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67 results for “Saxony”
Hagenah Stone Cist, Lower Saxony
The Older Bronze Age stone cist in Hagenah, near Stade, Lower Saxony, Germany, in late afternoon light with long shadows. The tumulus ("Osterbarg") has been destroyed after World War I. For more information including a map and more pictures see https://de.wikipedia.org/wiki/Steinkiste_von_Hagenah and [http://denkmale-entdecken.museen-stade.de](http://denkmale-entdecken.museen-stade.de/index.php?id=740&tx_medientische_objects%5Bobject%5D=18&tx_medientische_objects%5Baction%5D=show&tx_medientische_objects%5Bcontroller%5D=Memorial&cHash=0ecd835374d4b481a78240c7d5eac2d8) (in German) or https://www.megalithic.co.uk/article.php?sid=17313 (in English). Recorded in April 2019, image-based modeling done with Agisoft Metashape. Higher resolution model on request. <br> <br> **References** Jürgen Deichmüller, Eine Steinkiste der älteren Bronzezeit bei Hagenah, Kr. Stade. Nachrichten aus Niedersachsen Urgeschichte 34, 1965, 83–85, see [PDF](https://journals.ub.uni-heidelberg.de/index.php/nnu/article/view/65712/58549). Source: Objaverse 1.0 / Sketchfab
Saxony Demi Cannon
A cannon made in Dresden, Germany in 1733. The carriage is a replica. Now located at Royal Arsenal Riverside, Woolwich, London. Photos taken in November 2019 with a Sony a6000 and processed in Reality Capture. Source: Objaverse 1.0 / Sketchfab
Text-fig. 10. Toxicodendron herthae (UNGER) KVAČEK et WALTHER, Sf. 7476, nat. size. in Early Oligocene Flora Of Seifhennersdorf (Saxony)
Text-fig. 10. Toxicodendron herthae (UNGER) KVAČEK et WALTHER, Sf. 7476, nat. size.
Text-fig. 7. Populus zaddachii HEER, Sf. 4452, nat. size. in Early Oligocene Flora Of Seifhennersdorf (Saxony)
Text-fig. 7. Populus zaddachii HEER, Sf. 4452, nat. size.
Text-fig. 8. Dombeyopsis sp., Sf. 6000:1:2, nat. size. in Early Oligocene Flora Of Seifhennersdorf (Saxony)
Text-fig. 8. Dombeyopsis sp., Sf. 6000:1:2, nat. size.
Abb. 2 in Die Fruchtfliegen Niedersachsens und Bremens (Diptera, Drosophilidae) The Fruit Flies (Diptera, Drosophilidae) of Lower Saxony and
Abb. 2: Räumliche Verteilung der nachgewiesenen Drosphilidae in Niedersachsen und Bremen.
SSR and cpDNA marker dataset genetic integrity of M.sylvestris in Saxony, Germany
<p><i>Malus sylvestris</i> (Mill.) is the only indigenous wild apple species in Central Europe. Agriculture, forestry and urbanization increasingly endanger <i>Malus sylvestris </i>natural habitats. In addition, the risks of cross-hybridization associated with increase in the cultivation of the domesticated apple <i>Malus ×domestica</i> (Borkh.), threatens the genetic integrity of <i>M. sylvestris</i>.</p> <p>The present study investigated the number of hybrids, genetic diversity and genetic structure of 292 putative <i>M. sylvestris</i> that originate from five different natural <i>M. sylvestris</i> populations in Saxony, Germany. All samples were genetically analyzed using nine nuclear microsatellite markers (ncSSR) and four maternally inherited chloroplast markers (cpDNA) along with 56 apple cultivars commonly cultivated in Saxony.</p> <p>Eighty-seven percent of the wild apple accessions were identified as pure <i>M. sylvestris</i>. The cpDNA analysis showed six private haplotypes for <i>M. sylvestris,</i> whereas three haplotypes were present in <i>M. sylvestris </i>and<i> M. ×domestica.</i> The analysis of molecular variance (AMOVA) resulted in a moderate (ncSSR) and great (cpDNA) variation among pure <i>M. sylvestris</i> and <i>M. ×domestica </i>individuals indicating a low gene flow between both species. The genetic diversity within the pure <i>M. sylvestris</i> populations was high with a weak genetic structure between the <i>M. sylvestris</i> populations indicating an unrestricted genetic exchange between these <i>M. sylvestris</i> populations.</p> <p>The clear distinguishing of <i>M. sylvestris</i> and <i>M. ×domestica</i> confirms our expectation of the existence of pure <i>M. sylvestris </i>accessions<i> </i>in this area and supports the argument for the implementation of preservation measures to protect the <i>M. sylvestris </i>populations in<i> </i>Saxony. </p>
Fig. 5 in Species status and population structure of mussels (Mollusca: Bivalvia: Mytilus spp.) in the Wadden Sea of Lower Saxony (Germany)
Fig. 5 Phylogenetic tree of the concatenated COI and VD1 * haplotypes (n 084) based on maximum likelihood estimates as constructed using RAxML. Asterisks indicate bootstrap values ≥95%
Fig. 3 Haplotype-networks for a in Species status and population structure of mussels (Mollusca: Bivalvia: Mytilus spp.) in the Wadden Sea of Lower Saxony (Germany)
Fig. 3 Haplotype-networks for a COI (n haplotypes 0 15; n sequences 0 111), b VD1 (n haplotypes 0 17; n sequences 0 81), and c the combined data set (n haplotypes 0 16; n sequences 0 64). The sizes of the symbols are proportional to the number of individuals sharing that haplotypes (unique haplotypes are not included), with the rectangular haplotype having had the largest outgroup weight. Each node corresponds to one mutation step. The patterns used for the symbols match those used in the geographical distribution maps (Fig. 2)
Fig. 2 in Species status and population structure of mussels (Mollusca: Bivalvia: Mytilus spp.) in the Wadden Sea of Lower Saxony (Germany)
Fig. 2 Geographical distribution and abundance of the haplotypes for a COI (n haplotypes 0 43; n sequences 0 139), b VD1 (n haplotypes 0 70; n sequences 0 134), and c the combined data set (n 084 haplotypes; n sequences 0 132). Unique haplotypes are pooled and indicated in gray; all other patterns represent haplotypes found in two or more individuals. The patterns for the latter match with those used for the corresponding minimum-spanning-networks (Fig. 3)
Fig. 1 in Species status and population structure of mussels (Mollusca: Bivalvia: Mytilus spp.) in the Wadden Sea of Lower Saxony (Germany)
Fig. 1 Sampling locations within the Wadden Sea of Lower Saxony (Germany). For the population genetic analyses, the sampling area was subjectively separated into three areas: west, central and east. The arrows represent the average current direction and strength (Loewe et al. 2004)
Changes in structure and composition of protected forest habitats after 10 years: Analyzes from different Natura 2000 sites in Saxony-Anhalt, Germany
<p>The data utilized in the paper "Wild et al. (2024)," submitted in Ecology and Evolution, are provided herein. The study examines the alterations in forest structure and species composition in Natura 2000 sites over a period of approximately ten years in the Harz and Harz foreland regions of Saxony-Anhalt, Germany.</p> <p>The data were collected as part of the research project "Possibilities and Methods for the Promotion of Tree Species and Habitats of Native Forests as a Building Block for Adaptation to Climate Change and for Coping with Forest Damage Using the Example of Selected Natura 2000 Areas in Saxony-Anhalt" (10/2020 – 06/2023) (project no. 407.1.10-60128/630120000006) funded by the European Agricultural Fund for Rural Development and the State Administration Office of Saxony-Anhalt. </p> <p>The surveys were conducted between the months of July and September in the years 2021 and 2022. </p>
Radar Precipitation Estimates (Radolan RW product) interpolated onto LfULG Stations Saxony
<p>Radar Precipitation Estimates interpolated onto LfULG Air Quality Measurement / Monitoring Stations</p> <p><strong>Processing Steps</strong></p> <ul> <li>Radolan RW data were retrieved from DWD Climate Data Center: https://opendata.dwd.de/climate_environment/CDC/grids_germany/hourly/radolan/historical/bin/</li> <li>Radolan RW data were interpolated onto a subset of LfULG Stations using the Nearest Neighbor method</li> <li>statistics (average, maximum & standard deviation) are provided for a 5 x 5 km**2 cutout</li> </ul> <p><strong>Data Description</strong></p> <ul> <li>data are packed into TAR Archives for each station</li> <li>individual data are stored as ASCII tables for each month and station (CSV with space as separator)</li> <li>variable meaning is described in the header section of each file</li> </ul> <p><strong>Example for Data Input with Python</strong></p> <pre><code class="language-python">import numpy as np import xarray as xr import datetime def read_rado_dat( filename ): ''' Reads Radolan RW time series from ASCII files and returns `xarray` Dataset. Parameters ---------- filename : str input filename Returns ------- rr : xr.Dataset time series data (rain rates in mm/h) ''' print(f'.. open {filename}') dat = np.genfromtxt( filename ) ndat = len(dat) print(ndat) time = [] for i in range( ndat ): d = dat[i] t = datetime.datetime(int( d[0] ), int( d[1] ), int( d[2] ), int( d[3] ), int( d[4] )) time += [t,] rr = xr.Dataset() rr['time'] = time rr['rr'] = xr.DataArray( data = dat[:, 7], dims = 'time', coords = {'time':time}) rr['rr_mean'] = xr.DataArray( data = dat[:, 8], dims = 'time', coords = {'time':time}) rr['rr_max'] = xr.DataArray( data = dat[:, 9], dims = 'time', coords = {'time':time}) rr['rr_std'] = xr.DataArray( data = dat[:, 10], dims = 'time', coords = {'time':time}) m = (rr != -999) return rr.where( m )</code></pre> <p> </p> <p> </p>
SSR and cpDNA marker dataset genetic integrity of M.sylvestris in Saxony, Germany
Open the record for dataset details and reuse information.
Figure 15 in Albian to Turonian agglutinated foraminiferal assemblages of the Lower Saxony Cretaceous sub-basins - implications for sequence stratigraphy and paleoenvironmental interpretation
Figure 15. Albian, Cenomanian, and Turonian micro-bioevents, their subtypes defined by agglutinated foraminifers, and interpreted bottomwater nutrient regimes in the Lower Saxony Cretaceous as well as in the Subhercynian subbasins. Micro-bioevent subtypes correlate with one or more acmes of specific agglutinated foraminiferal species. Depositional sequences and their stratigraphical relations are from Janetschke et al. (2015: Fig. 6).
Text-fig. 4. a – c: Celtis pirskenbergensis (KNOBLOCH) WALTHER et KVAČEK stat. n., a – Sf. 2353, b – Sf. 2354, c – epitype, Sf. 2377; d – Celtis (?) bohemica ENGELHARDT, Sf. 2234:1, all nat. size. in Early Oligocene Flora Of Seifhennersdorf (Saxony)
Text-fig. 4. a – c: Celtis pirskenbergensis (KNOBLOCH) WALTHER et KVAČEK stat. n., a – Sf. 2353, b – Sf. 2354, c – epitype, Sf. 2377; d – Celtis (?) bohemica ENGELHARDT, Sf. 2234:1, all nat. size.
Text-fig. 1. Location of the discussed early Oligocene sites in the northern part of the Bohemian Massif (the Czech Republic and Saxony) – 1. Knížecí, Hrazený hill, 2. Kundratice, 3. Hammerunterwiesenthal, 4. Holý Kluk, 5. Seifhennersdorf, 6. Bechlejovice. in Revision Of The Early Oligocene Flora Of Hrazený Hill (Formerly Pirskenberg) In Knížecí Near Šluknov, North Bohemia
Text-fig. 1. Location of the discussed early Oligocene sites in the northern part of the Bohemian Massif (the Czech Republic and Saxony) – 1. Knížecí, Hrazený hill, 2. Kundratice, 3. Hammerunterwiesenthal, 4. Holý Kluk, 5. Seifhennersdorf, 6. Bechlejovice.
Transect-based survey of bird species in Northern Saxony, Germany
<div> <div> <div> <p>Data from 3 bird surveys conducted between April 1st and June 9th in 2022. The surveys occurred in Northern Saxony, Germany, in an area dominated by agriculture. We recorded bird species occurrences along 20 transects, each extending for 3 km. We placed transects along paths, trails, and roads, ensuring continuous walkability while excluding fast transit routes for safety. In this process, we avoided U- and V-shaped transects to minimize detection probability variations due to spatial irregularities.</p> <p>This dataset contains the following:</p> <ul> <li><strong>transects.sqlite</strong> - Spatialite file with survey transects lines. The file contains the following fields:<br> <ul> <li><em>transect_id: </em>Unique transect identifier</li> <li><em>lenght_m: </em>Length of transect in meters</li> </ul> </li> <li><strong>observations.sqlite</strong> - Spatialite file with species observations points. The file contains the following fields: <ul> <li>transect_id: Unique transect identifier</li> <li>date: Surveying date</li> <li>species: Species name.</li> <li>count: Number of individuals detected.</li> </ul> </li> </ul> </div> </div> </div>
Lower Saxony horse - Coat of arms
So-called Lower Saxony horse. Coat of arms as a white steed on a red background. Historical: When Widukind (Duke of the Saxons) was defeated by Charlemagne (Karl d. Große) in the Saxon Wars (777-785) and accepted the Christian faith, King Charles gave him a white horse as a sign of conversion to the Christian faith. Later, the white horse in the red shield was found in various forms in coats of arms and seals of the Guelphs (Welfen = oldest still existing high noble family in Europe). Since 1952 official coat of arms of the state of Lower Saxony, capital Hanover. Material: bronzed metal on a marble base, height approx. 16 cm, circa 1955, private property. Source: Objaverse 1.0 / Sketchfab
Urologic-nephrological Care of Chronic Kidney Disease in Saxony-Anhalt/Magdeburg.
ClinicalTrials.gov study NCT02229435. IPD Sharing: Not stated. Countries: 1. Publications: 0.
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International Brain Laboratory public data
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OpenNeuro
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