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FIG. 12 in Ostracods from the 'Raibl Beds' (Carnian, Late Triassic) of Belca section in Karavanke Mountains, northwestern Slovenia
FIG. 12. — Height/Length scatter plots of Leviella bogschi Kozur, 1972. The dimensions of right and left valves of complete carapaces are linked.
FIG. 2 in Ostracods from the 'Raibl Beds' (Carnian, Late Triassic) of Belca section in Karavanke Mountains, northwestern Slovenia
FIG. 2. — Schematic lithostratigraphic column of the Triassic formations in the KoŠuta Nappe and in Hahnkogel Unit (modified from Kolar-JurkovŠek et al. 2005).
FIG. 14. — A in Ostracods from the 'Raibl Beds' (Carnian, Late Triassic) of Belca section in Karavanke Mountains, northwestern Slovenia
FIG. 14. — A, individual rarefaction curves, B, diversity indices (Shannon-Wiener and Simpson) of ostracods assemblages from the Belca section, Karavanke Mountains, northwestern Slovenia, Carnian, Late Triassic.
FIG. 1 in Ostracods from the 'Raibl Beds' (Carnian, Late Triassic) of Belca section in Karavanke Mountains, northwestern Slovenia
FIG. 1. — Geographical map of the studied area in the southern Karavanke Mountains, northwestern Slovenia. The star shows the position of the Belca section.
FIG. 13 in Ostracods from the 'Raibl Beds' (Carnian, Late Triassic) of Belca section in Karavanke Mountains, northwestern Slovenia
FIG. 13. — Height/Length scatter plots of Leviella veghae Kozur, 1972. The dimensions of right and left valves of complete carapaces are linked.
FIG. 9 in Ostracods from the 'Raibl Beds' (Carnian, Late Triassic) of Belca section in Karavanke Mountains, northwestern Slovenia
FIG. 9. — Height/Length scatter plots of Renngartenella sanctaecrucis Kristan-Tollmann in Kristan-Tollmann & Hamedani, 1973. The dimensions of right and left valves of complete carapaces are linked.
FIG. 5 in Ostracods from the 'Raibl Beds' (Carnian, Late Triassic) of Belca section in Karavanke Mountains, northwestern Slovenia
FIG. 5. — Height/Length scatter plots of species recovered from the Belca section, Karavanke Mountains, northwestern Slovenia, Carnian, Late Triassic. In all diagrams, the dimensions of right and left valves of complete carapaces are linked. A, Bairdia balatonica Méhes, 1911; B, Bairdia cassiana (Reuss, 1869); C, Dicerobairdia buseri Forel, n. sp., all specimens are from the Belca section (this work); D, Mirabairdia longispinosa Kristan-Tollmann, 1978; E, Pontocypris? karavankensis Forel, n. sp. all specimens are from the Belca section (this work). Scale bars: 100 μm.
FIG. 8 in Ostracods from the 'Raibl Beds' (Carnian, Late Triassic) of Belca section in Karavanke Mountains, northwestern Slovenia
FIG. 8. — Ostracods from the Belca section, Karavanke Mountains, northwestern Slovenia, Carnian, Late Triassic. All specimens are deposited in the micropalaeontology collections of the Geological Survey of Slovenia, under the numbers GeoZS6132 to GeoZS6239, preceded by sample number: A-E, Renngartenella sanctaecrucis Kristan-Tollmann in Kristan-Tollmann & Hamedani, 1973; A, lateral view of a right valve, BE2 (GeoZS6195); B, lateral view of a left valve, BE2 (GeoZS6196); C, lateral view of a right valve, BE2 (GeoZS6197); D, lateral view of a left valve, BE2 (GeoZS6198); E, lateral view of a right valve, BE2 (GeoZS6199); F, Hungarella sp. 1, lateral view of a right valve, BE18 (GeoZS6200); G, Hungarella sp. 2, lateral view of a right valve, BE18 (GeoZS6201); H, Cardobairdia? sp., right lateral view of a complete carapace, BE17 (GeoZS6202); I-U, Issacharella bisulcata Kozur, 1972 emend. Kristan-Tollmann in Kristan-Tollmann et al. 1991b; I, lateral view of a right valve, BE18 (GeoZS6203); J, lateral view of a left valve, A-5, BE21 (GeoZS6204); K, lateral view of a right valve, A-4, BE2 (GeoZS6205); L, lateral view of a left valve, A-4, BE2 (GeoZS6206); M, lateral view of a right valve, BE2 (GeoZS6207); N, lateral view of a right valve, BE18 (GeoZS6208); O, lateral view of a left valve, A-3, BE2 (GeoZS6209); P, left lateral view of a carapace, A-2, BE17 (GeoZS6210); Q, lateral view of a right valve, BE21 (GeoZS6211); R, lateral view of a left valve, A-1, BE17 (GeoZS6212); S, lateral view of a right valve, A-1, BE2 (GeoZS6213); T, left lateral view of a carapace, Adult, BE17 (GeoZS6214); U, lateral view of a left valve, Adult, BE18 (GeoZS6215). Scale bars: 100 μm.
FIG. 4 in Ostracods from the 'Raibl Beds' (Carnian, Late Triassic) of Belca section in Karavanke Mountains, northwestern Slovenia
FIG. 4. — Ostracods from the Belca section, Karavanke Mountains, northwestern Slovenia, Carnian, Late Triassic. All specimens are deposited in the micropalaeontology collections of the Geological Survey of Slovenia, under the numbers GeoZS6132 to GeoZS6239, preceded by sample number: A, B, Acratia cf. goemeryi Kozur, 1970 emend. Forel et al. (2019a); A, lateral view of a right valve, BE21 (GeoZS6132); B, lateral view of a left valve, BE18 (GeoZS6133); C, Acratia sp. 1, lateral view of a broken left valve, BE18 (GeoZS6134); D, Acratia sp. 2, lateral view of a left valve, BE18 (GeoZS6135); E, Bairdia balatonica Méhes, 1911, lateral view of a left valve, BE17 (GeoZS6136); F-H, Bairdia cassiana (Reuss, 1869); F, lateral view of a right valve, BE18 (GeoZS6137); G, lateral view of a right valve, BE18 (GeoZS6138); H, right lateral view of a complete carapace, BE23/1 (GeoZS6139); I, Bairdia cf. perpusilla sensu Forel et al. (2019a), lateral view of a left valve, BE17 (GeoZS6140); J, Bairdia sp. 1, right lateral view of a complete carapace, BE18 (GeoZS6141); K, Bairdia sp. 2, lateral view of a right valve, BE23/1 (GeoZS6142); L, M, Bairdia sp. 3; L, lateral view of a left valve, BE18 (GeoZS6143); M, lateral view of a left valve, BE18 (GeoZS6144); N, Bairdiacypris sp. 1, lateral
FIG. 7 in Ostracods from the 'Raibl Beds' (Carnian, Late Triassic) of Belca section in Karavanke Mountains, northwestern Slovenia
FIG. 7. — Ostracods from the Belca section, Karavanke Mountains, northwestern Slovenia, Carnian, Late Triassic. All specimens are deposited in the micropalaeontology collections of the Geological Survey of Slovenia, under the numbers GeoZS6132 to GeoZS6239, preceded by sample number: A, Pontocypris? karavankensis Forel, n. sp., lateral view of a right valve, BE18 (GeoZS6174); B, C, Monoceratina sp.; B, lateral view of a right valve, BE21 (GeoZS6175); C, lateral view of a right valve, BE18 (GeoZS6176); D, Citrella? carniana Forel in Forel et al. 2019, lateral view of a right valve, BE2 (GeoZS6177); E, F, Judahella dizluense Kristan-Tollmann, 1980; E, lateral view of a right valve, BE18 (GeoZS6178); F, lateral view of a left valve, BE21 (GeoZS6179); G, Judahella cf. galli Kozur & Bolz in Bunza & Kozur, 1971, lateral view of a right valve, BE18 (GeoZS6180); H, Judahella sp., lateral view of a right valve, BE18 (GeoZS6181); I, Kerocythere cf. hartmanni Bolz & Kozur in Bunza & Kozur, 1971, lateral view of a right valve, BE18 (GeoZS6182); J, Kerocythere raibliana (Gümbel, 1869), lateral view of a left valve, BE18 (GeoZS6183); K-M, Kerocythere reticulata Kristan-Tollmann, 1972; K, lateral view of a left valve, BE18 (GeoZS6184); L, lateral view of a right valve, BE18 (GeoZS6185); M, lateral view of a right valve, BE18 (GeoZS6186); N, O, Kerocythere tuvalica Kozur, 1971; N, lateral view of a left valve, BE17 (GeoZS6187); O, lateral view of a left valve, BE21 (GeoZS6188); P, Q, Kerocythere sp. 1; P, lateral view of a right valve, BE21 (GeoZS6189); Q, lateral view of a right valve, BE21 (GeoZS6190); R, S, Simeonella daginikella Forel in Forel et al. 2019; R, lateral view of a right valve, BE18 (GeoZS6191); S, lateral view of a right valve, BE18 (GeoZS6192); T, U, Renngartenella sanctaecrucis Kristan-Tollmann in Kristan-Tollmann & Hamedani, 1973; T, lateral view of a right valve, A-1, BE2 (GeoZS6193); U, lateral view of a right valve, A-1, BE2 (GeoZS6194). Scale bars: 100 μm.
FIG. 11 in Ostracods from the 'Raibl Beds' (Carnian, Late Triassic) of Belca section in Karavanke Mountains, northwestern Slovenia
FIG. 11. — Ostracods from the Belca section, Karavanke Mountains, northwestern Slovenia, Carnian, Late Triassic. All specimens are deposited in the micropalaeontology collections of the Geological Survey of Slovenia, under the numbers GeoZS6132 to GeoZS6239, preceded by sample number: A-J, Leviella bogschi Kozur, 1972; A, left lateral view of a carapace, A-1, BE21 (GeoZS6216); B, lateral view of a left valve, A-1, BE18 (GeoZS6217); C, lateral view of a left valve, A-2, BE18 (GeoZS6218); D, lateral view of a right valve, A-2, BE18 (GeoZS6219); E, lateral view of a left valve, A-3, BE18 (GeoZS6220); F, lateral view of a right valve, A-3, BE18 (GeoZS6221); G, lateral view of a right valve, A-3, BE18 (GeoZS6222); H, left lateral view of a carapace, A-5, BE21 (GeoZS6223); I, lateral view of a right valve, A-5, BE17 (GeoZS6224); J, lateral view of a right valve, A-6, BE18 (GeoZS6225); K-T, Leviella veghae Kozur, 1972; K, lateral view of a left valve, A-5, BE18 (GeoZS6226); L, lateral view of a right valve, A-5, BE18 (GeoZS6227); M, left lateral view of a carapace, A-4, BE21 (GeoZS6228); N, lateral view of a right
FIG. 6 in Ostracods from the 'Raibl Beds' (Carnian, Late Triassic) of Belca section in Karavanke Mountains, northwestern Slovenia
FIG. 6. — Ostracods from the Belca section, Karavanke Mountains, northwestern Slovenia, Carnian, Late Triassic. All specimens are deposited in the micropalaeontology collections of the Geological Survey of Slovenia, under the numbers GeoZS6132 to GeoZS6239, preceded by sample number: A-C, Isobythocypris? sp. 1; A, lateral view of a right valve,BE2 (GeoZS6153); B, lateral view of a right valve,BE2 (GeoZS6154);C, lateral view of a right valve, BE2 (GeoZS6155); D, Isobythocypris sp. 2, lateral view of a right valve, BE18 (GeoZS6156); E-H, Mirabairdia longispinosa Kristan-Tollmann, 1978; E, lateral view of a right valve, BE21 (GeoZS6157); F, lateral view of a right valve, BE18 (GeoZS6158); G, lateral view of a right valve, BE18 (GeoZS6159); H, lateral view of a left valve, BE17 (GeoZS6160); I, Bythocypris? sp. 1, lateral view of a right valve, BE18 (GeoZS6161); J-L, Bythocypris? sp. 2; J, lateral view of a right valve, BE18 (GeoZS6162); K, lateral view of a left valve, BE18 (GeoZS6163); L, internal view of a right valve, BE18 (GeoZS6164); M-O, Bythocypris? sp. 3; M, right lateral view of a complete carapace, BE17 (GeoZS6165); N, lateral view of a left valve, BE18 (GeoZS6166); O, lateral view of a right valve, BE18 (GeoZS6167); P, Paracypris sp., lateral view of a left valve, BE18 (GeoZS6168); Q, Pontocyprella sp., lateral view of a left valve, BE18 (GeoZS6169); R-U, Pontocypris? karavankensis Forel, n. sp.; R, Paratype, right lateral view of a complete carapace, BE18 (GeoZS6170); S, Holotype, right lateral view of a complete carapace, BE18 (GeoZS6171); T, lateral view of a left valve, BE18 (GeoZS6172); U, lateral view of a left valve, BE18 (GeoZS6173). Scale bars: 100 μm.
FIG. 3 in Ostracods from the 'Raibl Beds' (Carnian, Late Triassic) of Belca section in Karavanke Mountains, northwestern Slovenia
FIG. 3. — Distribution of ostracod species through the Belca section, Karavanke Mountains, northwestern Slovenia.
Results from national testing programs on the occurrence of chemical contaminants in food and feed - Slovenia
<p>In the framework of Articles 23 and 33 of Regulation (EC) No 178/2002 EFSA has received from the European Commission a mandate (M-2010-0374) to collect all available data on the occurrence of chemical contaminants in food and feed. These data are used in EFSA’s scientific opinions and reports on contaminants in food and feed. </p> <p>The presence of unauthorised substances or chemical contaminants in food may pose a risk factor for public health and can cause a negative impact on the quality of food. </p> <p>Commission Recommendations and Regulations on occurrence monitoring are in place for several contaminants of interest, some of which can be found here below:</p> <ul> <li>Commission Regulation (EU) 625/2017, on the application of food and feed law</li> <li>Commission Delegated Regulation (EU) 2022/931</li> <li>Commission Implementing Regulation (EU) 2022/932</li> <li>Commission Regulation (EU) 2023/915, on maximum levels for certain contaminants in food and repealing Regulation (EC) No 1881/2006</li> </ul> <p>These datasets contain the results of sampling that was designed according to national testing programs for a variety of contaminants in food and feed, as reported under the Chemical Monitoring Data Collection 2024, 2023, 2022, 2021, and 2020, split by sampling year (data element ‘sampY’). </p> <p>More details are available in last year's finalised call for data ‘<span><a href="https://www.efsa.europa.eu/en/call/annual-call-continuous-collection-chemical-contaminants-occurrence-data-food-and-feed">Annual call for continuous collection of chemical contaminants occurrence data in food and feed | EFSA</a></span>’.</p> <p>REPORTING AUTHORITIES CONTRIBUTING TO EACH DATA COLLECTION: </p> <p>OCC-CHEMMON2020 – Health Inspectorate of the Republic of Slovenia, Administration for Food Safety, Veterinary Sector and Plant Protection</p> <p>OCC-CHEMMON2021 – Health Inspectorate of the Republic of Slovenia, Administration for Food Safety, Veterinary Sector and Plant Protection</p> <p>OCC-CHEMMON2022 – Health Inspectorate of the Republic of Slovenia, Administration for Food Safety, Veterinary Sector and Plant Protection</p> <p>OCC-CHEMMON2023 – Health Inspectorate of the Republic of Slovenia, Administration for Food Safety, Veterinary Sector and Plant Protection</p> <p>OCC-CHEMMON2024 – Health Inspectorate of the Republic of Slovenia, Administration for Food Safety, Veterinary Sector and Plant Protection</p>
I-MAESTRO data: 42 million trees from three large European landscapes in France, Poland and Slovenia
<p>Here we present three datasets describing three large European landscapes in France (Bauges Geopark - 89,000 ha), Poland (Milicz forest district - 21,000 ha) and Slovenia (Snežnik forest - 4,700 ha) down to the tree level. Individual trees were generated combining inventory plot data, vegetation maps and Airborne Laser Scanning (ALS) data. Together, these landscapes (hereafter virtual landscapes) cover more than 100,000 ha including about 64,000 ha of forest and consist of more than 42 million trees of 51 different species.</p><p>For each virtual landscape we provide a table (in .csv format) with the following columns:<br>- cellID25: the unique ID of each 25x25 m² cell<br>- sp: species latin names<br>- n: number of trees. n is an integer >= 1, meaning that a specific set of species "sp", diameter "dbh" and height "h" can be present multiple times in a cell.<br>- dbh: tree diameter at breast height (cm)<br>- h: tree height (m)</p><p>We also provide, for each virtual landscape, a raster (in .asc format) with the cell IDs (cellID25) which makes data spatialisation possible. The coordinate reference systems are EPSG: 2154 for the Bauges, EPSG: 2180 for Milicz, and EPSG: 3912 for Sneznik.</p><p>The v2.0.0 presents the algorithm in its final state.</p><p>Finally, we provide a proof of how our algorithm makes it possible to reach the total BA and the BA proportion of broadleaf trees provided by the ALS mapping using the alpha correction coefficient and how it maintains the Dg ratios observed on the field plots between the different species (see algorithm presented in the associated Open Research Europe article).</p><p>Below is an example of R code that opens the datasets and creates a tree density map.</p><p>------------------------------------------------------------<br># load package</p><p>library(terra)</p><p>library(dplyr)</p><p> </p><p># set work directory</p><p>setwd() # define path to the I-MAESTRO_data folder</p><p> </p><p># load tree data</p><p>tree <- read.csv2('./sneznik/sneznik_trees.csv', sep = ',')</p><p> </p><p># load spatial data</p><p>cellID <- rast('./sneznik/sneznik_cellID25.asc')</p><p> </p><p># set coordinate reference system</p><p># Bauges:</p><p># crs(cellID) <- "epsg:2154"</p><p># Milicz:</p><p># crs(cellID) <- "epsg:2180"</p><p># Sneznik:</p><p># crs(cellID) <- "epsg:3912"</p><p> </p><p># convert raster into dataframe</p><p>cellIDdf <- as.data.frame(cellID)</p><p>colnames(cellIDdf) <- 'cellID25'</p><p> </p><p># calculate tree density from tree dataframe</p><p>dens <- tree %>% group_by(cellID25) %>% summarise(n = sum(n))</p><p> </p><p># merge the two dataframes</p><p>dens <- left_join(cellIDdf, dens, join_by(cellID25))</p><p> </p><p># add density to raster</p><p>cellID$dens <- dens$n</p><p> </p><p># plot density map</p><p>plot(cellID$dens)</p>
Minute-Level Human Activity and Particulate Matter Exposure Dataset from Ljubljana, Slovenia
<p>This dataset encompasses detailed measurements of human activities and particulate matter exposure at a minute-level resolution, collected in Ljubljana, Slovenia from September 24 to October 31, 2020. Data was gathered from 18 participants using a combination of devices: a personal particulate matter monitor (PPM), a Garmin Vivosmart 3 smart activity tracker (SAT), and the Clockify app. The PPM provided real-time measurements of particulate matter concentrations (PM1, PM2.5, and PM10), as well as environmental parameters like temperature, humidity, and altitude. The SAT tracker offered insights into personal health data, including average heart rate and metabolic equivalent of task (MET). Clockify app was utilized for detailed logging of various activities categorized with minute accuracy.</p> <p>Key variables included in the dataset are:</p> <ol> <li>Participant ID</li> <li>Date of data collection</li> <li>Time of data recording (minute accuracy)</li> <li>Specific task or activity performed</li> <li>Particulate matter - PM1 - concentrations</li> <li>Particulate matter - PM2.5 - concentrations</li> <li>Particulate matter - PM10 - concentrations</li> <li>Environmental temperature</li> <li>Relative humidity</li> <li>Altitude</li> <li>Speed</li> <li>Average heart rate</li> <li>Metabolic equivalent of task</li> </ol> <p>This dataset offers a resource for exploring the interplay between individual behaviors and air pollution exposure, with applications in environmental health research and the development of machine learning models for activity recognition.</p>
FIGURE 8 in Late Oligocene decapod crustaceans from the Trbovlje Formation of Slovenia, with a description of two new species of hymenosomatid crabs
FIGURE 8. Necronectes cf. michelini Milne-Edwards, 1860 (A–D) and Necronectes michelini Milne-Edwards, 1860 (E, F): A. RGA/SMNH 5009, imprint of the outer side of chela; B. RGA/SMNH 5010, imprint of the inner side of chela; C. RGA/SMNH 5009, whitened latex cast; D. RGA/SMNH 5010, whitened latex cast; E. MNHN.F.R03775, (paralectotype), outer side of chela; F. MNHN.F.R03775, (paralectotype), inner side of chela. All scale bars equal 10 mm. Photos A and D: RECOLNAT (ANR-11-INBS-0004) - Jocelyn FALCONNET – 2017.
FIGURE 6 in Late Oligocene decapod crustaceans from the Trbovlje Formation of Slovenia, with a description of two new species of hymenosomatid crabs
FIGURE 6. Lucascinus trifailensis sp. nov., schematic reconstruction. A. Carapace in dorsal view; B. Detailed view of male pleon.
FIGURE 5 in Late Oligocene decapod crustaceans from the Trbovlje Formation of Slovenia, with a description of two new species of hymenosomatid crabs
FIGURE 5. Scanning electron photomicrographs of Halicarcinus popeius sp. nov. (A–C) and Lucascinus trifailensis sp. nov. (D): A. RGA/SMNH 6385, details of anterior and left lateral border in dorsal view, pereopods (P2-P5), (composite of several photomicrographs); B. RGA/SMNH 2041, ventral side with missing sternum, details of anterior margin and buccal cavity, coxa of pereopods (cx2-cx5), pereopods (P2-P5), (composite of several photomicrographs); C. RGA/ SMNH 6373, detailed view of pereopodal (P3) dactylus; D. RGA/SMNH 6387, ventral side with male pleon, pereopods (P2-P5), abdominal somites (s1-s5), pleotelson (pt), sternites (st4-st8), sternal shield (s), third maxilliped (mxp3). Scale bars indicated on the photomicrographs.
FIGURE 4 in Late Oligocene decapod crustaceans from the Trbovlje Formation of Slovenia, with a description of two new species of hymenosomatid crabs
FIGURE 4. Halicarcinus popeius sp. nov. (A–D) and Lucascinus trifailensis sp. nov. (E, F): A. RGA/SMNH 6377, dorsal, (holotype), visible hymenosomian rim (hr) and coloration patterns; B. RGA/SMNH 6373, dorsal, (paratype), male with well-preserved chelipeds and pereopods (P2-P5); C. RGA/SMNH 6385, dorsal, (paratype), male with bulbous chelipeds; D. RGA/SMNH 2041, ventral, (paratype), female with missing sternum; E. RGA/SMNH 6384, dorsal, (holotype), indicated rostrum and hymenosomian rim (hr); F. RGA/SMNH 6391, dorsal, (paratype), elongated chelipeds and well preserved pereopods (P2-P5). All scale bars equal 5 mm.
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Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.