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298 results for “abundance distribution”
Figures 8, 9 in Six freshwater microturbellarian species (Platyhelminthes) in permanent wetlands of the Coastal Plain of southern Brazil: new records, abundance, and distribution
Figures 8, 9. Photograph of specimen in vivo after squeeze preparation (8) and diagrammatic reconstruction (9) in dorsal view of Stenostomum hemisphericum recorded for the Coastal Plain of southern Brazil.
Figures 2–7 in Six freshwater microturbellarian species (Platyhelminthes) in permanent wetlands of the Coastal Plain of southern Brazil: new records, abundance, and distribution
Figures 2–7. Photographs of specimens in vivo after squeeze preparation (2, 4, 6) and diagrammatic reconstructions in dorsal view (3, 5, 7) of species of Catenula recorded in the Coastal Plain of southern Brazil. 2, 3. Catenula evelinae. 4, 5. C. leuca. 6, 7. C. turgida. Scale bars = 100 µm.
Figure 1 in Six freshwater microturbellarian species (Platyhelminthes) in permanent wetlands of the Coastal Plain of southern Brazil: new records, abundance, and distribution
Figure 1. Study areas in the Coastal Plain of the southern Brazilian state of Rio Grande do Sul (white area): Terra de Areia (1 = 29°29'05" S, 049°52'21" W), Osório (2 = 29°53'20" S, 050°08'09" W, and 3 = 29°52'02" S, 050°05'16" W), Tramandaí (4 = 30°05'09" S, 050°10'24" W), and Capivari do Sul (5 = 30°10'22" S, 050°23'10" W).
Data and code for "Tree species abundance changes at the edges of their climatic distribution: an interplay between climate change, plant traits, and forest management"
<p>## Secondary data and code to accompany the research entitled "Tree species abundance changes at the edges of their climatic distribution: an interplay between climate change, plant traits, and forest management" by Padullés Cubino et al. (2024).</p> <p># There are four folders with (1) "raw data", (2) "processed data", (3) "results", and (4) "scripts".</p> <p># The raw and processed data folders contain the CSV and XLSX files with all the data used for analysis and produced from them</p> <p># The "results" folder contains the figures and table presented in the manuscript.</p> <p># The "scripts" folder contains four scripts for the analyses described in the manuscript:</p> <p> 01_preparation_ClimEdge.R -> data cleaning and processing</p> <p> 02_script_Fig1.R -> code to produce Fig1</p> <p> 03_script_Fig2.R -> code to produce Fig2</p> <p> 04_script_Table1_Fig3.R -> code to produce Table 1 and Fig3</p> <p># If anything is unclear, please contact the corresponding author for clarification (padullesj@gmail.com).</p>
FIG. 3 in Distribution and Abundance of Introduced Seal Salamanders (Desmognathus monticola) in Northwest Arkansas, USA
FIG. 3. Estimated probability of occupancy (black bars) and detection (gray bars) for salamander species along Spavinaw Creek, Benton County, Arkansas, USA. Estimates are based on three 10 min nocturnal visual surveys per site. Error bars represent 95% credible intervals.
FIG. 5 in Distribution and Abundance of Introduced Seal Salamanders (Desmognathus monticola) in Northwest Arkansas, USA
FIG. 5. Effect of microhabitat PC1 on occupancy probability of E. lucifuga and E. longicauda along Spavinaw Creek. Solid lines represent the mean relationship between PC1 scores and occupancy probability and dashed lines are the 95% credible intervals for estimates of the covariate effect.
FIG. 4 in Distribution and Abundance of Introduced Seal Salamanders (Desmognathus monticola) in Northwest Arkansas, USA
FIG. 4. Effect of distance upstream of Oklahoma border on occupancy probability of D. monticola along Spavinaw Creek, Arkansas, USA. Solid line represents the mean relationship between distance and occupancy probability and dashed lines are the 95% credible intervals for estimates of the covariate effect.
FIG. 6 in Distribution and Abundance of Introduced Seal Salamanders (Desmognathus monticola) in Northwest Arkansas, USA
FIG. 6. Number of new captures and recaptures of individual D. monticola per survey at 10 m x 3 m mark-recapture site on Spavinaw Creek, Arkansas.
FIG. 1 in Distribution and Abundance of Introduced Seal Salamanders (Desmognathus monticola) in Northwest Arkansas, USA
FIG. 1. Map of study locations sampled to investigate distribution and abundance of non-native Seal Salamanders (Desmognathus monticola) along Spavinaw Creek, Benton County, northwest Arkansas, USA, relative to adjacent regions of Oklahoma and Missouri. Inset shows the location of each occupancy sampling site along Spavinaw Creek, with filled circles indicating sites found to be occupied by D. monticola. Sites are numbered (Fig. 2) sequentially from west to east. The location of the capture-mark-recapture site (site 17) is indicated by the hollow black circle.
FIG. 2 in Distribution and Abundance of Introduced Seal Salamanders (Desmognathus monticola) in Northwest Arkansas, USA
FIG. 2. Salamanders captured by species and sampling site during low-intensity occupancy surveys along Spavinaw Creek, northwest Arkansas. Captures represent totals over three 10 min nocturnal visual surveys per site. An asterisk (*) denotes the site where density was estimated via capture-mark-recapture.
FIGURE 4 in Effects Of Host Plants On Distribution, Abundance, Developmental Time And Life Table Parameters Of Oligonychus Afrasiaticus (Mcgregor) (Acari: Tetranychidae)
FIGURE 4: Population dynamics of O. afrasiaticus at 27°C on different supports collected at Segdoud oasis, South of Tunisia.
FIGURE 3 in Effects Of Host Plants On Distribution, Abundance, Developmental Time And Life Table Parameters Of Oligonychus Afrasiaticus (Mcgregor) (Acari: Tetranychidae)
FIGURE 3: Survivorship curve (lX) and age-specific fecundity (mx) of O. afrasiaticus on six alimentary supports at 27°C.
FIGURE 1 in Effects Of Host Plants On Distribution, Abundance, Developmental Time And Life Table Parameters Of Oligonychus Afrasiaticus (Mcgregor) (Acari: Tetranychidae)
FIGURE 1: Seasonal fluctuations of O. afrasiaticus densities on Deglet Noor pinnae and fruits and on sorghum leave, at Segdoud, South of Tunisia in 2004-2006.
FIGURE 2 in Effects Of Host Plants On Distribution, Abundance, Developmental Time And Life Table Parameters Of Oligonychus Afrasiaticus (Mcgregor) (Acari: Tetranychidae)
FIGURE 2: Densities of O. afrasiaticus motile stages, at Segdoud, South of Tunisia, (A) 2006 (B) 2007, on date varieties 'Deglet Noor', 'Alig', 'Bessr', and 'Kentichi'.
Figure 3. Mean FCR values for Sagitta enflata, S. serratodentata, S. minima and S in Abundance, vertical distribution and feeding of chaetognaths in the upper 50 m layer of the eastern Aegean Sea
Figure 3. Mean FCR values for Sagitta enflata, S. serratodentata, S. minima and S. setosa in each depth interval (0–10, 10–20, 20–30, 30–40 and 40–50 m).
Figure 2 in Abundance, vertical distribution and feeding of chaetognaths in the upper 50 m layer of the eastern Aegean Sea
Figure 2. The vertical distribution of Sagitta enflata, S. serratodentata, S. minima and S. setosa as percentage of total caught in water column sampled, and the average median depth (m) for each species (dotted lines).
Figure 5 in Abundance, vertical distribution and feeding of chaetognaths in the upper 50 m layer of the eastern Aegean Sea
Figure 5. The horizontal distribution of the integrated abundance (ind m23) of total copepods, cladocerans and chaetognaths in each of the 10 sampling stations.
Figure 4 in Abundance, vertical distribution and feeding of chaetognaths in the upper 50 m layer of the eastern Aegean Sea
Figure 4. The mean FCR of the ontogenetic stages of Sagitta enflata, S. serratodentata, S. minima and S. setosa recorded in the 0–50 m water column of the total area.
FIGURE 1. A in Pristurus guweirensis Haas, 1943 (Gekkota: Sphaerodactylidae): the most abundant and widely distributed species of Pristurus previously referred to as Pristurus sp. 1
FIGURE 1. A) Dorsal view, gular region and tail section of Pristurus rupestris, P. guweirensis stat. nov. and P. migiurtinicus (MSNM Re97) females, respectively. As can be seen from all the photographs deposited in MorphoBank (Supp. Table 1), the dorsal pattern in P. guweirensis stat. nov. and P. rupestris is quite variable. B) Distribution range of P. rupestris (blue), P. guweirensis stat. nov. (green), and P. migiurtinicus (red; known only from a single locality). Stars show the type locality for each species. The question mark shows the locality of an unconfirmed P. flavipunctatus species complex specimen (assigned to "P. rupestris" by Scortecci, 1935).
FIGURE 20 in Amphibians and reptiles in North Sweden: distribution, habitat affinities, and abundance (Classes: Amphibia and Reptilia)
FIGURE 20. Talus slopes and screes provide communal hibernation sites for Vipera berus, offering frost-free conditions also in case of early winter weather with little insulating snow cover. Such sites invariably face SW–SE and have early snowmelt that permits earlier spring emergence than in surrounding areas. Mating usually takes place here, after which vipers disperse to summer habitats visible in the background. This picture is from one of the northernmost known hibernation sites in Sweden at 68oN. Etnoluhtinvaara, Torne lappmark, Northern Boreal region. Photo: Stefan Andersson.
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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.