Time-window optimization for a constellation of earth observation satellite
Thesis (M.Com.(quantitative Management)) === Satellite Scheduling Problems (SSP) are NP-hard and constraint programming and metaheuristics solution methods yield mixed results. This study investigates a new version of the SSP, the Satellite Constellation Time-Window Optimization Problem (SCoTWOP),...
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ndltd-netd.ac.za-oai-union.ndltd.org-unisa-oai-umkn-dsp01.int.unisa.ac.za-10500-27062016-04-16T04:08:02Z Time-window optimization for a constellation of earth observation satellite Oberholzer, Christiaan Vermaak Satellite scheduling Genetic algorithms Metaheuristics Simulated annealing Vehicle Routing Multiple time-windows Constellation of satellites Tabu search 621.3825 Artificial satellites-- Scheduling Remote sensing-- Mathematics Heuristic algorithms Artificial satellites-- Orbits-- Mathematical models Artificial satellites-- Orbits--Data processing Earth sciences-- Remote sensing Thesis (M.Com.(quantitative Management)) Satellite Scheduling Problems (SSP) are NP-hard and constraint programming and metaheuristics solution methods yield mixed results. This study investigates a new version of the SSP, the Satellite Constellation Time-Window Optimization Problem (SCoTWOP), involving commercial satellite constellations that provide frequent earth coverage. The SCoTWOP is related to the dual of the Vehicle Routing Problem with Multiple Timewindows, suggesting binary solution vectors representing an activation of time-windows. This representation fitted well with the MatLab® Genetic Algorithm and Direct Search Toolbox subsequently used to experiment with genetic algorithms, tabu search, and simulated annealing as SCoTWOP solution methods. The genetic algorithm was most successful and in some instances activated all 250 imaging time-windows, a number that is typical for a constellation of six satellites. Quantitative Management 2009-10-21T09:44:54Z 2009-10-21T09:44:54Z 2009-02 Thesis http://hdl.handle.net/10500/2706 en 1 online resource (170 leaves) |
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en |
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Others
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Satellite scheduling Genetic algorithms Metaheuristics Simulated annealing Vehicle Routing Multiple time-windows Constellation of satellites Tabu search 621.3825 Artificial satellites-- Scheduling Remote sensing-- Mathematics Heuristic algorithms Artificial satellites-- Orbits-- Mathematical models Artificial satellites-- Orbits--Data processing Earth sciences-- Remote sensing |
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Satellite scheduling Genetic algorithms Metaheuristics Simulated annealing Vehicle Routing Multiple time-windows Constellation of satellites Tabu search 621.3825 Artificial satellites-- Scheduling Remote sensing-- Mathematics Heuristic algorithms Artificial satellites-- Orbits-- Mathematical models Artificial satellites-- Orbits--Data processing Earth sciences-- Remote sensing Oberholzer, Christiaan Vermaak Time-window optimization for a constellation of earth observation satellite |
description |
Thesis (M.Com.(quantitative Management)) === Satellite Scheduling Problems (SSP) are NP-hard and constraint programming and
metaheuristics solution methods yield mixed results. This study investigates a new version of
the SSP, the Satellite Constellation Time-Window Optimization Problem (SCoTWOP),
involving commercial satellite constellations that provide frequent earth coverage.
The SCoTWOP is related to the dual of the Vehicle Routing Problem with Multiple Timewindows,
suggesting binary solution vectors representing an activation of time-windows.
This representation fitted well with the MatLab® Genetic Algorithm and Direct Search
Toolbox subsequently used to experiment with genetic algorithms, tabu search, and simulated
annealing as SCoTWOP solution methods. The genetic algorithm was most successful and in
some instances activated all 250 imaging time-windows, a number that is typical for a
constellation of six satellites. === Quantitative Management |
author |
Oberholzer, Christiaan Vermaak |
author_facet |
Oberholzer, Christiaan Vermaak |
author_sort |
Oberholzer, Christiaan Vermaak |
title |
Time-window optimization for a constellation of earth observation satellite |
title_short |
Time-window optimization for a constellation of earth observation satellite |
title_full |
Time-window optimization for a constellation of earth observation satellite |
title_fullStr |
Time-window optimization for a constellation of earth observation satellite |
title_full_unstemmed |
Time-window optimization for a constellation of earth observation satellite |
title_sort |
time-window optimization for a constellation of earth observation satellite |
publishDate |
2009 |
url |
http://hdl.handle.net/10500/2706 |
work_keys_str_mv |
AT oberholzerchristiaanvermaak timewindowoptimizationforaconstellationofearthobservationsatellite |
_version_ |
1718224043373494272 |