Assessing the crop acreage in Mengcheng county on the North China plain using an adapted regression estimator method

2013 
Image classifications including sub pixel analysis are often used to estimate directly the crop acreage, while ground data collected during field surveys play a secondary role. This pixel counting approach often leads to a biased estimation due to non-representative selection of ground data and subjective a-priori knowledge of analysts. Instead regression estimator approach combining remote sensing information with a rigorous ground sampling can result in an accurate assessment of crop acreage. In this study to estimate the maize area, the point frame sampling approach is adapted to the strip-like cropping pattern on the North China Plain. Remote sensing information is used to perform a cost-efficient stratification from which no-agricultural areas are excluded from ground survey. This information is also included in a later stage as an auxiliary estimator in regression analysis. The results showed that the integration of remote sensing information as an auxiliary estimator can improve the confidence of estimation by reducing the variance of the estimates.
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