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        <dc:title>Crop type identification and spatial mapping using Sentinel-2 satellite data with focus on field-level information</dc:title>
        <dc:creator>Gumma, M K</dc:creator>
        <dc:creator>Tummala, K</dc:creator>
        <dc:creator>Dixit, S</dc:creator>
        <dc:creator>Collivignarelli, F</dc:creator>
        <dc:creator>Holecz, F</dc:creator>
        <dc:creator>Kolli, R N</dc:creator>
        <dc:creator>Whitbread, A M</dc:creator>
        <dc:subject>GIS Techniques/Remote Sensing</dc:subject>
        <dc:description>Accurate monitoring of croplands helps in making decisions (for&#13;
insurance claims, crop management and contingency plans) at&#13;
the macro-level, especially in drylands where variability in cropping&#13;
is very high owing to erratic weather conditions. Dryland&#13;
cereals and grain legumes are key to ensuring the food and nutritional&#13;
security of a large number of vulnerable populations living&#13;
in the drylands. Reliable information on area cultivated to such&#13;
crops forms part of the national accounting of food production&#13;
and supply in many Asian countries, many of which are employing&#13;
remote sensing tools to improve the accuracy of assessments&#13;
of cultivated areas. This paper assesses the capabilities and limitations&#13;
of mapping cultivated areas in the Rabi (winter) season and&#13;
corresponding cropping patterns in three districts characterized&#13;
by small-plot agriculture. The study used Sentinel-2 Normalized&#13;
Difference Vegetation Index (NDVI) 15-day time-series at 10m&#13;
resolution by employing a Spectral Matching Technique (SMT)&#13;
approach. The use of SMT is based on the well-studied relationship&#13;
between temporal NDVI signatures and crop phenology. The&#13;
rabi season in India, dominated by non-rainy days, is best suited&#13;
for the application of this method, as persistent cloud cover will&#13;
hamper the availability of images necessary to generate clearly&#13;
differentiating temporal signatures. Our study showed that the&#13;
temporal signatures of wheat, chickpea and mustard are easily&#13;
distinguishable, enabling an overall accuracy of 84%, with wheat&#13;
and mustard achieving 86% and 94% accuracies, respectively. The&#13;
most significant misclassifications were in irrigated areas for mustard&#13;
and wheat, in small-plot mustard fields covered by trees and&#13;
in fragmented chickpea areas. A comparison of district-wise&#13;
national crop statistics and those obtained from this study&#13;
revealed a correlation of 96%.</dc:description>
        <dc:publisher>Taylor and Francis</dc:publisher>
        <dc:date>2020-08</dc:date>
        <dc:type>Article</dc:type>
        <dc:type>PeerReviewed</dc:type>
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        <dc:language>en</dc:language>
        <dc:identifier>http://oar.icrisat.org/11558/1/07_Crop%20type%20identification%20with%20focus%20on%20field%20level%20information.pdf</dc:identifier>
        <dc:identifier>  Gumma, M K and Tummala, K and Dixit, S and Collivignarelli, F and Holecz, F and Kolli, R N and Whitbread, A M  (2020) Crop type identification and spatial mapping using Sentinel-2 satellite data with focus on field-level information.  Geocarto International (TSI).  pp. 1-17.  ISSN 1010-6049     </dc:identifier>
        <dc:relation>https://doi.org/10.1080/10106049.2020.1805029</dc:relation>
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