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214 results for “mountain lake”
Figure 1 in Distribution of rotifers of high mountain lakes in the Eastern Black Sea Range of Turkey
Figure 1. Map of 59 sampling stations associated with 6 drainage basins in the Eastern Black Sea Range in Turkey. Ç = Çoruh River Basin, F = Fırtına Stream Basin, İ = İyidere Stream Basin, K = Kabisra Stream Basin, S = Solaklı Stream Basin, M = Maçka Stream Basin.
Figure 7 in Distribution of rotifers of high mountain lakes in the Eastern Black Sea Range of Turkey
Figure 7. Rotifer species richness for different altitudinal distributions of lakes (n = 58) except Lake Uzungöl (1100 m a.s.l.).
Figure 2 in First record of Parochlus kiefferi (Garrett, 1925) in a sediment sequence from a Slovak mountain lake with notes on paleolimnological interpretation
Figure 2. Detail of the head capsule of Parochlus kiefferi found in lake Vrbické pleso. Photo: Martina Jambrović.
Living organisms and sedimentary remains from high mountain lakes in the Alps collected in Summer 2000
<p>A data set of environmental and biological data collected in 2000 during the ice-free period in high mountain lakes located above the local timberline in the Alps, in Italy, Switzerland and Austria. Environmental data include coordinates, geographical attributes and detailed information on vegetation, bedrock and land use in lake catchments. Chemical analyses of a sample for each lake collected at the lake surface in Summer 2000 are also reported. Biological data include phytoplankton, zooplankton, macroinvertebrates, benthic diatoms. Diatoms, cladoceran and chironomids remains and algal and bacterial pigments were also analysed in lake sediments.</p>
Figure 19 in Elasmobranchs from the Lower Triassic Sulphur Mountain Formation near Wapiti Lake (BC, Canada)
Figure 19. Ctenacanthoidea incertae sedis 'genus A': dermal denticles and unidentified elements as preserved in specimen UALVP 46572. A and B, bar-like?skeletal elements and impressions of elements aligned among numerous small denticles (arrows). C, denticle, and a sketch of the denticle, with diverging ridges in the crown. Possibly, this is the denticle-type referred to as 'Palaeobates' by Schaeffer & Mangus (1976). D, thin section (UALVP 46572-T1) through one of the denticles, showing the osteodont pedicle and the mesial platform with orthodont prongs covered entirely with enameloid.
Figure 18 in Elasmobranchs from the Lower Triassic Sulphur Mountain Formation near Wapiti Lake (BC, Canada)
Figure 18. Morpho-histology of teeth (cf. Fig. 2). A, Wapitiodus aplopagus gen. et sp. nov.: an isolated tooth in labial view (holotype specimen TMP 97.74.10). B, Polyacrodontidae gen. et sp. indet.: vertical section through an isolated tooth, specimen TMP 88.98.51. Note that the root and most of the crown is osteodont. C–E, Polyacrodontidae gen. et sp. indet.: various scanning electron microscopy (SEM) magnifications of the SLE in specimen TMP 88.98.51 (white asterisks mark the same position in B–E). Abbreviations: ORT, orthodentine; OST, osteodentine; SLE, single layer enameloid.
Figure 16 in Elasmobranchs from the Lower Triassic Sulphur Mountain Formation near Wapiti Lake (BC, Canada)
Figure 16. Indetermined?Wapitiodus gen. nov.: almost complete anal fin as preserved in specimen UALVP 46534. Anterior is to the left.
Figure 15 in Elasmobranchs from the Lower Triassic Sulphur Mountain Formation near Wapiti Lake (BC, Canada)
Figure 15. Latex peel of the conodont Neospathodus homeri as found associated with the holotype UALVP 46531 of Wapitiodus homalorhizo sp. nov.
Figure 14 in Elasmobranchs from the Lower Triassic Sulphur Mountain Formation near Wapiti Lake (BC, Canada)
Figure 14. Wapitiodus homalorhizo sp. nov.: anterior (A, occlusal view) and posterior (B, labial view, partly as imprint) tooth as preserved in the holotype UALVP 46531. Arrows indicate (from left to right, top to bottom) the longitudinal crest, the labial peg, the asymmetric main cusp and the prominent ridges preserved as imprints.
Figure 13 in Elasmobranchs from the Lower Triassic Sulphur Mountain Formation near Wapiti Lake (BC, Canada)
Figure 13. Wapitiodus homalorhizo sp. nov.: photograph (A) and sketch (B) of holotype UALVP 46531. Shaded areas are broken off. See the Appendix for the abbreviations.
Figure 17 in Elasmobranchs from the Lower Triassic Sulphur Mountain Formation near Wapiti Lake (BC, Canada)
Figure 17. Wapitiodus aplopagus gen. et sp. nov. (specimen TMP 83.205.62): photograph (A) and drawing (B) of the partially preserved caudal fin showing the number and arrangement of?interventrals (iv) and radials (rad) in the tail. Anterior is to the left. See the Appendix for the abbreviations.
Figure 12 in Elasmobranchs from the Lower Triassic Sulphur Mountain Formation near Wapiti Lake (BC, Canada)
Figure 12. Wapitiodus aplopagus gen. et sp. nov. Slightly displaced dermal denticles, probably from the midtrunk region as preserved in specimen UALVP 46527. Anterior is to the right.
Figure 10 in Elasmobranchs from the Lower Triassic Sulphur Mountain Formation near Wapiti Lake (BC, Canada)
Figure 10. Wapitiodus aplopagus gen. et sp. nov. An isolated recurved denticle possibly shifted from the posterolateral wall (?) as discovered in a thin section of specimen UALVP 46529.
Figure 9 in Elasmobranchs from the Lower Triassic Sulphur Mountain Formation near Wapiti Lake (BC, Canada)
Figure 9. Wapitiodus aplopagus gen. et sp. nov.: morphologic variation of dermal denticles as found in various body regions in holotype TMP 97.74.10. A, dermal denticles from between the pelvic and anal fins. B, dermal denticles from the tip of the lower jaw. C, dermal denticles from the dorsal trunk area. D, dermal denticles from the tip of the anterior dorsal fin. E, dermal denticles from the mid-area of the posterior dorsal fin. F, dermal denticles from the anterior rim of the fin above the posterior dorsal fin spine. The denticles are not necessarily either in situ or orientated in the same way, see the text for the description. The shark was drawn by Beat Scheffold, PIMUZ.
Figure 11 in Elasmobranchs from the Lower Triassic Sulphur Mountain Formation near Wapiti Lake (BC, Canada)
Figure 11. Wapitiodus aplopagus gen. et sp. nov.: specimen UALVP 46529; photograph (A, dusted with NH4Cl) and sketch (B) of the anterior body preserved in a ventral view with pectoral fins, anterior fin spine and pelvic girdle. See the Appendix for the abbreviations.
Figure 7 in Elasmobranchs from the Lower Triassic Sulphur Mountain Formation near Wapiti Lake (BC, Canada)
Figure 7. Wapitiodus aplopagus gen. et sp. nov.: dorsal fins and fin spines of holotype TMP 97.74.10. Note that the posterior fin spine (A) is much more slender and more elongate than the anterior one (B).
Figure 6 in Elasmobranchs from the Lower Triassic Sulphur Mountain Formation near Wapiti Lake (BC, Canada)
Figure 6. Wapitiodus aplopagus gen. et sp. nov.: the?metapterygium is the only element of the pectoral girdle visibly preserved in the holotype TMP 97.74.10. See the text for a discussion.
Figure 5 in Elasmobranchs from the Lower Triassic Sulphur Mountain Formation near Wapiti Lake (BC, Canada)
Figure 5. Wapitiodus aplopagus gen. et sp. nov.: dentition of holotype TMP 97.74.10. A, close-up of a single tooth from (B); unicuspid teeth may occasionally reveal vestigial cusplets (arrowhead). B, anteriormost tooth files (7–10) with unicuspid teeth. C, lateral and distal (posterior) teeth lacking cusps. D, close-up of (C) showing the absence of a central cusp and the conspicuous transverse crenulations on tooth crowns.
Figure 4 in Elasmobranchs from the Lower Triassic Sulphur Mountain Formation near Wapiti Lake (BC, Canada)
Figure 4. Wapitiodus aplopagus gen. et sp. nov.: photograph (A) and drawing (B) of the skull of holotype TMP 97.74.10. See the Appendix for the abbreviations.
Figure 2 in Elasmobranchs from the Lower Triassic Sulphur Mountain Formation near Wapiti Lake (BC, Canada)
Figure 2. Semi-schematic drawing (a reduced number of crenulations and foramina are shown to assist with clarity) of a symphysial tooth of Wapitiodus aplopagus gen. et sp. nov. (based on the holotype specimen TMP 97.74.10) illustrating the tooth terminology used in this paper. Abbreviations: lcr, longitudinal crest (either ridge or keel running mesiodistally over the crown linking the central cusp and tooth shoulders); lcu, lateral cusplets (here tiny secondary 'cusps' flanking the main cusp); cre, crenulations (vertical ridges on the surface of the crown); lap/lip, labial/ lingual peg (a bulbous projection on the base of either the labial or lingual side of the cusp of the crown).
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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.