Feed-Forward Neural Network for ERS-2 Retracker Threshold Computation ...
Current release candidate v2.0 (RC2) of the ERS-2 retracker threshold model used for producing the satellite-altimetry-based sea-ice thickness climate data record (CDR) v3.0 of the European Space Agencies (ESA) Climate Change Initiative+ (CCI+) on sea ice. Model training is based on orbit trajectory...
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Online Access: | https://dx.doi.org/10.5281/zenodo.8335298 https://zenodo.org/record/8335298 |
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ftdatacite:10.5281/zenodo.8335298 2023-11-05T03:37:58+01:00 Feed-Forward Neural Network for ERS-2 Retracker Threshold Computation ... Paul, Stephan Hendricks, Stefan 2023 https://dx.doi.org/10.5281/zenodo.8335298 https://zenodo.org/record/8335298 unknown Zenodo https://dx.doi.org/10.5281/zenodo.8335297 Open Access Creative Commons Attribution 4.0 International https://creativecommons.org/licenses/by/4.0/legalcode cc-by-4.0 info:eu-repo/semantics/openAccess Software article SoftwareSourceCode 2023 ftdatacite https://doi.org/10.5281/zenodo.833529810.5281/zenodo.8335297 2023-10-09T10:51:20Z Current release candidate v2.0 (RC2) of the ERS-2 retracker threshold model used for producing the satellite-altimetry-based sea-ice thickness climate data record (CDR) v3.0 of the European Space Agencies (ESA) Climate Change Initiative+ (CCI+) on sea ice. Model training is based on orbit trajectory matches between ENVISAT and ERS-2 within the mission overlap period between 2002/10 and 2003/04. All training data was generated from trajectory matches within the Arctic basin and within a radius of 1.5 km around the each individual ERS-2 waveform. Initial optimal-retracker thresholds were then computed from ENVISAT average reference freeboards per ERS-2 waveform. Model input are individual echo-waveform subsets of 35 range bins around the first-maximum index used the by the Threshold First Maximum Retracker Algorithm (TFMRA; 5 bins before and 30 bins after the first-maximum index) – threshold computations are therefore independent on any auxiliary data or associated waveform parameters. Model architecture ... Software Arctic Basin Arctic Climate change Sea ice DataCite Metadata Store (German National Library of Science and Technology) |
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Open Polar |
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DataCite Metadata Store (German National Library of Science and Technology) |
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ftdatacite |
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description |
Current release candidate v2.0 (RC2) of the ERS-2 retracker threshold model used for producing the satellite-altimetry-based sea-ice thickness climate data record (CDR) v3.0 of the European Space Agencies (ESA) Climate Change Initiative+ (CCI+) on sea ice. Model training is based on orbit trajectory matches between ENVISAT and ERS-2 within the mission overlap period between 2002/10 and 2003/04. All training data was generated from trajectory matches within the Arctic basin and within a radius of 1.5 km around the each individual ERS-2 waveform. Initial optimal-retracker thresholds were then computed from ENVISAT average reference freeboards per ERS-2 waveform. Model input are individual echo-waveform subsets of 35 range bins around the first-maximum index used the by the Threshold First Maximum Retracker Algorithm (TFMRA; 5 bins before and 30 bins after the first-maximum index) – threshold computations are therefore independent on any auxiliary data or associated waveform parameters. Model architecture ... |
format |
Software |
author |
Paul, Stephan Hendricks, Stefan |
spellingShingle |
Paul, Stephan Hendricks, Stefan Feed-Forward Neural Network for ERS-2 Retracker Threshold Computation ... |
author_facet |
Paul, Stephan Hendricks, Stefan |
author_sort |
Paul, Stephan |
title |
Feed-Forward Neural Network for ERS-2 Retracker Threshold Computation ... |
title_short |
Feed-Forward Neural Network for ERS-2 Retracker Threshold Computation ... |
title_full |
Feed-Forward Neural Network for ERS-2 Retracker Threshold Computation ... |
title_fullStr |
Feed-Forward Neural Network for ERS-2 Retracker Threshold Computation ... |
title_full_unstemmed |
Feed-Forward Neural Network for ERS-2 Retracker Threshold Computation ... |
title_sort |
feed-forward neural network for ers-2 retracker threshold computation ... |
publisher |
Zenodo |
publishDate |
2023 |
url |
https://dx.doi.org/10.5281/zenodo.8335298 https://zenodo.org/record/8335298 |
genre |
Arctic Basin Arctic Climate change Sea ice |
genre_facet |
Arctic Basin Arctic Climate change Sea ice |
op_relation |
https://dx.doi.org/10.5281/zenodo.8335297 |
op_rights |
Open Access Creative Commons Attribution 4.0 International https://creativecommons.org/licenses/by/4.0/legalcode cc-by-4.0 info:eu-repo/semantics/openAccess |
op_doi |
https://doi.org/10.5281/zenodo.833529810.5281/zenodo.8335297 |
_version_ |
1781693665777811456 |