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Dokumenttyp:
Studienarbeit
Autor(en):
Schuhmacher, Jonas
Titel:
Investigation of the Robustness of Neural Density Fields
Abstract:
Recent advances in modeling density distributions, so-called neural density fields, can accurately describe the density distribution of celestial bodies without, e.g., requiring a shape model - properties of great advantage when designing trajectories close to these bodies. Previous work introduced this approach, but several open questions remained. This work investigates neural density fields and their relative errors in the context of robustness to external factors like noise or constraints...     »
Stichworte:
Robustness; Gravity; Neural Density Fields; PyTorch
Aufgabensteller:
Bungartz, Hans-Joachim
Betreuer:
Gómez, Pablo; Gratl, Fabio Alexander; Izzo, Dario
Kooperationspartner:
ESA
Jahr:
2023
Quartal:
2. Quartal
Jahr / Monat:
2023-06
Monat:
Jun
DOI-Link:
doi:10.5270/esa-gnc-icatt-2023-067
Hochschule / Universität:
Technical University of Munich
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