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.
5,864
datasets available to search
ShareScore release 0.9.0
Dataset results
5,864 results for “species diversity”
Figure 1 in Application of species-richness estimators for the assessment of earthworm diversity
Figure 1. Performance of eight species-richness estimators (dashed lines) for earthworms sampling data set: ACE; ICE; Chao 1; Chao 2; Jack 1; Jack 2; Bootstrap; Michaelis–Menten asymptote, and the species accumulation curve (solid lines).
FIGURES 65–72 in Revision of the Western Palearctic Meteorini (Hymenoptera, Braconidae), with a molecular characterization of hidden Fennoscandian species diversity 3084
FIGURES 65–72. Characters used in key to species. 65) lateral view of metasomal part with ovipositor of M. salicorniae, 66) lateral view of the head of M. obfuscatus, 67) habitus of M. hirsutipes, 68) lateral view of mesosoma of M. eklundi sp.nov. 69) lateral view of mesosoma of M. subtilisulcus sp.nov., 70) lateral view of petiolar tergum of M. ictericus, 71) dorso-lateral view of the pit in front of the anterior ocelli of M. ictericus, 72) lateral view of petiolar tergum of M. pendulus.
FIGURE 9 in Revision of the Western Palearctic Meteorini (Hymenoptera, Braconidae), with a molecular characterization of hidden Fennoscandian species diversity 3084
FIGURE 9. Reconstruction of host preferences based on Fitch parsimony but marking ancestral branches as ambiguous when there is a complete lack of data on all descendants (most of these branches are reconstructed as having a lepidopteran host by Fitch parsimony).
FIGURES 41–48 in Revision of the Western Palearctic Meteorini (Hymenoptera, Braconidae), with a molecular characterization of hidden Fennoscandian species diversity 3084
FIGURES 41–48. Characters used in key to species. 41) antennae of M. eadyi, 42) fore wing of M. cinctellus, 43) fore wing of M. tenellus, 44) antennae of M. cinctellus, 45) antennae of M. tenellus, 46) habitus of M. stenomastax sp. nov., 47) metasoma of M. tenellus, 48) metasoma of M. artocercus sp. nov.
FIGURE 5 in Revision of the Western Palearctic Meteorini (Hymenoptera, Braconidae), with a molecular characterization of hidden Fennoscandian species diversity 3084
FIGURE 5. Results from Bayesian phylogenetic analysis of the CO1 data. The scale bar represents nucleotide substitutions per site. For additional explanation, see Fig. 4.
FIGURE 7 in Revision of the Western Palearctic Meteorini (Hymenoptera, Braconidae), with a molecular characterization of hidden Fennoscandian species diversity 3084
FIGURE 7. Results from Bayesian phylogenetic analysis of the combined CO1, 28S D2 and morphology data. The scale bar represents nucleotide substitutions per site. For additional explanation, see Fig. 4.
FIGURES 18–25 in Revision of the Western Palearctic Meteorini (Hymenoptera, Braconidae), with a molecular characterization of hidden Fennoscandian species diversity 3084
FIGURES 18–25. Characters used in key to species. 18) dorsal view of the petiolar tergum of M. filator, 19) dorsal view of the petiolar tergum of M. rubens, 20) ventral view of the petiolar tergum of M. colon, 21) dorsal view of the petiolar tergum of M. hirsutipes, 22) ventral view of the petiolar tergum of M. pendulus, 23) dorsal view of the head of M. pulchricornis, 24) dorsal view of the head of M. filator, 25) ventral view of the petiolar tergum of M. rubens.
FIGURE 6 in Revision of the Western Palearctic Meteorini (Hymenoptera, Braconidae), with a molecular characterization of hidden Fennoscandian species diversity 3084
FIGURE 6. Results from Bayesian phylogenetic analysis of the 28S D2 data. The scale bar represents nucleotide substitutions per site. For additional explanation, see Fig. 4.
FIGURE 3 in Revision of the Western Palearctic Meteorini (Hymenoptera, Braconidae), with a molecular characterization of hidden Fennoscandian species diversity 3084
FIGURE 3. Results of parsimony analysis of the morphological matrix. GC jackknife support value (in percentage units) shown below the corresponding branch.
FIGURE 2 in Revision of the Western Palearctic Meteorini (Hymenoptera, Braconidae), with a molecular characterization of hidden Fennoscandian species diversity 3084
FIGURE 2. Measurements used in this paper pertaining to: A) head, anterior view; B) head, dorsal view; C) metasoma; and D) fore wing. L = length, OOL = ocellar ocular length.
FIGURE 4 in Revision of the Western Palearctic Meteorini (Hymenoptera, Braconidae), with a molecular characterization of hidden Fennoscandian species diversity 3084
FIGURE 4. Results from Bayesian phylogenetic analysis of the combined molecular data (CO1 and 28S D2). Numbers on branches are posterior probabilities (PP; in percent); branches with PP below 50 % are collapsed. PP values are not given for branches inside the terminal clusters corresponding to species. Putative major clades of the Meteorinae referred to in the text are indicated to the right. The scale bar represents nucleotide substitutions per site, and all Bayesian trees are rooted between the genera Manokeria and Leiophron.
FIGURE 1 in Revision of the Western Palearctic Meteorini (Hymenoptera, Braconidae), with a molecular characterization of hidden Fennoscandian species diversity 3084
FIGURE 1. Results from the parsimony analysis of Meteorini relationships by Zitani (2003), based on morphological characters. Bootstrap values (> 50%) are shown below the nodes.
FIGURES 80–133 in Revision of the Western Palearctic Meteorini (Hymenoptera, Braconidae), with a molecular characterization of hidden Fennoscandian species diversity 3084
FIGURES 80–133. Anterior view of the head of Meteorus species (except for M. politutele, which is depicted in lateral view).
FIGURES 10–17 in Revision of the Western Palearctic Meteorini (Hymenoptera, Braconidae), with a molecular characterization of hidden Fennoscandian species diversity 3084
FIGURES 10–17. Characters used in key to species. 10a) hind wing of Z. albiditarsus, 10b) hind wing of M. colon, 11) metaoma of Z. deceptor, 12) metasoma of M. pendulus, 13a) fore wing of Z. chlorophthalmus, 13b) fore wing of Z. albiditarsus, 14) mesosoma of Z. caligatus, 15) mesosoma of Z. deceptor, 16) fore femur and tibial spur of Z. albiditarsus, 17) fore femur and tibial spur of Z. deceptor.
FIGURE 8 in Revision of the Western Palearctic Meteorini (Hymenoptera, Braconidae), with a molecular characterization of hidden Fennoscandian species diversity 3084
FIGURE 8. Results from the GMYC analysis. The grey bar represents the confidence interval for the maximum likelihood estimate of the change point between the Yule and coalescent branching models (± 2 log likelihood units from the maximum likelihood value). The terminal part of the tree is magnified 10 times for better visibility of the suggested species boundaries. Contiguous red clades are indicated to be conspecific according to the maximum likelihood estimate. The scale bar represents nucleotide substitutions per site.
FIGURE 79 in Revision of the Western Palearctic Meteorini (Hymenoptera, Braconidae), with a molecular characterization of hidden Fennoscandian species diversity 3084
FIGURE 79. Habitus images of the seven new species described in this paper. A) Meteorus artocercus, B) M. densipilosus, C) M. eklundi, D) M. longipilosus, E) M. sibyllae, F) M. stenomastax, G) M. subtilisulcus.
FIGURES 57–64 in Revision of the Western Palearctic Meteorini (Hymenoptera, Braconidae), with a molecular characterization of hidden Fennoscandian species diversity 3084
FIGURES 57–64. Characters used in key to species. 57) for wing of M. alborossicus, 58) for wing of M. vexator, 59) dorsal view of the petiolar tergum of M. politutele, 60) fore wing of M. abdominator, 61) antennae of M. consimilis, 62) fore wing of M. consimilis, 63) lateral view of the metasoma of M. vexator, 64) lateral view of mesosoma and metasoma of M. longipilosus.
F in Genetic diversity in the Carabodes marginatus species group (Acarida, Oribatida, Carabodidae) as inferred from allozymes
F. 3. Two-dimensional plot of multilocus genotype profiles based on principal component analysis (PCA).
F in Genetic diversity in the Carabodes marginatus species group (Acarida, Oribatida, Carabodidae) as inferred from allozymes
F. 1. C. marginatus typicus (right) and morphotype with short marginal notogastral setae (left). Both specimens were collected on Mt. Amiata.
Figure 5. Maximum likelihood trees constructed from mitochondrial cytochrome c oxidase subunit I in Cryptic diversity in coastal Australasia: a morphological and mitonuclear genetic analysis of habitat-forming sibling species
Figure 5. Maximum likelihood trees constructed from mitochondrial cytochrome c oxidase subunit I (left; log likelihood: -399.5730) and nuclear adenine nucleotide transporter intron (right; log likelihood: -12170.8682) sequences of Pyura praeputialis and Pyura doppelgangera sp. nov. Nodal support from 1000 bootstrap replications (> 75%) is indicated next to some branches. Circles indicate regions in which a particular allele was present. For simplicity, allele frequencies are not indicated.
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.