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867 results for “spatiotemporal”
Figure 3 in Spatiotemporal patterns of ground beetle diversity (Coleoptera: Carabidae) in a Ramsar wetland (Chott Tinsilt) of Algeria
Figure 3. Values of observed and estimated (Chao1) species richness with standard deviations (±SD) as vertical error bars, of ground beetle community sampled at Chott Tinsilt, northeastern Algeria.
Figure 6 in Spatiotemporal distribution and population structure of Clibanarius symmetricus (Randall, 1840) (Crustacea, Diogenidae) in an Amazon estuary
Figure 6. Frequency distribution of cephalothoracic shield length (in mm) classes of the Clibanarius symmetricus specimens collected in the Marapanim estuary, Pará, Brazil. The vertical line represents the onset of sexual maturity (3.6 mm).
Figure 1 in Spatiotemporal patterns of ground beetle diversity (Coleoptera: Carabidae) in a Ramsar wetland (Chott Tinsilt) of Algeria
Figure 1. Geographical location of Chott Tinsilt (northeastern Algeria), positioning of sampled stations (T1 and T2), and the layout of experimental design with pitfall traps at each station.
Figure 2 in Spatiotemporal distribution and population structure of Clibanarius symmetricus (Randall, 1840) (Crustacea, Diogenidae) in an Amazon estuary
Figure 2. Median Clibanarius symmetricus density by season (a), sector (b), site (c), and midlittoral zone (d) in the Marapanim River estuary (PA), between August 2006 and July 2007, based on the results of the PERMANOVA.
Figure 1 in Spatiotemporal distribution and population structure of Clibanarius symmetricus (Randall, 1840) (Crustacea, Diogenidae) in an Amazon estuary
Figure 1. Geographical location of the study area, showing the 4 sampling sites in the Marapanim estuary: A1 and A2 (western margin), B1 and B2 (eastern margin).
Figure 4 in Spatiotemporal distribution and population structure of Clibanarius symmetricus (Randall, 1840) (Crustacea, Diogenidae) in an Amazon estuary
Figure 4. Frequency of occurrence of Clibanarius symmetricus specimens of nonovigerous females (F), ovigerous females (OF), males (M), and intersex individuals (INT) collected each month between August 2006 and July 2007, in the Marapanim estuary, Pará, Brazil.
Figure 2 in Spatiotemporal patterns of ground beetle diversity (Coleoptera: Carabidae) in a Ramsar wetland (Chott Tinsilt) of Algeria
Figure 2. Total number of subfamilies, genera, and species of ground beetles (Coleoptera: Carabidae) for each station (T1 and T2), and for the entire wetland of Chott Tinsilt, northeastern Algeria.
Figure 3 in Spatiotemporal distribution and population structure of Clibanarius symmetricus (Randall, 1840) (Crustacea, Diogenidae) in an Amazon estuary
Figure 3. Mean Clibanarius symmetricus density, and the temperature and salinity recorded in the Marapanim estuary, Pará, Brazil, between August 2006 and July 2007.
Figure 4 in Spatiotemporal and bioecological distribution of four commercial Mullid species in an ultraoligotrophic Mediterranean gulf
Figure 4. Nonparametric Multidimensional Scaling, nMDS (a) and cluster analyses (b) of log - 10 transformed biomasses and abundances, respectively of the mullid species caught at the sampling stations classified with the seafloor depth, and with the region number (R) and season (Se).
Figure 2 in Spatiotemporal and bioecological distribution of four commercial Mullid species in an ultraoligotrophic Mediterranean gulf
Figure 2. Spatiotemporal abundance (ind/km2) distribution (circles log transformed) of mullid species; M. barbatus (a), M. surmuletus 10 (b), U. moluccensis (c), and U. pori (d). Seasonal colors on the figures are: blue for spring 2014, green for summer 2014, red for autumn 2014, and magenta for winter 2015 (lines denote trawling track line).
Fig 4 in Spatiotemporal distribution of stink bugs (Hemiptera: Pentatomidae) in peach orchards and surrounding habitat
Fig 4. Interpolated maps of Euschistus tristigmus adult distributions in peach orchards and surrounding habitat early season (wk 1), mid-season (wk 8), and late season (wk 12) in 2002 and 2003.
Fig. 2 in Spatiotemporal distribution of stink bugs (Hemiptera: Pentatomidae) in peach orchards and surrounding habitat
Fig. 2. Seasonal capture of Euschistus servus and Euschistus tristigmus in pheromone-baited traps; (A) mean number of E. servus and E. tristigmus per pheromonebaited trap in peach and non-crop habitat over time in 2002; (B) mean number of E. servus and E. tristigmus per pheromone-baited trap in peach and surrounding habitat over time in 2003.
Fig 3 in Spatiotemporal distribution of stink bugs (Hemiptera: Pentatomidae) in peach orchards and surrounding habitat
Fig 3. Interpolated maps of Euschistus servus adult distributions in peach orchards and surrounding non-crop habitat early season (wk 1), mid-season (wk 8), and late season (wk 12) in 2002 and 2003.
Fig. 1 in Spatiotemporal distribution of stink bugs (Hemiptera: Pentatomidae) in peach orchards and surrounding habitat
Fig. 1. Spatiotemporal distribution patterns of Euschistus servus and Euschistus tristigmus: (A) number of traps in which E. servus and E. tristigmus were present in peach and surrounding habitat; (B) number of traps in which stink bugs were present over the season in peach and surrounding habitat.
Fig. 11 in Spatiotemporal signals and palaeoenvironments of endemic molluscan assemblages in the marine system of the Sarmatian Paratethys
Fig. 11. Average percentage abundance of species with 95% confidence intervals on a logarithmic scale at the localities Siebenhirten (A), Kettlasbrunn (B), Nexing (C), and Hauskirchen (D).
Fig. 5. A in Spatiotemporal signals and palaeoenvironments of endemic molluscan assemblages in the marine system of the Sarmatian Paratethys
Fig. 5. A. Northern Vienna Basin (grey area) within Alpine−Carpathian units and positions of the localities Siebenhirten, Kettlasbrunn, Hauskirchen and Nexing. B–E. Logs of the localities Siebenhirten (B), Kettlasbrunn (C), Hauskirchen (D), Nexing (E) (modified after Harzhauser and Piller 2004b).
Fig. 4 in Spatiotemporal signals and palaeoenvironments of endemic molluscan assemblages in the marine system of the Sarmatian Paratethys
Fig. 4. Abundant taxa of gastropods from outcrops of the ancient Central Paratethys (Siebenhirten, Kettlasbrunn, Nexing, Hauskirchen, Soceni Politioană, and Zhabiak) and from the ancient Eastern Paratethys (Jurkino and Zavjetnoje). A. NHMW−2011/0269/0003, Gibbula angulata (Eichwald, 1853), Hauskirchen, Upper Ervilia Zone. B. NHMW−2011/0266/0002, Gibbula banatica (Jekelius, 1944), Soceni Politioană, Mohrensternia Zone. C. NHMW− 2011/0271/0002, Gibbula urupensis (Uspenski, 1927), Jurkino, Bessarabian. D. NHMW−2011/0272/0003, Gibbula sp. 1, Zavjetnoje, Bessarabian. E. NHMW−2011/0266/0003, Theodoxus politus Jekelius, 1944, in apical (E1) and apertural (E2) views, Soceni Politioană, Mohrensternia Zone. F. NHMW−2011/0266/0004, Theodoxus soceni Jekelius 1944, in apical (F1) and apertural (F2) views, Soceni Politioană, Mohrensternia Zone. G. NHMW− 2011/0266/0005, Cerithium rubiginosum (Eichwald, 1853), adult, Soceni Politioană, Mohrensternia Zone. H. NHMW−2011/0269/0004, Cerithium rubiginosum (Eichwald, 1853), juvenile, Hauskirchen, Upper Ervilia Zone. I. NHMW−2011/0266/0006, Granulolabium bicinctum (Brocchi, 1814), adult, Soceni Politioană, Mohrensternia Zone. J. NHMW−2011/0266/0007, Granulolabium bicinctum (Brocchi, 1814), juvenile, Soceni Politioană, Mohrensternia Zone. K. NHMW−2011/0269/0005, Potamides disjunctus (Sowerby, 1831), Hauskirchen, Upper Ervilia Zone. L. NHMW−2011/0266/0008, Melanopsis impressa (Krauss, 1852), adult, Soceni Politioană, Mohrensternia Zone. M. NHMW−2011/0266/0009, Melanopsis impressa (Krauss, 1852), juvenile, Soceni Politioană, Mohrensternia Zone. N. NHMW−2011/0267/0001, Mohrensternia pseudoangulata Hilber, 1897, Siebenhirten, Mohrensternia Zone. O. NHMW−2011/0267/0002, Mohrensternia inflata (Andrzejowsky, 1835), Siebenhirten, Mohrensternia Zone. P. NHMW−2011/0266/0010, Pseudamnicola sarmatica Jekelius, 1944, Soceni Politioană, Mohrensternia Zone. Q. NHMW−2011/0272/0004, Pseudamnicola cyclostomoides (Sinzov, 1880), Ą
Fig. 1 in Spatiotemporal signals and palaeoenvironments of endemic molluscan assemblages in the marine system of the Sarmatian Paratethys
Fig. 1. Volhynian and Bessarabian paleogeography of the Paratethys. A. Middle Miocene: Early Sarmatian (Volhynian), after Rögl (1998). Entire Paratethys (A1), close−up of the Central Paratethys (A2). B. Late Miocene (late Bessarabian), after Rögl and and Steininger (1984).
Fig. 3 in Spatiotemporal signals and palaeoenvironments of endemic molluscan assemblages in the marine system of the Sarmatian Paratethys
Fig. 3. Most abundant taxa of bivalves from outcrops of the ancient Central Paratethys (Siebenhirten, Kettlasbrunn, Nexing, Hauskirchen, Soceni Politioană, and Zhabiak) and from outcrops of the ancient Eastern Paratethys (Jurkino and Zavjetnoje). A. NHMW−2011/0272/0001, Musculus sarmaticus (Gatuev, 1916), Zavjetnoje, Bessarabian. B. NHMW−2011/0268/0001, Mytilaster volhynicus (Eichwald, 1829), Kettlasbrunn, Upper Ervilia Zone. C. NHMW−2011/0268/0002, Obsoletiforma vindobonensis Laskarev, 1903, Kettlasbrunn, Upper Ervilia Zone. D. NHMW−2011/0272/0002, Mactra andrussowi Kolesnikov, 1925, Zavjetnoje, Bessarabian. E. NHMW−2011/0271/0001, Abra reflexa (Eichwald, 1830), Jurkino, Bessarabian. F. NHMW− 2011/0268/0003, Donax dentiger Eichwald, 1830, Kettlasbrunn, Upper Ervilia Zone. G. NHMW−2011/0269/0001, Ervilia dissita (Eichwald, 1830), Hauskirchen, Upper Ervilia Zone. H. NHMW−2011/0266/0001, Mytilopsis ramphophora (Brusina, 1892), Soceni Politioană, Mohrensternia Zone. I. NHMW−2011/0269/0002, Venerupis tricuspis Eichwald, 1830, Hauskirchen, Upper Ervilia Zone.
Fig. 13. Q in Spatiotemporal signals and palaeoenvironments of endemic molluscan assemblages in the marine system of the Sarmatian Paratethys
Fig. 13. Q− and R−mode cluster analysis using the Bray−Curtis similarity index. Size of dots indicates relative abundance in samples. Resulting biofacies in combination with Q−mode and R−mode clusters are used to interpret three palaeoenvironments.
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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.