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Figure 5 in Geometric morphometrics of Aedes aegypti populations and study of transmission of arboviral diseases in Barreiras, Brazil
Figure 5 Morphological space of 1st and 2nd canonical variates derived from wing shape comparison (discriminant analysis) among A, B and C areas. Contribution of each Canonical Variation is indicated between brackets. Red, blue and green dots represent populations of A, B and C areas, respectively.
Figure 4 in CHD genes: a reliable marker for bird populations and phylogenetic analysis? Case study of the superfamily Sylvioidea (Aves: Passeriformes)
Figure 4. Maximum clade credibility trees for three data sets obtained by BI analysis in BEAST v1.8.0. MCC genealogy based on a Yule speciation process, summarized from the output of a Markov chain Monte Carlo chain run for 10 million iterations and sampled every 1000 iterations.
Figure 3 in CHD genes: a reliable marker for bird populations and phylogenetic analysis? Case study of the superfamily Sylvioidea (Aves: Passeriformes)
Figure 3. The ML tree for myoglobin gene (in blue) and for CHD-Z gene (in red); both trees are scaled in substitutions and the length of each tree and different topologies indicate that both of them are improper for phylogeny using a single gene.
Figure 1. Sex distribution for A. arundinaceus, A in CHD genes: a reliable marker for bird populations and phylogenetic analysis? Case study of the superfamily Sylvioidea (Aves: Passeriformes)
Figure 1. Sex distribution for A. arundinaceus, A. scirpaceus, and A. schoenobaenus, shown by sampling date.
Figure. Phylogram showing phylogenetic relationships estimated using maximum likelihood analysis of 16S rRNA and COXI gene revealed the grouping of Orthochirus iranus, O. farzanpay, O. stockwelli, O. zagrosensis, O. innesi (JQ514244.1 Morocco), and O. bicolor (KT716038.1 India), with the outgroup species Androctonus crassicauda (FJ217732). in A study of genetic diversity among different population of Orthochirus sp. based on cytochrome C oxidase subunit I and 16srRNA sequencing
Figure. Phylogram showing phylogenetic relationships estimated using maximum likelihood analysis of 16S rRNA and COXI gene revealed the grouping of Orthochirus iranus, O. farzanpay, O. stockwelli, O. zagrosensis, O. innesi (JQ514244.1 Morocco), and O. bicolor (KT716038.1 India), with the outgroup species Androctonus crassicauda (FJ217732).
Figure 4 in Infestation and effect of parasitic isopod Epipenaeon ingens ingens Nobili, 1906 on commercial shrimp species in the eastern Mediterranean: a case study of the population of brown shrimp Penaeus aztecus Ives, 1891
Figure 4. Data of E. ingens ingens. Expected (pink logistic line) percentage of a female with male, expected (red logistic line) and observed percentage (red circular) of Ov-F, and size structure of female parasite (thick line), female accompanied with male (broken line) and Ov-F (thin line), size at first accompaniment (FAS ) and size at first maturity (FMS ).
Figure 2 in Infestation and effect of parasitic isopod Epipenaeon ingens ingens Nobili, 1906 on commercial shrimp species in the eastern Mediterranean: a case study of the population of brown shrimp Penaeus aztecus Ives, 1891
Figure 2. Percentage of infected and uninfected shrimps by carapace length (CL) and by sex of P. aztecus sampled in Antalya Bay (red circular: an observed percentage of the infection, thick line: correlation line).
Figure 6 in Infestation and effect of parasitic isopod Epipenaeon ingens ingens Nobili, 1906 on commercial shrimp species in the eastern Mediterranean: a case study of the population of brown shrimp Penaeus aztecus Ives, 1891
Figure 6. Box and Whisker plot representation of the negative effect of E. ingens ingens on the gonadal development of the female host shrimp P. aztecus.
Fig. 1. Study area. Interstate Highway 88 in Impacts of a highway on the population genetic structure of a threatened freshwater turtle (Glyptemys insculpta)
Fig. 1. Study area. Interstate Highway 88 (I-88) and the Susquehanna River (Susq.) bisect Otsego and Delaware Counties, New York, USA.
Fig. 1 in A Preliminary Study Of Two Sympatric Maxomys Rats In Sarawak, Malaysia: Spacing Patterns And Population Dynamics
Fig. 1: a) Location of the study area, Lambir Hills National Park, Sarawak, Malaysia (black circle); b) Distribution of wire-mesh live cage traps (black circles) set at the Canopy Biology Plot.
Fig. 2 in A Preliminary Study Of Two Sympatric Maxomys Rats In Sarawak, Malaysia: Spacing Patterns And Population Dynamics
Fig. 2. Distribution of the home ranges of Maxomys rajah and M. whiteheadi during: a) August 1997–July 1999; b) May 2001–July 2004; and c) November 2004–July 2005. M, male; F, female.
Fig. 3 in A Preliminary Study Of Two Sympatric Maxomys Rats In Sarawak, Malaysia: Spacing Patterns And Population Dynamics
Fig. 3. Population dynamics of Maxomys rajah (open circles) and M. whiteheadi (black squares) from August 1997 to July 2005 at Lambir hills National Park, Sarawak, Malaysia.
Fig. 12 in A Mark-Recapture Study Of A Dog-Faced Water Snake Cerberus Schneiderii (Colubridae: Homalopsidae) Population In Sungei Buloh Wetland Reserve, Singapore
Fig. 12. Locations of Cerberus schneiderii individuals with PIT tags: a, #680A445; b, #680A2C9; c, #680A377; and d, #680CAD9. Each position was based on the GPS coordinates recorded from each capture. Number denotes the month of capture (i.e., 1=Jan., 2=Feb., 3=Mar., etc.).
Fig. 11 in A Mark-Recapture Study Of A Dog-Faced Water Snake Cerberus Schneiderii (Colubridae: Homalopsidae) Population In Sungei Buloh Wetland Reserve, Singapore
Fig. 11. Locations of Cerberus schneiderii individuals with PIT tags: a, #6899BFE; b, #6328212; c, #682D1CF; and d, #680C298. Each position was based on the GPS coordinates recorded from each capture. Number denotes the month of capture (i.e., 1=Jan., 2=Feb.,
Fig. 10 in A Mark-Recapture Study Of A Dog-Faced Water Snake Cerberus Schneiderii (Colubridae: Homalopsidae) Population In Sungei Buloh Wetland Reserve, Singapore
Fig. 10. Cerberus schneiderii. Percentage frequency of displacement distance, which was calculated as the shortest distance between two locations that an individual was captured and recaptured.
Fig. 6 in A Mark-Recapture Study Of A Dog-Faced Water Snake Cerberus Schneiderii (Colubridae: Homalopsidae) Population In Sungei Buloh Wetland Reserve, Singapore
Fig. 6. Cerberus schneiderii. Scatterplots and fitted regression lines of: a, body mass; b, tail length; and c, head width against snout-vent length (SVL) for males (O, solid line) and females (+, dashed line). Variables were log10-transformed.
Fig. 5 in A Mark-Recapture Study Of A Dog-Faced Water Snake Cerberus Schneiderii (Colubridae: Homalopsidae) Population In Sungei Buloh Wetland Reserve, Singapore
Fig. 5. Percentage frequency distribution of snout-vent length (SVL) of Cerberus schneiderii for each month between Jan.–Oct.2006.
Fig. 9 in A Mark-Recapture Study Of A Dog-Faced Water Snake Cerberus Schneiderii (Colubridae: Homalopsidae) Population In Sungei Buloh Wetland Reserve, Singapore
Fig. 9. Map showing the spatial distribution of Cerberus schneiderii in four brackish ponds ('A3-4', 'A6', 'C2-3' and 'C4-5') at Sungei Buloh Wetland Reserve. Each position was based on the GPS coordinates recorded for each snake captured (n = 2258).
Fig. 3 in A Mark-Recapture Study Of A Dog-Faced Water Snake Cerberus Schneiderii (Colubridae: Homalopsidae) Population In Sungei Buloh Wetland Reserve, Singapore
Fig. 3. Percentage frequency distribution of the number of times that tagged individuals of Cerberus schneiderii were recaptured.
Fig. 2 in A Mark-Recapture Study Of A Dog-Faced Water Snake Cerberus Schneiderii (Colubridae: Homalopsidae) Population In Sungei Buloh Wetland Reserve, Singapore
Fig. 2. Physical conditions (rainfall, air temperature) in relation to relative abundance of Cerberus schneiderii at Sungei Buloh Wetland Reserve between Jan.–Dec.2006: a, total rainfall and mean dry bulb temperature at the Changi Meteorological Station, Singapore; b, relative abundance of snakes represented by the relative number of individuals captured (i.e., # captures (# hours × # observers) –1) to standardise for sampling effort, which differed between months.
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.