biosystems Engineering.
[19] H. Jones. Application of Thermal Imaging and Infrared Sensing in Plant Physiology and Ecophysiology , 2004 .
[20] K. Moffett,et al. Remote Sens , 2015 .
[21] Jeffrey C. Stark,et al. Use of canopy temperature measurements as a screening tool for drought tolerance in spring wheat , 1999 .
[22] Yafit Cohen,et al. Evaluating water stress in irrigated olives: correlation of soil water status, tree water status, and thermal imagery , 2009, Irrigation Science.
[23] D. Doohan,et al. Are small and medium scale produce farms inherent food safety risks , 2016 .
[24] J. Flexas,et al. UAVs challenge to assess water stress for sustainable agriculture , 2015 .
[25] S. Mayr,et al. Shoot hydraulic characteristics, plant water status and stomatal response in olive trees under different soil water conditions , 2013, Plant and Soil.
[26] José M. Torres-Ruiz,et al. A regulated deficit irrigation strategy for hedgerow olive orchards with high plant density , 2013, Plant and Soil.
[27] Julio Molleda,et al. Infrared Thermography for Temperature Measurement and Non-Destructive Testing , 2014, Sensors.
[28] H. Medrano,et al. Validation of thermal indices for water status identification in grapevine , 2014 .
[29] Ray D. Jackson,et al. Extending the "degree day" concept of plant phenological development to include water stress effects , 1978 .
[30] H. Jones. Plants and Microclimate: Other environmental factors: wind, altitude, climate change and atmospheric pollutants , 2013 .
[31] J. E. Fernández,et al. Understanding olive adaptation to abiotic stresses as a tool to increase crop performance , 2014 .
[32] M. Pérez-Ruiz,et al. A cost-effective canopy temperature measurement system for precision agriculture: a case study on sugar beet , 2017, Precision Agriculture.
[33] Sergio Marinetti,et al. Emissivity estimation for accurate quantitative thermography , 2012 .
[34] S. Idso,et al. Normalizing the stress-degree-day parameter for environmental variability☆ , 1981 .
[35] Antonio Díaz-Espejo,et al. Assessing plant water status in a hedgerow olive orchard from thermography at plant level , 2017 .
[36] P. F. Scholander,et al. Sap Pressure in Vascular Plants , 1965, Science.
[37] W. Maes,et al. Estimating evapotranspiration and drought stress with ground-based thermal remote sensing in agriculture: a review. , 2012, Journal of experimental botany.
[38] Carlos Poblete-Echeverría,et al. Analysis of crop water stress index (CWSI) for estimating stem water potential in grapevines: comparison between natural reference and baseline approaches , 2017 .
[39] Horace Tabberer Brown,et al. Researches on some of the Physiological Processes of Green Leaves, with Special Reference to the Interchange of Energy between the Leaf and Its Surroundings , 1905 .
[40] Hoam Chung,et al. Adaptive Estimation of Crop Water Stress in Nectarine and Peach Orchards Using High-Resolution Imagery from an Unmanned Aerial Vehicle (UAV) , 2017, Remote. Sens..
[41] R. Gucci,et al. Analysis of leaf water relations in leaves of two olive (Olea europaea) cultivars differing in tolerance to salinity. , 1997, Tree physiology.
[42] C. B. Tanner,et al. Infrared Thermometry of Vegetation1 , 1966 .