Use of Fluorescence Sensing to Detect Nitrogen and Potassium Variability in Maize
暂无分享,去创建一个
Raj Khosla | Louis Longchamps | Subash Dahal | Rafael Siqueira | L. Longchamps | R. Khosla | S. Dahal | R. Siqueira
[1] K. Brandt,et al. Flavone C-glycoside, phenolic acid, and nitrogen contents in leaves of barley subject to organic fertilization treatments. , 2003, Journal of agricultural and food chemistry.
[2] E. Pfündel,et al. Effects of natural intensities of visible and ultraviolet radiation on epidermal ultraviolet screening and photosynthesis in grape leaves. , 2001, Plant physiology.
[3] Nicolas Tremblay,et al. Sensing crop nitrogen status with fluorescence indicators. A review , 2011, Agronomy for Sustainable Development.
[4] Z. Cerovic,et al. Fluorescence-based versus reflectance proximal sensing of nitrogen content in Paspalum vaginatum and Zoysia matrella turfgrasses , 2013 .
[5] M. S. Moran,et al. Opportunities and limitations for image-based remote sensing in precision crop management , 1997 .
[6] Ismael Moya,et al. The use of chlorophyll fluorescence excitation spectra for the non‐destructive in situ assessment of UV‐absorbing compounds in leaves , 2002 .
[7] N. Fageria,et al. Enhancing Nitrogen Use Efficiency in Crop Plants , 2005 .
[8] J. Schepers,et al. Nitrogen Deficiency Detection Using Reflected Shortwave Radiation from Irrigated Corn Canopies , 1996 .
[9] Qiang Cao,et al. In-Season Estimation of Rice Nitrogen Status With an Active Crop Canopy Sensor , 2014, IEEE Journal of Selected Topics in Applied Earth Observations and Remote Sensing.
[10] G. Fitzgerald,et al. Proximal fluorescence sensing of potassium responsive crops to develop improved predictions of biomass, yield and grain quality of wheat and barley , 2019, Precision Agriculture.
[11] J. Sayre,et al. MINERAL ACCUMULATION IN CORN. , 1948, Plant physiology.
[12] Zhenli He,et al. NUTRIENT USE EFFICIENCY IN PLANTS , 2001 .
[13] D. Westfall,et al. Evaluation of two crop canopy sensors for nitrogen variability determination in irrigated maize , 2011, Precision Agriculture.
[14] A. Shanker,et al. Chlorophyll fluorescence induction kinetics and yield responses in rainfed crops with variable potassium nutrition in K deficient semi-arid alfisols. , 2016, Journal of photochemistry and photobiology. B, Biology.
[15] B. Ma,et al. Canopy Light Reflectance and Field Greenness to Assess Nitrogen Fertilization and Yield of Maize , 1996 .
[16] C. Daughtry,et al. Remote- and Ground-Based Sensor Techniques to Map Soil Properties , 2003 .
[17] Z. Huo,et al. Quantifying long-term responses of crop yield and nitrate leaching in an intensive farmland using agro-eco-environmental model. , 2018, The Science of the total environment.
[18] Mohammed A. Naser,et al. Using NDVI to Differentiate Wheat Genotypes Productivity Under Dryland and Irrigated Conditions , 2020, Remote. Sens..
[19] L. Longchamps,et al. Spatial management strategies for nitrogen in maize production based on soil and crop data. , 2019, The Science of the total environment.
[20] Giovanni Agati,et al. Light-induced accumulation of ortho-dihydroxylated flavonoids as non-destructively monitored by chlorophyll fluorescence excitation techniques , 2011 .
[21] Giovanni Agati,et al. Assessment of anthocyanins in grape (Vitis vinifera L.) berries using a noninvasive chlorophyll fluorescence method. , 2007, Journal of agricultural and food chemistry.
[22] D. G. Westfall,et al. Evaluation of two ground-based active crop canopy sensors in maize: growth stage, row spacing, and sensor movement speed. , 2010 .
[23] K Maxwell,et al. Chlorophyll fluorescence--a practical guide. , 2000, Journal of experimental botany.
[24] S. Carpenter,et al. NONPOINT POLLUTION OF SURFACE WATERS WITH PHOSPHORUS AND NITROGEN , 1998 .
[25] Luis Miguel Contreras-Medina,et al. A Review of Methods for Sensing the Nitrogen Status in Plants: Advantages, Disadvantages and Recent Advances , 2013, Sensors.
[26] C. S. Holling,et al. Resilience and Sustainable Development: Building Adaptive Capacity in a World of Transformations , 2002, Ambio.
[27] Ulrich Schreiber,et al. Measurement of leaf epidermal transmittance of UV radiation by chlorophyll fluorescence , 1997 .
[28] A. Gitelson,et al. Active Sensor Reflectance Measurements of Corn Nitrogen Status and Yield Potential , 2008 .
[29] Louis Longchamps,et al. Early Detection of Nitrogen Variability in Maize Using Fluorescence , 2014 .
[30] D. G. Westfall,et al. Use of site-specific management zones to improve nitrogen management for precision agriculture , 2002 .
[31] Tim M. Shaver,et al. EVALUATION OF TWO CROP CANOPY SENSORS FOR NITROGEN RECOMMENDATIONS IN IRRIGATED MAIZE , 2014 .
[32] W. M. Frasier,et al. Economic Feasibility of Variable‐Rate Nitrogen Application Utilizing Site‐Specific Management Zones , 2004 .
[33] B. Ma,et al. NITROGEN, PHOSPHORUS, AND POTASSIUM NUTRIENT EFFECTS ON GRAIN FILLING AND YIELD OF HIGH-YIELDING SUMMER CORN , 2011 .
[34] Changchun Xu,et al. Nitrogen and phosphorus losses and eutrophication potential associated with fertilizer application to cropland in China , 2017 .
[35] S. Saatchi,et al. Greenhouse gas emissions intensity of global croplands , 2017 .
[36] Z. Cerovic,et al. Optically assessed contents of leaf polyphenolics and chlorophyll as indicators of nitrogen deficiency in wheat (Triticum aestivum L.) , 2005 .
[37] M. Hawkesford,et al. Exploiting genetic variation in nitrogen use efficiency for cereal crop improvement , 2019, Current opinion in plant biology.
[38] Arnon Karnieli,et al. Assessment of maize yield and phenology by drone-mounted superspectral camera , 2019, Precision Agriculture.