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Salience Assignment for Multiple-Instance Data and Its Application to Crop Yield PredictionAn algorithm was developed to generate crop yield predictions from orbital remote sensing observations, by analyzing thousands of pixels per county and the associated historical crop yield data for those counties. The algorithm determines which pixels contain which crop. Since each known yield value is associated with thousands of individual pixels, this is a multiple instance learning problem. Because individual crop growth is related to the resulting yield, this relationship has been leveraged to identify pixels that are individually related to corn, wheat, cotton, and soybean yield. Those that have the strongest relationship to a given crop s yield values are most likely to contain fields with that crop. Remote sensing time series data (a new observation every 8 days) was examined for each pixel, which contains information for that pixel s growth curve, peak greenness, and other relevant features. An alternating-projection (AP) technique was used to first estimate the "salience" of each pixel, with respect to the given target (crop yield), and then those estimates were used to build a regression model that relates input data (remote sensing observations) to the target. This is achieved by constructing an exemplar for each crop in each county that is a weighted average of all the pixels within the county; the pixels are weighted according to the salience values. The new regression model estimate then informs the next estimate of the salience values. By iterating between these two steps, the algorithm converges to a stable estimate of both the salience of each pixel and the regression model. The salience values indicate which pixels are most relevant to each crop under consideration.
Document ID
20100039420
Acquisition Source
Jet Propulsion Laboratory
Document Type
Other - NASA Tech Brief
Authors
Wagstaff, Kiri L.
(California Inst. of Tech. Pasadena, CA, United States)
Lane, Terran
(New Mexico Univ. NM, United States)
Date Acquired
August 25, 2013
Publication Date
November 1, 2010
Publication Information
Publication: NASA Tech Briefs, November 2010
Subject Category
Man/System Technology And Life Support
Report/Patent Number
NPO-45177
Distribution Limits
Public
Copyright
Public Use Permitted.
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