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350 results for “Norwegian”
Predicted sediment accumulation rates on the Norwegian continental margin
<p>Output data relating to R workflow for predicting sediment accumulation rates on the Norwegian continental margin (https://github.com/diesing-ngu/SedRates). The following files are included:</p> <p><strong>SAR_median_2024-02-15.tif</strong> - Georeferenced Tiff-file of the oredicted sediment accumulation rates</p> <p><strong>SAR_PI90_2024-02-15.tif</strong> - Georeferenced Tiff-file of the 90% prediction interval. Can be used as a measure of uncertainty.</p> <p><strong>SAR_AOA_2024-02-15.tif </strong>- Georeferenced Tiff-file of the area of applicability of the model <a href="https://doi.org/10.1111/2041-210X.13650">(Meyer & Pebesma, 2021)</a></p> <p><strong>SAR_AOA_2024-02-15.shp</strong> - Same as above but as polygon shapefile</p>
Predicted sedimentary environments on the Norwegian continental margin
<p>Output data relating to R workflow for predicting substrate types on the Norwegian continental margin (https://github.com/diesing-ngu/SedEnv). The following files are included:</p><p><strong>SedEnv3_classes_2023-07-01.tif </strong>- Georeferenced Tiff-file of the predicted sedimentary environments</p><p><strong>SedEnv3_probabilities_2023-07-01.tif </strong>- Georeferenced Tiff-file of the prediction probabilities of the predicted sedimentary environments</p><p><strong>SedEnv3_max_probabilities_2023-07-01.tif </strong>- Georeferenced Tiff-file of the maximum probabilities, i.e., the probability of the class that was mapped. Can be used as an indicator of map confidence.</p><p><strong>SedEnv3_AOA_2023-07-01.tif </strong>- Georeferenced Tiff-file of the area of applicability of the model <a href="https://doi.org/10.1111/2041-210X.13650">(Meyer & Pebesma, 2021)</a></p><p><strong>SedEnv3_AOA_2023-07-01.shp</strong> - Same as above but as polygon shapefile</p>
Predicted dry bulk densities on the Norwegian continental margin
<p>Output data relating to R workflow for predicting dry bulk densities on the Norwegian continental margin (https://github.com/diesing-ngu/DBD). The following files are included:</p> <p><strong>DBD0-10cm_median_2024-02-16.tif</strong> - Georeferenced Tiff-file of the Predicted dry bulk densities in the upper 10 cm of the sediment column</p> <p><strong>DBD0-10cm_PI90_2024-02-16.tif</strong> - Georeferenced Tiff-file of the 90% prediction interval. Can be used as a measure of uncertainty.</p> <p><strong>DBD0-10cm_AOA_2024-02-16.tif </strong>- Georeferenced Tiff-file of the area of applicability of the model <a href="https://doi.org/10.1111/2041-210X.13650">(Meyer & Pebesma, 2021)</a></p> <p><strong>DBD0-10cm_AOA_2024-02-16.shp</strong> - Same as above but as polygon shapefile</p>
Input data for predicted organic carbon content on the Norwegian continental margin
<p>Input data relating to R workflow for predicting organic carbon content on the Norwegian continental margin (https://github.com/diesing-ngu/TOC). The following files are included:</p><p><strong>mosaic_2023-04-21.csv</strong> - Data on organic carbon content in surface sediments from the <a href="https://doi.org/10.5194/essd-15-4105-2023">MOSAIC v2.0</a> database</p><p><strong>predictors_ngb.tif </strong>- Multi-band georeferenced TIFF-file of predictor variables</p><p><strong>predictors_description</strong>.txt - Information on variables stored in predictor_ngb.tif including units, statistics, time period and sources.</p><p><strong>GrainSizeReg_folk8_classes_2023-06-28.tif</strong> - Georeferenced TIFF-file of predicted substrate classes. Used to update the area of interest (exclude areas mapped as Rock and boulders).</p><p><strong>mud_2023-06-30.tif </strong>- Georeferenced TIFF-file of predicted mud content. Used as an additional predctor.</p>
Input data for predicted mud content on the Norwegian continental margin
<p>Input data relating to R workflow for predicting mud content on the Norwegian continental margin (https://github.com/diesing-ngu/GSMgrids). The following files are included:</p><p><strong>gsm_data.csv</strong> - Data on gravel, sand and mud of surface sediments</p><p><strong>MGObsPkt_150_160_170.shp </strong>- Point shapefile of categorical samples</p><p><strong>predictors_ngb.tif </strong>- Multi-band georeferenced TIFF-file of predictor variables</p><p><strong>predictors_description</strong>.txt - Information on variables stored in predictor_ngb.tif including units, statistics, time period and sources.</p><p><strong>GrainSizeReg_folk8_classes_2023-06-28.tif</strong> - Georeferenced TIFF-file of predicted substrate classes. Used to update the area of interest (exclude areas mapped as Rock and boulders).</p><p><strong>GrainSizeReg_folk8_probabilities_2023-06-28.tif</strong> - Georeferenced TIFF-file of the prediction probabilities of the predicted substrate classes. Used as additional predctors.</p>
Predicted substrate types on the Norwegian continental margin
<p>Output data relating to R workflow for predicting substrate types on the Norwegian continental margin (https://github.com/diesing-ngu/GrainSizeReg). The following files are included:</p><p><strong>GrainSizeReg_folk8_classes_2023-06-28.tif </strong>- Georeferenced Tiff-file of the predicted substrate classes</p><p><strong>GrainSizeReg_folk8_probabilities_2023-06-28.tif </strong>- Georeferenced Tiff-file of the prediction probabilities of the predicted substrate classes</p><p><strong>GrainSizeReg_folk8_max_probabilities_2023-06-28.tif </strong>- Georeferenced Tiff-file of the maximum probabilities, i.e., the probability of the class that was mapped. Can be used as an indicator of map confidence.</p><p><strong>GrainSizeReg_folk8_AOA_2023-06-28.tif </strong>- Georeferenced Tiff-file of the area of applicability of the model <a href="https://doi.org/10.1111/2041-210X.13650">(Meyer & Pebesma, 2021)</a></p><p><strong>GrainSizeReg_folk8_AOA_2023-06-28.shp</strong> - Same as above but as polygon shapefile</p>
Norwegian CoMix data
<p>Norwegian CoMix data. <br>Corresponding paper: <a href="https://bmcpublichealth.biomedcentral.com/articles/10.1186/s12889-024-18853-8#citeas">link</a>.</p>
Norwegian Lepidoptera working group
<p>#UiO NHM LFI/NEF Lepidoptera (available 2012-2017) Compiled Norwegian Lepidoptera information by the Norwegian Entomological Society * [Norwegian Entomological Society, NEF](http://www.entomologi.no/eng_index.htm) * [UiO NHM](http://www.nhm.uio.no/english/) [Freshwater Ecology-Inland Fisheries Laboratory (LFI) and Entomology R&D (LFI)](http://www.nhm.uio.no/om/organisasjon/forskning-samlinger/?vrtx=unit-view&areacode=280804&lang=en)</p> <p>This dataset included compiled Norwegian Lepidoptera information (65 902 occurrences) by the [Norwegian Entomological Society](http://www.entomologi.no/eng_index.htm) and was [published in GBIF](https://www.gbif.org/occurrence/download/0005253-171124123535762) between 30 July 2012 and 6 December 2017. In December 2017 [head engineer Leif Aarvik](http://www.nhm.uio.no/om/organisasjon/forskning-samlinger/personer/laarvi/) requested the dataset to be retracted from GBIF because all data points have been migrated to the Museum Collection Database (MUSIT) for [Entomology](http://www.nhm.uio.no/english/research/collections/zoological/insect/) and is now [published in GBIF as part of this dataset](https://www.gbif.org/dataset/26f5b360-8770-4d54-9c2d-397798a5e513). Metadata for the Lepidoptera dataset will of course [remain available in GBIF](https://www.gbif.org/occurrence/download/0005253-171124123535762) as a so-called "metadata-only" dataset.</p> <p>##This dataset is archived in Zenodo at: * [](https://doi.org/10.5281/zenodo.1095179)</p> <p>##Annotated dataset available from GBIF.org: * Archived here as: 0005253-171124123535762.zip * [](https://doi.org/10.15468/dl.0b14l8) * https://www.gbif.org/occurrence/download/0005253-171124123535762</p> <p>##Source dataset available from GBIF.no: * Archived here as: dwca-leparb_lep-v1.100.zip * https://data.gbif.no/ipt/resource?r=leparb_lep * https://data.gbif.no/ipt/archive.do?r=leparb_lep&v=1.100</p> <p>##UiO NHM Entomology Collection: * All records from this dataset is moved to the NHMO Entomology collection. * http://www.nhm.uio.no/english/research/collections/zoological/insect/ * [](https://doi.org/10.15468/c3oka6) * https://www.gbif.org/dataset/26f5b360-8770-4d54-9c2d-397798a5e513 * https://data.gbif.no/ipt/resource?r=o_lepidoptera * https://data.gbif.no/ipt/archive.do?r=o_lepidoptera&v=1.395 (snapshot from 5 December 2017)</p> <p>_Disclaimer: The data owner (UiO NHM LFI/NEF) is in addition encouraged to ensure persistent data archiving following the guidelines at the University of Oslo at:_ https://www.uio.no/tjenester/it/hosting/storage/</p> <p>**License**: CC-BY-4.0 -- Creative Commons Attribution 4.0</p>
Social competence and behavioural problem in self and parental assessment among Polish, Spanish, and Norwegian primary school students
<p>Dataset of article: Laudańska-Krzemińska, I., Banaszak, E., Lubczyńska, A., Muller, S., Romera, E., Antypas, K., Luque González, R., Wiza, A. Social competence and behavioural problem in self and parental assessment among Polish, Spanish, and Norwegian primary school students</p> <p> </p>
Figure 9 in Morphometrics highlights subspecies differentiation of continental (Rangifer t. tarandus) and insular (Rangifer t. platyrhynchus) Norwegian reindeer
Figure 9: Differences of metapodes between genders based on size and shape extracted from Log Shape Ratio from Svalbard reindeer. Boxplot of the isometric size based on metacarpals (A) and metatarsal (B). p-Value of the tests comparing two genders are mentioned in posterior Table 5.
Figure 4 in Morphometrics highlights subspecies differentiation of continental (Rangifer t. tarandus) and insular (Rangifer t. platyrhynchus) Norwegian reindeer
Figure 4: Geometric morphometrics protocol of the outline and the mesial enamel with the location of the eight landmarks (black dots) and the curve of sliding semi-landmarks (white dotted lines). Landmarks: 1-Lingual connection of paracone/metacone; 2-Buccal connection of protocone/hypocone; 3-Lingual/mesial crest of paracone; 4-Lingual/ distal crest of metacone; 5-Lingual/mesial extremity of the first infundibulum (mesial half of molar); 6-Lingual/distal extremity of the first infundibulum (distal half of molar); 7-Lingual/mesial extremity of the second infundibulum (distal side); 8-Lingual/distal extremity of the second infundibulum (distal side). Photo/illustration by F. Yu.
Figure 3 in Morphometrics highlights subspecies differentiation of continental (Rangifer t. tarandus) and insular (Rangifer t. platyrhynchus) Norwegian reindeer
Figure 3: Measurements of reindeer's metacarpal (A) and metatarsal (B). Illustrations by Kuntz 2011, modified by F. Yu.
Figure 2 in Morphometrics highlights subspecies differentiation of continental (Rangifer t. tarandus) and insular (Rangifer t. platyrhynchus) Norwegian reindeer
Figure 2: Occlusal view of measurements of reindeer mandibular cheek teeth. (A) Standards used for premolars P2, P3, P4 and molar M3. (B) Standards used for M1 and M2. Illustrated by A. Lau-Bignon and F. Yu.
Figure 8 in Morphometrics highlights subspecies differentiation of continental (Rangifer t. tarandus) and insular (Rangifer t. platyrhynchus) Norwegian reindeer
Figure 8: Between subpopulations/population differences in metatarsal size and shape. Boxplots of (A) the osteometric raw measurements (see Figure 3), (B) isometric size and (C) two first axes of the PCA of Log Shape Ratio. HAR, Hardangervidda; COL, Colesdalen; GR, GrØndalen; SAS,Sassendalen; GL, largest length; SD, smallest breadth of diaphysis; BP, proximal transversal diameter; DP, proximal antero-posterior diameter; DD, smallest thickness of diaphysis; Bd, distal transversal diameter; Dd, distal antero-posterior diameter;DdL, distal lateral antero-posterior diameter; DdM, distal mesial anteroposterior diameter.
Figure 5 in Morphometrics highlights subspecies differentiation of continental (Rangifer t. tarandus) and insular (Rangifer t. platyrhynchus) Norwegian reindeer
Figure 5: Differences between the two subspecies based on size and shape extracted from the CLog Shape Ratio of linear measurements of lower cheek teeth, metacarpals and metatarsals. Boxplot of the isometric size (left) and visualization of the two first axes of the PCA of shape (right) based on teeth (A), metacarpals (B) and metatarsals (C).
Figure 1 in Morphometrics highlights subspecies differentiation of continental (Rangifer t. tarandus) and insular (Rangifer t. platyrhynchus) Norwegian reindeer
Figure 1: Geographic location of the study populations. Dark red polygones represent the geographic range of the six populations in Norway. Hardangervidda, KnutshØ and Forollhogna, localized in the south of continental Norway correspond to R. tarandus tarandus, while GrØndalen, Colesdalen and Sassendalen correspond to R. tarandus platyrhynchus from the island of Spitsbergen, Svalbard. Illustration by A. Lau-Bignon.
Table 1 in Morphometrics highlights subspecies differentiation of continental (Rangifer t. tarandus) and insular (Rangifer t. platyrhynchus) Norwegian reindeer
<p><b>Table 1:</b> Number of reindeer specimens studied per skeletal element, subspecies (Rangifer t. tarandus, Rangifer t. platyrhynchus) and the six populations or subpopulations in the case of Svalbard reindeer.</p><table><tbody><tr><th><b>Subspecies</b></th><th></th><th><b>Rangifer t. tarandus (<i>n</i> = 170)</b></th><th></th><th></th><th><b>Rangifer t. platyrhynchus (<i>n</i> = 92)</b></th><th></th></tr></tbody><tbody><tr><th><b>Localisation</b></th><td></td><td><b>Continental Norway</b></td><td></td><td></td><td><b>Island of Spitsbergen, Svalbard</b></td><td></td></tr><tr><th><b>Population</b></th><td><b>Forollhogna</b></td><td><b>Hardangervidda</b></td><td><b>Knutshø (<i>n</i> = 49)</b></td><td><b>Colesdalen</b></td><td><b>Grøndalen</b></td><td><b>Sassendalen</b></td></tr><tr><th></th><td><b>(<i>n</i> = 52)</b></td><td><b>(<i>n</i> = 69)</b></td><td></td><td></td><td><b>(<i>n</i> = 32)</b></td><td><b>(<i>n</i> = 33)</b></td><td><b>(<i>n</i> = 27)</b></td></tr><tr><th><b>Gender of specimens</b></th><td><b>Males</b></td><td><b>Females</b></td><td><b>Males Females</b></td><td><b>Males</b></td><td><b>Females</b></td><td><b>Males</b></td><td><b>Females</b></td><td><b>Males Females</b></td><td><b>Males</b></td><td><b>Females</b></td></tr><tr><th>Teeth <b>–</b> linear measurements</th><td>27</td><td>21</td><td>30 35</td><td>17</td><td>28</td><td>10</td><td>13</td><td>7 11</td><td>6</td><td>9</td></tr><tr><th>Teeth <b>–</b> GMM</th><td>0</td><td>0</td><td>28 20</td><td>15</td><td>11</td><td>0</td><td>0</td><td>0 0</td><td>0</td><td>0</td></tr><tr><th>Metacarpal</th><td>0</td><td>0</td><td>49a 0</td><td>0</td><td>17</td><td>12</td><td>12</td><td>19 16</td><td>10</td><td></td></tr><tr><th>Metatarsal</th><td>0</td><td>0</td><td>50a 0</td><td>0</td><td>16</td><td>12</td><td>13</td><td>20 15</td><td>10</td><td></td></tr></tbody></table><p><sup>a</sup> Not specified in Kuntz (2011).</p>
Figure 5. Pereopods 3 and 4 in A new species of Exitomelita (Amphipoda: Melitidae) from a deep-water wood fall in the northern Norwegian Sea
Figure 5. Pereopods 3 and 4 from holotype Exitomelita lignicola (ZMBN 87905, male 19 mm). All scale bars 0.1 mm.
Figure 2. Epimeral plate 3, uropods 1, 2 and 3 in A new species of Exitomelita (Amphipoda: Melitidae) from a deep-water wood fall in the northern Norwegian Sea
Figure 2. Epimeral plate 3, uropods 1, 2 and 3, telson from holotype Exitomelita lignicola (ZMBN 87905, male 19 mm) head, dorsal view of pleon and urosome from paratype E. lignicola (ZMBN 87907, male 16 mm). All scale bars 0.1 mm.
Figure 1 in A new species of Exitomelita (Amphipoda: Melitidae) from a deep-water wood fall in the northern Norwegian Sea
Figure 1. (A) Map of the northernmost Atlantic Ocean with type locality (wood fall) and vent- and seep-fields marked. (B) Habitus of holotype Exitomelita lignicola (ZMBN 87905) before dissection.
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