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Figure 5. Unrooted haplotype network. Each circle represents a in Distribution and molecular differentiation of Culex pipiens complex species in the Middle and Eastern Black Sea Regions of Turkey
Figure 5. Unrooted haplotype network. Each circle represents a haplotype, and the lines above each link indicate one mutation. Small black dots indicate intermediate, missing, or unsampled haplotypes.
Figure 4 in Distribution and molecular differentiation of Culex pipiens complex species in the Middle and Eastern Black Sea Regions of Turkey
Figure 4. The phylogenetic tree is based on a 651-bp region of the Ace-2 gene from Culex pipiens. The tree was constructed using the maximum likelihood method, and bootstrap values are shown as numbers on the tree.
Salinity and horizontal components of velocity of the eastern part of the Black Sea
<p>The high resolution Black Sea circulation in 2008 - 2009 from numerical simulations obtained with NEMO modeling framework v 3.6 [Madec et al., 2016]. Such a resolution was used in order to reproduce meso- and submesoscale dynamics in the so-called Euxinus cascade, including basins of the Azov, Black and Marmara Seas [Mizyuk, Puzina, 2019; Mizyuk, Korotaev, 2020].</p> <p>Below the brief description of the developed regional configuration is presented. The horizontal grid is a quasi-uniform geographical mesh with a resolution of 1/96° × 1/69° northward and eastward correspondingly. The model bottom topography is based on bathymetric data from the EMODnet v1 digital elevation model (URL: <a href="http://www.emodnet-bathymetry.eu/">http://www.emodnet-bathymetry.eu</a>). To reproduce adequate flow values through the Bosphorus Strait, the "partially closed cell” technique was used [Madec et al., 2016]. The calculation was carried out for the period 2008-2009. For vertical descritisation we used a partial step z-coordinate. The time step of 1 min was chosen.</p> <p>Vertical turbulent mixing was performed using the k – ε model [Rodi, 1987]. The lasteral diffusion on momentum and tracers described with the bilaplacian operator. The corresponding values for turbulent viscosity and diffusivity are (-4 10<sup>7</sup> m<sup>4</sup>/s) and (-8 10<sup>6</sup> m<sup>4</sup>/s).</p> <p>The vector form was used for momentum equations with an energy and enstrophy conserving scheme. Advection terms of tracer equations are calculated with the TVD scheme [Zalesak, 1979] . The UNESCO formula is used as the equation of state. The sea surface height is calculated using split-explicit scheme.</p> <p>The initial temperature and salinity for the Black Sea (BS) basin were taken from BS Marine Forecasting Center (<a href="http://mis.bsmfc.net:8080/thredds/catalog.html">http://mis.bsmfc.net:8080/thredds/catalog.html</a>). For the Sea of Marmara the initial conditions are taken from the product of the Global Ocean reanalysis of CMEMS (<a href="http://www.marine.coperniucs.eu/">www.marine.coperniucs.eu</a>).The initial conditions for the basin of the Azov Sea were considered as climate data obtained using an optimal interpolation procedure of all available in-situ measurements provided by CMEMS in-situ TAC and SeaDataNet project (<a href="https://www.seadatanet.org/">https://www.seadatanet.org/</a>).</p> <p>Surface boundary conditions were obtained the product of ECMWF ERA5 reanalysis [Hersbach et al., 2020] with the spatial resolution of 1/4° and time resolution of 1 h. Open boundary conditions for Marmara Sea.</p>
Fig. 4 in Shape Analysis Of Otoliths Of The Round Goby, Neogobius Melanostomus (Gobiiformes, Gobiidae), From The Black Sea Basin
Fig. 4. Dendrogram for Euclidian distances between otolith contours of round goby (n = 786) from nine sampling areas, sampled during three years of study. Stippled line represents five clusters representing pairs of similar sampling sites. It shows that similarity of the sampling sites does not follow the pattern of their allocation chain along the coast of the Black sea visible in fig. 1.
Fig. 1 in Shape Analysis Of Otoliths Of The Round Goby, Neogobius Melanostomus (Gobiiformes, Gobiidae), From The Black Sea Basin
Fig. 1. Map of the study area with sampling localities: 1 — Lake Yalpuh; 2 — Snake Island; 3 — Dniester Estuary; 4 — Gulf of Odesa; 5 — Khadzhibey Estuary; 6 — Tylihul Estuary; 7 — Dnipro-Bug Estuary; 8 — Dzharylhach Bay; 9 — Obytichna Bay of the Sea of Azov.
Fig. 2 in Shape Analysis Of Otoliths Of The Round Goby, Neogobius Melanostomus (Gobiiformes, Gobiidae), From The Black Sea Basin
Fig. 2. Basic morphometric characters used for the shape description of the round goby otoliths. At the internal surface: 1 — dorsal part; 2 — ventral part; 3 — anterior margin; 4 — posterior margin; 5 — rostrum; 6 — pararostrum; 7 — acoustic groove.
Fig. 3 in Shape Analysis Of Otoliths Of The Round Goby, Neogobius Melanostomus (Gobiiformes, Gobiidae), From The Black Sea Basin
Fig. 3. The visualized reconstruction of the round goby otolith contour features predicated upon the first six Principal components (see Material and method for details).
Fig. 2 in Distribution Of Trematodes Cryptokotyle (Trematoda, Heterophyidae), In Fish Of The Family Gobiidae In The Estuary Waters And The Black Sea In Southern Ukraine
Fig. 2. Metacercariae of trematodes of Heterophyidae familyon the body surface and fins of N. fluviatialis.
Fig. 3 in Distribution Of Trematodes Cryptokotyle (Trematoda, Heterophyidae), In Fish Of The Family Gobiidae In The Estuary Waters And The Black Sea In Southern Ukraine
Fig. 3. Part of small intestines of duckling at autopsy. Visible trematodes C. jejunain mucus and on mucosal surfaces.
Fig. 2 in Current Status Of Anserinae Wintering In Azov-Black Sea Region Of Ukraine
Fig. 2. Intraseasonal dynamics of the number of Greater White-Fronted goose in the Biosphere Reserve "Askania Nova".
Fig. 1 in Current Status Of Anserinae Wintering In Azov-Black Sea Region Of Ukraine
Fig. 1. The subregions of the Azov-Black Sea region of Ukraine where Anserinae winter regularly: 1 — North- Western Black Sea subregion, 2 — Northern Black Sea subregion, 3 — Flat Crimea subregion, 4 — Syvash subregion, 5 — North-Western Pryazovia subregion.
Fig. 3 in Current Status Of Anserinae Wintering In Azov-Black Sea Region Of Ukraine
Fig. 3. Average number of Anserinae species, wintering in the Azov-Black Sea region of Ukraine (based on 13 mid-winter counts 2005–2017).
Fig. 5 in Current Status Of Anserinae Wintering In Azov-Black Sea Region Of Ukraine
Fig. 5. The long-term dynamics of number of Red-Breasted Geese, Graylag Goose and Greater White-Fronted Geese in the Azov-Black Sea region of Ukraine according to the results of mid-winter counts in 2005–2017.
Fig. 5 in Helminths Of The Mallard, Anas Platyrhynchos (Aves, Anatidae) In Ukraine: Analysis Of The Diversity In Mixed Forest Zone And The Black Sea Region
Fig. 5. Configuration of 2-dimensional MDS for specimens of Mallard from the mixed forest zone (P) and from the steppe zone (B) with overlapping clusters at similarity level of 15 %.
Fig. 3 in Helminths Of The Mallard, Anas Platyrhynchos (Aves, Anatidae) In Ukraine: Analysis Of The Diversity In Mixed Forest Zone And The Black Sea Region
Fig. 3. Prevalence (with lower and upper confidence intervals at significant level 95 %) and mean intensity (with range; in case when only one or two birds were infected by a certain type of helminth, then the actual intensity values are given) of Mallard´s infection with: A — trematodes from the mixed forest zone; B — trematodes from the steppe zone. * Logarithmic scale was used
Fig. 4 in The Amount And Distribution Of The Red Data Book Bird Wetland Species In The Azov-Black Sea Region Of Ukraine According To The Results Of August Counts 2004-2015
Fig. 4. Distribution of wetlands number depending on number of species in them (axis X — number of species, axis Y — number of wetlands).
Fig. 1 in Finding Of Pseudobacciger Harengulae (Digenea, Faustulidae) In The Mediterranean Horse Mackerel, Trachurus Mediterraneus (Actinopterygii, Carangidae), From The Gulf Of Odessa, Black Sea, Ukraine
Fig. 1. Pseudobacciger harengulae ex T. mediterraneus from the Gulf of Odessa, Black Sea. A — total view of adult (drawing); B — photograph of adult; C — seminal vesicle: Ap — anterior part, Pp — posterior part.
Fig. 5 in The Amount And Distribution Of The Red Data Book Bird Wetland Species In The Azov-Black Sea Region Of Ukraine According To The Results Of August Counts 2004-2015
Fig. 5. Distribution of wetlands depending on species number (axis X) and average amount of birds in them (axis Y).
Fig. 3 in Harpacticoida (Crustacea, Copepoda) Of Mussel Beds And Macroalgae On The Rocky Substrates In The North-Western Black Sea
Fig. 3. Average number of harpactocoid copepods per m2 and their percentage in total meiobenthos community.
Fig. 2 in Harpacticoida (Crustacea, Copepoda) Of Mussel Beds And Macroalgae On The Rocky Substrates In The North-Western Black Sea
Fig. 2. Percentage of harpactocoid copepods in total meiobenthos community on different species of macrophyts.
ScienceDex guides
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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.