Precision Agriculture · 2020 · 26 citations · 31 references
Plant AnalysisPrecision AgricultureEnvironmental MonitoringEngineeringBotanyAgricultural EconomicsPrecision Crop ProtectionWeed ControlPlant PathologyChlorophyll FluorometerAbiotic DamagePlant StressPrimary Stress ResponseSustainable AgriculturePublic HealthPhotosynthesisHerbicide TreatmentHerbicide SensitivityPlant-abiotic InteractionAgricultural PlantsDroughtCrop ProtectionPlant Physiology
Abstract Most non-destructive methods for plant stress detection do not measure the primary stress response but reactions of processes downstream of primary events. For instance, the chlorophyll fluorescence ratio F v /F m , which indicates the maximum quantum yield of photosystem II, can be employed to monitor stress originating elsewhere in the plant cell. This article describes the properties of a sensor to quantify herbicide and pathogen stress in agricultural plants for field applications by the F v /F m parameter. This dedicated sensor is highly mobile and measures images of pulse amplitude modulated (PAM) chlorophyll fluorescence. Special physical properties of the sensor are reported, and the range of its field applications is defined. In addition, detection of herbicide resistant weeds by employing an F v /F m -based classifier is described. The PAM-imaging sensor introduced here can provide in-field estimation of herbicide sensitivity in crops and weeds after herbicide treatment before any damage becomes visible. Limitations of the system and the use of a classifier to differentiate between stressed and non-stressed plants based on sensor data are presented. It is concluded that stress detection by the F v /F m parameter is suitable as an expert tool for decision making in crop management.
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Encyclopedia of research design
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Towards complete cofactor arrangement in the 3.0 Å resolution structure of photosystem II
Bernhard Loll, Jan Kern, Wolfram Saenger et al. · Nature · 2005 · 1.8K citations