4.6 Article

Calculating environmental moisture for per-field discrimination of rice crops

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INTERNATIONAL JOURNAL OF REMOTE SENSING
卷 24, 期 4, 页码 885-890

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TAYLOR & FRANCIS LTD
DOI: 10.1080/0143116021000009921

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The accuracies of rice classifications determined from density slices of broadband moisture indices were compared to results from a standard supervised technique using six reflective Enhanced Thematic Mapper plus (ETM+) bands. Index-based methods resulted in higher accuracies early in the growing season when background moisture differences were at a maximum. Analysis of depth of ETM + band 5 resulted in the highest accuracy over the growing season (97.74%). This was more accurate than the highest supervised classification accuracy (95.81%), demonstrating the usefulness of spectral feature selection of moisture for classifying rice.

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