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.
1,183
datasets available to search
ShareScore release 0.9.0
Dataset results
1,183 results for “Skeleton”
FIGURE 7 in The axial skeleton of Bagualia alba (Dinosauria: Eusauropoda) from the Early Jurassic of Patagonia
FIGURE 7. Sixth cervical vertebra of Bagualia alba (MPEF-PV 3301/15) in left lateral (A), anterior (B), right lateral (C), posterior (D), and dorsal (E) views. Abbreviations: al, accessory lamina; cprl, centroprezygapophyseal lamina; cr, caudal recess; dp, diapophysis; epi, epipophysis; eprl, epipophyseal-prezygapophyseal lamina; ns, neural spine; pcdl, posterior centrodiapophyseal lamina; pl, pleurocoel; podl, postzygodiapophyseal lamina; poz, postzygapophysis; prdl, prezygodiapophyseal lamina; prepi, pre-epipophysis; prz, prezygapophysis; spol, spinopostzygapophyseal lamina; sprl, spinoprezygapophyseal lamina; stpol, single intrapostzygapophyseal lamina; tpd, triangular process of the diapophysis; tpol, intrapostzygapophyseal lamina; tprl, intraprezygapophyseal lamina. Dashed line for the reconstructed parts, and hatched pattern for broken surfaces. Scale bar equals 10 cm.
FIGURE 11 in The axial skeleton of Bagualia alba (Dinosauria: Eusauropoda) from the Early Jurassic of Patagonia
FIGURE 11. Middle–posterior cervical vertebra of Bagualia alba (MPEF-PV3408) in left lateral (A), anterior (B), posterior (C), left lateral (D), ventral (E), and dorsal (F) views. Abbreviations: acdl, anterior centrodiapophyseal lamina; al, accessory lamina; cprl, centroprezygapophyseal lamina; dp, diapophysis; pcdl, posterior centrodiapophyseal lamina; pl, pleurocoel; podl, postzygodiapophyseal lamina; poz, postzygapophysis; pp, parapophysis; prdl, prezygodiapophyseal lamina; spol, spinopostzygapophyseal lamina; sprl, spinoprezygapophyseal lamina; tprl, intraprezygapophyseal lamina; vk, ventral keel. Hatched pattern represents broken surfaces and grey form represents sediment. Scale bar equals 10 cm.
FIGURE 14 in The axial skeleton of Bagualia alba (Dinosauria: Eusauropoda) from the Early Jurassic of Patagonia
FIGURE 14. Anterior dorsal vertebra of Bagualia alba (MPEF-PV 11023) in right lateral (A), anterior (B), dorsal (C), posterior (D), left lateral (E) views. Abbreviations: acdl, anterior centrodiapophyseal lamina; cdf, centrodiapophyseal fossa; cpol, centropostzygapophyseal lamina; cprf, centroprezygapophyseal fossa; cprl, centroprezygapophyseal lamina; dp, diapophysis; epi, epipophysis; pcdl, posterior centrodiapophyseal lamina; pl, pleurocoel; podl, postzygodiapophyseal lamina; poz, postzygapophysis; pp, parapophysis; prdl, prezygodiapophyseal lamina; prepi, pre-epipophysis; prz, prezygapophysis; spof, spinopostzygapophyseal fossa; spol, spinopostzygapophyseal lamina; sprf, spinoprezygapophyseal fossa, sprl, spinoprezygapophyseal lamina; stprl, single intraprezygapophyseal lamina; tpol, intrapostzygapophyseal lamina; tprl, intraprezygapophyseal lamina. Hatched pattern represents broken surfaces. Scale bar equals 10 cm.
FIGURE 1 in The axial skeleton of Bagualia alba (Dinosauria: Eusauropoda) from the Early Jurassic of Patagonia
FIGURE 1. Location map and stratigraphic distribution of the main sauropods of the Cañadón Asfalto Formation, and reconstructed skeleton of Bagualia alba. Preserved bones in white and missing elements in black. Stratigraphy modified from Pol et al. (2020) and Figari (2005). Map data: Google, ©2021 CNES/Airbus, Landsat/ Copernicus, Maxar Technologies, Map data ©2021
FIGURE 4 in The axial skeleton of Bagualia alba (Dinosauria: Eusauropoda) from the Early Jurassic of Patagonia
FIGURE 4. Third cervical vertebra of Bagualia alba (MPEF-PV 3301/12) in left lateral (A), anterior (B), right lateral (C), posterior (D), ventral (E), and dorsal (F) views. Abbreviations: acdl, anterior centrodiapophyseal lamina; cprl, centroprezygapophyseal lamina; cr, caudal recess; dp, diapophysis; epi, epipophysis; eprl, epipophyseal-prezygapophyseal lamina; mdcprl, medial division of the centroprezygapophyseal lamina; ns, neural spine; pcdl, posterior centrodiapophyseal lamina; pl, pleurocoel; podl, postzygodiapophyseal lamina; poz, postzygapophysis; pp, parapophysis; prdl, prezygodiapophyseal lamina; prz, prezygapophysis; spol, spinopostzygapophyseal lamina; sprl, spinoprezygapophyseal lamina; str, striations; tpol, intrapostzygapophyseal lamina; tprl, intraprezygapophyseal lamina; vk, ventral keel. Hatched pattern represents broken surfaces. Scale bar equals 10 cm.
FIGURE 8 in The axial skeleton of Bagualia alba (Dinosauria: Eusauropoda) from the Early Jurassic of Patagonia
FIGURE 8. Seventh cervical vertebra of Bagualia alba (MPEF-PV 3301/16) in left lateral and ventrolateral (A), anterior (B), posterior (C), right lateral (D), dorsal (E), and ventral (F) views. Abbreviations: acdl, anterior centrodiapophyseal lamina; al, accessory lamina; avk, anterior ventral keel; cprl, centroprezygapophyseal lamina; dp, diapophysis; epi, epipophysis; eprl, epipophyseal-prezygapophyseal lamina; ns, neural spine; pcdl, posterior centrodiapophyseal lamina; pl, pleurocoel; podl, postzygodiapophyseal lamina; poz, postzygapophysis; pp, parapophysis; prdl, prezygodiapophyseal lamina; prepi, pre-epipophysis; prz, prezygapophysis; pvk, posterior ventral keel; spol, spinopostzygapophyseal lamina; sprl, spinoprezygapophyseal lamina; tpd, triangular process of the diapophysis; tprl, intraprezygapophyseal lamina. Hatched pattern represents broken surfaces. Scale bar equals 10 cm.
FIGURE 6 in The axial skeleton of Bagualia alba (Dinosauria: Eusauropoda) from the Early Jurassic of Patagonia
FIGURE 6. Fifth cervical vertebra of Bagualia alba (MPEF-PV 3301/14) in left lateral (A), anterior (B), right lateral (C), posterior (D), ventral (E), and dorsal (F) views. Abbreviations: acdl, anterior centrodiapophyseal lamina; cprl, centroprezygapophyseal lamina; cr, caudal recess; dp, diapophysis; epi, epipophysis; pcdl, posterior centrodiapophyseal lamina; pl, pleurocoel; podl, postzygodiapophyseal lamina; poz, postzygapophysis; prdl, prezygodiapophyseal lamina; prz, prezygapophysis; sprl, spinoprezygapophyseal lamina; spol, spinopostzygapophyseal lamina; stpol, single intrapostzygapophyseal lamina; tpd, triangular process of the diapophysis; tpol, intrapostzygapophyseal lamina; tprl, intraprezygapophyseal lamina; vk, ventral keel. Hatched pattern represents broken surfaces. Scale bar equals 10 cm.
FIGURE 3 in The axial skeleton of Bagualia alba (Dinosauria: Eusauropoda) from the Early Jurassic of Patagonia
FIGURE 3. Axis of Bagualia alba (MPEF-PV3301/13) in left lateral (A), anterior (B), right lateral (C), posterior (D), ventral (E), and dorsal (F) views. Abbreviations: acdl, anterior centrodiapophyseal lamina; apns, anterior process of the neural spine; cprl, centroprezygapophyseal lamina; dp, diapophysis; epi, epipophysis; ns, neural spine; pcdl, posterior centrodiapophyseal lamina; podl, postzygodiapophyseal lamina; poz, postzygapophysis; prdl, prezygodiapophyseal lamina; prz, prezygapophysis; spol, spinopostzygapophyseal lamina; sprl, spinoprezygapophyseal lamina; tprl, intraprezygapophyseal lamina; vk, ventral keel. Scale bar equals 10 cm.
FIGURE 2 in The axial skeleton of Bagualia alba (Dinosauria: Eusauropoda) from the Early Jurassic of Patagonia
FIGURE 2. Proatlas and atlas of Bagualia alba. A–D, right proatlas (MPEF-PV3301/5) in lateral (A), ventral (B), medial (C) and dorsal (D) views; E–J, atlas (MPEF-PV 3301/18) in left lateral (E), anterior (F), posterior (G), right lateral (H), ventral (I), and dorsal (J) views. Abbreviations: epi, epipophysis; pd, pedicel; poz, postzygapophysis; prz: prezygapophysis. Hatched pattern represents broken surfaces. Scale bar equals 5 cm.
Figure 3 in A new wing skeleton of Forfexopterus (Pterosauria: Ctenochasmatidae) from the Early Cretaceous Jehol Biota reveals a developmental variation
Figure 3. Disparity of Forfexopterus in wing size. (a) SDUST-V1003 (adult); (b) the holotype HM V20 (subadult; reconstructed from Jiang et al., 2016).
Figure 2 in A new wing skeleton of Forfexopterus (Pterosauria: Ctenochasmatidae) from the Early Cretaceous Jehol Biota reveals a developmental variation
Figure 2. Enlarged images of the new wing skeleton of Forfexopterus (SDUST-V1003) from Jiufotang Formation of Early Cretaceous Jehol Biota in Jianchang, western Liaoning, northeastern China. (a) Glenoid fossa of the co-ossified scapulocoracoid; (b) elbow joint between the well-ossified humerus and ulna and radius; (c) extensor tendon process fused with the first wing phalanx. Abbreviations: co, coracoid portion; et, extensor tendon process; gf, glenoid fossa; hu, humerus; ra, radius; sc, scapular portion; ul, ulna; wmc, wing metacarpal IV; wp1, the first wing phalanx.
Figure 1 in A new wing skeleton of Forfexopterus (Pterosauria: Ctenochasmatidae) from the Early Cretaceous Jehol Biota reveals a developmental variation
Figure 1. New wing skeleton of Forfexopterus (SDUST-V1003) from Jiufotang Formation of Early Cretaceous Jehol Biota in Jianchang, western Liaoning, northeastern China. Abbreviations: ca, carpus; co, coracoid portion; hu, humerus; mc, metacarpals I–IV; mdI–III, manual digits I–III; pt, pteroid; ra, radius; sc, scapular portion; ul, ulna; wp1–4, wing phalanges 1–4.
Fig. 7 in New skeleton from the early Oligocene of Germany indicates a stem-group position of diomedeoidid birds
Fig. 7. Relationships between crown group Procellariiformes and the Diomedeoididae. The two nodes are characterized by the characters: 1, cotyla scapularis of coracoid shallow; 2, mandibular symphysis short; processus supracondylaris dorsalis large; legs short (note that the Hydrobatinae are intermediate in the last two characters mentioned).
3D skeletons UP-Fall Dataset
<p><strong>3D skeletons UP-Fall Dataset</strong></p> <p> </p> <p></p> <p> </p> <p><strong> Different between Fall and Impact detection </strong></p> <p> </p> <p><strong> Overview</strong></p> <p>This dataset aims to facilitate research in fall detection, particularly focusing on the precise detection of impact moments within fall events. The 3D skeletons data accuracy and comprehensiveness make it a valuable resource for developing and benchmarking fall detection algorithms. The dataset contains 3D skeletal data extracted from fall events and daily activities of 5 subjects performing fall scenarios </p> <p> </p> <p><strong>Data Collection</strong></p> <p>The skeletal data was extracted using a pose estimation algorithm, which processes images frames to determine the 3D coordinates of each joint. Sequences with less than 100 frames of extracted data were excluded to ensure the quality and reliability of the dataset. As a result, some subjects may have fewer CSV files.</p> <p><strong>CSV Structure</strong></p> <p>The data is organized by subjects, and each subject contains CSV files named according to the pattern <strong>C1S1A1T1</strong>, where:</p> <ul> <li><strong><em>C:</em></strong> Camera (1 or 2)</li> <li><strong><em>S</em></strong>: Subject (1 to 5)</li> <li><strong><em>A:</em></strong> Activity (1 to N, representing different activities)</li> <li><strong><em>T:</em></strong> Trial (1 to 3)</li> </ul> <p> </p> <p><strong>subject1/`: Contains CSV files for Subject 1.</strong></p> <ul> <li>C1S1A1T1.csv: Data from Camera 1, Activity 1, Trial 1 for Subject 1</li> <li> C1S1A2T1.csv: Data from Camera 1, Activity 2, Trial 1 for Subject 1</li> <li> C1S1A3T1.csv: Data from Camera 1, Activity 3, Trial 1 for Subject 1</li> <li> C2S1A1T1.csv: Data from Camera 2, Activity 1, Trial 1 for Subject 1</li> <li> C2S1A2T1.csv: Data from Camera 2, Activity 2, Trial 1 for Subject 1</li> <li> C2S1A3T1.csv: Data from Camera 2, Activity 3, Trial 1 for Subject 1<br><br></li> </ul> <p><strong>subject2/`: Contains CSV files for Subject 2.</strong></p> <ul> <li>C1S2A1T1.csv: Data from Camera 1, Activity 1, Trial 1 for Subject 2</li> <li>C1S2A2T1.csv: Data from Camera 1, Activity 2, Trial 1 for Subject 2</li> <li>C1S2A3T1.csv: Data from Camera 1, Activity 3, Trial 1 for Subject 2</li> <li>C2S2A1T1.csv: Data from Camera 2, Activity 1, Trial 1 for Subject 2</li> <li>C2S2A2T1.csv: Data from Camera 2, Activity 2, Trial 1 for Subject 2</li> <li>C2S2A3T1.csv: Data from Camera 2, Activity 3, Trial 1 for Subject 2</li> </ul> <p>subject3/, subject4/, subject5/: Similar structure as above, but may contain fewer CSV files due to the data extraction criteria mentioned above.</p> <p> </p> <p><strong>Column Descriptions</strong></p> <p>Each CSV file contains the following columns representing different skeletal joints and their respective coordinates in 3D space:</p> <table> <tbody> <tr> <td> <p>Column Name</p> </td> <td> <p>Description</p> </td> </tr> <tr> <td> <p>joint_1_x</p> </td> <td> <p>X coordinate of joint 1</p> </td> </tr> <tr> <td> <p>joint_1_y</p> </td> <td> <p>Y coordinate of joint 1</p> </td> </tr> <tr> <td> <p>joint_1_z</p> </td> <td> <p>Z coordinate of joint 1</p> </td> </tr> <tr> <td> <p>joint_2_x</p> </td> <td> <p>X coordinate of joint 2</p> </td> </tr> <tr> <td> <p>joint_2_y</p> </td> <td> <p>Y coordinate of joint 2</p> </td> </tr> <tr> <td> <p>joint_2_z</p> </td> <td> <p>Z coordinate of joint 2</p> </td> </tr> <tr> <td> <p>...</p> </td> <td> <p>...</p> </td> </tr> <tr> <td> <p>joint_n_x</p> </td> <td> <p>X coordinate of joint n</p> </td> </tr> <tr> <td> <p>joint_n_y</p> </td> <td> <p>Y coordinate of joint n</p> </td> </tr> <tr> <td> <p>joint_n_z</p> </td> <td> <p>Z coordinate of joint n</p> </td> </tr> <tr> <td> <p>LABEL</p> </td> <td> <p>Label indicating impact (1) or non-impact (0)</p> </td> </tr> </tbody> </table> <p><strong>Example</strong></p> <p>Here is an example of what a row in one of the CSV files might look like:</p> <table> <tbody> <tr> <td> <p>joint_1_x</p> </td> <td> <p>joint_1_y</p> </td> <td> <p>joint_1_z</p> </td> <td> <p>joint_2_x</p> </td> <td> <p>joint_2_y</p> </td> <td> <p>joint_2_z</p> </td> <td> <p>...</p> </td> <td> <p>joint_n_x</p> </td> <td> <p>joint_n_y</p> </td> <td> <p>joint_n_33</p> </td> <td> <p>LABEL</p> </td> </tr> <tr> <td> <p>0.123</p> </td> <td> <p>0.456</p> </td> <td> <p>0.789</p> </td> <td> <p>0.234</p> </td> <td> <p>0.567</p> </td> <td> <p>0.890</p> </td> <td> <p>...</p> </td> <td> <p>0.345</p> </td> <td> <p>0.678</p> </td> <td> <p>0.901</p> </td> <td> <p>0</p> </td> </tr> </tbody> </table> <p> </p> <p><strong>Usage</strong></p> <p>This data can be used for developing and benchmarking impact fall detection algorithms. It provides detailed information on human posture and movement during falls, making it suitable for machine learning and deep learning applications in impact fall detection and prevention.</p> <p> </p> <p><strong> Using github</strong></p> <p><strong><br>1. Clone the repository:</strong></p> <p> -bash<br> git clone</p> <p>https://github.com/Tresor-Koffi/3D_skeletons-UP-Fall-Dataset</p> <p><strong> <br>2. Navigate to the directory:</strong></p> <p> -bash<br> -cd 3D_skeletons-UP-Fall-Dataset<br> </p> <h3>Examples</h3> <p>Here's a simple example of how to load and inspect a sample data file using Python:<br><em>```python</em><br><em>import pandas as pd</em></p> <p># Load a sample data file for Subject 1, Camera 1, Activity 1, Trial 1</p> <p><em>data = pd.read_csv('subject1/C1S1A1T1.csv')</em><br><em>print(data.head(</em>))</p> <p> </p>
RESTORATION OF TYRANNOSAURUS REX. From the type skeleton, Amer. Mus. No. 973. Many of the vertebrae belong to No. 5866. in Tyrannosaurus, upper Cretaceous carnivorous dinosaur (second communication)
RESTORATION OF TYRANNOSAURUS REX. From the type skeleton, Amer. Mus. No. 973. Many of the vertebrae belong to No. 5866.
Anterior, lateral, and posterior aspects of the mounted skeleton of Tyrannosaurus rex, chiefly from Amer. Mus. 5027, partly from the type specimen Amer. Mus. 973. The sternal ribs are not restored. The structure of the manus is unknown as yet; the restoration of the digits is conjectural. About natural size. in Skeletal Adaptations of Ornitholestes, Struthiomimus, Tyrannosaurus
Anterior, lateral, and posterior aspects of the mounted skeleton of Tyrannosaurus rex, chiefly from Amer. Mus. 5027, partly from the type specimen Amer. Mus. 973. The sternal ribs are not restored. The structure of the manus is unknown as yet; the restoration of the digits is conjectural. About natural size.
Skeleton of Struthiomimus altus. Genotype specimen, Amer. Mus. 5339. One-tenth natural size In this panel mount the animal is placed approximately as found. The pollex is too closely appressed to the other digits, see Fig. 3. in Skeletal Adaptations of Ornitholestes, Struthiomimus, Tyrannosaurus
Skeleton of Struthiomimus altus. Genotype specimen, Amer. Mus. 5339. One-tenth natural size In this panel mount the animal is placed approximately as found. The pollex is too closely appressed to the other digits, see Fig. 3.
Figure 6 in A Partial Skeleton of the Tyrannosaurid Dinosaur Aublysodon from the Upper Cretaceous of New Mexico
Figure 6—Comparison of distal end of right tibia and astragalus. 1, 2, Aublysodon cf. A. mirandus (OMNH 10131). 3, A. libratus (AMNH 5432). 4, A. sarcophagus (NMC 5601). An interpretive outline of the astragalus is shown by the dotted line in 2, as is the extent of the tibia behind the astragalus in 4. Abbreviations: a, astragalar facet; 1, lateral malleolus; m, medial malleolus. Scale bar 10 cm.
Figure 4 in A Partial Skeleton of the Tyrannosaurid Dinosaur Aublysodon from the Upper Cretaceous of New Mexico
Figure 4—Aublysodon cf. A. mirandus (OMNH 10131). Premaxillary tooth in 1, lateral view, and 2, posterior view; 3, cross sections at indicated levels with anterior end to the right. Scale bar 10 mm
Figure 5 in A Partial Skeleton of the Tyrannosaurid Dinosaur Aublysodon from the Upper Cretaceous of New Mexico
Figure 5—Aublysodon cf. A. mirandus (OMNH 10131). Left femur in 1, anterior view, and 2, posterior view; 3, right tibia in anterior view; 4, left metatarsal IV in lateral view; 5, left metatarsal III in lateral view; 6, left metatarsals III and IV articulated in anterior view; 7, pubic foot in right lateral view. Scale bar 10 cm
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.