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 21 in Gobies (Teleostei: Gobiidae) of the oldest and deepest Caspian Sea sub-basin: an evidence-based annotated checklist and a key for species identification
FIGURE 21. Neogobius bathybius. ZM-CBSU M2114, off Babolsar, Mazandaran Province, Iran (Zarei et al. 2021).
FIGURE 16 in Gobies (Teleostei: Gobiidae) of the oldest and deepest Caspian Sea sub-basin: an evidence-based annotated checklist and a key for species identification
FIGURE 16. Distribution of (A) Hyrcanogobius bergi, (B) Knipowitschia caucasica, (C) Knipowitschia iljini, and (D) Knipowitschia longecaudata.
FIGURE 13 in Gobies (Teleostei: Gobiidae) of the oldest and deepest Caspian Sea sub-basin: an evidence-based annotated checklist and a key for species identification
FIGURE 13. Benthophilus persicus. ZM-CBSU S026-1, 35.3 mm SL, Shafaroud mouth, Gilan Province, Iran.
FIGURE 8 in Gobies (Teleostei: Gobiidae) of the oldest and deepest Caspian Sea sub-basin: an evidence-based annotated checklist and a key for species identification
FIGURE 8. Distribution of (A) Anatirostrum profundorum, Babka gymnotrachelus, Benthophiloides brauneri, Benthophiloides turcomanus, and Benthophilus pinchuki, (B) Benthophilus baeri, and (C) Benthophilus casachicus, Benthophilus ctenolepidus, Benthophilus leptocephalus, and Benthophilus persicus.
FIGURE 7 in Gobies (Teleostei: Gobiidae) of the oldest and deepest Caspian Sea sub-basin: an evidence-based annotated checklist and a key for species identification
FIGURE 7. Anatirostrum profundorum, ZM-CBSU S021-1, 21.8 mm SL, off Chaboksar, Gilan Province, Iran.
FIGURE 1 in Gobies (Teleostei: Gobiidae) of the oldest and deepest Caspian Sea sub-basin: an evidence-based annotated checklist and a key for species identification
FIGURE 1. Caspian Sea and its catchment. Delineation of the Caspian Sea "marine" areas: N, North Caspian Sea; M, Middle Caspian Sea; and S, South Caspian Sea. Here, these "marine" areas along with their respective catchment areas, are referred to as the North Caspian Sea sub-basin, Middle Caspian Sea sub-basin, and South Caspian Sea sub-basin, respectively. Az, Azerbaijan; Ar, Armenia; and Ge, Georgia.
FIGURE 21 in Revalidation and redescription of Bungona illiesi (Lugo-Ortiz & McCafferty) (Ephemeroptera: Baetidae) from Australia, based on mitochondrial and morphological evidence
FIGURE 21. Neighbour-Joining tree of 657-bp fragment of COI of 12 specimens of Bungona rooted on Centroptilum elongatum, Kimura 2 parameter distance. Bootstrap values are indicated on branches.
FIGURE 22 in Revalidation and redescription of Bungona illiesi (Lugo-Ortiz & McCafferty) (Ephemeroptera: Baetidae) from Australia, based on mitochondrial and morphological evidence
FIGURE 22. Neighbour-Joining tree of 397-bp fragment of COI of 12 specimens of Bungona together with 31 haplotypes (GenBank accession numbers EU789591–EU789623) of B. narilla from McLean et al (2008), rooted on Centroptilum elongatum, Kimura 2 parameter distance.
FIGURES 12–18. Bungona illiesi. 12 in Revalidation and redescription of Bungona illiesi (Lugo-Ortiz & McCafferty) (Ephemeroptera: Baetidae) from Australia, based on mitochondrial and morphological evidence
FIGURES 12–18. Bungona illiesi. 12. lateral view of male imago, 13. lateral view of head of male imago, 14. lateral view of female imago, 15. metascutellum of female imago with broadly rounded posterior margin, 16. wing of male imago; Bungona narilla. 17. dorsal view of male imago, 18. lateral view of female imago.
FIGURES 1–9. Bungona illiesi. 1 in Revalidation and redescription of Bungona illiesi (Lugo-Ortiz & McCafferty) (Ephemeroptera: Baetidae) from Australia, based on mitochondrial and morphological evidence
FIGURES 1–9. Bungona illiesi. 1. dorsal habitus of three larvae, 2. labrum, dorsal view, 3. left mandible with small lateral tooth indicated, 4. right mandible with small lateral tooth indicated, 5. maxilla showing aberrant minute palp, 6. maxilla from same specimen as Fig. 5 showing normally developed palp, 7. labium, 8. gill 1 with margins outlined, 9. gill 7.
Evidence for an expanding corona based on spectral-timing modelling of multiple black hole X-ray binaries
<p>This is the data repository for the paper "Evidence for an expanding corona based on spectral-timing modelling of multiple black hole X-ray binaries"</p>
FIGURE 3 in Recircumscription of the genera Goniozus and Sierola (Hymenoptera: Bethylidae) based on morphological and molecular evidence
FIGURE 3. One of the most-parsimonious trees showing branch lengths, with all terminals labelled. Labels include genus or morphogroup (e.g. Sierola open cell, Goniozus s.s., "Parasierola"), species if known, country of origin, BOLD process ID, and GenBank number if applicable.
FIGURE 1. Fore wing venation. A in Recircumscription of the genera Goniozus and Sierola (Hymenoptera: Bethylidae) based on morphological and molecular evidence
FIGURE 1. Fore wing venation. A) Goniozus sensu stricto: G. williamsi (reversed image of left wing). B) "Parasierola": G. emigratus. C) Typical Sierola: S. oahuensis. D) Australian Sierola with cell 2R1 open: undescribed, BOLD process ID AUSMA313-14.
FIGURE 4 in Recircumscription of the genera Goniozus and Sierola (Hymenoptera: Bethylidae) based on morphological and molecular evidence
FIGURE 4. Consensus parsimony tree from PAUP*. Bootstrap values>50 are below branches. Within Sierola, light orange indicates taxa with cell 2R1 open; the group marked "non-Australian Sierola" includes one New Guinea, one New Zealand, and four Australian taxa. Within Goniozus, dark blue branches are "Parasierola" and light pink are Goniozus s.s. The lower group of Goniozus noted as having palpal formula 4:2 probably includes the entire surrounding clade of Goniozus s.s., but only one definite species name could be associated here.
FIGURE 2 in Recircumscription of the genera Goniozus and Sierola (Hymenoptera: Bethylidae) based on morphological and molecular evidence
FIGURE 2. Comparison of insertions and deletions in bethyline genera. Codons are numbered at the top by position 3' from primer LepF1 and colored by amino acid translation. Country and region abbreviations: Aus = Australia, Ban = Bangladesh, Can = Canada, CR = Costa Rica, Egy = Egypt, Haw = Hawaii, Ind = India, Mad = Madagascar, Mal = Malaysia, NZ = New Zealand, SAf = South Africa.
FIGURE 1 in Description of a new species of freshwater shrimp (Decapoda: Caridea: Atyidae) from Mount Danxia, Guangdong, China, based on morphological and molecular evidence
FIGURE 1. Caridina danxiaensis sp. nov.: A, C–E from holotype male, (SYS_Csp_GDDXWLG3_13); B, F–J from paratype female (SYS_Csp_GDDXWLG3_7). A, cephalothorax and cephalic appendages, lateral view; B, left antennule, lateral view; C, right antenna with scaphocerite, lateral view; D, telson, dorsal view; E, right uropodal diaeresis, lateral view; F, mandible, lateral view; G, maxillula, lateral view; H, maxilla, lateral view; I, first maxilliped, lateral view; J, second maxilliped, lateral view.
FIGURE 9 in Diversity of Tropidurus (Squamata: Tropiduridae) in Paraguay-an integrative taxonomic approach based on morphological and molecular genetic evidence
FIGURE 9. Dextral lateral views of specimens of T. catalanensis (A, SMF 100093) indicating inguinal (left arrow) and axillary (right arrow) folds, compared with T. etheridgei (B, SMF 87389), which lacks these folds.
FIGURE 8 in Diversity of Tropidurus (Squamata: Tropiduridae) in Paraguay-an integrative taxonomic approach based on morphological and molecular genetic evidence
FIGURE 8. Differences in the mucronation of dorsal scales of Tropidurus catalanensis (above, SMF 100091) and T. torquatus (below, SMF 100097).
FIGURE 5 in Diversity of Tropidurus (Squamata: Tropiduridae) in Paraguay-an integrative taxonomic approach based on morphological and molecular genetic evidence
FIGURE 5. Maximum Likelihood (left) and Bayesian (right) trees inferred using concatenated mitochondrial (16S and COI) and nuclear (PRLR) DNA genes for samples of Tropidurus from Paraguay. Support values on nodes represent SH-aLRT/ UFBoot (in percentages) for ML (only values above 65 are shown), and posterior probability for BI (only values above 70 are shown). See Appendix 3 and Figure 1 for geographic location of samples. Reference bar represents substitutions per site.
FIGURE 3 in Diversity of Tropidurus (Squamata: Tropiduridae) in Paraguay-an integrative taxonomic approach based on morphological and molecular genetic evidence
FIGURE 3. Location of genetic samples used for the analyses. See Appendix 1 for information on the specimens.
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.