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.
1,416
datasets available to search
ShareScore release 0.9.0
Dataset results
1,416 results for “Evidence Base”
FIGURE 4 in Senecio kumaonensis (Asteraceae, Senecioneae) is a Synotis based on evidence from karyology and nuclear ITS/ETS sequence data
FIGURE 4. Cladogram inferred from combined ITS/ETS dataset using Bayesian inference (BI) method. Probabilities (> 0.70) are placed under branches, bootstrap support (> 50%) above branches. Open rectangles indicate the phylogenetic position of Synotis. The solid triangle indicates the phylogenetic position of Synotis penninervis (= Senecio kumaonensis).
FIGURE 3 in Senecio kumaonensis (Asteraceae, Senecioneae) is a Synotis based on evidence from karyology and nuclear ITS/ETS sequence data
FIGURE 3. Mitotic metaphase chromosomes (A, C) and karyotypes (B, D) in two populations of Synotis penninervis (= Senecio kumaonensis) from Xizang, China, all same scale. A. Yadong population (L. Wang & T.J. Tong 1352), 2n = 40 (arrows indicate satellited chromosomes). B. Yadong population (L. Wang & T.J. Tong 1352), 2n = 20m + 14sm (2sat) + 6st. C. Gyirong population (L. Wang & T.J. Tong 1373), 2n = 40. D. Gyirong population (L. Wang & T.J. Tong 1373), 2n = 20m + 14sm + 6st.
FIGURE 2 in Senecio kumaonensis (Asteraceae, Senecioneae) is a Synotis based on evidence from karyology and nuclear ITS/ETS sequence data
FIGURE 2. Floral micromorphology (A, C: anther collars, both same scale; B, D: anther tissue endothecial cell wall thickenings, both same scale) in two populations of Synotis penninervis (= Senecio kumaonensis) from Xizang, China. A, B. Yadong population (L. Wang & T.J. Tong 1352). C, D. Gyirong population (L. Wang & T.J. Tong 1373).
FIGURE 1 in Senecio kumaonensis (Asteraceae, Senecioneae) is a Synotis based on evidence from karyology and nuclear ITS/ETS sequence data
FIGURE 1. Synotis penninervis (= Senecio kumaonensis) in the wild. A. Habitat. B. Habit. C. Leaf blade (left: adaxial surface; right: abaxial surface). D. Synflorescence. E. Capitula. F. Phyllaries. G. Florets. H. Achenes.
FIGURE 3 in Ceriporia albomellea (Phanerochaetaceae, Basidiomycota), a new species from tropical China based on morphological and molecular evidences
FIGURE 3. Strict consensus tree illustrating the phylogeny of Ceriporia albomellea and its related species generated by maximum parsimony based on ITS+nLSU sequences. Branches are labeled with parsimony bootstrap proportions (before slanting line) high than 50% and bayesian posterior probabilities (after slanting line) more than 0.95.
FIGURE 2 in Ceriporia albomellea (Phanerochaetaceae, Basidiomycota), a new species from tropical China based on morphological and molecular evidences
FIGURE 2. Microscopic structures of Ceriporia albomellea (Dai 15205). a Basidiospores. b Basidia and basidioles. c Cystidia. d Rhombic crystals. e Hyphae from trama. f Hyphae from subiculum.
FIGURE 4. Paphiopedilum notatisepalum Z.J.Liu, M.Wang & S.R.Lan. A. Flowering plant. B. Flower, front view. C. Flower, back view. D. Staminode, front view. E., F in Paphiopedilum notatisepalum, a new species of slipper orchid (Cypripedioideae, Orchidaceae) from China based on morphological and DNA evidence
FIGURE 4. Paphiopedilum notatisepalum Z.J.Liu, M.Wang & S.R.Lan. A. Flowering plant. B. Flower, front view. C. Flower, back view. D. Staminode, front view. E., F, Flowers, side view.
FIGURE 3. Paphiopedilum notatisepalum Z.J.Liu, M.Wang & S.R.Lan. A. Flowering plant. B. Flower, front view. C in Paphiopedilum notatisepalum, a new species of slipper orchid (Cypripedioideae, Orchidaceae) from China based on morphological and DNA evidence
FIGURE 3. Paphiopedilum notatisepalum Z.J.Liu, M.Wang & S.R.Lan. A. Flowering plant. B. Flower, front view. C. Dorsal sepal, petal, and synsepal. D. Lip, side view. E. Staminode, front view. F. Column, side view. Drawn by L. J. Chen from Liu 9349 (holotype).
FIGURE 2 in Paphiopedilum notatisepalum, a new species of slipper orchid (Cypripedioideae, Orchidaceae) from China based on morphological and DNA evidence
FIGURE 2. Phylogenetic tree for selected species of Paphiopedilum constructed with a combined matrix of nrITS and plastid matK. Analysis of subgen. Paphiopedilum based on separate nrITS (a) and plastid matK (b) data are shown in the top left corner. The ML tree is
FIGURE 1. Paphiopedilum notatisepalum and its allies. A. Paphiopedilum notatisepalum. B. Paphiopedilum barbigerum. C in Paphiopedilum notatisepalum, a new species of slipper orchid (Cypripedioideae, Orchidaceae) from China based on morphological and DNA evidence
FIGURE 1. Paphiopedilum notatisepalum and its allies. A. Paphiopedilum notatisepalum. B. Paphiopedilum barbigerum. C. Paphiopedilum henryanum.
FIGURE 4. Rhododendron microcarpum. A, B, Habitat. C in A new species of Rhododendron (Ericaceae) from Jiangxi of China based on morphological and molecular evidences
FIGURE 4. Rhododendron microcarpum. A, B, Habitat. C, Flowers and leaveas. D, Axillary flower. E, Stamens and filaments. F, Leaveas and small fruits.
FIGURE 3 in A new species of Rhododendron (Ericaceae) from Jiangxi of China based on morphological and molecular evidences
FIGURE 3. Rhododendron microcarpum (from the holotype, drawn by Ling Wang from KUN). A, Flowering branches with leaves. B, Flower. C, Scales and unopened flower. D, Flower branch and pistil. E, Calyx. F, Stamen. G, Corolla.
FIGURE 5 in A new species of Rhododendron (Ericaceae) from Jiangxi of China based on morphological and molecular evidences
FIGURE 5. Comparison of leaves and friuts between Rhododendron microcarpum and R. ovatum. A-1, Leaves of R. ovatum; A-2, Leaves of R. microcarpum. B-1, Fruits of R. microcarpum; B-2: Fruits of R. ovatum.
FIGURE 2 in A new species of Rhododendron (Ericaceae) from Jiangxi of China based on morphological and molecular evidences
FIGURE 2. Neighbor-joining tree based on the ITS sequences with the P-distance model. Bootstrap values (>50%) of the clade are shown above the branches.
FIGURE 7 in Croton aemulus and C. graomogolensis (Euphorbiaceae): Two new species from Minas Gerais, Brazil, based on distinct lines of evidence and their relation to C. muscicapa and C. longibracteatus
FIGURE 7. Micromorphological comparison of veins (A–D) and glands of leaf margins (E–H). A, E. C. longibracteatus (A from Barbosa et al. 12, HUEFS; E from Barbosa et al. 15, HUEFS). B, F. C. aemulus (B and F from Barbosa et al. 19, HUEFS). C, G. C. muscicapa (Barbosa et al. 4, HUEFS). D, H. C. graomogolensis (Barbosa et al. 17, HUEFS). Scale bars = 200 μm.
FIGURE 6 in Croton aemulus and C. graomogolensis (Euphorbiaceae): Two new species from Minas Gerais, Brazil, based on distinct lines of evidence and their relation to C. muscicapa and C. longibracteatus
FIGURE 6. Micromorphological comparison of petioles (A–D). A. C. longibracteatus (Barbosa et al. 11, HUEFS). B. C. aemulus (Barbosa et al. 19, HUEFS). C. C. muscicapa (Barbosa et al. 4, HUEFS). D. C. graomogolensis (Barbosa et al. 17, HUEFS). Scale bars = 200 μm.
FIGURE 5. C in Croton aemulus and C. graomogolensis (Euphorbiaceae): Two new species from Minas Gerais, Brazil, based on distinct lines of evidence and their relation to C. muscicapa and C. longibracteatus
FIGURE 5. C. muscicapa (Barbosa et al. 4, HUEFS) and C. longibracteatus (Barbosa et al. 11, HUEFS). A–E. C. muscicapa: A. Habit; B. Glabrous leaf; C. Glandular stipules, resembling a brunch of grapes; D. Staminate flower; E. Pistillate flower; F–J. C. longibracteatus. F. Habit; G. Leaf with details of the subglabrous adaxial surface and pubescent abaxial surface; H. Glandular, lanceolate stipules; I. Staminate flower; J. Pistillate flowers with one sepal removed. Drawing by Lucas Menezes.
FIGURE 4 in Croton aemulus and C. graomogolensis (Euphorbiaceae): Two new species from Minas Gerais, Brazil, based on distinct lines of evidence and their relation to C. muscicapa and C. longibracteatus
FIGURE 4. Morphological comparison of species. Leaf margin, stipules, sepals, and bracts. A. C. longibracteatus (Barbosa et al. 11, HUEFS). B. C. aemulus (Barbosa et al. 19, HUEFS). C. C. muscicapa (Barbosa et al. 4, HUEFS). D. C. graomogolensis (Barbosa et al. 17, HUEFS). Scale bars = 1 mm.
FIGURE 8 in Croton aemulus and C. graomogolensis (Euphorbiaceae): Two new species from Minas Gerais, Brazil, based on distinct lines of evidence and their relation to C. muscicapa and C. longibracteatus
FIGURE 8. Micromorphological comparison based on SEM images of adaxial (A, D, G, I) and abaxial surfaces (B, E, H, K), and glands on leaf margins (C, F, I, K), of C. longibracteatus (Barbosa et al. 11, HUEFS) (A–C), C. aemulus (Barbosa et al. 19, HUEFS) (D–F), C. muscicapa (Barbosa et al. 4, HUEFS) (G–I), and C. graomogolensis (Barbosa et al. 17, HUEFS) (J–L). Scale bars = 100 μm.
FIGURE 3. C in Croton aemulus and C. graomogolensis (Euphorbiaceae): Two new species from Minas Gerais, Brazil, based on distinct lines of evidence and their relation to C. muscicapa and C. longibracteatus
FIGURE 3. C. aemulus (Barbosa et al. 19, HUEFS) and C. graomogolensis (Barbosa et al. 17, HUEFS). A–F. C. aemulus. A. Habit; B. Inflorescences with staminate flowers and bracts; C. Inflorescences with flower buds, staminate and pistillate flowers; D. Leaf and stipules, branch pubescent; E, F. Pistillate flowers. G–L. C. graomogolensis. G. Habit; H. Inflorescences with flower buds and open staminate flower; I. Inflorescences with flower buds, staminate flowers, and fruit; J. Pistillate flowers and stipules; K. Pistillate flowers; L. Branch. Photos by D.S. Carneiro-Torres and B.L.R Barbosa.
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.