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1,398 results for “Shallow Waters”
Fig. 5 in A late Paleocene fauna from shallow-water chemosynthesis-based ecosystems, Spitsbergen, Svalbard
Fig. 5. Ampullinid gastropod Globularia isfjordensis (Vonderbank, 1970) from the upper Paleocene, Basilika Formation, locality 500 m from Trigonometric point 25, Hollendarbukta (A–D) and Fossildalen (E), Spitsbergen, Svalbard. A. GPIBo 111 (holotype). B. GPIBo 112. C. GPIBo 113. D. GPIBo 110. E. NRM-PZ Mo 149179. Apertural (A1, B1, C1, D1. E1), lateral (A2, B2, C2, D2, E2), and apical (A3, B3) views.
Fig. 11 in A late Paleocene fauna from shallow-water chemosynthesis-based ecosystems, Spitsbergen, Svalbard
Fig. 11. Schematic illustration of Rhacothyas spitzbergensis (Anderson, 1970) from the upper Paleocene, Basilika Formation, Spitsbergen, Svalbard, showing morphological features discussed. Right valve, outer (A1) and inner (A2) views.
Fig. 3 in A late Paleocene fauna from shallow-water chemosynthesis-based ecosystems, Spitsbergen, Svalbard
Fig. 3. Sellithyrid brachiopod Neoliothyrina nakremi Bitner sp. nov. from the upper Paleocene, Basilika Formation, Fossildalen, Spitsbergen, Svalbard. A. Holotype, ZPAL V.48/9-1, decorticated shell in ventral (A1), dorsal (A2), and posterior (A4) views; left-lateral view of both valves (A3). B. Paratype, ZPAL V.48/9-2; decorticated shell in ventral (B1), dorsal (B2), and posterior (B4) views; left-lateral view of both valves (B3). C. Paratype, ZPAL V.48/9-3, decorticated shell in ventral (C1), dorsal (C2), and posterior (C4) views; left-lateral view of both valves (C3).
Fig. 2 in A late Paleocene fauna from shallow-water chemosynthesis-based ecosystems, Spitsbergen, Svalbard
Fig. 2. Transverse serial sections of the sellithyrid brachiopod Neoliothyrina nakremi Bitner sp. nov. paratype (ZPAL V.48/9-4) from the upper Paleocene, Basilika Formation, Fossildalen, Spitsbergen, Svalbard. L>20.2 mm. Numbers indicate distance in mm from the tip of the ventral umbo.
Fig. 9 in A late Paleocene fauna from shallow-water chemosynthesis-based ecosystems, Spitsbergen, Svalbard
Fig. 9. Mytilid bivalve?Musculus sp. from the upper Paleocene, Basilika Formation, Zachariassendalen, Spitsbergen, Svalbard. NRM-PZ Mo 183957, shell, partially preserved left valve.
Fig. 1. A in A late Paleocene fauna from shallow-water chemosynthesis-based ecosystems, Spitsbergen, Svalbard
Fig. 1. A. Map of Svalbard showing location of the study area. B. Map of the study area with the fossil localities indicated (asterisks).
Fig. 8 in A late Paleocene fauna from shallow-water chemosynthesis-based ecosystems, Spitsbergen, Svalbard
Fig. 8. Mytilid bivalve?Mytilus hauniensis (Rosenkrantz, 1920) from the upper Paleocene, Basilika Formation, Zachariassendalen (A) and locality 500 m west from Trigonometric point 25, Hollendarbukta (B), Spitsbergen, Svalbard. A. NRM-PZ Mo183950, shell, left valve sculptured with fine commarginal growth lines superimposed on growth halts (A1), dorsal view of both valves (A2), oblique umbonal view showing delaminated prodissoconch, arrows point on poorly preserved taxodont teeth (A3). B. GPIBo 154, shell, right valve.
Fig. 12 in A late Paleocene fauna from shallow-water chemosynthesis-based ecosystems, Spitsbergen, Svalbard
Fig. 12. Thyasirid bivalve Rhacothyas spitzbergensis (Anderson, 1970) from the upper Paleocene, Basilika Formation, Zachariassendalen (A, F, G) and Fossildalen (B–E), Spitsbergen, Svalbard. A. NRM-PZ Mo183968, shell, right valve (A1), dorsal view of a right valve showing posterior sulcus (A2), oblique anterior view showing small lunule (A3). B. NRM-PZ Mo 183970, shell, left valve view. C. NRM-PZ Mo 149144, partial shell, →
Fig. 6 in Tanaidaceans from Brunei III. A New Genus and Two New Species of Shallow-water Sphyrapodids (Crustacea: Peracarida: Tanaidacea) from the South China Sea
Fig. 6. Poligarida keriakis sp. nov., paratype female, A, antennule; B, antenna; C, labrum; D, left mandible; E, right mandible; F, maxillule; G, labium; H, maxilliped; I, maxilliped endite; J, epignath. Scale: 0.2 mm.
Fig. 3 in Tanaidaceans from Brunei III. A New Genus and Two New Species of Shallow-water Sphyrapodids (Crustacea: Peracarida: Tanaidacea) from the South China Sea
Fig. 3. Poligarida beni sp. nov., A, female cheliped; B, male cheliped; C, female pereopod 1, with detail of denticulation of spine. Scale: 0.1 mm.
Fig. 3 in Shallow-water Comatulids (Echinodermata: Crinoidea: Comatulida) of the Ashizuri-Uwakai Sea, Shikoku Island, Southern Japan
Fig. 3. Clarkcomanthus mirus (Rowe, Hoggett, Birtles, and Vail, 1986), BIK-EC-CR0036. A, centrodorsal and proximal ray, aboral view; B, cirrus, lateral view; C, proximal pinnules (P1 to P3, left to right), lateral view; D, terminal comb on P1, lateral views from side away from arm (left) and from side close to arm (right). Scale bars 5 mm for A–C, and 1 mm for D.
Fig. 2 in Shallow-water Comatulids (Echinodermata: Crinoidea: Comatulida) of the Ashizuri-Uwakai Sea, Shikoku Island, Southern Japan
Fig. 2. Clarkcomanthus mirabilis (Rowe, Hoggett, Birtles, and Vail, 1986), BIK-EC-CR0034. A, centrodorsal and proximal ray, aboral view; B, proximal pinnules (P1 to P3, left to right), lateral view; C, terminal comb on P1, oblique lateral view. Scale bars 5 mm for A and B, and 1 mm for C.
Fig. 1 in Shallow-water Comatulids (Echinodermata: Crinoidea: Comatulida) of the Ashizuri-Uwakai Sea, Shikoku Island, Southern Japan
Fig. 1. The Ashizuri-Uwakai Sea, Shikoku Island, southern Japan. Black circles indicate the sampling sites.
Fig. 5 in Spatial patterns of zooplanktivore Chirostoma species (Atherinopsidae) during water-level fluctuation in the shallow tropical Lake Chapala, Mexico: seasonal and interannual analysis
Fig. 5. (left column) Distribution-based Redundancy Analysis (db-RDA) ordination diagram of Lake Chapala with environmental variables (thick arrows), atherinopsids species (italic letters), sampling sites (numbers), and principal coordinates axes (thin arrows) at dry season (a: May of 1999) and rainy season (b: August of 1999; c: 2000). The fish are: jordani = Chirostoma jordani; consocium = Chirostoma consocium; labarcae = Chirostoma labarcae. The environmental variables are: Temp = temperature, DO = dissolved oxygen, Sal = salinity. In figure 5c shallow sites are in italic and deep sites in regular.
Fig. 3 in Spatial patterns of zooplanktivore Chirostoma species (Atherinopsidae) during water-level fluctuation in the shallow tropical Lake Chapala, Mexico: seasonal and interannual analysis
Fig. 3. GAM results for May and August of site influence on fish density to show differential distribution of species in Lake Chapala. a: Chirostoma jordani; b: Chirostoma consocium; c: Chirostoma labarcae. Circles represent the residuals. Spline fit (solid line) is bound by 95% confidence intervals (dotted lines).
Fig. 2 in Spatial patterns of zooplanktivore Chirostoma species (Atherinopsidae) during water-level fluctuation in the shallow tropical Lake Chapala, Mexico: seasonal and interannual analysis
Fig. 2. GAM results for May of environmental characteristics influence on fish density. a: effect of depth (m) on Chirostoma jordani; b: effect of temperature (°C) on C. jordani; c: effect of salinity on C. consocium. Circles represent the residuals. Spline fit (solid line) is bound by 95% confidence intervals (dotted lines).
Fig. 1 in Spatial patterns of zooplanktivore Chirostoma species (Atherinopsidae) during water-level fluctuation in the shallow tropical Lake Chapala, Mexico: seasonal and interannual analysis
Fig. 1. Map of Lake Chapala, Mexico. Numbers in bold represent sample sites and numbers in italic lake depths.
Predicting Shallow Water Dynamics using Echo-State Networks with Transfer Learning
<p>This is the source code and data for the publication "Predicting Shallow Water Dynamics using Echo-State Networks with Transfer Learning". Preprint - https://arxiv.org/abs/2112.09182</p>
Invasive lionfish dispersal between shallow- and deep-water habitats within coastal Floridian waters
<p>Data associated with the publication: Invasive lionfish dispersal between shallow- and deep-water habitats within coastal Floridian waters</p>
Text-fig. 10. Extant pans east of Inhaminga (18°26′28″'S: 35°35′45″E) surrounded by woodland. The pans typically have an arid, vegetation-free, marginal zone and a water-logged sump. Some pans are connected to each other by shallow overflow valleys. Image modified from Google Earth. in Stratigraphy, Chronology And Palaeontology Of The Tertiary Rocks Of The Cheringoma Plateau, Mozambique
Text-fig. 10. Extant pans east of Inhaminga (18°26′28″'S: 35°35′45″E) surrounded by woodland. The pans typically have an arid, vegetation-free, marginal zone and a water-logged sump. Some pans are connected to each other by shallow overflow valleys. Image modified from Google Earth.
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.