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Nikunj Oza

Member since: Sep 30, 2010, NASA

Machine Learning for Earth Observation Flight Planning Optimization

Shared by Nikunj Oza, updated on Feb 26, 2012

Summary

Author(s) :
Elif Kurklu, Robert M. Morris, Nikunj Oza
Abstract

This paper is a progress report of an effort whose goal is to demonstrate the effectiveness of automated data mining and planning for the daily management of Earth Science missions. Currently, data mining and machine learning technologies are being used by scientists at research labs for validating Earth science models. However, few if any of these advancedtechniques are currently being integrated into daily mission operations. Consequently, there are significant gaps in the knowledge that can be derived from the models and data that are used each day for guiding mission activities. The result can be sub-optimal observation plans, lack of useful data, and wasteful use of resources. Recent advances in data mining, machine learning, and planning make it feasible to migrate these technologies into the daily mission planning cycle. This paper describes the design of a closed loop system for data acquisition, processing, and flight planning that integrates the results of machine learning into the flight planning process.

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Publication Name
AAAI Spring Symposium Series, Workshop on Semantic Scientific Knowledge Integration
Publication Location
Stanford, CA, USA
Year Published
2008

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kumo08.pdf
130.9 KB 20 downloads

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