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148 results for “coastal basin”
MAL04 Causal loop diagrams for the Charente River basin and its coastal zone (France)
<p>This dataset includes the causal loop diagrams (CLDs) developed by the H2020 COASTAL project’s MAL #4 for the Charente River basin and its coastal zone. These CLDs represent the functioning of the territory in a systemic way, highlighting its main components and interactions among them. The CLDs are the result of multiple sectoral and multi-actor workshops during which stakeholders from different sectors discussed and collaborated to establish a common vision of the land-sea system. The CLDs concern the whole territory and some specific sectors.</p>
MAL04 Territorial development scenarios for the Charente River basin and its coastal zone (France)
<p>This dataset includes the territorial development scenarios developed by the H2020 COASTAL project’s MAL #4 for the Charente River basin and its coastal zone. These scenarios were co-designed with local stakeholders to depict possible futures of the territory. “Towards a desirable future” represents the implementation of the business roadmap also designed in collaboration with stakeholders to achieve a desirable and sustainable future. “Improving current trends” describes the expected evolution of the territory if current efforts are maintained without significant innovation. “Towards a fragmented territory” illustrates a negative development of the territory, exacerbating current issues and inequalities. Each scenario consists in a narrative and in a set of values attributed to the decision variables of the MAL #4 system dynamics model. These values are converted into time-series to simulate the scenarios (cf. data_scenarios.xlsx in <a href="https://doi.org/10.5281/zenodo.7075123">https://doi.org/10.5281/zenodo.7075123</a>).</p>
Fig. 4 in A new species of Characidium (Characiformes: Crenuchidae) from coastal basins in the Atlantic Rainforest of eastern Brazil, with phylogenetic and phylogeographic insights into the Characidium alipioi species group
Fig. 4. Fast flowing stream, type locality of Characidium cricarense, at Cachoeira do Inferno rapids in rio Cricaré, São Mateus, ES, Brazil. GPS coordinates: 18°42'24.5"S 40°16'7.2"W.
FIG. 3. — A, Gyrostrea A in Systematics, palaeoecology and taphonomy of Turonian oysters from the northern Gabon Coastal Basin
FIG. 3. — A, Gyrostrea A MDG/LBV/Lm-13; B, C, Rhynchostreon cf. suborbiculatum (Lamarck, 1801) MDG/LBV/Lm-9; D-F, Gryphaeostrea sp.; D-E, MDG/LBV/Lm- 7.1, F. MDG/LBV/Lm-7.2; G, H, Curvostrea tevesthensis (Coquand, 1862) MDG/LBV/Lm-11; I-M, Ilymatogyra (Afrogyra) africana (Lamarck, 1801); I, J, MDG/LBV/ Lm-8.3, K. MDG/LBV/Lm-8.2, L-M. MDG/LBV/Lm-8.1; N, Q, Ostreidea gen. et sp.; indet MDG/LBV/Lm-34; O, P. Pycnodonte sp. MDG/LBV/Lm-10. Scale bar: 1 cm.
FIG. 4. — A-D in Systematics, palaeoecology and taphonomy of Turonian oysters from the northern Gabon Coastal Basin
FIG. 4. — A-D, Ostrea sp. D: A, B, MDG/LBV/Lm-33.1; C, D, MDG/LBV/Lm-33.2; E, Ostrea sp. C MDG/LBV/Lm-32.1; F, Gyrostrea sp. B MDG/LBV/Lm-14; G-N, Gyrostrea delettrei (Coquand, 1862); G, H, MDG/LBV/Lm-12.1; I, J, MDG/LBV/Lm-12.2; K, L, MDG/LBV/Lm-12.3, M-N. MDG/LBV/Lm-12.4; O-R, Ostrea sp. B; O, P, MDG/LBV/Lm-31.1; Q, R, MDG/LBV/Lm-31.2; S-U, Ostrea sp. A, S-T. MDG/LBV/Lm-15.1; U, MDG/LBV/Lm-15.2. Scale bar: 1 cm.
FIGURE 5 in Genetic differentiation through dispersal and isolation in two freshwater fish species from coastal basins of Northeastern Brazil
FIGURE 5 | Time-calibrated phylogeny for samples of Prochilodus lacustris from Maranhão coastal basins and Tocantins basin. Time is in thousands of years. The color bars in the tree correspond to the populations presented in Fig. 3A.
FIGURE 4 in Genetic differentiation through dispersal and isolation in two freshwater fish species from coastal basins of Northeastern Brazil
FIGURE 4 | Time-calibrated phylogeny for samples of Schizodon dissimilis from coastal basins of northeastern Brazil. Time is in thousands of years. The color bars in the tree correspond to the populations presented in Fig. 2A.
FIGURE 3 in Genetic differentiation through dispersal and isolation in two freshwater fish species from coastal basins of Northeastern Brazil
FIGURE 3 | Distribution and haplotype structure of Prochilodus lacustris. A. Paleodrainage reconstruction of coastal basins from northeastern Brazil and geographic distribution of groups defined by SAMOVA. B. Estimate of the probable groups of populations produced by the BAPS. C. Haplotypes networks of mtDNA control region. All analysis recovered a total of six groups in this area, but the SAMOVA do not identify the same groups that other analysis. The colors used to highlight areas in the network correspond to populations in map.
FIGURE 2 in A Century after! Rediscovery of the ancient catfish Diplomystes Bleeker 1858 (Siluriformes: Diplomystidae) in coastal river basins of Chile and its implications for conservation
FIGURE 2 | Individuals of Diplomystes nahuelbutaensis recorded in this study and their habitat. A. individual collected in Laraquete (Lar01); B. individual collected and released in Carampangue. C. individual collected in Laraquete (Lar02) and released; D. Habitat of D. nahuelbutaensis in the Cabrera River, Carampangue Basin.
FIGURE 4 in A Century after! Rediscovery of the ancient catfish Diplomystes Bleeker 1858 (Siluriformes: Diplomystidae) in coastal river basins of Chile and its implications for conservation
FIGURE 4 | Null distribution of Fst values assuming a panmictic model versus the observed Fst value (vertical line) between Coastal and Biobío samples of Diplomystes nahuelbutaensis.
Fig. 52. Discoscaphites jerseyensis, n in CEPHALOPODS FROM THE CRETACEOUS/TERTIARY BOUNDARY INTERVAL ON THE ATLANTIC COASTAL PLAIN, WITH A DESCRIPTION OF THE HIGHEST AMMONITE ZONES IN NORTH AMERICA. PART III. MANASQUAN RIVER BASIN, MONMOUTH COUNTY, NEW JERSEY
Fig. 52. Discoscaphites jerseyensis, n.sp., macroconchs, Pinna Layer, top of the Tinton Formation, Manasquan River Basin, Monmouth County, New Jersey. A–D. AMNH 50393, holotype. A. Right lateral; B. apertural; C. ventral; D. left lateral. E–H. AMNH 50774, paratype. E. Right lateral; F. apertural; G. ventral; H. left lateral. All figures X1.
Fig. 46 in CEPHALOPODS FROM THE CRETACEOUS/TERTIARY BOUNDARY INTERVAL ON THE ATLANTIC COASTAL PLAIN, WITH A DESCRIPTION OF THE HIGHEST AMMONITE ZONES IN NORTH AMERICA. PART III. MANASQUAN RIVER BASIN, MONMOUTH COUNTY, NEW JERSEY
Fig. 46. Size frequency histogram of a sample of Discoscaphites iris (Conrad, 1858) from the upper part of the Tinton Formation, mostly the Pinna Layer, Manasquan River Basin, Monmouth County, New Jersey.
Fig. 51 in CEPHALOPODS FROM THE CRETACEOUS/TERTIARY BOUNDARY INTERVAL ON THE ATLANTIC COASTAL PLAIN, WITH A DESCRIPTION OF THE HIGHEST AMMONITE ZONES IN NORTH AMERICA. PART III. MANASQUAN RIVER BASIN, MONMOUTH COUNTY, NEW JERSEY
Fig. 51. Discoscaphites gulosus (Morton, 1834), macroconch, MAPS A2025c1, Pinna Layer, top of the Tinton Formation, Manasquan River Basin, Monmouth County, New Jersey. A. Lateral view of part of the shaft; B. ventral view. Both figures X1.
Fig. 50 in CEPHALOPODS FROM THE CRETACEOUS/TERTIARY BOUNDARY INTERVAL ON THE ATLANTIC COASTAL PLAIN, WITH A DESCRIPTION OF THE HIGHEST AMMONITE ZONES IN NORTH AMERICA. PART III. MANASQUAN RIVER BASIN, MONMOUTH COUNTY, NEW JERSEY
Fig. 50. Discoscaphites minardi Landman et al., 2004a, macroconchs, or indeterminate (as indicated), Pinna Layer, and underlying part of Tinton Formation (as indicated), Manasquan River Basin, Monmouth County, New Jersey. A–C. AMNH 50760, underlying part of the Tinton Formation. A. Right lateral; B. ventral; C. left lateral. D,E. AMNH 50759. D. Right lateral; E. ventral. F,G. AMNH 50758, dimorph indeterminate, but probably a microconch. F. Ventral; G. left lateral. H,I. AMNH 50761.
Fig. 44 in CEPHALOPODS FROM THE CRETACEOUS/TERTIARY BOUNDARY INTERVAL ON THE ATLANTIC COASTAL PLAIN, WITH A DESCRIPTION OF THE HIGHEST AMMONITE ZONES IN NORTH AMERICA. PART III. MANASQUAN RIVER BASIN, MONMOUTH COUNTY, NEW JERSEY
Fig. 44. Discoscaphites iris (Conrad, 1858). A–Q. Pinna Layer, Tinton Formation, and reworked material at the base of the Hornerstown Formation (as indicated), Manasquan River Basin, Monmouth County, New Jersey. A,B. MAPS A2060b34, a microconch. A. Ventral; B. left lateral. C,D. MAPS A2060b33, a microconch. C. Ventral; D. left lateral. E. MAPS A2060b1, part of a cluster of juveniles, with the bottom side down. F–I. AMNH 50711, a microconch. F. Right lateral; G. apertural; H. ventral; I. left
Fig. 38 in CEPHALOPODS FROM THE CRETACEOUS/TERTIARY BOUNDARY INTERVAL ON THE ATLANTIC COASTAL PLAIN, WITH A DESCRIPTION OF THE HIGHEST AMMONITE ZONES IN NORTH AMERICA. PART III. MANASQUAN RIVER BASIN, MONMOUTH COUNTY, NEW JERSEY
Fig. 38. Top. Size histogram of a sample of Eubaculites latecarinatus (Brunnschweiler, 1966), Pinna Layer, Tinton Formation, Manasquan River Basin, central Monmouth County, New Jersey. Most of the specimens are fragments of juvenile body chambers. Bottom. Scatter plot of whorl width versus height in the same sample of E. latecarinatus. Measurements are at the adoral ends of the specimens.
Fig. 37 in CEPHALOPODS FROM THE CRETACEOUS/TERTIARY BOUNDARY INTERVAL ON THE ATLANTIC COASTAL PLAIN, WITH A DESCRIPTION OF THE HIGHEST AMMONITE ZONES IN NORTH AMERICA. PART III. MANASQUAN RIVER BASIN, MONMOUTH COUNTY, NEW JERSEY
Fig. 37. Eubaculites latecarinatus (Brunnschweiler, 1966), Pinna Layer, Tinton Formation, Manasquan River Basin, central Monmouth County, New Jersey. A–E. AMNH 51877. A. Right lateral; B. dorsal; C. ventral; D. left lateral; E. whorl section at adoral end. F–I. AMNH 51876. F. Right lateral; G. dorsal; H. ventral; I. left lateral. J–M. AMNH 51862. J. Right lateral; K. dorsal; L. ventral; M. left lateral. N–Q. AMNH 51875. N. Right lateral; O. dorsal; P. ventral; Q. left lateral. All figures X1.
Fig. 43 in CEPHALOPODS FROM THE CRETACEOUS/TERTIARY BOUNDARY INTERVAL ON THE ATLANTIC COASTAL PLAIN, WITH A DESCRIPTION OF THE HIGHEST AMMONITE ZONES IN NORTH AMERICA. PART III. MANASQUAN RIVER BASIN, MONMOUTH COUNTY, NEW JERSEY
Fig. 43. Discoscaphites iris (Conrad, 1858), macroconchs. A–E, G–S. Pinna Layer and the underlying part of the Tinton Formation (as indicated), Manasquan River Basin, Monmouth County, New Jersey. A– D. AMNH 50398, slightly crushed, underlying part of the Tinton Formation. A. Right lateral; B. apertural; C. ventral; D. left lateral. E. AMNH 50387, small specimen, partially sideritized, left lateral. G,H. AMNH 50756. G. Right lateral; H. ventral. I,J. AMNH 50389. I. Right lateral; J. ventral. K–M.
Fig. 36 in CEPHALOPODS FROM THE CRETACEOUS/TERTIARY BOUNDARY INTERVAL ON THE ATLANTIC COASTAL PLAIN, WITH A DESCRIPTION OF THE HIGHEST AMMONITE ZONES IN NORTH AMERICA. PART III. MANASQUAN RIVER BASIN, MONMOUTH COUNTY, NEW JERSEY
Fig. 36. Eubaculites latecarinatus (Brunnschweiler, 1966), Pinna Layer, Tinton Formation, Manasquan River Basin, central Monmouth County, New Jersey. A,B. AMNH 50419. A. Ventral; B. right lateral. C– G. AMNH 50435. C. Right lateral; D. dorsal; E. ventral; F. left lateral; G. whorl section at adapical end. H–L. AMNH 51888. H. Right lateral; I. dorsal; J. ventral K. left lateral; L. whorl section at adoral end. M–P. AMNH 51874. M. Right lateral; N. dorsal; O. ventral; P. left lateral. Q–U. AMNH 51864. Q. Right lateral; R. dorsal; S. ventral; T. left lateral; U. whorl section at adapical end. V–Y. AMNH 51863. V. Right lateral; W. dorsal; X. ventral; Y. left lateral. All figures X1.
Fig. 35 in CEPHALOPODS FROM THE CRETACEOUS/TERTIARY BOUNDARY INTERVAL ON THE ATLANTIC COASTAL PLAIN, WITH A DESCRIPTION OF THE HIGHEST AMMONITE ZONES IN NORTH AMERICA. PART III. MANASQUAN RIVER BASIN, MONMOUTH COUNTY, NEW JERSEY
Fig. 35. Top. Size histogram of a sample of Eubaculites carinatus (Morton, 1834), Pinna Layer, Tinton Formation, Manasquan River Basin, central Monmouth County. Nearly all of the specimens are fragments of juvenile body chambers with some exceptions, notably the two largest specimens (AMNH 50766 and MAPS A2058b1), which are presumably mature macroconchs. Bottom. Scatter plot of whorl width versus height in intercostal section in the same sample of E. carinatus. All measurements are at the adoral ends of the specimens. The Xs and Os represent measurements through the ontogeny of AMNH 50766 and MAPS A2058b1, respectively (the open circles indicate the septate portion of MAPS A2058b1; AMNH 50766 is completely septate.) The triangle represents another large body chamber (MAPS A2058b2), presumably a macroconch.
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
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OpenNeuro
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