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Sediment organic matter, grain size, and results of prediction models from northern North Atlantic and Arctic Seas

Sediment samples and hydrographic conditions were studied at 28 stations around Iceland. At these sites, Conductivity-Temperature-Depth (CTD) casts were coducted to collect hydrographic data and multicorer casts were conducted to collect data on sediment characteristics including grain size distribution, carbon and nitrogen concentration, and chloroplastic pigment concentration. A total of 14 environmental predictors were used to model sediment characteristics around Iceland on regional scale. Two approaches were used: Multivariate Adaptation Regression Splines (MARS) and randomForest regression models. RandomForest outperformed MARS in predicting grain size distribution. MARS models had a greater tendency to over-and underpredict sediment values in areas outside the environmental envelope defined by the training dataset. We provide first GIS layers on sediment characteristics around Iceland, that can be used as predictors in future models. Although models performed well, more samples, especially from the shelf areas, will be needed to improve the models in future.

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Cite this as

Ostmann, Alexandra, Schnurr, Sarah, Martínez Arbizu, Pedro (2014). Dataset: Sediment organic matter, grain size, and results of prediction models from northern North Atlantic and Arctic Seas. https://doi.org/10.1594/PANGAEA.831943

DOI retrieved: 2014

Additional Info

Field Value
Imported on November 30, 2024
Last update November 30, 2024
License CC-BY-3.0
Source https://doi.org/10.1594/PANGAEA.831943
Author Ostmann, Alexandra
Given Name Alexandra
Family Name Ostmann
More Authors
Schnurr, Sarah
Martínez Arbizu, Pedro
Source Creation 2014
Publication Year 2014
Resource Type application/zip - filename: Ostmann_2014
Subject Areas
Name: Ecology

Name: Lithosphere

Related Identifiers
Title: Marine Environment Around Iceland: Hydrography, Sediments and First Predictive Models of Icelandic Deep-sea Sediment Characteristics
Identifier: https://doi.org/10.2478/popore-2014-0021
Type: DOI
Relation: IsSupplementTo
Year: 2014
Source: Polar Research Special Issue
Authors: Ostmann Alexandra , Schnurr Sarah , Martínez Arbizu Pedro .