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.
134
datasets available to search
ShareScore release 0.9.0
Dataset results
134 results for “Total Evidence”
Figure 4 in Total evidence phylogenetic analysis reveals polyphyly of Anostomoides and uncovers an unexpectedly ancient genus of Anostomidae fishes (Characiformes)
Figure 4. Cranium of Anostomoides nattereri in lateral view. A, MZUSP 5429, 138.7 mm SL. B, MZUSP 110595, 232 mm SL. Boc: basioccipital, Cla: claustrum, Epo: epiotic, Exo: exoccipital, Fro: frontal, In: intercalar, Let: lateral ethmoid, LpC2: lateral process of centrum 2, Mes: mesethmoid, NA4: neural arch of centrum 4, Nc: neural complex, NS4: neural spine of centrum 4, Os: os suspensorium, Osph: orbitosphenoid, Par: parietal, Pro: prootic, Pto: pterotic, Psph: parasphenoid, Ptsph, pterosphenoid, Sc: scaphium, SOc: supraoccipital, Sph: sphenotic, Tr: tripus, Vom: vomer.
Figure 15 in Total evidence phylogenetic analysis reveals polyphyly of Anostomoides and uncovers an unexpectedly ancient genus of Anostomidae fishes (Characiformes)
Figure 15. Maximum likelihood reconstructions of mesethmoid, maxilla and papilla evolution performed on a pruned version of the maximum clade credibility tree. Reconstructions for maxilla width (character 52) were conducted under an all-rates different transition model, while other reconstructions used an equal rates models of evolution. All models were selected using the Akaike information criterion.
Figure 3 in Total evidence phylogenetic analysis reveals polyphyly of Anostomoides and uncovers an unexpectedly ancient genus of Anostomidae fishes (Characiformes)
Figure 3. Infraorbital bones and associated elements of Anostomoides nattereri, MZUSP 5429, 138.7 mm SL. Ant: antorbital, Io1-6: infraorbital, SO: supraorbital.
Figure 2 in Total evidence phylogenetic analysis reveals polyphyly of Anostomoides and uncovers an unexpectedly ancient genus of Anostomidae fishes (Characiformes)
Figure 2. Hypotheses of the phylogenetic relationships of the two valid species of Anostomoides. A, cladogram based on 158 morphological characters (modified from Sidlauskas & Vari, 2008). B, cladogram based on data from 1051 exons (modified from Betancur-R et al., 2018).
Figure 7 in Total evidence phylogenetic analysis reveals polyphyly of Anostomoides and uncovers an unexpectedly ancient genus of Anostomidae fishes (Characiformes)
Figure 7. Detail of autopalatine in lateral (left) and dorsal (right) views of: (A, B) Caenotropus labyrinthicus, MZUSP 29351, 68.9 mm SL; (C, D) Prochilodus nigricans, MZUSP 95799, 112.5 mm SL; (E, F) Petulanos intermedius, MZUSP 97330, 59.6 mm SL; (G, H) Anostomoides atrianalis, ANSP 159599, 159.6 mm SL. The dotted lines indicate the autopalatine.
Figure 13 in Total evidence phylogenetic analysis reveals polyphyly of Anostomoides and uncovers an unexpectedly ancient genus of Anostomidae fishes (Characiformes)
Figure 13. Maximum likelihood reconstructions of retroarticular placement performed on a pruned version of the maximum clade credibility tree with and without the inclusion of Anostomoides naterreri. Reconstructions used an equal rates transition model as selected using the Akaike information criterion.
Figure 6 in Total evidence phylogenetic analysis reveals polyphyly of Anostomoides and uncovers an unexpectedly ancient genus of Anostomidae fishes (Characiformes)
Figure 6. Details of the teeth, lips and bones of the head in Anostomoides nattereri. Lateral view of head (A) and medial view of teeth (C) of a specimen prepared as a dry skeleton (MZUSP 110595, 242 mm SL); details of lips (B) of an alcoholpreserved specimen (FMNH 103451, 141.8 mm SL); and scanning electron microscope image of teeth in lateral view (D) of a cleared and stained specimen (MZUSP 5429, 89.0 mm SL.
Figure 11 in Total evidence phylogenetic analysis reveals polyphyly of Anostomoides and uncovers an unexpectedly ancient genus of Anostomidae fishes (Characiformes)
Figure 11. Hyoid arch of Anostomoides nattereri, MZUSP 5429, 138.7 mm SL, in ventral (A) and dorsal (B) views, with detail of the uruhyal in lateral view (C). ACh: anterior ceratohyal, BR: branchiostegal rays, DHh: dorsal hypohyal, Ih: interhyal, PCh: posterior ceratohyal, Uh: urohyal, VHh: ventral hypohyal.
Figure 10 in Total evidence phylogenetic analysis reveals polyphyly of Anostomoides and uncovers an unexpectedly ancient genus of Anostomidae fishes (Characiformes)
Figure 10. Branchial apparatus of Anostomoides nattereri MZUSP 5429, 138.7 mm SL. AECb4: accessory element of ceratobranchial 4, Bb1–3: basibranchial 1–3, Bh: basihyal, BhTp: basihyal toothplate, Cb1–5: ceratobranchial 1-5, Ep1–4: epibranchial 1–4, Hb1-3: hypobranchial 1-3, Pb1–4: pharyngobranchial 1–4, PC: posterior copula, TPPb4: tooth plate of fourth pharyngobranchial, TPCb5: tooth plate of fifth ceratobranchial.
Figure 17 in Total evidence phylogenetic analysis reveals polyphyly of Anostomoides and uncovers an unexpectedly ancient genus of Anostomidae fishes (Characiformes)
Figure 17. Pelvic fin of Insperanos nattereri, MZUSP 5429, 138.7 mm SL. IsP: isquiatic process, Pbo: pelvic bone, PvR: pelvic-fin radials.
Figure 9 in Total evidence phylogenetic analysis reveals polyphyly of Anostomoides and uncovers an unexpectedly ancient genus of Anostomidae fishes (Characiformes)
Figure 9. Suspensorium and jaws of Anostomoides nattereri, MZUSP 5429, 138.7 mm SL. Suspensorium of Anostomoides nattereri, MZUSP 5429, 138.7 mm SL, in lateral view (A), with detail of autopalatine in lateral (B) and dorsal (C) views. Ecpt: ectopterygoid, Enpt: entopterygoid, Hy: hyomandibular, IOp: interopercle, Mpt: metapterygoid, Op: opercle, Pl: autopalatine, Pop: preopercle, Q: quadrate, SOp: subopercle, Sy: symplectic.
Figure 14 in Total evidence phylogenetic analysis reveals polyphyly of Anostomoides and uncovers an unexpectedly ancient genus of Anostomidae fishes (Characiformes)
Figure 14. Maximum likelihood reconstructions of autopalatine evolution with and without the inclusion of Anostomoides naterreri and under alternative outgroup codings. Reconstructions were performed on a pruned version of the maximum clade credibility tree using equal transition rates between the character states as selected using the Akaike information criterion.
Figure 1 in Total-evidence dating and morphological partitioning: a novel approach to understand the phylogeny and biogeography of augochlorine bees (Hymenoptera: Apoidea)
Figure 1. Bayesian consensus tree from morphological data with homoplasy criterion partitioning for Augochlorini bees. Node numbers represent the posterior probabilities. Genus groups coloured as in Figure 2. Red font indicates fossil species.
Figure 2 in Total-evidence dating and morphological partitioning: a novel approach to understand the phylogeny and biogeography of augochlorine bees (Hymenoptera: Apoidea)
Figure 2. Total-evidence time-calibrated consensus tree for Augochlorini bees. Bars represent the 95% Highest Posterior Density interval for node ages, node numbers represent the posterior probabilities. Genus groups coloured as in Figure 1. Absolute time scale presented in millions of years. Red font indicates fossil species.
FIGURE 5 in Total evidence analysis of the phylogenetic relationships of bandicoots and bilbies (Marsupialia: Peramelemorphia): reassessment of two species and description of a new species
FIGURE 5. Perameles papillon sp. nov., study skins. A–C, holotype WAM M571; D–F, paratype WAM M574; G–I, paratype WAM M572. A, D, and G, dorsal view; B, E, and H, lateral view; C, F, and I, ventral view. Scale = 5cm.
FIGURE 1 in Total evidence analysis of the phylogenetic relationships of bandicoots and bilbies (Marsupialia: Peramelemorphia): reassessment of two species and description of a new species
FIGURE 1. Peramelemorphian phylogeny inferred from (A) morphology, with the maximum parsimony (MP) tree shown and Bayesian inference (BI) differences indicated in dashed arrows (including C. ecaudatus falling within Perameles), from (B) DNA, with the BI tree shown and MP differences indicated as dashed arrows (including Perameles being paraphyletic relative to Isoodon), and from combined data (C) MP, (D) BI, and (E) BI also informed by temporal signal and with posterior probabilities indicated for nodes. Oligo-Miocene bandicoot names are shaded grey, and could not be included in the DNA-only tree (B), which instead shows the Peroryctinae-Echymierinae expanded to genera. Outgroup (Dasyuromorphia and Didelphis) not shown.
FIGURE 8 in Total evidence analysis of the phylogenetic relationships of bandicoots and bilbies (Marsupialia: Peramelemorphia): reassessment of two species and description of a new species
FIGURE 8. Distribution of species in the Perameles bougainville complex, based on museum specimens (modern and some fossils). Circles, Perameles bougainville; squares, Perameles eremiana; crescents, Perameles myosuros; ovals, Perameles notina; star, Perameles fasciata; triangles, Perameles papillon sp. nov.
FIGURE 4. X-Y in Total evidence analysis of the phylogenetic relationships of bandicoots and bilbies (Marsupialia: Peramelemorphia): reassessment of two species and description of a new species
FIGURE 4. X-Y graphs of the tooth length versus tooth width, for the upper (A–G) and lower (H–N) premolars and molars, for Peroryctes raffrayana (squares), Peroryctes broadbenti (crosses), and Lemdubuoryctes aruensis (star).
FIGURE 7 in Total evidence analysis of the phylogenetic relationships of bandicoots and bilbies (Marsupialia: Peramelemorphia): reassessment of two species and description of a new species
FIGURE 7. Perameles papillon sp. nov., upper and lower dentition of paratype WAM M577. A–B, upper premolas; C–D, upper molars; E–F, lower premolars; G–H, lower molars. A, C, E and G, occlusal view; B, D, F and H, lateral view. Scale = 2mm.
FIGURE 6 in Total evidence analysis of the phylogenetic relationships of bandicoots and bilbies (Marsupialia: Peramelemorphia): reassessment of two species and description of a new species
FIGURE 6. Perameles papillon sp. nov., skulls. A–C and G–H, holotype WAM M571; D–F and I–J, paratype WAM M577. A, D, G, I, dorsal view; B, E, ventral view; C, F, H, J, lateral view. Scale = 2cm.
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.