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1,579 results for “Baltics”
Figure 2 in Population dynamics of Pseudocalanus minutus elongatus in the Gulf of Gdansk (southern Baltic Sea) - experimental and numerical results
Figure 2. Vertical profiles of temperature (◦C) (A, B) and salinity (PSU) (C, D) at station J23 in 2006 and 2007, respectively.
Figure 6 in Population dynamics of Pseudocalanus minutus elongatus in the Gulf of Gdansk (southern Baltic Sea) - experimental and numerical results
Figure 6. Mean abundance of Pseudocalanus minutus elongatus from all stations and station J23 in the Gulf of Gdańsk for 2006 and 2007.
Figure 5 in Population dynamics of Pseudocalanus minutus elongatus in the Gulf of Gdansk (southern Baltic Sea) - experimental and numerical results
Figure 5. Vertical profiles of abundance (ind. m–3) of nauplii, CI to CV and adults (females and males) at station J23 for 2006 and 2007.
Figure 9 in Population dynamics of Pseudocalanus minutus elongatus in the Gulf of Gdansk (southern Baltic Sea) - experimental and numerical results
Figure 9. Total biomass (mg C m–3) of Pseudocalanus minutus elongatus as vertical mean concentrations at three stations (1, 2, 3 = J23) in the Gulf of Gdańsk; numerical simulations.
Figure 4 in Population dynamics of Pseudocalanus minutus elongatus in the Gulf of Gdansk (southern Baltic Sea) - experimental and numerical results
Figure 4. Stage structure of Pseudocalanus minutus elongatus in the Gulf of Gdańsk at station J23 for 2006 and 2007.
Figure 3 in Population dynamics of Pseudocalanus minutus elongatus in the Gulf of Gdansk (southern Baltic Sea) - experimental and numerical results
Figure 3. Taxonomical structure of Copepoda in the Gulf of Gdańsk (southern Baltic Sea) including data from all stations for 2006 and 2007.
Figure 11 in Population dynamics of Pseudocalanus minutus elongatus in the Gulf of Gdansk (southern Baltic Sea) - experimental and numerical results
Figure 11. Observed and simulated (based on monthly averaged) biomasses (mgm–3) of w.w. Pseudocalanus minutus elongatus at station J23 = 3 in the Gulf of Gdańsk. Calculated average values of all stations are also presented.
Figure 1 in Invasion of Eurytemora sibling species (Copepoda: Temoridae) from north America into the Baltic Sea and European Atlantic coast estuaries
Figure 1. Locations of the studied populations of E. affinis and E. carolleeae. Place names are listed in Table 1.
Figure 7 in Population dynamics of Pseudocalanus minutus elongatus in the Gulf of Gdansk (southern Baltic Sea) - experimental and numerical results
Figure 7. Weighted mean depth (WMD) of nauplii (N), copepodites (C1–3, C4–5) and adult (F, M) stages of Pseudocalanus minutus elongatus at station J23 in the Gulf of Gdańsk.
Figure 5 in Invasion of Eurytemora sibling species (Copepoda: Temoridae) from north America into the Baltic Sea and European Atlantic coast estuaries
Figure 5. Distribution of Eurytemora affinis and Eurytemora carolleeae individuals calculated on the base of indices: ind.1, ind.2, ind.3 (see text) (A) for females and (B) for males. Eurytemora affinis from the Gulf of Finland (open squares), from the Gulf of Riga (open triangles) and from the Vistula lagoon (open circles). E. carolleeae from the Gulf of Finland (filled square) and from the Gulf of Riga (filled triangles).
Figure 8 in Population dynamics of Pseudocalanus minutus elongatus in the Gulf of Gdansk (southern Baltic Sea) - experimental and numerical results
Figure 8. Vertical mean biomasses (mg C m–3) of eggs (Egg–N2), nauplii (N3–N6), younger copepodites (C1–C3), older copepodites (C4–C5) and adults at three stations (1, 2, 3 = J23) in the Gulf of Gdańsk; numerical simulations.
Figure 4 in Invasion of Eurytemora sibling species (Copepoda: Temoridae) from north America into the Baltic Sea and European Atlantic coast estuaries
Figure 4. Chosen morphological characters for analysis of Eurytemora carolleeae (A–C) and Eurytemora affinis (D–F): length and width of furcal branches (A, D), parts of male P5 swimming legs proportions (C, F), female genital segment (B, E).
Figure 3 in Invasion of Eurytemora sibling species (Copepoda: Temoridae) from north America into the Baltic Sea and European Atlantic coast estuaries
Figure 3. Common view of terra tipica Eurytemora carolleeae and Eurytemora affinis (A) E. carolleeae male and (B) E. carolleeae female from Chesapeake Bay; (C) E. affinis male and (D) E. affinis female from the Elbe River.
Figure 1 in Population dynamics of Pseudocalanus minutus elongatus in the Gulf of Gdansk (southern Baltic Sea) - experimental and numerical results
Figure 1. Location of the sampling stations; full circles indicate sampling stations, crosses indicate numerical simulations.
Figure 10 in Population dynamics of Pseudocalanus minutus elongatus in the Gulf of Gdansk (southern Baltic Sea) - experimental and numerical results
Figure 10. Simulated annual biomass profiles of five Pseudocalanus minutus elongatus groups and total biomass (mg C m–3) at point 3 = J23 in 2007.
FIGURES 1–6. 1, 2 in A new species of Lonchodryinus (Hymenoptera, Dryinidae) from Upper Eocene Baltic amber
FIGURES 1–6. 1, 2, Lonchodryinus groehni, ♀ holotype. 1, dorsal view; 2, ventral view. 3, Lonchodryinus balticus, ♀ holo- type, dorso-lateral view. 4–6, Lonchodryinus ruficornis, ♀ from Sweden, Trosa. 4, head in dorsal view; 5, mesoscutum (arrow indicates a notaulus); 6, habitus in dorsal view. Scale bar 1.4 mm for 1 and 2, 1.6 mm for 3, 0.6 mm for 4, 0.2 mm for 5, 2.2 mm for 6.
FIGURES 7–8. 7 in A new species of Lonchodryinus (Hymenoptera, Dryinidae) from Upper Eocene Baltic amber
FIGURES 7–8. 7, Lonchodryinus groehni, ♀ holotype. Chela. 8, Deinodryinus masneri, ♀ from USA, California, Kaweah Power Station. b = proximal bristle of the enlarged claw; c = enlarged claw; p = peg-like seta of the enlarged claw; t = protarsomere 5. Scale bar 0.1 mm for 7, 0.2 mm for 8.
FIGURES 24–30 in An extraordinary tribe of Tropiduchidae from the Eocene Baltic amber (Hemiptera: Fulgoromorpha: Fulgoroidea)
FIGURES 24–30. Patollo aestiorum gen. et sp. n. 24. specimen in amber, right lateral view; 25. specimen in amber, left lateral view; 26. anterior portion of body, dorsal view; 27. anterior portion of body, right laterodorsal view; 28. hind legs; 29. hind tarsi; 30. apex of male abdomen.
FIGURES 18–23 in An extraordinary tribe of Tropiduchidae from the Eocene Baltic amber (Hemiptera: Fulgoromorpha: Fulgoroidea)
FIGURES 18–23. Patollo aestiorum gen. et sp. n. 18. anterior portion of body; 19. venation of left tegmen; 20. venation of right tegmen; 21. right hind leg; 22. right hind tarsus; 23. apex of male abdomen.
FIGURES 9–13 in An extraordinary tribe of Tropiduchidae from the Eocene Baltic amber (Hemiptera: Fulgoromorpha: Fulgoroidea)
FIGURES 9–13. Patollo natangorum gen. et sp. n. 9. specimen in amber, left lateral view; 10. anterior portion of body; 11. anterior portion of body, left laterodorsal view; 12. head in left lateral view; 13. hind legs.
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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)
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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.