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.
3,761
datasets available to search
ShareScore release 0.9.0
Dataset results
3,761 results for “phylogenetic relationships”
FIGURE 2 in Revised morphology of Pycnonemosaurus nevesi Kellner & Campos, 2002 (Theropoda: Abelisauridae) and its phylogenetic relationships
FIGURE 2. Anterior and less complete caudal vertebra of Pycnonemosaurus nevesi (DGM 859-R) in anterior (A), left lateral (B), posterior (C), right lateral (D) and dorsal (E) views. hyf, hyposphene; nc, neural canal; ns, neural spine; poz, postzygapophysis; tp, tranverse process Scale bar equals 100 mm.
FIGURE 11 in Revised morphology of Pycnonemosaurus nevesi Kellner & Campos, 2002 (Theropoda: Abelisauridae) and its phylogenetic relationships
FIGURE 11. Parecis taxa elements undescribed by Kellner & Campos (2002), and identified here as an isolated neural spine belonging to a sauropod dinosaur in right lateral view (A); a distal caudal centrum belonging to a sauropod dinosaur in left lateral view (B) and an isolated transverse process of an unidentified taxon in dorsal view (C). Although labelled as DGM 859 R, they are not belonging to the holotype of Pycnonemosaurus nevesi. Scale bar equals 100 mm.
FIGURE 9 in Revised morphology of Pycnonemosaurus nevesi Kellner & Campos, 2002 (Theropoda: Abelisauridae) and its phylogenetic relationships
FIGURE 9. Distal end of the tibia of Pycnonemosaurus nevesi (DGM 859-R) in anterior view. The ellipse shows the scar of ascending process of the astragalus. Without scale bar.
FIGURE 1 in Revised morphology of Pycnonemosaurus nevesi Kellner & Campos, 2002 (Theropoda: Abelisauridae) and its phylogenetic relationships
FIGURE 1. Anterior and most complete caudal vertebra of Pycnonemosaurus nevesi (DGM 859-R) in anterior (A), posterior (B), right lateral (C), dorsal (D) and left lateral (E) views. Abbreviations: hyf, hyposphene; hyp, hypanthrum; nc, neural canal; ns, neural spine; poz, postzygapophysis; prz, prezygapophysis; tp, tranverse process. Scale bar equals 100 mm.
FIGURE 8 in Revised morphology of Pycnonemosaurus nevesi Kellner & Campos, 2002 (Theropoda: Abelisauridae) and its phylogenetic relationships
FIGURE 8. Right tibia from Pycnonemosaurus nevesi (DGM 859-R) in anterior (A), lateral (B), posterior (C), medial (D), dorsal (E) and ventral (F) views. Abbreviations: cn, cnemial crest; fcr, fibular crest; lct, lateral condyle; lf, lateral fossa; lm, lateral malleolus; mm, medial malleolus. Scale bar equals 100 mm.
FIGURE 5 in Description of two new species of Magnispina and a new hypothesis of phylogenetic relationships for Heteropachylinae (Opiliones: Laniatores: Gonyleptidae)
FIGURE 5. The single most parsimonious tree (length 308 steps; CI = 0.43; RI = 0.61) resulting from equal weight analysis. A, external groups and Heteropachylinae synapomorphies, B, internal Heteropachylinae relationships. Only unambiguous synapomorphies plotted on branches, with black circles representing non homoplastic synapomorphies and empty circles indicating homoplastic synapomorphies and reversals. Jackknife and Bremer supports represented below the nodes of the subfamily and its three genera (Jackknife/Bremer).
FIGURE 6 in Description of two new species of Magnispina and a new hypothesis of phylogenetic relationships for Heteropachylinae (Opiliones: Laniatores: Gonyleptidae)
FIGURE 6. Photos of the Magnispina spp. A, male in vivo of M. neptunus, B, ditto, female in vivo; C, male in vivo of M. robusta sp. nov.; D, ditto, female in vivo; E, male paratype of M. bahiana sp. nov.; F, ditto, female paratype. Photos A, taken by Bruno Buzzato; B–D, taken by Ricardo Pinto-da-Rocha; E, F, taken by Caio Gueratto.
FIGURE 1 in Description of two new species of Magnispina and a new hypothesis of phylogenetic relationships for Heteropachylinae (Opiliones: Laniatores: Gonyleptidae)
FIGURE 1. Magnispina robusta sp. nov. A, C, D Male holotype (MZSP 70874), dorsal, left lateral and posterior views, respectively; B, Female paratype (MZSP 70875), dorsal view. Scale bars = 1 mm.
FIGURE 2 in Description of two new species of Magnispina and a new hypothesis of phylogenetic relationships for Heteropachylinae (Opiliones: Laniatores: Gonyleptidae)
FIGURE 2. Magnispina bahiana sp. nov. A, C, D Male holotype (MZSP 70876), dorsal, left lateral and posterior views, respectively; B, Female paratype (MZSP 70877) dorsal view. Scale bars = 1 mm.
FIGURE 3. Right Trochanter–patella IV in Description of two new species of Magnispina and a new hypothesis of phylogenetic relationships for Heteropachylinae (Opiliones: Laniatores: Gonyleptidae)
FIGURE 3. Right Trochanter–patella IV from Magnispina robusta sp. nov. (A–D) and M. bahiana sp. nov. (E–H). M. robusta, male holotype (MZSP 70874): A–D, dorsal, prolateral, retrolateral and ventral views, respectively. M. bahiana sp. nov., male holotype (MZSP 70876): E–H, dorsal, prolateral, retrolateral and ventral views, respectively. Scale bars = 1 mm.
FIGURE 4 in Description of two new species of Magnispina and a new hypothesis of phylogenetic relationships for Heteropachylinae (Opiliones: Laniatores: Gonyleptidae)
FIGURE 4. Penis of Magnispina spp. in dorsal, left lateral and ventral views. A–C, M. robusta sp. nov.. D–F: M. bahiana sp. nov. Scale bars = 20µm
FIGURE 7 in A re-evaluation of the phylogenetic relationships of the Cyrtodactylus condorensis group (Squamata; Gekkonidae) and a suggested protocol for the characterization of rock-dwelling ecomorphology in Cyrtodactylus
FIGURE 7. Box plots of limb lengths based on raw measurements adjusted to remove the scaling effects of snout-vent length. Black horizontal bar is the median and the blue dot is the mean.
FIGURE 8 in A re-evaluation of the phylogenetic relationships of the Cyrtodactylus condorensis group (Squamata; Gekkonidae) and a suggested protocol for the characterization of rock-dwelling ecomorphology in Cyrtodactylus
FIGURE 8. Box plots of head length, eye diameter, and pelvic width and height based on raw measurements adjusted to remove the scaling effects of snout-vent length. Black horizontal bar is the median and the blue dot is the mean.
FIGURE 5 in A re-evaluation of the phylogenetic relationships of the Cyrtodactylus condorensis group (Squamata; Gekkonidae) and a suggested protocol for the characterization of rock-dwelling ecomorphology in Cyrtodactylus
FIGURE 5. Upper left: PCA plot showing the separation of the species of the cave-dwelling (Cyrtodactylus eisenmanae and C. grismeri) and the general scansorial ecomorphs (C. condorensis and C. leegrismeri) of the condorensis group along PC1 and PC2. Upper right: Three dimensional PCA plot showing the separation of the cave-dwelling and the general scansorial ecomorphs along PC1, PC2, and PC3. Lower left: PCA biplot illustrating the degree of co-variation among characters between the cave-dwelling and general scansorial ecomorphs. Lower left: DAPC plot showing the greatest between-group and smallest within-group variance based on the first four component scores between the two ecomorphs.
FIGURE 4 in A re-evaluation of the phylogenetic relationships of the Cyrtodactylus condorensis group (Squamata; Gekkonidae) and a suggested protocol for the characterization of rock-dwelling ecomorphology in Cyrtodactylus
FIGURE 4. BEAST chronogram of the species of the Cyrtodactylus condorensis group. Numbers at the nodes are mean ages in millions of years. Bars represent 95% highest posterior densities.
FIGURE 3 in A re-evaluation of the phylogenetic relationships of the Cyrtodactylus condorensis group (Squamata; Gekkonidae) and a suggested protocol for the characterization of rock-dwelling ecomorphology in Cyrtodactylus
FIGURE 3. Maximum likelihood topology showing the relationships of the species of the Cyrtodactylus condorensis group with BBP/ML support values at the nodes.
FIGURE 1 in A re-evaluation of the phylogenetic relationships of the Cyrtodactylus condorensis group (Squamata; Gekkonidae) and a suggested protocol for the characterization of rock-dwelling ecomorphology in Cyrtodactylus
FIGURE 1. Distribution of the species of the Cyrtodactylus condorensis group in southern Vietnam. The population of C. leegrismeri from Pulau Tenggol, Peninsular Malaysia is not shown.
FIGURE 9 in A re-evaluation of the phylogenetic relationships of the Cyrtodactylus condorensis group (Squamata; Gekkonidae) and a suggested protocol for the characterization of rock-dwelling ecomorphology in Cyrtodactylus
FIGURE 9. Box plots of adjusted raw measurements of eye diameter scaled to snout-vent length, head depth, head length, and snout length. Black horizontal bar is the median and the blue dot is the mean.
FIGURE 4. Phylogenetic hypothesis for 19 in Xyela fusca spec. nov. from Japan elucidates East Asian – North American relationships of Xyela (Hymenoptera, Xyelidae)
FIGURE 4. Phylogenetic hypothesis for 19 species of Xyela and, as outgroup taxa, five species of Macroxyela, Megaxyela and Pleroneura based on a maximum likelihood analysis of the barcoding section of COI. Values above branches represent maximum likelihood bootstrap clade frequencies. Each specimen is labelled as follows: "Xyela ..."—species name (Xyela '016 China bakeri group', Xyela '021 USA minor group', Xyela '023 USA minor group' and Xyela '024 USA minor group' are provisional names referring to unidentified species classified on species-group level); "DEI-GISHym ..."—unique specimen identifyer; "♀/♂/L"—female/male imago or larva; "ex Pinus …"—pine species from which larva was extracted; "USA- California …"—country and state/province of origin; "658bp/270bp"—length of sequence.
FIGURE 13 in A fully web-illustrated morphological phylogenetic study of relationships among oak gall wasps and their closest relatives (Hymenoptera: Cynipidae).
FIGURE 13. Hypopygium: a Liebelia magna, b Cynips conspicua. Metasoma, male, lateral view: c Cynips.
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.