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ERTS-1 data collection systems used to predict wheat disease severitiesThe author has identified the following significant results. The feasibility of using the data collection system on ERTS-1 to predict wheat leaf rust severity and resulting yield loss was tested. Ground-based data collection platforms (DCP'S), placed in two commercial wheat fields in Riley County, Kansas, transmitted to the satellite such meteorological information as maximum and minimum temperature, relative humidity, and hours of free moisture. Meteorological data received from the two DCP'S from April 23 to 29 were used to estimate the disease progress curve. Values from the curve were used to predict the percentage decrease in wheat yields resulting from leaf rust. Actual decrease in yield was obtained by applying a zinc and maneb spray (5.6 kg/ha) to control leaf rust, then comparing yields of the controlled (healthy) and the noncontrolled (rusted) areas. In each field a 9% decrease in yield was predicted by the DCP-derived data; actual decreases were 12% and 9%.
Document ID
19740019684
Acquisition Source
Legacy CDMS
Document Type
Other
Authors
Kanemasu, E. T.
(Kansas State Univ. Manhattan, KS, United States)
Schimmelpfenning, H.
(Kansas State Univ. Manhattan, KS, United States)
Choy, E. C.
(Kansas State Univ. Manhattan, KS, United States)
Eversmeyer, M. G.
(Kansas State Univ. Manhattan, KS, United States)
Lenhert, D.
(Kansas State Univ. Manhattan, KS, United States)
Date Acquired
August 7, 2013
Publication Date
February 5, 1974
Publication Information
Publication: Wheat: Its Water Use, Production and Disease Detection and Prediction
Subject Category
Geophysics
Report/Patent Number
CONTRIB-595
CONTRIB-1387
Accession Number
74N27797
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.

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