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2,293 results for “Atlantic forests”
Figure 3 in Identification key for anuran amphibians in a protected area in the northeastern Atlantic Forest
Figure 3. Discrete characters used in the identification key for the anuran amphibians occurring in the Environmental Protection Area of Catolé and Fernão Velho, Alagoas state, northeast Brazil. The details of characters are mentioned in the taxonomic key.
Figure 1 in Identification key for anuran amphibians in a protected area in the northeastern Atlantic Forest
Figure 1. Discrete characters used in the identification key for the anuran amphibians occurring in the Environmental Protection Area of Catolé and Fernão Velho, Alagoas state, northeastern Brazil. Dorsal skin texture. (A) warty; (B) spiculate; (C) granular; (D) smooth; (E) shagreened; (F) tubercular.
Figure 2 in Identification key for anuran amphibians in a protected area in the northeastern Atlantic Forest
Figure 2. Discrete characters used in the identification key for the anuran amphibians occurring in the Environmental Protection Area of Catolé and Fernão Velho, Alagoas state, northeast Brazil. The details of characters are mentioned in the taxonomic key.
Figure 4 in Identification key for anuran amphibians in a protected area in the northeastern Atlantic Forest
Figure 4. Discrete characters used in the identification key for anuran amphibians occurring in the Environmental Protection Area of Catolé and Fernão Velho, Alagoas state, northeastern Brazil. The details of characters are mentioned in the taxonomic key.
Figure 6 in The Muscidae (Diptera) from the Atlantic Forest of Serra de Paranapiacaba, southestern Brazil
Figure 6. Relative frequency of 15 most abundant species of Muscidae sampled.The column "others" comprises 24 low abundant species.
Figure 5 in The Muscidae (Diptera) from the Atlantic Forest of Serra de Paranapiacaba, southestern Brazil
Figure 5. Circular representation of the number of collected individuals of Muscidae per month, for the whole year of study. Dark grey = rainy season; light grey = dry season. r = concentration index.
Figure 4 in The Muscidae (Diptera) from the Atlantic Forest of Serra de Paranapiacaba, southestern Brazil
Figure 4. Species accumulation curve based on the abundance of muscids captured with Malaise traps at the Biological Reserve Alto da Serra de Paranapiacaba, State of São Paulo. The solid line represents the observed richness of the collection and the dashed line the richness estimated by Chao 1. (A) corresponds to the estimates for the Reserve considering all collections. (B) corresponds to the estimates for each season of the year: spring (green), summer (blue), autumn (purple) and winter (red).
Figure 1 in The Muscidae (Diptera) from the Atlantic Forest of Serra de Paranapiacaba, southestern Brazil
Figure 1. Location of the Biological Reserve Alto da Serra de Paranapiacaba, State of São Paulo, southeastern Brazil (23°46′00″, 23°47′10″S; 46°18′20″, 46°20′40″W, 750-891 m of altitude).
Figures 1-7 in Phytoseiidae (Acari: Mesostigmata) from the Atlantic Forest in Rio de Janeiro, Brazil, with complementary description of Amblyseius impeltatus Denmark & Muma
Figures 1-7. Amblyseius impeltatus Denmark & Muma, 1973. Female (1-5): (1) Dorsal shield; (2) Ventral idiosoma; (3) Chelicera; (4) Spermatheca; (5) Genu, tibia and basitarsus of leg IV. Male (6-7): (6) Ventrianal shield; (7) Spermatodactyl.
iNaturalist dataset for the atlantic forest
<p>This is a dataset of the iNaturalist platform based on the limits of the atlantic forest. Data accessed at 17 august 2022.</p>
Data from: Dispersal-related plant traits are associated with range size in the Atlantic Forest
<p><strong>Aim: </strong>The efficiency of animal-mediated seed dispersal is threatened by declines of animal populations, especially in tropical forests. We hypothesise that large-seeded plants with animal-mediated dispersal tend to have limited geographic ranges and face an increased risk of extinction due to the potential decline in seed dispersal by large-bodied fruit-eating and seed-dispersing animals (frugivores)</p> <p><strong>Location:</strong> Atlantic Forest, Brazil, South America</p> <p><strong>Taxon:</strong> Angiosperms</p> <p><strong>Methods:</strong> First, we collected dispersal-related trait (dispersal syndrome, fruit size, seed size), growth form (tree, climber, other) and preferred vegetation type (open, closed) data for 1,052 Atlantic Forest plant species. Next, we integrated these with occurrence records, extinction risk assessments, and phylogenetic trees. Finally, we performed phylogenetic generalized least squares (PGLS) regressions to test the direct and interactive effects of dispersal-related traits and vegetation type on geographical range size.</p> <p><strong>Results: </strong>Large-seeded species had smaller range sizes than small-seeded species, but only for species with animal-mediated dispersal, not for those dispersed by abiotic mechanisms. However, plants with abiotic dispersal had overall smaller range sizes than plants with animal-mediated dispersal. Furthermore, we found that species restricted to forests had smaller ranges than those occurring in open or mixed vegetation. Finally, at least 29% of the Atlantic Forest flora is threatened by extinction, but this was not related to plant dispersal syndromes.</p> <p><strong>Main Conclusions:</strong> Large-seeded plants with animal-mediated dispersal may be suffering from dispersal limitation, potentially due to past and ongoing defaunation of large-bodied frugivores, leading to small range sizes. Other factors, such as deforestation and fragmentation, will probably modulate such effects of dispersal on range size, and ultimately extinction. Our study sheds light on the relationship between plant traits, mutualistic interactions and distribution that are key to the functioning of tropical forests.</p>
Figure 3 in EUGENIA STENOCARPA (MYRTACEAE), A NEW SPECIES FROM THE ATLANTIC FOREST OF SÃO PAULO, BRAZIL, WITH A REMARKABLE FRUIT
Figure 3. Distribution of Eugenia stenocarpa in the Atlantic Forest of São Paulo, Brazil.
FIGURE 1 in Bats in settlements from an atlantic forest area in northeastern Brazil
FIGURE 1: Map of Guaribas Biological Reserve (GRB) and the villages sampled.
Fig. 4. E in Two new species of Eidmanacris (Orthoptera: Grylloidea: Phalangopsidae) from the Atlantic forest of São Paulo State, Brazil
Fig. 4. E. suassunai sp. nov. Male phallic complex: A-dorsal view; B- ventral view; C-lateral view.
Fig. 7. E in Two new species of Eidmanacris (Orthoptera: Grylloidea: Phalangopsidae) from the Atlantic forest of São Paulo State, Brazil
Fig. 7. E. caipira sp. nov. Male phallic complex: A-dorsal view; B- ventral view; C-lateral view.
Fig. 1. Life habit. A in Two new species of Eidmanacris (Orthoptera: Grylloidea: Phalangopsidae) from the Atlantic forest of São Paulo State, Brazil
Fig. 1. Life habit. A- Eidmanacris suassunai sp. nov.; B- Eidmanacris caipira sp. nov.
Fig. 1 in Avian Assemblages in Forest Fragments do not Sum to the Expected Regional Community in the Brazilian Atlantic Forest.
Fig. 1. Map of Bahia within Brazil, and the location of the fragments under study.
Figure S4 in Small mammals and microhabitat selection in forest fragments in the transition zone between Atlantic Forest and Pampa biome
Figure S4. Rarefaction curve for both studied fragments in the Atlantic Forest biome, Brazil. Sample coverage is the proportion of the total number of individuals that belong to the species detected in the sample. F1 = Fragment 1 (28°08′38″S, 54°45′36″W); F2 = Fragment 2 (28°07′33″S, 54°44′57″W).
Figure 3 in Small mammals and microhabitat selection in forest fragments in the transition zone between Atlantic Forest and Pampa biome
Figure 3. Variables coefficients and their confidence intervals in the models selected (with ΔAIC ≤ 2) for each small mammal species. (A) Akodon montensis; (B) Oligoryzomys nigripes; (C) Sooretamys angouya; (D) Didelphis albiventris. PC1GC = first axis of the PCA for soil variables; PC2GC = second axis of the PCA for soil variables; PC1VS = first axis of the PCA for vegetation structure; PC2VS = second axis of the PCA for vegetation structure.
Fig. 2 in Spatial distribution of Culicidae (Diptera) larvae, and its implications for Public Health, in five areas of the Atlantic Forest biome, State of São Paulo, Brazil
Fig. 2. Spatial distribution of the species found in the Cruzeiro do Sul rural district.
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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.