Skip to main content
Powered by ShareScore

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.

59

datasets available to search

ShareScore release 0.9.0

Reset

Dataset results

59 results for “Mammaliaformes”

Learn how ShareScore rates datasets ↗
zenodo40/100

Fig. 4 in A morganucodontan mammaliaform from the Upper Jurassic Morrison Formation, Utah, USA

Fig. 4. Illustration of the morganucodontan mammaliaform Cifellilestes ciscoensis gen. et sp. nov. (OMNH 80538, holotype); right skull fragment in lateral (A1), medial (A2), ventral (A3), and dorsal (A4) views.

opencc-by-4.0Mar 2022View details →
zenodo40/100

Fig. 2. 3D in A morganucodontan mammaliaform from the Upper Jurassic Morrison Formation, Utah, USA

Fig. 2. 3D surface renderings from CT data of the morganucodontan mammaliaform Cifellilestes ciscoensis gen. et sp. nov. (OMNH 69352), from the Cisco Mammal Quarry, Utah, USA, Upper Jurassic Morrison Formation. A. Left skull fragment in lateral (A1), medial (A2), ventral (A3), and dorsal (A4) views. B. Dentition only in lingual (B1), occlusal (B2), and buccal (B3) views.

opencc-by-4.0Mar 2022View details →
zenodo40/100

Fig. 10 in Reexamination of the mandibular and dental morphology of the Early Jurassic mammaliaform Hadrocodium wui

Fig. 10. Comparative morphology of lower molars of Hadrocodium and Morganucodon. A. The morganucodontan Morganucodon oehleri Rigney, 1963, from the Lower Lufeng Formation, Lower Jurassic of China. BMNH 2858, ultimate lower molar (right m4) lingual (A1) and oblique occlusal (A2, stereopairs) views. B. The morganucodontan Morganucodon watsoni Kühne, 1949, from the Lower Jurassic fissure fills of Wales. UMZC Eo.CR1, ultimate molar (m4); lingual view (B1) (Jäger et al. 2019, image courtesy of Kai Jäger), lingual (B2) and occlusal (B3) views (Gill et al. 2014, images courtesy of Pamela Gill). C. The mammaliaform Hadrocodium wui Luo, Crompton, and Sun, 2001, from the Lower Lufeng Formation, Lower Jurassic of Yunnan, China. Holotype, IVPP 8275, right m1 and m2 in occlusal (C1, stereopairs) and lingual (C2) views.

opencc-by-4.0Mar 2022View details →
zenodo40/100

Fig. 9 in Reexamination of the mandibular and dental morphology of the Early Jurassic mammaliaform Hadrocodium wui

Fig. 9. Comparative morphology of incisors and canine among mammaliaforms. A, B. The morganucodontan Morganucodon oehleri Rigney, 1963, from the Lower Lufeng Formation, Lower Jurassic of China. A. CUP-FMNH 2320, type specimen. B. BMNH 2858, whole tooth and oblique-horizontal slice to visualize the single root canal. C. The mammaliaform Hadrocodium wui Luo, Crompton, and Sun, 2001 (holotype, IVPP 8275) from the Lower Lufeng Formation, Lower Jurassic of Yunnan, China; C1, upper incisors and canine; C2, lower incisors and canine. D. The docodontan Haldanodon exspectatus Kühne and Krusat, 1972 (Gui-Mam 41/75) from the Guimarota Coal Mine, Upper Jurassic of Portugal (Ruf et al. 2013; Huttenlocker et al. 2018). E. The docodontan Docofossor brachydactylus Luo, Meng, Ji, Liu, Zhang, and Neander, 2015b (BMNH 131735) from the Tiaojishan Formation, Upper Jurassic of China (Luo et al. 2015b). F. The docodontan Agilodocodon scansorius Meng, Ji, Zhang, Liu, Grossnickle, and Luo, 2015 (BMNH 00138) from the Tiaojishan Formation, Upper Jurassic of China (Meng et al. 2015b); F1, left upper incisors and canine in lingual view; F2, left lower incisors and canine (flipped). Hadrocodium wui is similar to Haldanodon exspectatus and Docofossor brachydactylus in the upper canine with fully divided roots, and to all docodonts in bilaterally compressed lower canine with partially divided (grooved) root(s) and the separated root canals inside the root(s). Hadrocodium wui is also similar to Kuehneotherium praecursoris is also similar to Kuehneotherium in this feature (Gill 2004). Hadrocodium wui differs from Morganucodon oehleri and Sinoconodon rigneyi both of which are characterized by single-rooted and tubular upper and lower canines.

opencc-by-4.0Mar 2022View details →
zenodo40/100

Fig. 7 in Reexamination of the mandibular and dental morphology of the Early Jurassic mammaliaform Hadrocodium wui

Fig. 7. CT rendering of mammaliaform Hadrocodium wui Luo, Crompton, and Sun, 2001 (holotype, IVPP 8275) from the Lower Lufeng Formation, Lower Jurassic of Yunnan, China. A. Left upper teeth (as preserved and virtually extracted from the upper jaws): incomplete incisors, canine, incomplete premolars and two molars in lingual (A1, stereopairs) and labial (A2, stereopairs) views. Left dentition has five incisor positions: two broken incisors, plus three additional incisors represented by alveoli visible on the fossil skull (but not visualized in teeth). Of the three premolars, P1 is not preserved, but P1 position is represented by a plugged alveolus on right side (not visualized here). P2 is preserved on right side, but is lost and represented only by empty alveoli on the left. P3 is intact on both sides. B. Right upper teeth: five upper incisors (I1 and I5 broken), canine, two premolars, two molars in lingual (B1, stereopairs) and labial (B2, stereopairs) views.

opencc-by-4.0Mar 2022View details →
zenodo40/100

Fig. 8 in Reexamination of the mandibular and dental morphology of the Early Jurassic mammaliaform Hadrocodium wui

Fig. 8. CT rendering of mammaliaform Hadrocodium wui Luo, Crompton, and Sun, 2001 (holotype, IVPP 8275) from the Lower Lufeng Formation, Lower Jurassic of Yunnan, China. A. Left lower teeth (as preserved and virtually extracted from mandible): incisors, canine, incomplete premolars molars in labial (A1, stereopairs) and lingual (A2, stereopairs) views. The first premolar (p1) was shed and the vestige of its former alveoli recognizable on right mandible; penultimate premolar (p2) crown broken; ultimate p3 intact. B. Right lower teeth extracted by CT visualization, in labial (B1, stereopairs) and lingual (B2, stereopairs) views.

opencc-by-4.0Mar 2022View details →
zenodo40/100

Fig. 5 in Reexamination of the mandibular and dental morphology of the Early Jurassic mammaliaform Hadrocodium wui

Fig. 5. Comparative morphology of mandibular canals and tooth alveoli in cross sections. A. The mammaliaform Hadrocodium wui Luo, Crompton, and Sun, 2001 (holotype, IVPP 8275) from the Lower Lufeng Formation, Lower Jurassic of Yunnan, China; transverse section of mandible through anterior root of p3 (A1): the main cusp of a tall p3 occludes into its maxillary pit on the palate, and the upper P3 is more lingually inclined than the lower p3; transverse section through anterior root of m1 (A2): the mandibular canal is lateral to the root alveoli of the postcanines; the upper M1 is more inclined lingually than the lower m1; the main cusp of lower m1 occludes into its pit on the palate; the asterisk indicates that the labial alveolar margin is lower on the lingual alveolar margin at the point of the arrow. B. The morganucodontan Morganucodon oehleri Rigney, 1963, (BMNH 2858) from the Lower Lufeng Formation, Lower Jurassic of China; cross section through the anterior root of m2: oval outline with long diameter at 0.25 mm, and short diameter at 0.15 mm; mandibular canal is lateral to the side of roots. C, D. The docodontan Docodon victor Schultz, Bhullar, and Luo, 2019 (as revised by Schultz et al. 2019) from the Morrison Formation, Upper Jurassic of Wyoming, USA. C. YPM 11826, cross section through a root alveolus of m5; mandibular canal cross section in oval outline with the long diameter at 0.8 mm and short diameter at 0.6 mm. D. YPM 11823, mandibular canal cross section through anterior root of m5; circular outline diameter 0.6 mm. The mandibular canal is ventro-lateral to the apices of roots in docodontans. E. The eutriconodontan Juchilestes liaoningensis Gao, Wilson, Luo, Maga, Meng, and Wang, 2009 (DMNH 2607) from the Yixian Formation, Lower Cretaceous of China, as a representative for root canal pattern for crown mammals, in which the mandibular canal is ventral to the root apices.

opencc-by-4.0Mar 2022View details →
zenodo40/100

Fig. 6 in Reexamination of the mandibular and dental morphology of the Early Jurassic mammaliaform Hadrocodium wui

Fig. 6. Composite reconstruction of full dentition of Hadrocodium wui Luo, Crompton, and Sun, 2001 (holotype, IVPP 8275) from the Lower Lufeng Formation, Lower Jurassic of Yunnan, China. A. Left upper teeth (as preserved) in labial view (CT visualization). B. Lower teeth (as preserved) in lingual view. C. Composite reconstruction of upper and lower teeth (left labial view). D. Occlusal relationship of cusps between lower m1–m2 and upper P3–M1– M2 (revised from Luo et al 2001: fig. 1; cusp designation following Crompton and Jenkins 1968 and Crompton 1974).

opencc-by-4.0Mar 2022View details →
zenodo40/100

Fig. 1. 3D in A morganucodontan mammaliaform from the Upper Jurassic Morrison Formation, Utah, USA

Fig. 1. 3D surface renderings from CT data of the morganucodontan mammaliaform Cifellilestes ciscoensis gen. et sp. nov. (OMNH 80538, holotype), from the Cisco Mammal Quarry, Utah, USA, Upper Jurassic Morrison Formation. A. Right skull fragment in lateral (A1), medial (A2), ventral (A3), and dorsal (A4) views. B. Dentition only in lingual (B1), occlusal (B2), and buccal (B3) views.

opencc-by-4.0Mar 2022View details →
zenodo40/100

Fig. 7 in A morganucodontan mammaliaform from the Upper Jurassic Morrison Formation, Utah, USA

Fig. 7. Hypothetical molar occlusal wear facet pattern in P5–M1 of Cifellilestes ciscoensis gen. et sp. nov. (B, OMNH 69352), with illustration of a lower molar modified from Morganucodon watsoni Kühne, 1949 (A, m2, UMZC_Eo.CR.1, reversed). Corresponding colors on upper and lower teeth indicate matching wear facets. The occlusal pattern of C. ciscoensis is similar to M. watsoni in that the protoconid (also referred to as cusp a) of the lower molars occludes between the upper molar paracone (also referred to as cusp A) and cusp B, carving a prominent groove between the two cusps. This also results in contact to the next mesial tooth, due to the size of the protoconid. The paracone occludes between the protoconid and metaconid (also referred to as cusp c). Modified after Jäger et al. (2019).

opencc-by-4.0Mar 2022View details →
zenodo40/100

Fig. 6. Comparative 3D in A morganucodontan mammaliaform from the Upper Jurassic Morrison Formation, Utah, USA

Fig. 6. Comparative 3D renderings of upper dentition of the morganucodontans Morganucodon watsoni Kühne, 1949 (A, UMZC Eo.CR.1, reversed; Lower Jurassic fissure fills, Wales, UK), Storchodon cingulatus Martin, Averianov, Jäger, Schwermann, and Wings, 2019 (B, NLMH 105654; Upper Jurassic Süntel Formation, Germany), Megazostrodon rudnerae Crompton and Jenkins, 1968 (C, NHMUK PV M 26407; Lower Jurassic Stormberg Group, Lesotho), and Cifellilestes ciscoensis gen. et sp. nov. (D, OMNH 80538, holotype; Upper Jurassic Morrison Formation, USA), in lingual (A1–D1) and occlusal (A2–D2) views. White lines indicate the premolar–molar boundary (all taxa except Storchodon, which is known by only a single molar). This boundary is marked by a tall-crowned ultimate premolar with much lower flanking cusps followed by a first molar that is comparatively lower crowned with less height difference between the main cusps. Note imbrication of the molars in C. ciscoensis gen. et sp. nov. (D2) and distal molars in Mo. watsoni (A2), a feature absent in Me. rudnerae (C2).

opencc-by-4.0Mar 2022View details →
zenodo40/100

Fig. 3 in Reexamination of the mandibular and dental morphology of the Early Jurassic mammaliaform Hadrocodium wui

Fig. 3. CT rendering of the mammaliaform Hadrocodium wui Luo, Crompton, and Sun, 2001 (holotype, IVPP 8275) from the Lower Lufeng Formation, Lower Jurassic of Yunnan, China. A. Left mandible in medial view (stereopairs). B. Right mandible in tilted dorsal view (B1, stereopairs), p1 is lost but the p1 position is indicated by plugged alveoli; arrow indicates the retro-molar space; and medial view (B2, stereopairs).

opencc-by-4.0Mar 2022View details →
zenodo40/100

Fig. 2 in Reexamination of the mandibular and dental morphology of the Early Jurassic mammaliaform Hadrocodium wui

Fig. 2. CT rendering of the mammaliaform Hadrocodium wui Luo, Crompton, and Sun, 2001 (holotype, IVPP 8275) from the Lower Lufeng Formation, Lower Jurassic of Yunnan, China. A. Right mandible in lateral view (stereopairs); solid triangle indicates the retro-molar space. B. Left mandible in lateral B1, stereopairs) and ventral (B2, stereopairs) views.

opencc-by-4.0Mar 2022View details →
zenodo40/100

Fig. 5 in A morganucodontan mammaliaform from the Upper Jurassic Morrison Formation, Utah, USA

Fig. 5. Illustration of crown morphology of the morganucodontan mammaliaform Cifellilestes ciscoensis gen. et sp. nov. (OMNH 80538 (holotype); right P5–M1 in occlusal view. Terms in parentheses label homologs with traditional "triconodont" cusp nomenclature (e.g., Crompton and Jenkins 1968; Rougier et al. 2007a).

opencc-by-4.0Mar 2022View details →
zenodo40/100

Fig. 3 in A morganucodontan mammaliaform from the Upper Jurassic Morrison Formation, Utah, USA

Fig. 3. Hypothesized life position of the skull fragment (OMNH 80538) of the morganucodontan mammaliaform Cifellilestes ciscoensis gen. et sp. nov., in lateral (A1) and ventral (A2) views. Remainder of the skull based on the composite restoration of Morganucodon by Kermack et al. (1981). Artwork by Hannah Caisse.

opencc-by-4.0Mar 2022View details →
zenodo40/100

Fig. 11 in Reexamination of the mandibular and dental morphology of the Early Jurassic mammaliaform Hadrocodium wui

Fig. 11. Comparison of the mandible of Hadrocodium with the mandibular growth stages of Morganucodon and Docodon. A. The mammaliaform Hadrocodium wui Luo, Crompton, and Sun, 2001 (holotype, IVPP 8275) from the Lower Lufeng Formation, Lower Jurassic of Yunnan, China (arrow indicates the retro-molar space and feature of adult). B, C. Mandibular growth stages of the morganucodontan Morganucodon watsoni Kühne, 1949 (= "Eozostrodon parvus") from the Lower Jurassic fissure fills of Wales (Parrington 1971); adult (B) and the oldest-known adult (C) (respectively specimens D60 and D120 in Parrington 1971: fig. 3). D–F. Mandibular growth stages of the docodontan Docodon victor Schultz, Bhullar, and Luo, 2019, from the Morrison Formation, Upper Jurassic of Wyoming, USA. D. YPM 23748, juvenile. E. YPM 11823, adult. F. YPM 11826, the oldest-known adult. In H. wui, the ultimate molar is positioned in front of the coronoid process base. This is an adult feature well documented in the successively older (or the oldest-known) adult individuals in the growth series of other mammaliaforms. Morganucodon watsoni shows such a growth pattern: a positional shift of the ultimate molar (m4) anteriorly to the base of coronoid process in successively older individuals; the ultimate molar has a single alveolus for its fused or confluent root(s) in most cases (Parrington 1971; Pamela Gill, personal communication 2021). Docodon victor shows a similar growth pattern of a shift of the coronoid process relative to the last molar(s) of the toothrow. The youngest-available individual D. victor (YMP23748) shows the last molar (m5) is medial to the coronoid process. In the adult (YPM11823) the last molar (m7) is shifted more anteriorly. In the oldest-available individual (YPM11826), the ultimate molar (m8) is shifted to the anterior, as the coronoid process is shifted posteriorly relative to the toothrow (Schultz et al. 2019). The placement of the ultimate molar with a retro-molar space anterior to the base of the coronoid in the oldest-available adult specimen of D. victor is similar to that of H. wui. D–F, stylistic illustrations based on CT visualizations by Schultz et al. (2019).

opencc-by-4.0Mar 2022View details →
zenodo40/100

Fig. 4 in Reexamination of the mandibular and dental morphology of the Early Jurassic mammaliaform Hadrocodium wui

Fig. 4. CT rendering of the mammaliaform Hadrocodium wui Luo, Crompton, and Sun, 2001 (holotype, IVPP 8275) from the Lower Lufeng Formation, Lower Jurassic of Yunnan, China. A. Mandibles and upper teeth (as preserved) in ventral view. B. Mandibles in association with upper teeth in dorsal view. The upper teeth are more inclined (as preserved) and are oblique to the lower teeth. Post-mortem distortion caused the upper postcanines to shift relative to lower teeth, by half a cusp length.

opencc-by-4.0Mar 2022View details →
zenodo40/100

Fig. 1 in Molar morphology and occlusion of the Early Jurassic mammaliaform Erythrotherium parringtoni

Fig. 1. Upper and lower molar comparison of morganucodontan mammaliaforms Megazostrodon rudnerae (Crompton and Jenkins, 1968), NHMUK PV M26407; Early Jurassic, Lesotho, Red Bed Series (A), Erythrotherium parringtoni (Crompton, 1964) SAM-PK-K00359; Late Triassic, South Africa, Mafeteng locality, Upper Red Beds (B), and Morganucodon watsoni (Kühne, 1949) UMZC Eo.CR.1; Early Jurassic, United Kingdom, Glamorgan fissure systems, Pontalun 3 (C). M1 and M2 in occlusal (A1, B1, C1), lingual (A2, B2, C2), and buccal (A3, B3, C3) views. m2 and m3 in occlusal (A4, B4, C4), buccal (A5, B5, C5), and lingual (A6, B6, C6) views.

opencc-by-4.0Nov 2022View details →
zenodo40/100

Figure 5 in The ossified Meckel's cartilage and internal groove in Mesozoic mammaliaforms: implications to origin of the definitive mammalian middle ear

Figure 5. (A) The skull of Zhangheotherium (IVPP V7466). 1, Meckelian groove; 2, ossified Meckel's cartilage; 3, a hyoid element. (B) Medial view of the left mandible with partial ossified Meckel's cartilage of Gobiconodon (IVPP V12585).

opencc-by-4.0Aug 2003View details →
zenodo40/100

Figure 1 in The ossified Meckel's cartilage and internal groove in Mesozoic mammaliaforms: implications to origin of the definitive mammalian middle ear

Figure 1. The right mandible and ossified Meckel's cartilage (OMC) of Repenomamus (holotype, IVPP V12549). (A & B) Medial views of the mandible with the OMC being removed in (A); (C) dorsomedial view; (D) ventral view; (E) radiographic image of the mandible; (F) a hyoid element from IVPP V12728. Modified from Wang et al. (2001).

opencc-by-4.0Aug 2003View details →

ScienceDex guides

Understand access before you commit

These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.

Compare curated 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.

allen-brain-atlas
neuroscienceopenDocumentation, web resources, and API references are available online.
Last verified 2026-04-30Open record

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.

abode-home-cage
behavioral-neuroscienceopenThe DataShare record exposes download links for annotations, documentation, license text, and the zipped per-snippet data directory.
Last verified 2026-04-30Open record

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.

dandi-nwb
electrophysiologyopenPublished Dandiset metadata and archive endpoints are available through the production DANDI API.
Last verified 2026-04-30Open record

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.

ibl
behavioral-neuroscienceopenPublic sessions can be searched and loaded from the IBL public data server through ONE.
Last verified 2026-04-29Open record

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.

openneuro
neuroscienceopenPublished datasets are available on demand over the internet.
Last verified 2026-04-29Open record