Leads and ridges in Arctic sea ice from RGPS data and a new tracking algorithm
Leads and pressure ridges are dominant features of the Arctic sea ice cover. Not only do they affect heat loss and surface drag, but they also provide insight into the underlying physics of sea ice deformation. Due to their elongated shape they are referred to as linear kinematic features (LKFs). Th...
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| Published in | The cryosphere Vol. 13; no. 2; pp. 627 - 645 |
|---|---|
| Main Authors | , , |
| Format | Journal Article |
| Language | English |
| Published |
Katlenburg-Lindau
Copernicus GmbH
20.02.2019
Copernicus Publications |
| Subjects | |
| Online Access | Get full text |
| ISSN | 1994-0424 1994-0416 1994-0424 1994-0416 |
| DOI | 10.5194/tc-13-627-2019 |
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| Abstract | Leads and pressure ridges are dominant features of the Arctic sea
ice cover. Not only do they affect heat loss and surface drag, but they also
provide insight into the underlying physics of sea ice deformation. Due to
their elongated shape they are referred to as linear kinematic features (LKFs).
This paper introduces two methods that detect and track LKFs in sea ice
deformation data and establish an LKF data set for the entire observing
period of the RADARSAT Geophysical Processor System (RGPS). Both algorithms
are available as open-source code and applicable to any gridded sea ice drift
and deformation data. The LKF detection algorithm classifies pixels with
higher deformation rates compared to the immediate environment as LKF pixels,
divides the binary LKF map into small segments, and reconnects multiple
segments into individual LKFs based on their distance and orientation
relative to each other. The tracking algorithm uses sea ice drift information
to estimate a first guess of LKF distribution and identifies tracked features
by the degree of overlap between detected features and the first guess. An
optimization of the parameters of both algorithms, as well as an
extensive evaluation of both algorithms against handpicked features in a
reference data set, is presented. A LKF data set is derived from RGPS deformation data for
the years from 1996 to 2008 that enables a comprehensive description of LKFs.
LKF densities and LKF intersection angles derived from this data set agree
well with previous estimates. Further, a stretched exponential distribution
of LKF length, an exponential tail in the distribution of LKF lifetimes, and
a strong link to atmospheric drivers, here Arctic cyclones, are derived from
the data set. Both algorithms are applied to output of a numerical sea ice
model to compare the LKF intersection angles in a high-resolution Arctic
sea ice simulation with the LKF data set. |
|---|---|
| AbstractList | Leads and pressure ridges are dominant features of the Arctic sea
ice cover. Not only do they affect heat loss and surface drag, but they also
provide insight into the underlying physics of sea ice deformation. Due to
their elongated shape they are referred to as linear kinematic features (LKFs).
This paper introduces two methods that detect and track LKFs in sea ice
deformation data and establish an LKF data set for the entire observing
period of the RADARSAT Geophysical Processor System (RGPS). Both algorithms
are available as open-source code and applicable to any gridded sea ice drift
and deformation data. The LKF detection algorithm classifies pixels with
higher deformation rates compared to the immediate environment as LKF pixels,
divides the binary LKF map into small segments, and reconnects multiple
segments into individual LKFs based on their distance and orientation
relative to each other. The tracking algorithm uses sea ice drift information
to estimate a first guess of LKF distribution and identifies tracked features
by the degree of overlap between detected features and the first guess. An
optimization of the parameters of both algorithms, as well as an
extensive evaluation of both algorithms against handpicked features in a
reference data set, is presented. A LKF data set is derived from RGPS deformation data for
the years from 1996 to 2008 that enables a comprehensive description of LKFs.
LKF densities and LKF intersection angles derived from this data set agree
well with previous estimates. Further, a stretched exponential distribution
of LKF length, an exponential tail in the distribution of LKF lifetimes, and
a strong link to atmospheric drivers, here Arctic cyclones, are derived from
the data set. Both algorithms are applied to output of a numerical sea ice
model to compare the LKF intersection angles in a high-resolution Arctic
sea ice simulation with the LKF data set. Leads and pressure ridges are dominant features of the Arctic sea ice cover. Not only do they affect heat loss and surface drag, but they also provide insight into the underlying physics of sea ice deformation. Due to their elongated shape they are referred to as linear kinematic features (LKFs). This paper introduces two methods that detect and track LKFs in sea ice deformation data and establish an LKF data set for the entire observing period of the RADARSAT Geophysical Processor System (RGPS). Both algorithms are available as open-source code and applicable to any gridded sea ice drift and deformation data. The LKF detection algorithm classifies pixels with higher deformation rates compared to the immediate environment as LKF pixels, divides the binary LKF map into small segments, and reconnects multiple segments into individual LKFs based on their distance and orientation relative to each other. The tracking algorithm uses sea ice drift information to estimate a first guess of LKF distribution and identifies tracked features by the degree of overlap between detected features and the first guess. An optimization of the parameters of both algorithms, as well as an extensive evaluation of both algorithms against handpicked features in a reference data set, is presented. A LKF data set is derived from RGPS deformation data for the years from 1996 to 2008 that enables a comprehensive description of LKFs. LKF densities and LKF intersection angles derived from this data set agree well with previous estimates. Further, a stretched exponential distribution of LKF length, an exponential tail in the distribution of LKF lifetimes, and a strong link to atmospheric drivers, here Arctic cyclones, are derived from the data set. Both algorithms are applied to output of a numerical sea ice model to compare the LKF intersection angles in a high-resolution Arctic sea ice simulation with the LKF data set. |
| Audience | Academic |
| Author | Hutter, Nils Losch, Martin Zampieri, Lorenzo |
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| Cites_doi | 10.1017/S0022143000007061 10.5194/tc-10-1339-2016 10.1002/2015JC010989 10.1029/98JC01997 10.1002/2017JC013119 10.5194/tc-6-343-2012 10.1021/jp970984n 10.5194/tc-10-1055-2016 10.2151/jmsj.2015-001 10.1137/070710111 10.5194/tc-2018-192 10.1175/1520-0485(1997)027<2342:MSIAAG>2.0.CO;2 10.1109/36.175326 10.5194/tc-9-1955-2015 10.1007/978-3-642-60282-5_11 10.1029/2001JC001041 10.1109/ICPR.1994.576361 10.3390/rs9050493 10.1029/2003JC002108 10.1029/2009JC005380 10.1002/2016JC012387 10.1002/2016GL068696 10.7717/peerj.453 10.1029/2018MS001485 10.3390/rs6021451 10.1029/96JC03744 10.1002/2016GL071269 10.1007/978-94-015-9735-7_26 10.1038/s41598-018-24660-0 10.3189/S0260305500012878 10.1175/JPO-D-11-040.1 10.1029/2010JC006573 10.1109/IGARSS.2015.7326403 10.5194/tc-9-663-2015 10.1007/978-94-007-6202-2_3 10.1007/s100510050276 10.1594/PANGAEA.856844 10.1109/36.662745 10.3390/rs8010004 10.1109/IGARSS.1993.322255 10.1175/1520-0426(2003)020<1333:TRGPSQ>2.0.CO;2 10.1145/357994.358023 |
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| Snippet | Leads and pressure ridges are dominant features of the Arctic sea
ice cover. Not only do they affect heat loss and surface drag, but they also
provide insight... Leads and pressure ridges are dominant features of the Arctic sea ice cover. Not only do they affect heat loss and surface drag, but they also provide insight... |
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| SubjectTerms | Algorithms Analysis Arctic cyclones Arctic sea ice Computer simulation Cyclones Data Data processing Data processing services Datasets Deformation Detection Distribution Drift Drift estimation Evaluation Geophysics Heat loss Ice Ice cover Ice drift Ice environments Kinematics Mathematical models Microprocessors Optimization Orientation Physics Pixels Polar environments Probability distribution functions Radarsat Remote sensing Ridges Sea ice Sea ice deformation Sea ice models Segments Source code Surface drag Tracking Winter storms |
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| Title | Leads and ridges in Arctic sea ice from RGPS data and a new tracking algorithm |
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