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7,081 results for “Habitats”
Figure 1 in Importance of moss habitats for mesostigmatid mites (Acari: Mesostigmata) in Romania
Figure 1. Geographical description of the investigated ecosystems in Romania (https:// google-earth.en.softonic.com; accessed in 26.06.2017).
Figure 5 in Spatial structuring of zooplankton communities through partitioning of habitat and resources in the Bay of Bengal during spring intermonsoon
Figure 5. Station-wise variation in the 0–500 m column integrated mesozooplankton abundance/density and biomass in the central (a) and western (b) Bay of Bengal during spring intermonsoon.
Figure 6 in Spatial structuring of zooplankton communities through partitioning of habitat and resources in the Bay of Bengal during spring intermonsoon
Figure 6. Depth-wise variation in the number of zooplankton groups at each station in the central (a) and western (b) Bay of Bengal during spring intermonsoon.
Figure 1 in Spatial structuring of zooplankton communities through partitioning of habitat and resources in the Bay of Bengal during spring intermonsoon
Figure 1. Map of the sampling site in the Bay of Bengal. Stations CB1 to CB5 are located along the central (88°E) and WB1 to WB4 along the western margin of the bay.
Figure 13 in Spatial structuring of zooplankton communities through partitioning of habitat and resources in the Bay of Bengal during spring intermonsoon
Figure 13. Multivariate cluster analysis of the data of all 129 copepod species combined from all the stations and depths in the central and western bay using the 30% cut-off level of Bray–Curtis similarity. Cluster/Group I are assemblages mostly from the mixed layer (M) and thermocline (T) from central and western transects. Group II comprises assemblages found between the thermocline and 500 m and Group III includes only a few species found exclusively from 200–300 m depth at stations CB3–CB5.
Figure 4 in Spatial structuring of zooplankton communities through partitioning of habitat and resources in the Bay of Bengal during spring intermonsoon
Figure 4. Vertical profiles of day (D) and night (N) zooplankton biovolume from multinet tows in the western Bay of Bengal during spring intermonsoon. ng: negligible biovolume; NO DATA is where the net failed to open/close. *At WB3, medusae (100 mL 100 m–3) and at WB4 salps (200 mL 100 m–3) were observed at the surface during the day.
Figure 9 in Spatial structuring of zooplankton communities through partitioning of habitat and resources in the Bay of Bengal during spring intermonsoon
Figure 9. Vertical distribution of abundance (log number 100 m–3) of the major copepod species in the central Bay of Bengal during spring intermonsoon.
Figure 3 in Spatial structuring of zooplankton communities through partitioning of habitat and resources in the Bay of Bengal during spring intermonsoon
Figure 3. Vertical profiles of day (D) and night (N) zooplankton biovolume from multinet tows in the central Bay of Bengal during spring intermonsoon. ng: Negligible biovolume; NO DATA is where the net failed to open/close. *Swarms of medusae were observed at CB3 (their biovolume 90 mL 100 m–3) and CB4 (200 mL 100 m–3) at the surface at night.
Figure 8 in Spatial structuring of zooplankton communities through partitioning of habitat and resources in the Bay of Bengal during spring intermonsoon
Figure 8. Vertical distribution of the various types (orders) of copepods in the central (a) and western (b) Bay of Bengal during the spring intermonsoon. The percentages at every depth are averages from 5 stations in the central and 4 stations in the western bay. Data are unavailable at 300–500 m in the central bay due to negligible abundance.
Figure 12 in Spatial structuring of zooplankton communities through partitioning of habitat and resources in the Bay of Bengal during spring intermonsoon
Figure 12. Variation in multivariate dispersion (MVDISP) indices between different depth strata (9 stations data combined) and between the central and western transects in the Bay of Bengal.
Figure 11 in Spatial structuring of zooplankton communities through partitioning of habitat and resources in the Bay of Bengal during spring intermonsoon
Figure 11. Variation in Shannon diversity (H'), species richness (d), and evenness (J') of copepods in different depth strata in the upper 500 m of the central (a) and western (b) Bay of Bengal.
Figure 6 in Kinorhynchs from sandy coastal habitats in Turkey, with the description of a new pan-Mediterranean species of Echinoderes (Cyclorhagida: Echinoderidae)
Figure 6. Light micrographs showing overviews and details of female Echinoderes riedli, NHMD-872891, from Balıkesir, Ayvalık, Turkey. (A) Ventral overview. (B) Segments 1 to 6, dorsal view. (C) Segments 1 to 6, ventral view. (D) Segments 6 to 9, dorsal view. (E) Segments 5 to 9, ventral view. (F) Segments 10 to 11, focusing on tergal extensions. Abbreviations: ltas, lateral terminal accessory spine; lvs, lateroventral spine; lvt, lateroventral tube; mdgco1, middorsal glandular cell outlet type 1; mds, middorsal spine; pdgco1, paradorsal glandular cell outlet; te, tergal extensions; vlt, ventrolateral tubes.
Figure 7 in Kinorhynchs from sandy coastal habitats in Turkey, with the description of a new pan-Mediterranean species of Echinoderes (Cyclorhagida: Echinoderidae)
Figure 7. Light micrographs showing overviews and details of (A–E, G–I) male Echinoderes sp. from Muğla, NHMD-872893, and (F) male paratype of Echinoderes charlotteae, ZMUC KIN-870, from the Gulf of Mexico. (A) Ventral overview. (B) Segments 1 to 5, dorsal view. (C) Segments 1 to 5, ventral view. (D) Segments 4 to 8, dorsal view. (E–F) Segment 8, ventral view, comparison of tube positions in (E) Echinoderes sp. and (F) E. charlotteae. (G) Segments 8 to 10, dorsal view. (H) Segments 10 to 11, dorsal view. (I) Segments 10 to 11, ventral view. Abbreviations: lat, lateral accessory tube; lts, lateral terminal spine; lvs, lateroventral spine; lvt, lateroventral tube; mdgco1, middorsal glandular cell outlet type 1; mds, middorsal spine; pdgco1, paradorsal glandular cell outlet type 1; pdss, paradorsal sensory spot; pe, penile spine; sdgco2, subdorsal glandular cell outlet type 2; slgco2, sublateral glandular cell outlet type 2; slt, sublateral tube; te, tergal extensions; vlt, ventrolateral tubes.
Figure 3 in Kinorhynchs from sandy coastal habitats in Turkey, with the description of a new pan-Mediterranean species of Echinoderes (Cyclorhagida: Echinoderidae)
Figure 3. Diagram of mouth cone (grey area), introvert and placids in Echinoderes shahmaranae sp. nov., showing distribution of inner oral styles (full circles), outer oral styles (diamonds), primary scalids (triangles), spinoscalids (fat open circles), and trichoscalids (stars), with positions of trichoscalid plates and placids indicated. Table shows the scalid arrangement by sector; single-lined boxes mark quincunxes, double- lined boxes mark "double diamonds".
Figure 4 in Kinorhynchs from sandy coastal habitats in Turkey, with the description of a new pan-Mediterranean species of Echinoderes (Cyclorhagida: Echinoderidae)
Figure 4. Light micrographs showing overviews and details of (A–H) male holotype, NHMD-872854, and (I) female paratype, NHMD- 872856, of Echinoderes shahmaranae sp. nov. from Fethiye, Turkey. (A) Ventral overview. (B) Segments 1 to 3, dorsal view. (C) Segments 1 to 3, ventral view. (D) Segments 4 to 8, dorsal view. (E) Segment 5, ventral view. (F) Segments 6 to 8, ventral view. (G) Segments 8 to 10, dorsal view. (H) Detail of segments 10 to 11, dorsal view, showing male sexual dimorphism. (I) Segments 10 to 11, ventral view, showing female sexual dimorphism. Abbreviations: lat, lateral accessory tube; ldt, laterodorsal tube; ltas, lateral terminal accessory spine; lts, lateral terminal spine; lvs, lateroventral spine; lvt, lateroventral tube; mds, middorsal spine; pdgco1, paradorsal glandular cell outlet type 1; pe, penile spine; pvb, paraventral bristles; sdtu, subdorsal tubes; slgco2, sublateral glandular cell outlet type 2; te, tergal extensions; vlt, ventrolateral tubes.
Figure 2 in Kinorhynchs from sandy coastal habitats in Turkey, with the description of a new pan-Mediterranean species of Echinoderes (Cyclorhagida: Echinoderidae)
Figure 2. Line art illustrations of Echinoderes shahmaranae sp. nov. (A) Female, dorsal view. (B) Female, ventral view. (C) Segments 10 to 11 in male, dorsal view. (D) Segments 10 to 11 in male, ventral view. Abbreviations: lat, lateral accessory tube; ldt, laterodorsal tube; ltas, lateral terminal accessory spine; lts, lateral terminal spine; lvs, lateroventral spine; lvt, lateroventral tube; mdgco1, middorsal glandular cell outlet type 1; mds, middorsal spine; mlss, midlateral sensory spot; pdgco1, paradorsal glandular cell outlet type 1; pe, penile spines; pvb, paraventral bristles; sdss, subdorsal sensory spot; sdt, subdorsal tube; slgco1/2, sublateral glandular cell outlet type 1/2; slss, sublateral sensory spot; vlss, ventrolateral sensory spot; vlt, ventrolateral tube; vmss, ventromedial sensory spot.
Figure 8 in Kinorhynchs from sandy coastal habitats in Turkey, with the description of a new pan-Mediterranean species of Echinoderes (Cyclorhagida: Echinoderidae)
Figure 8. Scanning electron micrographs showing overviews and details of Cephalorhyncha flosculosa. (A) Lateral overview. (B) Segment 4, subdorsal view. (C) Segments 6 to 7, ventral view. (D) Segments 1 to 3, ventral view. (E) Segments 4 to 6, dorsal view. (F) Segments 10 to 11, dorsal view. Abbreviations: fl, flosculus; mdf, middorsal fissure; mds, middorsal spine; pdss, paradorsal sensory spot; pmf, partial midventral fissure; sdss, subdorsal sensory spot; vlt, ventrolateral tube; vmss, ventromedial sensory spot.
Figure 10 in Kinorhynchs from sandy coastal habitats in Turkey, with the description of a new pan-Mediterranean species of Echinoderes (Cyclorhagida: Echinoderidae)
Figure 10. Comparative light micrographs showing paraventral hair patches in selected echinoderids. Species with paraventral cuticular hairs of same length and thickness as hairs posterior rows on tergal plate (A–C): (A) Echinoderes hispanicus, segments 3 to 6. (B) Echinoderes horni, segments 3 to 6. (C) Echinoderes antalyaensis, segments 3 to 7. Species with conspicuously thicker and longer hairs than other cuticular hairs on segment: (D) Echinoderes bispinosus, segments 4 to 6. Paraventral areas with hairs are indicated with dashed squares.
Figure 5 in Effect of urban habitats on colony size of ants (Hymenoptera, Formicidae) In memory of Professor A. A. Zakharov (Russian Academy of Sciences, Moscow)
Figure 5. Colony size of species per different geographic area. A – Crematogaster subdentata; B – Lasius neglectus.
Figure 4 in Effect of urban habitats on colony size of ants (Hymenoptera, Formicidae) In memory of Professor A. A. Zakharov (Russian Academy of Sciences, Moscow)
Figure 4. Colony size of 9 species of ants in several habitats of the same geographic area (calculated according to (A. Zakharov, 1978, 2015). A – Lasius fuliginosus; B – Camponotus vagus; C – Lasius emarginatus; D – Lasius niger; E – Formica cinerea; F - Dolichoderus quadripunctatus; G – Lasius brunneus; H – Crematogaster subdentata; I – Lasius neglectus.
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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.