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Nonlinear state and parameter estimation of spatially distributed systems Felix Sawo
Nonlinear state and parameter estimation of spatially distributed systems
Felix Sawo
In this thesis two probabilistic model-based estimators are introduced that allow the reconstruction and identification of space-time continuous physical systems. The Sliced Gaussian Mixture Filter (SGMF) exploits linear substructures in mixed linear/nonlinear systems, and thus is well-suited for identifying various model parameters. The Covariance Bounds Filter (CBF) allows the efficient estimation of widely distributed systems in a decentralized fashion.
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| Mediji | Grāmatas Paperback Book (Grāmata ar mīksto vāku un līmēto muguru) |
| Izlaists | 2014. gada 16. oktobris |
| ISBN13 | 9783866443709 |
| Izdevēji | Karlsruher Institut für Technologie |
| Lapas | 176 |
| Izmēri | 148 × 210 × 10 mm · 217 g |
| Valoda | Angļu |