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2,293 results for “Atlantic forests”
Figure 1 in Assembly of Myrmelachista Roger (Formicidae: Formicinae) in twigs fallen on the leaf litter of Brazilian Atlantic Forest
Figure 1. Sampling sites. The fragments of the Atlantic rainforest, where the study was conducted, are highlighted. PNMFAM: Francisco Affonso de Mello Natural Municipal Park; BPN: Barragem de Ponte Nova; NRT: Nascentes do Tietê State Park.
Figure 5 in Assembly of Myrmelachista Roger (Formicidae: Formicinae) in twigs fallen on the leaf litter of Brazilian Atlantic Forest
Figure 5. Head capsule size average (mm) of Myrmelachista workers found in dry twigs. Vertical bars represent standard deviations.
Figure 3 in Assembly of Myrmelachista Roger (Formicidae: Formicinae) in twigs fallen on the leaf litter of Brazilian Atlantic Forest
Figure 3. Myrmelachista nests in small twigs. (A, B) Myrmelachista ruszkii; (C, D) Myrmelachista catharinae; (E, F) Myrmelachista nodigera. (B, D, E) queens. Scale bar: 5 mm.
Figure 2 in Assembly of Myrmelachista Roger (Formicidae: Formicinae) in twigs fallen on the leaf litter of Brazilian Atlantic Forest
Figure 2. Total number of nests of each of the Myrmelachista species recorded in small fallen twigs in the leaf litter of the Atlantic Rainforest.
Figure 1 in Abundance and richness of small mammals in fragmented Atlantic Forest of southeastern Brazil
Figure 1. Map of the state of Espírito Santo, Brazil, showing the distribution of fragments sampled in Santa Teresa region (SF, small-sized fragments; MF, medium-sized fragments; LF, large-sized fragments).
Figure 3 in Abundance and richness of small mammals in fragmented Atlantic Forest of southeastern Brazil
Figure 3. Dendrogram based on a cluster analysis of abundance patterns of 19 species of small mammals sampled in eight study areas. Grouping method WPGMA and similarity index of morisita.
Figure 2 in Abundance and richness of small mammals in fragmented Atlantic Forest of southeastern Brazil
Figure 2. Number of species and individuals in one large (three sampling grids), two mediumsized and three small fragments.
Figure 2 in Diet of understorey birds in two Atlantic Forest areas of southeast Brazil
Figure 2. Principal structures observed in the faecal contents of the captured birds: Heads of: Hemiptera Heteroptera (1), Hymenoptera non-Formicidae (2), Hemiptera non-Heteroptera (3), Formicidae (4, 5), Coleoptera Curculionidae (6), Blattariae (7), mandibles of: Blattariae (8), Hymenoptera non-Formicidae (9), Formicidae (10), Mantodea (11), Orthoptera (12), Coleoptera (13), insect larvae (Lepidoptera, 14 and 15), Coleoptera (16), Isoptera (17); others structures: thorax of Hymenoptera non-Formicidae, dorsal vision (18), wing of Hymenoptera non-Formicidae (19), body segment of Diplopoda (20), chelicerae of Araneae (21), fang of Araneae (22), abdominal extremity of Dermaptera (23), cerci (forceps) of Dermaptera (24), elytrum of Coleoptera (25), scutellum of Hemiptera Heteroptera (26), leg of Araneae (27), leg of Hemiptera non-Heteroptera (28), petiole of Hymenoptera non-Formicidae, dorsal and lateral visions (29), bones of amphibian (30), thorax of Formicidae, lateral vision (31), apodeme (internal ridge on an arthropod exoskeleton that forms the attachments for muscles and organs) of Hemiptera non-Heteroptera (32), pedipalp of Pseudoscorpiones (33); seeds of: Zanthoxylum sp. (Rutaceae, 34), Myrtaceae (35), Myrsinaceae (spherical format, 36), Loranthaceae (37), Rudgea recurva (encapsulated by forehead, 38), Psychotria sp. (Rubiaceae, 39), Psychotria suterella (Rubiaceae, 40), Urera baccifera (Urticaceae, 41), Melastomataceae (42), Miconia pusilliflora (Melastomataceae, 43), Cecropia sp. (Cecropiaceae, 44), Lauraceae (45), Alchornea sp. (Euphorbiaceae, 46), Xylopia brasiliensis (Annonaceae, 47), Talauma ovata (Magnoliaceae, 48), Casearia sylvestris (Flacourtiaceae, 49).
Figure 1 in Diet of understorey birds in two Atlantic Forest areas of southeast Brazil
Figure 1. Location of the two sampled areas in the Minas Gerais State, southeast Brazil: (1) Mata Grande, 90 ha; (2) Fazenda Continente forest, 56 ha (showing roads in the edge and interior forest). The internal traces represent the sampling net lines.
Figure 3 in Diet of understorey birds in two Atlantic Forest areas of southeast Brazil
Figure 3. Proportions of faecal samples of birds by area with only fruits, only invertebrates and fruits plus invertebrates.
Figure 4 in Diet of understorey birds in two Atlantic Forest areas of southeast Brazil
Figure 4. Relative frequency (counting of a particular item/counting of all items) and relative occurrence (number of samples in which the taxa occurred/counting of all samples) of each invertebrate group in the samples.
Figure 4 in The social wasps (Hymenoptera: Vespidae: Polistinae) of a fragment of Atlantic Forest in southern Bahia, Brazil
Figure 4. (A, B) Accumulation and rarefaction curves for the wasps collected employing the three methodologies.
Figure 6 in The social wasps (Hymenoptera: Vespidae: Polistinae) of a fragment of Atlantic Forest in southern Bahia, Brazil
Figure 6. (A, B) Accumulation and rarefaction curves for the wasps collected in the three fragments.
Figure 2 in Natural history of the lizard Enyalius perditus (Squamata: Leiosauridae) from an Atlantic forest remnant in southeastern Brazil
Figure 2. Monthly abundance of E. perditus (bars); mean minimum and maximum monthly temperatures (grey line); and total monthly rainfall (black line) from August 2005 to July 2006 at Parque Estadual Nova Baden. Lambari, State of Minas Gerais, Brazil.
Figure 1 in Natural history of the lizard Enyalius perditus (Squamata: Leiosauridae) from an Atlantic forest remnant in southeastern Brazil
Figure 1. (A) Study area location; (B) Parque Estadual Nova Baden (PENB), in the Municipality of Lambari, State of Minas Gerais, Brazil (Satellite image from Google Earth; accessed 2008).
Figure 3 in Development and demography of Phasmahyla jandaia (Bokermann and Sazima, 1978) (Anura, Hylidae) tadpoles in an Atlantic Forest site, southeastern Brazil
Figure 3. Number of Phasmahyla jandaia individuals in developmental Class I (line) and in the Sub-class I.1 (dotted line; see Material and methods) in the pool formed by the dam of the Estação Ecológica de Fechos, Nova Lima (Minas Gerais, southeastern Brazil), from June 2002 to May 2003 and from August 2004 to November 2005. Arrows indicate detected tadpole recruitments into the population. Each mark on the x-axis corresponds to one sampling, and samplings were separated by 15 days. The corresponding month is provided every two samplings.
Figure 4 in Development and demography of Phasmahyla jandaia (Bokermann and Sazima, 1978) (Anura, Hylidae) tadpoles in an Atlantic Forest site, southeastern Brazil
Figure 4. Number of Phasmahyla jandaia tadpoles by developmental classes: (A) Class I; (B) Class II; (C) Class III; (D) Class IV; (E) Class V; (F) Class VI; (G) Class VII; (H) Class VIII; (I) Class IX; (J) Class X, recorded every 15 days, in the pool formed by the dam of the Estação Ecológica de Fechos, Nova Lima (Minas Gerais, southeastern Brazil), between June 2002 and May 2003 and August 2004 and November 2005. Brackets indicate a large cohort that was used to estimate developmental period.
Figure 2 in Development and demography of Phasmahyla jandaia (Bokermann and Sazima, 1978) (Anura, Hylidae) tadpoles in an Atlantic Forest site, southeastern Brazil
Figure 2. Total number of individuals of Phasmahyla jandaia in the pool formed by the dam of Estação Ecológica de Fechos, Nova Lima (Minas Gerais, southeastern Brazil), from June 2002 to May 2003 (Jun to Apr on x-axis) and from August 2004 to November 2005 (Aug to Oct on x-axis). Each mark on the x-axis corresponds to one sampling, and samplings were separated by 15 days. The corresponding month is provided every two samplings.
Figure 1 in An overlooked hotspot for birds in the Atlantic Forest
Figure 1. Location of Serra Bonita NHPR in northeast Brazil.
FIGURE 3A–C in A new species of Coleodactylus Parker, 1926 (Squamata: Sphaerodactylidae) from the Atlantic Forest of northeast Brazil
FIGURE 3A–C. Dorsal, left lateral, and ventral view of the head of Coleodactylus elizae sp. nov. holotype. D. Palmar view of right hand (first finger to the right). E. Plantar view of right foot (first toe to the left). F. Palmar view of fourth toe from left foot (from nearly 45º angle). H. Apical view of fourth toe. G. Apical view of third toe tip (left foot). A–C are to the same scale. Similarly D–E and F–H are to the same scale, respectively. Scales of the finger and toe: a—ventral, b—lateral, c—ventral + lateral, d—dorsal, 1—superolateral, 2—inferolateral.
ScienceDex guides
Understand access before you commit
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.