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2,293 results for “Atlantic forests”
FIGURE 2 in Two new Atlantic Forest Myrtaceae from Brazil
FIGURE 2. Eugenia regia Bünger & Sobral, holotype specimen (Fontella & Moura 94 (fr), SP)
FIGURE 1 in Two new Atlantic Forest Myrtaceae from Brazil
FIGURE 1. Eugenia regia Bünger & Sobral, holotype specimen (Fontella & Moura 94 (fl), SP).
FIGURE 2 in A new species of Erythroxylum (Erythroxylaceae) from the Brazilian Atlantic Forest
FIGURE 2. Geographic distribution of Erythroxylum umbrosum.
FIGURE 1 in Melastomataceae in a continental Atlantic Forest island from southeastern Brazil
FIGURE 1. Location of Marambaia at southern Rio de Janeiro state, Brazil.
Figure 8 in Faunistic analysis of Cerambycidae (Insecta: Coleoptera) in an area of Atlantic Forest
Figure 8. Dendrogram of similarity among the three fragments.
Figure 2 in Faunistic analysis of Cerambycidae (Insecta: Coleoptera) in an area of Atlantic Forest
Figure 2. Numbers of species collected by tribes and subfamilies of Cerambycidae.
Figure 1 in Faunistic analysis of Cerambycidae (Insecta: Coleoptera) in an area of Atlantic Forest
Figure 1. Location of the studied area (REM) and the three fragments.
Figure 7 in Faunistic analysis of Cerambycidae (Insecta: Coleoptera) in an area of Atlantic Forest
Figure 7. Rarefaction curve of Cerambycidae collected by trap methodology.
Figure 5 in The social wasps (Hymenoptera: Vespidae: Polistinae) of a fragment of Atlantic Forest in southern Bahia, Brazil
Figure 5. Number of wasps collected at different times of the day in the three fragments.
Figure 1 in The social wasps (Hymenoptera: Vespidae: Polistinae) of a fragment of Atlantic Forest in southern Bahia, Brazil
Figure 1. Location of the Michelin Ecological Reserve (MER).
Figure 3 in The social wasps (Hymenoptera: Vespidae: Polistinae) of a fragment of Atlantic Forest in southern Bahia, Brazil
Figure 3. Dendrogram of similarity among wasp surveys carried out in the Atlantic Forest.
Figure 2 in The social wasps (Hymenoptera: Vespidae: Polistinae) of a fragment of Atlantic Forest in southern Bahia, Brazil
Figure 2. Location of the transects carried out in the Atlantic Forest.
Figure 3 in Natural history of the lizard Enyalius perditus (Squamata: Leiosauridae) from an Atlantic forest remnant in southeastern Brazil
Figure 3. Body colour of Enyalius perditus (by M.A. Sacramento). (A) Female; (B) male.
Figure 4 in Natural history of the lizard Enyalius perditus (Squamata: Leiosauridae) from an Atlantic forest remnant in southeastern Brazil
Figure 4. Colour of female Enyalius perditus in the reproductive period.
Figure 2 in Orb-web spiders (Araneae: Araneomorphae; Orbiculariae) captured by hunting-wasps (Hymenoptera: Sphecidae) in an area of Atlantic Forest in south-eastern Brazil
Figure 2. Bamboo stems used as trap-nests: (A) longitudinal section of a trap-nest; (B) a group of seven trap-nests in the field.
Figure 5 in Orb-web spiders (Araneae: Araneomorphae; Orbiculariae) captured by hunting-wasps (Hymenoptera: Sphecidae) in an area of Atlantic Forest in south-eastern Brazil
Figure 5. Proportion of adult spider males, adult females, juveniles and subadult males in Trypoxylon albonigrum nests, during the year. The numbers at the top indicate the numbers of spiders collected in each month and, in parentheses, the numbers of nests.
Differential geographical and ecological dynamics allow diversification of morphologically convergent giant bromeliads in the Atlantic Forest
<p>Aim: This paper investigates evolutionary mechanisms that allow morphologically convergent lineages share the same geographical space. We compared the events occurred along the diversification of <i>Karawata</i> and <i>Aechmea</i> subgen. <i>Chevaliera</i> in Atlantic Forest by 1) verifying whether the climatic niches and habitats of <i>Karawata </i>and <i>Aechmea </i>subgen.<i> Chevaliera</i> are similar; 2) testing whether the two groups had the same pattern of colonization in the Atlantic Forest; and 3) evaluating whether they had the same evolutionary dynamics of environmental space occupation. We see the two bomeliad lineages as a model case to understand sympatric diversification in the Atlantic Forest biome.</p> <p>Location: Brazilian Atlantic Forest</p> <p>Taxon: <i>Karawata</i> and <i>Aechmea </i>subgen. <i>Chevaliera</i> (Bromeliaceae: Bromelioideae)</p> <p>Methods: We explored differences in evolutionary dynamics between the lineages analyzing the divergence times, estimating ancestral ranges and habitats, testing niche similarity and evaluating shifts in speciation dynamics.</p> <p>Results: <i>Karawata </i>and <i>A. </i>subgen. <i>Chevaliera </i>most likely originated in the Pliocene and diversified during the Pleistocene. The two clades originated in ombrophilous forests and shared a similar environmental space. However, <i>Karawata </i>and <i>A. </i>subgen. <i>Chevaliera </i>show different dynamics in the occupation of geographical and environmental spaces. Our results suggest that the São Francisco and Jequitinhonha Rivers acted as geographical barriers for <i>Karawata </i>and <i>A. </i>subgen. <i>Chevaliera</i>.</p> <p>Main Conclusions: Differences in spatial and environmental evolutionary dynamics allow the two groups to occupy similar habitats as well as environmental and geographical spaces in the Brazilian Atlantic Forest.</p>
FIGURE 1 in A new species of Coleodactylus Parker, 1926 (Squamata: Sphaerodactylidae) from the Atlantic Forest of northeast Brazil
FIGURE 1. Location of Serra da Saudinha, type locality of Coleodactylus elizae sp. nov. (star).
FIGURE 7 in Taxonomic revision of the Brazilian Atlantic Forest Atractus (Reptilia: Serpentes: Dipsadidae) 2364
FIGURE 7. Geographical distribution of Atractus francoi, A. serranus, and A. trihedrurus.
FIGURE 19 in Taxonomic revision of the Brazilian Atlantic Forest Atractus (Reptilia: Serpentes: Dipsadidae) 2364
FIGURE 19. Original plate of the holotype of Rabdosoma zebrinum, modified from Jan (1862).
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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.