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Evaluation of space SAR as a land-cover classificationThe multidimensional approach to the mapping of land cover, crops, and forests is reported. Dimensionality is achieved by using data from sensors such as LANDSAT to augment Seasat and Shuttle Image Radar (SIR) data, using different image features such as tone and texture, and acquiring multidate data. Seasat, Shuttle Imaging Radar (SIR-A), and LANDSAT data are used both individually and in combination to map land cover in Oklahoma. The results indicates that radar is the best single sensor (72% accuracy) and produces the best sensor combination (97.5% accuracy) for discriminating among five land cover categories. Multidate Seasat data and a single data of LANDSAT coverage are then used in a crop classification study of western Kansas. The highest accuracy for a single channel is achieved using a Seasat scene, which produces a classification accuracy of 67%. Classification accuracy increases to approximately 75% when either a multidate Seasat combination or LANDSAT data in a multisensor combination is used. The tonal and textural elements of SIR-A data are then used both alone and in combination to classify forests into five categories.
Document ID
19860003272
Acquisition Source
Legacy CDMS
Document Type
Contractor Report (CR)
Authors
Brisco, B.
(Kansas Univ. Center for Research, Inc. Lawrence, KS, United States)
Ulaby, F. T.
(Kansas Univ. Center for Research, Inc. Lawrence, KS, United States)
Williams, T. H. L.
(Kansas Univ. Center for Research, Inc. Lawrence, KS, United States)
Date Acquired
September 5, 2013
Publication Date
January 1, 1985
Subject Category
Earth Resources And Remote Sensing
Report/Patent Number
RSL-TR-605-1
E86-10004
NAS 1.26:176267
NASA-CR-176267
Report Number: RSL-TR-605-1
Report Number: E86-10004
Report Number: NAS 1.26:176267
Report Number: NASA-CR-176267
Accession Number
86N12740
Funding Number(s)
CONTRACT_GRANT: NCC9-7
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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