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63 results for “Dasypodidae”
Fig. 7 in A geometric morphometric study of sex differences in the scapula, humerus and ulna of Chaetophractus villosus (Xenarthra, Dasypodidae)
Fig. 7. Ulna. Distribution of males (black dots) and females (white dots) of Chaetophractus villosus (Desmarest, 1804) in the plane determined by the first two relative warps (RW1 and RW2). Numbers indicate specimens. Deformation grids below the graph show shape changes linked to negative (left) and positive (right) scores in RW1. Grids on the right show deformations linked to negative (below) and positive (above) scores in RW2.
Fig. 6 in A geometric morphometric study of sex differences in the scapula, humerus and ulna of Chaetophractus villosus (Xenarthra, Dasypodidae)
Fig. 6. Scatterplot for the ulna of Chaetophractus villosus (Desmarest, 1804), showing the distribution of the individuals in the plane formed by the two first principal components. The black outlines below the plot represent the shape variation associated to PC1, and those of the right show the changes associated to PC2 with respect to the consensus of the species (grey outlines).
Fig. 4 in A geometric morphometric study of sex differences in the scapula, humerus and ulna of Chaetophractus villosus (Xenarthra, Dasypodidae)
Fig. 4. Humerus. Distribution of males (black dots) and females (white dots) of Chaetophractus villosus (Desmarest, 1804) in the plane determined by the first two relative warps (RW1 and RW2). Numbers indicate specimens. Deformation grids below the graph show shape changes linked to negative (left) and positive (right) scores in RW1. Grids on the right show deformations linked to negative (below) and positive (above) scores in RW2.
Fig. 3 in A geometric morphometric study of sex differences in the scapula, humerus and ulna of Chaetophractus villosus (Xenarthra, Dasypodidae)
Fig. 3. Scatterplot for the humerus of Chaetophractus villosus (Desmarest, 1804), showing the distribution of the individuals in the plane formed by the two first principal components. The black outlines below the plot represent the shape variation associated to PC1, and those of the right show the changes associated to PC2 with respect to the consensus of the species (grey outlines).
Fig. 2 in A geometric morphometric study of sex differences in the scapula, humerus and ulna of Chaetophractus villosus (Xenarthra, Dasypodidae)
Fig. 2. Canonical analysis for the humerus of males and females of Chaetophractus villosus (Desmarest, 1804). The bone outlines below the graph represent the tendencies to deformation in males and females (black dots and lines) with respect to the consensus of the species (grey dots and lines) along the axis.
Fig. 1 in A geometric morphometric study of sex differences in the scapula, humerus and ulna of Chaetophractus villosus (Xenarthra, Dasypodidae)
Fig. 1. Landmarks digitised on the left appendicular bones of Chaetophractus villosus (Desmarest, 1804). Scapula in dorsal view; humerus in caudal view; ulna in lateral view.
Fig. 5 in A geometric morphometric study of sex differences in the scapula, humerus and ulna of Chaetophractus villosus (Xenarthra, Dasypodidae)
Fig. 5. Canonical analysis for the ulna of males and females of Chaetophractus villosus (Desmarest, 1804). The bone outlines below the graph represent extreme individuals (black dots and lines) with respect to the consensus of the species (grey dots and lines) along the axis.
FIGURE 4 in A new species of Eutatus Gervais (Xenarthra, Dasypodidae) from the Late Pleistocene of the Northern Pampean Region, Argentina
FIGURE 4. Scatterplot (CV1 versus CV2) from Canonical Variate Analysis of osteoderms of Eutatus. Shape change across axes is represented as wireframe for the positive and negative values. 95 % confidence ellipse for E. seguini, E. pascuali and E. crispianii sp. nov. are shown. E. crispianii sp. nov. (black circles), E. seguini (white circles) and E. pascuali (red circles).
FIGURE 3 in A new species of Eutatus Gervais (Xenarthra, Dasypodidae) from the Late Pleistocene of the Northern Pampean Region, Argentina
FIGURE 3. Bivariate plot showing relationship between the width and length of fixed osteoderms of E. crispianii sp. nov. (black circles), E. seguini (white circles) and E. pascuali (red circles).
FIGURE 2. 1 in A new species of Eutatus Gervais (Xenarthra, Dasypodidae) from the Late Pleistocene of the Northern Pampean Region, Argentina
FIGURE 2. 1, Fixed osteoderms of Eutatus crispianii sp. nov. MGPV-E1; 2, E. seguini MACN10160a; 3, E. seguini MACN2772; 4, E. pascuali MMP1212. af, anterior foramina; facf, foramina around the central figure.
FIGURE 1. 1 in A new species of Eutatus Gervais (Xenarthra, Dasypodidae) from the Late Pleistocene of the Northern Pampean Region, Argentina
FIGURE 1. 1, Landmark configuration on schematic osteoderm of Eutatus; landmarks (dark gray circles) and semilandmarks (white circles); 2, Box-and-whisker plot showing centroid sizes of E. seguini, E. pascuali and E. crispianii. The central bar of each box represents the median of the population, while upper and lower bounds are 75th and 25th percentiles, respectively. Boxes show 50 % of the population and whiskers extend showing the minimum and maximum values in a range of 1.5 times the length of the box. Circles mark the atypical values of CS located beyond to 1.5 times the box length distances.
Linked collectors and determiners for: Taxonomic revision of the Dasypus kappleri complex, with revalidations of Dasypus pastasae (Thomas, 1901) and Dasypus beniensis Lönnberg, 1942 (Cingulata, Dasypodidae).
Natural history specimen data linked to collectors and determiners held within, "Taxonomic revision of the Dasypus kappleri complex, with revalidations of Dasypus pastasae (Thomas, 1901) and Dasypus beniensis Lönnberg, 1942 (Cingulata, Dasypodidae)". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="https://bionomia.net/dataset/5f293e28-4f71-4042-a192-6a23feb15b70">https://bionomia.net/dataset/5f293e28-4f71-4042-a192-6a23feb15b70</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/5f293e28-4f71-4042-a192-6a23feb15b70">https://gbif.org/dataset/5f293e28-4f71-4042-a192-6a23feb15b70</a>. Formatted as a Frictionless Data package.
Dasypus novemcinctus (Dasypodidae) - whole organism
Image of Dasypus novemcinctus (Dasypodidae) - whole organism
Figure 1 in Acoustic analysis of vocalization and the behavioral response associated to sound production of the nine banded armadillo Dasypus novemcinctus (Mammalia, Cingulata, Dasypodidae)
Figure 1. Oscillogram (top) and spectrogram (bottom) of the agonistic vocalizations of Dasypus novemcinctus, HCLP-S 1028, recorded from individual M1. (A) A single vocalization composed of the pattern A-I, A-I, B-I, B-II; (B) A single vocalization composed of the pattern A-I, A-II, B-I, A-II, B-I, B-II.
Figure 2. M1 in Acoustic analysis of vocalization and the behavioral response associated to sound production of the nine banded armadillo Dasypus novemcinctus (Mammalia, Cingulata, Dasypodidae)
Figure 2. M1 (marked with white tape at the middle of its moveable bands) Behavior (A) when cornered after being submitted to the presence of other male subject, (B) at a second moment, when the other animal approaches from its back, and then (C) M1 bends its body left to prevent the contact, with the other male scratching the basis of its tail. In (D) the other male bipedally projects its belly against M1's back, and the latter finally changes its position.
Figures 10-11 in Yes, they can! Three-banded armadillos Tolypeutes sp. (Cingulata: Dasypodidae) dig their own burrows
Figures 10-11. (10) Lateral and (11) frontal view of Tolypeutes matacus front claws.
FIGURE 4 in Reassessment of the hairy long-nosed armadillo " Dasypus " pilosus (Xenarthra, Dasypodidae) and revalidation of the genus Cryptophractus Fitzinger, 1856
FIGURE 4. Skin of Cryptophractus pilosus in ventral (MUSM 7501) and dorsal (MUSM 7505) views, and detail of osteoderms from different areas of the carapace (MUSM 24214) in the boxes. Top box, scapular osteoderms; middle box, movable osteoderms; and bottom box, pelvic semimovable and pelvic osteoderms. Scale bars equal 50 mm.
FIGURE 7 in Reassessment of the hairy long-nosed armadillo " Dasypus " pilosus (Xenarthra, Dasypodidae) and revalidation of the genus Cryptophractus Fitzinger, 1856
FIGURE 7. Comparison of the ear region of Cryptophractus pilosus (left) and Dasypus septemcinctus (right), showing different degrees of entotympanic ossification (gray shades in the drawings) in both taxa.
FIGURE 1 in Reassessment of the hairy long-nosed armadillo " Dasypus " pilosus (Xenarthra, Dasypodidae) and revalidation of the genus Cryptophractus Fitzinger, 1856
FIGURE 1. Drawing of Cryptophractus pilosus showing some of its external features: dense hair concealing the carapace, long and slender rostrum, cephalic shield with an acute posterior margin, more distantly separated from the base of the ears, and Vshaped occipital sulcus.
FIGURE 5 in Reassessment of the hairy long-nosed armadillo " Dasypus " pilosus (Xenarthra, Dasypodidae) and revalidation of the genus Cryptophractus Fitzinger, 1856
FIGURE 5. Drawing of buckler and movable osteoderms of Cryptophractus pilosus (top) and D. novemcinctus (bottom). Gray shades represent the disposition of the horn scales.
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
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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.