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Toward the Discrimination of Manganese, Zinc, Copper, and Iron Deficiency in ‘Bragg’ Soybean Using Spectral Detection Methods
Author(s) -
Adams Matthew L.,
Norvell Wendell A.,
Philpot William D.,
Peverly John H.
Publication year - 2000
Publication title -
agronomy journal
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.752
H-Index - 131
eISSN - 1435-0645
pISSN - 0002-1962
DOI - 10.2134/agronj2000.922268x
Subject(s) - fluorescence , manganese , zinc , copper , chemistry , chlorosis , chromium , micronutrient , iron deficiency , glycine , phosphorus , analytical chemistry (journal) , reflectivity , horticulture , biology , environmental chemistry , biochemistry , optics , physics , medicine , organic chemistry , amino acid , anemia
Early visual symptoms of Mn, Zn, Cu, and Fe deficiency are often difficult to interpret and incorrect diagnoses are common. Reflectance and fluorescence measures may be useful for early and more reliable detection of Mn, Zn, Cu, and Fe deficiencies, but only if one or more spectral measures change uniquely with each deficiency. A discriminant analysis was performed to determine whether selected fluorescence and reflectance measures could be used to discriminate effectively marginal Mn, Zn, Cu, Fe deficiencies, and nutrient‐adequate soybean [ Glycine max (L.) Merr. cv. Bragg] leaves from plants grown in solution culture. Predictors were yellowness index (YI), a new measure sensitive to chlorosis; normalized difference vegetation index (NDVI); the ratio of minimal fluorescence ( F o ) to variable fluorescence ( F v ), F o / F v ; and the ratio of minimal fluorescence to the fluorescence yield after 5 min of illumination ( F 5min ), F o / F 5min . Manganese, Zn, Cu, and Fe deficiencies were correctly identified 62, 40, 92, and 30% of the time, respectively, as estimated by cross‐validation. Controls were identified correctly 77% of the time. One‐third to one‐half of the leaves identified as nutrient deficient by tissue analysis did not exhibit visual symptoms. Lack of a spectral measure sensitive specifically to Zn and Fe deficiency contributed to the low identification rates for Zn and Fe deficiencies. While the development of spectral measures sensitive to Zn and Fe deficiencies is required for further development of this rule, discriminant analysis is a suitable method for the development of classification rules for identifying marginal stresses.

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