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1,133 results for “wetlands”
Figure 2 in Diet composition, guild structure and trophic relationships of wintering birds of prey in an estuarine wetland (The Evros Delta National Park, Greece)
Figure 2. Cluster analysis (dendrogram) based on the biomass proportions of the diets of the seven species of birds of prey studied in Evros Delta.
Figure 1 in Diet composition, guild structure and trophic relationships of wintering birds of prey in an estuarine wetland (The Evros Delta National Park, Greece)
Figure 1. Diet compiled for the most important prey taxa of the seven species of birds of prey studied in the Evros Delta, a) by biomass (upper graph) and b) by numbers (lower graph) (Shannon index/Evenness are shown below each species name).
Figure 2 in Diet of the Lesser Spotted Eagle (Clanga pomarina) in Amvrakikos Wetlands National Park, Greece
Figure 2. The Louros river floodplain at the village of Petra bridge with the Valaoritis mountain in the background (at Right) and Zalongo Mountain in the distance (at Left) (Photo: S. Zogaris).
Fig. 1 in Investigating the role of urbanisation, wetlands and climatic conditions in nematode parasitism in a large Australian elapid snake
Fig. 1. The abundance of nematode infection for each tiger snake specimen in South-West Western Australia. Arrows indicate major cities used as urban centres. Colour indicates the number of worms (intensity) found in the stomach of each specimen. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 3 in Investigating the role of urbanisation, wetlands and climatic conditions in nematode parasitism in a large Australian elapid snake
Fig. 3. Probability of tiger snake stomach nematode infection in relation to a) distance to wetlands, b) mean annual precipitation and c) topographic wetness index (TWI). Shaded areas represents 95% confidence intervals.
Fig. 5. a in Morphological and molecular description of Pallisentis roparensis n. sp. (Acanthocephala: Quadrigyridae) infecting the freshwater cat fish Wallago attu from Ropar Wetland, Punjab, India
Fig. 5. a-histological section of small intestine of uninfected fish (Wallago attu) showing intestinal villi with a continuous epithelium; b-ruptured intestinal villi of the infected fish host; c-unusual branching of villi and dilated lymphatic vessels in mucosa of infected small intestine; d-abrasion and desquamation of the mucosal epithelium in infected fish; e– hyperplasia of the intestinal villi at the site of parasite attachment; f-magnified view of the infiltrated immune cells in the sub mucosal layer of the infected intestine (M-mucosa, SM-submucosa, ML-muscularis, DL-dilated lymphatic vessels, UBunusual branching, DSE-desquamated intestinal epithelium, HP- hyperplasia, MP- macrophage).
Fig. 4. Maximum likelihood tree generated using ITS1-5.8S-ITS2 in Morphological and molecular description of Pallisentis roparensis n. sp. (Acanthocephala: Quadrigyridae) infecting the freshwater cat fish Wallago attu from Ropar Wetland, Punjab, India
Fig. 4. Maximum likelihood tree generated using ITS1-5.8S-ITS2 gene sequence of Pallisentis roparensis and the sequences of related taxa downloaded from GenBank. Numbers near internal nodes show ML bootstrap clade frequencies.
Fig. 3. Maximum likelihood tree generated using 28S in Morphological and molecular description of Pallisentis roparensis n. sp. (Acanthocephala: Quadrigyridae) infecting the freshwater cat fish Wallago attu from Ropar Wetland, Punjab, India
Fig. 3. Maximum likelihood tree generated using 28S rRNA gene sequence of Pallisentis roparensis and the sequences of related taxa downloaded from GenBank. Numbers near internal nodes show ML bootstrap clade frequencies.
Fig. 2. Maximum likelihood tree generated using 18S in Morphological and molecular description of Pallisentis roparensis n. sp. (Acanthocephala: Quadrigyridae) infecting the freshwater cat fish Wallago attu from Ropar Wetland, Punjab, India
Fig. 2. Maximum likelihood tree generated using 18S rRNA gene sequence of Pallisentis roparensis and the sequences of related taxa downloaded from GenBank. Numbers near internal nodes show ML bootstrap clade frequencies.
Fig. 1 in Morphological and molecular description of Pallisentis roparensis n. sp. (Acanthocephala: Quadrigyridae) infecting the freshwater cat fish Wallago attu from Ropar Wetland, Punjab, India
Fig. 1. Line drawings of specimens of Pallisentis roparensis from Wallago attu. a-male; b-posterior end of the male; c-proboscis (female); d-hooks of the proboscis declining gradually in the size; e– conical trunk spines; f- Y-shaped collar spines; g-mature egg; h-female; i-posterior end of the female.
Fig. 2 in Neglected parasite reservoirs in wetlands: Prevalence and diversity of avian haemosporidians in waterbird communities in Northeast China
Fig. 2. Diversity (a) and frequency (b) of haemosporidian parasite lineages obtained from waterbirds in Tumuji, China. Sankey diagrams of the correlation between waterbirds (left, sorted by order) and identified haemosporidian lineages (right). The width of the lines indicates proportion to the infection recordings in waterbirds, and the colour of the lines indicates the range of the lineage size. The numbers represent infection cases. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 3 in Neglected parasite reservoirs in wetlands: Prevalence and diversity of avian haemosporidians in waterbird communities in Northeast China
Fig. 3. Bayesian phylogenetic reconstruction of 479 bp haemosporidian cyt b lineages from waterbirds in Tumuji, China, with Hepatocystis sp. as an outgroup, and several morpho-species were included for a higher resolution of phylogenetic patterns. Posterior probabilities higher than 0.90 are shown by the node. Lineages that were previously recorded and detected in this study are marked in bold. Major monophyletic clades with high support are labelled behind the line (Leucocytozoon: L1-L5; Haemoproteus: H1–H3).
Fig. 1 in Neglected parasite reservoirs in wetlands: Prevalence and diversity of avian haemosporidians in waterbird communities in Northeast China
Fig. 1. Heatmap of the apparent prevalence of waterbird species in the Tumuji National Nature Reserve. Presenting infected waterbird species (left, sorted by order) with prevalence (indicated by colour gradient, scale from 0 to 1). The sample size is shown in parentheses.
Fig. 7. A in Effects of low-intensity cattle ranching on amphibians in the Ñeembucú Wetland Complex, Paraguay
Fig. 7. A correlation circle showing the relationship between quantitative variables, the quality of their representation, and their relationship with the first two dimensions, with colors corresponding to the most contributing variables.
Fig. 10. A in Effects of low-intensity cattle ranching on amphibians in the Ñeembucú Wetland Complex, Paraguay
Fig. 10. A correlation circle showing the relationship between frog species, qualitative habitat variables, the quality of their representation, and their relationship with the first two dimensions, with colors corresponding to the most contributing variables.
Figs 4, 5 in Effects of low-intensity cattle ranching on amphibians in the Ñeembucú Wetland Complex, Paraguay
Figs 4, 5. The contributions of each variable to dimensions 1 and 2 respectively. The red line marks the expected average contribution.
Fig. 3. A in Effects of low-intensity cattle ranching on amphibians in the Ñeembucú Wetland Complex, Paraguay
Fig. 3. A Scree plot of eigenvalues, describing how much variance is attributed to each dimension. A visual representation of Tab. II.
Fig. 1 in Effects of low-intensity cattle ranching on amphibians in the Ñeembucú Wetland Complex, Paraguay
Fig. 1. The eight sites throughout the study, with all "G" sites situated along grasslands and "F" sites situated along forests at Estancia Santa Ana, Pilar, Paraguay.
Fig. 2. A in Effects of low-intensity cattle ranching on amphibians in the Ñeembucú Wetland Complex, Paraguay
Fig. 2. A correlation graph visualizing the correlation matrix obtained from analysis of water quality factors, cow presence indicators, and frog survey data at Estancia Santa Ana, Pilar, Paraguay. A visual representation of Tab. I. Tab. II. The Eigenvalues for the first five dimension and how much variance they explain in the data regarding vegetation height structure and species richness at Estancia Santa Ana, Pilar, Paraguay.
Fig. 6. A in Effects of low-intensity cattle ranching on amphibians in the Ñeembucú Wetland Complex, Paraguay
Fig. 6. A plot showing the correlation between both qualitative and quantitative variables along the first two dimensions.
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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.