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 5 in A revision of the genus Leontodon (Asteraceae) in the Azores based on morphological and molecular evidence
FIGURE 5. Field photographs of: A) Leontodon hochstetteri, Flores Island (J. Martins); B) Leontodon filii, Terceira Island (H. Schaefer); C) Leontodon rigens, São Miguel Island (M. Moura); and D) Leontodon × carreiroi (= L. saxatilis × L. rigens), São Miguel Island (H. Schaefer).
FIGURE 3. Maximum parsimony 50 in A revision of the genus Leontodon (Asteraceae) in the Azores based on morphological and molecular evidence
FIGURE 3. Maximum parsimony 50% majority-rule consensus tree obtained from combined nuclear and chloroplast data. Values above branches show MP bootstrap support; values below are the corresponding ML bootstrap support. Only values above 50% in at least one of the analysis criteria are shown.
FIGURE 4 in A revision of the genus Leontodon (Asteraceae) in the Azores based on morphological and molecular evidence
FIGURE 4. Analysis of characters by groups of islands. Biplot resulting from a discriminant analysis, representing individuals and variables based on two canonical functions. Scores of all variables were multiplied by 15 to increase plot legibility.
FIGURE 2. Maximum parsimony 50 in A revision of the genus Leontodon (Asteraceae) in the Azores based on morphological and molecular evidence
FIGURE 2. Maximum parsimony 50% majority-rule consensus tree obtained from nuclear ITS sequence data (A) and from the combined chloroplast sequence data (B). Values above branches show MP bootstrap support; values below are the corresponding ML bootstrap support. Only values above 50% in at least one of the analysis criteria are shown.
FIGURE 1 in Daedaleopsis hainanensis sp. nov. (Polyporaceae, Basidiomycota) from tropical China based on morphological and molecular evidence
FIGURE 1. Phylogenetic tree inferred from maximum likelihood (ML) analysis based on the combined dataset of ITS, nrLSU, rpb1 and rpb2. Maximum likelihood bootstraps (LB) and maximum parsimony bootstraps (PB) over 50%, and Bayesian posterior probabilities (PP) over 0.95 are shown on the branches.
FIGURE 3 in Daedaleopsis hainanensis sp. nov. (Polyporaceae, Basidiomycota) from tropical China based on morphological and molecular evidence
FIGURE 3. Microscopic structures of Daedaleopsis hainanensis (drawn by Hai-Jiao Li from the holotype). a. Basidiospores. b. Basidia and basidioles. c. dendrohyphidia. d. Hyphae from trama. e. Hyphae from context.
FIGURE 1 in Fordiophyton zhuangiae (Melastomataceae), a new species from China based on morphological and molecular evidence
FIGURE 1. Phylogenetic relationships of Sonerileae based on combined nuclear ITS and two plastid makers (ndhF and rpl16). The numbers near the nodes are bootstrap percentages and Bayesian posterior probabilities (BS ML left, BS MP middle, and PP right). "-" indicates that the node is inconsistent between the topology of the MP/ML trees and the Bayesian tree.
FIGURE 4 in Fordiophyton zhuangiae (Melastomataceae), a new species from China based on morphological and molecular evidence
FIGURE 4. Comparison of Fordiophyton zhuangiae and F. brevicaule. A–E: F. zhuangiae; F–I: F. brevicaule; A, F: the plants in situ; B, G: stem; C: winged and glabrous petiole; D: flower bud; E, I: opening flowers; H: wingless and sparsely hispid petiole. I: kindly provided by Hong Kong Herbarium.
FIGURE 3 in Fordiophyton zhuangiae (Melastomataceae), a new species from China based on morphological and molecular evidence
FIGURE 3. Drawing of Fordiophyton zhuangiae S. Jin Zeng & G. D. Tang. A: flowering plant; B: flower bud, side view. C: flower, front view; D: pistil and stamens, side view; E: petal; F: longer stamen, front view and side view; G: shorter stamen, front view and back view. Drawn by Li-Jun Chen & Pei-Wen Zhang.
FIGURE 2 in Fordiophyton zhuangiae (Melastomataceae), a new species from China based on morphological and molecular evidence
FIGURE 2. The distribution map of five Fordiophyton species with stoloniferous stems and rosetted leaves.
FIGURE 1 in Erratum: Gómez-Montoya, N., Drechsler-Santos, E.R., Ferreira-Lopes, V., Tomšovský, M., Urcelay, C. & Robledo, G.L. (2017) New insights on Trametopsis Tomšovský (Polyporales Gäum) based on phylogenetic evidences and morphological analyses of neotropical species. Phytotaxa 311 (2): 155-167.
FIGURE 1. Best-scored tree representing the phylogenetic relationships based on ITS and LSU rDNA. Bayesian Inference, Maximum Parsimony and Maximum Likelihood support values are given above the branches.
FIGURE S1 in Two new diploid species of Isoetes (Isoetaceae: Lycopodiopsida) from Southeastern China based on morphological and molecular evidence
FIGURE S1. Spore morphology of Isoetes in China. (A) I. changleensis (B) I. yuhangensis (C) I. taiwanensis (cited from Liu et al. 2008). (D) I. sinensis (cited from Liu et al. 2008). (E) I. baodongii (cite from Lu et al. 2021). (F) I. longpingii (cite from Shu et al. 2022). (G) I. xiangfei (cite from Shu et al. 2022). (H) I. orientalis (cited from Liu et al. 2008). (I) I. yunguiensis (cited from Liu et al. 2008). (J) I. hypsophila (cited from Li et al. 2019). (K) I. shangrilaensis (cited from Li et al. 2019). Scale bars: A1–A3 = 100 μm; A4–A5 = 5 μm; B1–B3 = 100 μm; B4–B5 = 5 μm; C1–C3 = 150 μm; C4 = 12 μm; C5 = 8.6 μm; D1–D3 = 150 μm; D4–D5 = 10 μm; E1–E2 = 100 μm; E3–E4 = 10 μm; F1–F2 = 100 μm; F3–F4 = 10 μm; G1–G2 = 100 μm; G3–G4 = 10 μm; H1–H2 = 75 μm; H3–H4 = 4 μm; I1,I3 = 176 μm; I2 = 136 μm; I4–I5 = 10 μm; J1–J3 = 200 μm; J4–J5 = 10 μm; K1–K3 = 200 μm; K4–K5 = 10 μm.
FIGURE 4 in Semiaquilegia guangxiensis (Ranunculaceae), a new species from the limestone areas of Guangxi, China, based on morphological and molecular evidence
FIGURE 4. The best ML tree from the analyses of combined ITS and chloroplast trnL-F region. ML/MP bootstrap support values (>50%) are shown above and below the branch around the corresponding node. The accessions of the new species are highlighted in bold. The phylogram with branch lengths of the best ML tree is shown at the top-left corner.
FIGURE 3. A-I Semiaquilegia guangxiensis. A in Semiaquilegia guangxiensis (Ranunculaceae), a new species from the limestone areas of Guangxi, China, based on morphological and molecular evidence
FIGURE 3. A-I Semiaquilegia guangxiensis. A. Habit; B. Basal leaf; C. Flower; D. Fruits; E. Seeds; F. Sepals; G. Petals; H. Stamens; I. Staminodes. J–P S. adoxoides. J. Habit; K. Basal leaf; L. Fruit; M. Dehiscent fruit (show the seeds); N. Flower; O. Sepals; P. Petals.
FIGURE 1 in Semiaquilegia guangxiensis (Ranunculaceae), a new species from the limestone areas of Guangxi, China, based on morphological and molecular evidence
FIGURE 1. Distribution of the Semiaquilegia guangxiensis (A–C) and S. adoxoides (D–K) collected in Guangxi, China
FIGURE 2. Semiaquilegia guangxiensis. A in Semiaquilegia guangxiensis (Ranunculaceae), a new species from the limestone areas of Guangxi, China, based on morphological and molecular evidence
FIGURE 2. Semiaquilegia guangxiensis. A. Habit; B. Sepal; C. Petal; D. Staminodes; E. Stamens; F. Pistils; G. Seeds. Drawn by Y. X. Zhu, based on Yu-Song Huang Y13030901 (IBK).
FIGURE 5 in Recognition of a new species of Hedysarum (Fabaceae, Hedysareae) from China based on morphological and molecular evidence
FIGURE 5. Morphology comparison of leaflets, flowers and legumes of Hedysarum cuonanum, H. longigynophorum and H. xizangense. A, H. longigynophorum (from Chang et al. 2013206, WUK, except for the loment which is from Xu et al. Xu130346, WUK); B, H. cuonanum (from Holotype); C, H. xizangense (from Chen et al. 13-0886, WUK). For specimen details, see Appendix. le, leaflets; b, bracteoles; c, calyx; s, standard; w, wings; k, keels; a, androecium; o, ovary; lo, loment.
FIGURE 2 in Recognition of a new species of Hedysarum (Fabaceae, Hedysareae) from China based on morphological and molecular evidence
FIGURE 2. Bayesian tree based on combined plastid psbA-trnH, trnC-petN, petN-psbM sequences. The Bayesian posterior probabilities are below the branches, and the maximum parsimony (left) and maximum likelihood (right) bootstrap supports are above the branches.
FIGURE 1 in Recognition of a new species of Hedysarum (Fabaceae, Hedysareae) from China based on morphological and molecular evidence
FIGURE 1. Bayesian tree based on combined nuclear ETS and ITS sequences. The Bayesian posterior probabilities are below the branches, and the maximum parsimony (left) and maximum likelihood (right) bootstrap supports are above the branches. A dash indicates a branch that is not found in the maximum likelihood tree.
FIGURE 5 in Senecio kumaonensis (Asteraceae, Senecioneae) is a Synotis based on evidence from karyology and nuclear ITS/ETS sequence data
FIGURE 5. Specimens of Synotis penninervis (= Senecio kumaonensis). A. China, Xizang, Yadong, L. Wang & T. J. Tong 1352 (IBSC). B. China, Xizang, Gyirong, L. Wang & T. J. Tong 1373 (IBSC).
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.