Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
25
datasets available to search
ShareScore release 0.9.0
Dataset results
25 results for “Tapirus”
Supporting raw data for: The key role of the largest extant neotropical frugivore (Tapirus terrestris) in promoting admixture of plant genotypes across the landscape
<p>These files contain the supporting raw data of the journal article <strong>The key role of the largest extant neotropical frugivore (<em>Tapirus terrestris</em>) in promoting admixture of plant genotypes across the landscape</strong>. They include the geographical coordinates and genotypes (microsatellites) of 259 palm (<em>Syagrus romanzoffiana</em>) individuals analyzed in the mentioned study, as well as an example of one input file for conducting data analysis with the software COLONY 2.0. A text file (´Readme') describing this archived supporting data in further detail is also provided.</p>
FIGURE 5 in Mesowear Analysis of the Tapirus polkensis population from the Gray Fossil Site, Tennessee, USA
FIGURE 5. Boxplot of crown heights of the m1 protoconid for each eruption series of Tapirus polkensis from the Gray Fossil Site. Bars represent mean values, boxes represent interquartile ranges, and whiskers represent maximum and minimum values.
FIGURE 6 in Mesowear Analysis of the Tapirus polkensis population from the Gray Fossil Site, Tennessee, USA
FIGURE 6. Scatter plot of m1 protoconid cusp angle versus crown height for specimens in each eruption series (ES) of Tapirus polkensis from the Gray Fossil Site. The line represents a least squares linear regression of these data, regression equation: m1CA = 20.5 – 13.13(m1H), correlation coefficient, r = 0.932.
FIGURE 3 in Mesowear Analysis of the Tapirus polkensis population from the Gray Fossil Site, Tennessee, USA
FIGURE 3. Tapirus polkensis dentary specimens from the Gray Fossil Site, representing examples of individuals within eruption series 2 through eruption series 7 in occlusal view. ETMNH 605, 1. ETMNH 3694, 2. ETMNH 7899, 3. ETMNH 20488, 4. ETMNH 10383, 5. ETMNH 3519, 6. Scale bar equals 1 cm.
FIGURE 7 in Mesowear Analysis of the Tapirus polkensis population from the Gray Fossil Site, Tennessee, USA
FIGURE 7. Pie chart representing the sampled population structure of Tapirus polkensis at the Gray Fossil Site, indicated by percentage of specimens in each eruption series (ES).
Fig. 1 in Fossil record of Tapirs (Tapirus Brünnich, 1772) (Tapiridae Gray, 1821 - Peryssodactyla Owen, 1848) in Bulgaria
Fig. 1. Localities of fossil tapirs (Tapirus spp.) in Bulgaria: Hrabarsko (1, 5), Baldevo (2), Stanyantsi (3), Hadzhidimovo – 1 (4), Balsha (6), Gaber (7), Gabra, (8), Strumyani – 2, (9), Ploski (10).
Fig. 4. Pleistocene tapir Tapirus tarijensis Ameghino, 1902 in A taxonomic and biogeographic review of the fossil tapirs from Bolivia
Fig. 4. Pleistocene tapir Tapirus tarijensis Ameghino, 1902, from Tarija Valley (Bolivia). A. MNPA-V485, partial right mandible, in dorsal view. B. MN- PA-V1437, partial right mandible, in dorsal view. C. MNPA-V1448, partial left mandible, in dorsal view. D. MNPA-V1446, partial right mandible, in dorsal view. E. MNPA-V1447, partial left mandible, in dorsal view. F. MNPA-V1445, partial right mandible, in dorsal view. G. MNPA-V 5942, mandibular symphysis (G 1); left pm3–pm4 (G 2); right M2? (G 3); right pm3, left m1? and two unerupted m1? (G 4); all in dorsal/occlusal view. Scale bars in A, F, and G 2 –G 4,10 mm; in B–E and G 1, 50 mm.
Fig. 3. Pleistocene tapir Tapirus tarijensis Ameghino, 1902 in A taxonomic and biogeographic review of the fossil tapirs from Bolivia
Fig. 3. Pleistocene tapir Tapirus tarijensis Ameghino, 1902, from Tarija Valley (Bolivia). A. MACN-PV-1523, left mandible, in dorsal (A1), and lateral (A2) views. B. MNPA-V 006038, palatal fragment, in ventral view. C. MNHN-TAR 843, partial left maxilla, in ventral view. D. MNHN-TAR 842, left mandible, in dorsal view. E. MNHN-TAR 847, partial right mandible, in dorsal view. F. MNHN-TAR 846, partial left mandible, in dorsal view. Scale bars 50 mm.
FIG. 37. Tapirus indicus AMNH M-77875 in Cranial Morphology And Phylogenetic Relationships Of Trigonostylops Wortmani, An Eocene South American Native Ungulate
FIG. 37. Tapirus indicus AMNH M-77875, juvenile specimen. Left caudal cranium in oblique A, ventral and B, dorsal views, on facing pages with accompanying stereopairs. In B, endocranial sulcus (1) rostral to carotid incisure resembles that of Equus, which houses cavernous sinus and S-shaped loop of cerebral carotid before latter pierces dura mater (Bradley, 1923, p. 145; see also fig. 5); a second vascular sulcus (2) is situated where
FIG. 10. Ceratotherium simum AMNH M-51882, Tapirus indicus AMNH M-200300 in Cranial Morphology And Phylogenetic Relationships Of Trigonostylops Wortmani, An Eocene South American Native Ungulate
FIG. 10. Ceratotherium simum AMNH M-51882, Tapirus indicus AMNH M-200300, and Equus caballus AMNH M-204155, reconstructions of endocranial vasculature in dorsal, right lateral, ventral, and caudal views (on this and facing page). Specimens of C . simum and E . caballus are juveniles. For neural features, see text. As in previous figures in this series, vascular-related features are uniformly colored (gray), with exception of arteria diploetica magna (= caudal meningeal artery) (red) in Equus only. Posttemporal trackway contents in other taxa are grouped nonspecifically as vasa diploetica magna. See text. Key: 1, posttemporal sulcus/canal (for vasa diploetica magna); 2, temporal sulcus/canal (for temporal sinus); 3, parietosquamosal sulcus/canal (for parietosquamosal vessels); 4, hypoglossal canal (for condylar emissary vein); 5, sulcus for vertebral vein; 6, sulcus for ventral petrosal sinus (may include part of cavernous sinus); 7, sulcus for sigmoid sinus (may include proximal internal jugular vein); 8, retroarticular sulcus/canal (for retroarticular emissary vein); 9, cranioorbital sulcus/canal (for cranioorbital vessels); 10, sulcus for?ophthalmic vein; 11, sulcus for?caudal rhinencephalic vein; a, sulcus for transverse sinus or sinus communi-
Figure 7 in Abnormal morphology in Amblyomma coelebs and Amblyomma cf. oblongoguttatum (Acari: Ixodidae) collected on free-roaming Central American Tapir (Tapirus bairdii) from Nicaragua
Figure 7. Ventral view of Amblyomma cf. oblongoguttatum female with ectromely (arrow) and asymmetry of idiosoma.
Figure 6 in Abnormal morphology in Amblyomma coelebs and Amblyomma cf. oblongoguttatum (Acari: Ixodidae) collected on free-roaming Central American Tapir (Tapirus bairdii) from Nicaragua
Figure 6. Dorsal view of Amblyomma cf. oblongoguttatum female with ectromely and asymmetry of idiosoma.
Tapir detection histories (Tapirus bairdii) from Rio Indio, Nicaragua
<p>Camera trap detection histories from June-August 2014.</p>
Fig. 1 in Cytogenetic Examination Of South American Tapirs, Tapirus Terrestris (Perissodactyla, Tapiridae), From The Wroclaw Zoological Garden
Fig. 1. Karyograme of the lowland tapir (Tapirus terrestris) from the Wroclaw Zoological Garden.
Figure 3 in Abnormal morphology in Amblyomma coelebs and Amblyomma cf. oblongoguttatum (Acari: Ixodidae) collected on free-roaming Central American Tapir (Tapirus bairdii) from Nicaragua
Figure 3. Dorsal view of Amblyomma cf. oblongoguttatum female with atrophy on the left 3 (arrow).
Figure 8 in Abnormal morphology in Amblyomma coelebs and Amblyomma cf. oblongoguttatum (Acari: Ixodidae) collected on free-roaming Central American Tapir (Tapirus bairdii) from Nicaragua
Figure 8. Asymmetry of the scutum of Amblyomma cf. oblongoguttatum female.
Figure 4 in Abnormal morphology in Amblyomma coelebs and Amblyomma cf. oblongoguttatum (Acari: Ixodidae) collected on free-roaming Central American Tapir (Tapirus bairdii) from Nicaragua
Figure 4. Ventral view of Amblyomma cf. oblongoguttatum female with atrophy on the left 3 (arrow).
Figure 2 in Abnormal morphology in Amblyomma coelebs and Amblyomma cf. oblongoguttatum (Acari: Ixodidae) collected on free-roaming Central American Tapir (Tapirus bairdii) from Nicaragua
Figure 2. Ventral view of festoon malformation in a Amblyomma coelebs male.
Figure 5 in Abnormal morphology in Amblyomma coelebs and Amblyomma cf. oblongoguttatum (Acari: Ixodidae) collected on free-roaming Central American Tapir (Tapirus bairdii) from Nicaragua
Figure 5. Asymmetry of the scutum of Amblyomma cf. oblongoguttatum female.
Figure 1 in Abnormal morphology in Amblyomma coelebs and Amblyomma cf. oblongoguttatum (Acari: Ixodidae) collected on free-roaming Central American Tapir (Tapirus bairdii) from Nicaragua
Figure 1. Dorsal view of festoon malformation in a Amblyomma coelebs male.
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.