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.
527
datasets available to search
ShareScore release 0.9.0
Dataset results
527 results for “Mesozoic.”
Figure 2. The maximum likelihood tree inferred from 14 594 in Evidence from mitochondrial genomics supports the lower Mesozoic of South Asia as the time and place of basal divergence of cypriniform fishes (Actinopterygii: Ostariophysi)
Figure 2. The maximum likelihood tree inferred from 14 594 nucleotide sites of 60 Cypriniformes and six outgroups (lnL = -203 966.535). Numbers at each branch indicate the resampling the estimated log likelihood (RELL) local bootstrap probabilities. Asterisks indicate 100% local bootstrap support. Two major clades of Cyprinidae (A and B) correspond with those presented in Cavender & Coburn (1992).
Seismic study on lithosphere evolution for Mesozoic multiple stages gold deposits focusing in Southwestern China
<p>Dispersion files for ambient noise tomography, PRF file for P-wave receiver function and SRF file for S-wave receiver function</p>
Figure 6 in Wanted, tracked down and identified: Mesozoic non-biting midges of the subfamily Chironominae (Chironomidae, Diptera)
Figure 6. Palaeocentron krzeminskii, adult male, MP/4020 (ISEZ PAN); mid-Cretaceous, probably Albian–Cenomanian; Hukawng Valley, Kachin State, Myanmar. A–E, tibial apices of fore (A, B) mid- (C) and hindleg (D, E), with bristle fan magnified (E). F, G, thorn-like bristles on hindleg tibia: arrangement (F) and shape (G).
Figure 4 in Wanted, tracked down and identified: Mesozoic non-biting midges of the subfamily Chironominae (Chironomidae, Diptera)
Figure 4. Palaeocentron krzeminskii, adult male, MP/4020 (ISEZ PAN); mid-Cretaceous, probably Albian–Cenomanian; Hukawng Valley, Kachin State, Myanmar. A, inclusion in amber. B, Fourier transform infrared spectroscopy (attenuated total reflectance) spectrum no. 17497 IAA, obtained from amber piece with the examined inclusion.
Figure 3 in Wanted, tracked down and identified: Mesozoic non-biting midges of the subfamily Chironominae (Chironomidae, Diptera)
Figure 3. Pseudochironomini? incertae sedis, adult male, PIN 3130/223; Late Cretaceous, Santonian; Yantardakh, Taimyr Peninsula, Russia. A, inclusion in amber embedded in epoxy resin. B, habitus. C, D, wing, with RM vein area magnified (D). E, F, tibial armature of mid (E) and hindleg (F). G, H, hypopygium in dorsolateral (G) and ventrolateral aspect (H).
Figure 2 in Wanted, tracked down and identified: Mesozoic non-biting midges of the subfamily Chironominae (Chironomidae, Diptera)
Figure 2. Mesoacentron kaluginae, adult male, PIN 3130/224; Late Cretaceous, Santonian; Yantardakh, Taimyr Peninsula, Russia. A, B, wing, with anal lobe and squama magnified (B). C, D, tibial armature of mid (C) and hindleg (D). E, hypopygium, ventral aspect. F, anal point. G, H, hypopygial volsellae: superior (green), inferior (blue), digitus (yellow), pseudovolsella (red) and pars ventralis (purple) photographed (G) and drawn (H).
Figure 7 in Wanted, tracked down and identified: Mesozoic non-biting midges of the subfamily Chironominae (Chironomidae, Diptera)
Figure 7. Palaeocentron krzeminskii, adult male, MP/4020 (ISEZ PAN); mid-Cretaceous, probably Albian–Cenomanian; Hukawng Valley, Kachin State, Myanmar. A, B, hypopygium in dorsolateral (A) and ventrolateral aspect (B). C, D, anal point photographed (C) and drawn (D). E, superior volsellae. F, G, inferior volsellae drawn (F) and photographed (G).
Figure 1 in Wanted, tracked down and identified: Mesozoic non-biting midges of the subfamily Chironominae (Chironomidae, Diptera)
Figure 1. Mesoacentron kaluginae, adult male, PIN 3130/224; Late Cretaceous, Santonian; Yantardakh, Taimyr Peninsula, Russia. A, inclusion in amber embedded in epoxy resin. B, habitus. C, head. D, antenna (arrowheads indicate borders between flagellomeres fm 1–14: black – distinctly separated, grey – weakly separated or partially fused). E, head and thorax in lateral aspect.
Data of "Revisiting the Late Paleozoic–Mesozoic tectonic evolution of epicontinental eastern Central Asian Orogenic Belt on the basis of detrital zircon"
<p><strong>Ds01.</strong> Table S1. Zircon U–Pb isotopic and trace element data of mica-quartz schist (14JH12-1) from the Hulin Basin.</p> <p><strong>Ds02. </strong>Table S2. Zircon U–Pb isotopic and trace element data of fine sandstone (JHD53) from the Wandashan accretionary complex.</p> <p><strong>Ds03.</strong> Table S3. Zircon U–Pb isotopic and trace element data of sandy slate (JHD44) from the Wandashan accretionary complex.</p> <p><strong>Ds04.</strong> Table S4. Collected sedimentary rock samples and our samples in NE China, showing their original and renamed sample ID and dating data.</p>
Factors on the Mesozoic transition from flat to steep subduction of the Paleo-Pacific Plate beneath South China: Thickened oceanic crust and subduction rate
<p>This dataset contains simulation results used for visualizing Figures in "Factors on the Mesozoic transition from flat to steep subduction of the Paleo-Pacific Plate beneath South China: Thickened oceanic crust and subduction rate"</p>
FIGURE 8 in Rare myodocopid ostracods from Mesozoic sections of Hungary: summary, revision and description of new taxa
FIGURE 8. Adductor muscle scar patterns of selected myodocopid ostracods (after Wilkinson et al. 2004).
FIGURE 7 in Rare myodocopid ostracods from Mesozoic sections of Hungary: summary, revision and description of new taxa
FIGURE 7. Phylogenetic relationships of the studied Mesozoic myodocopid ostracods (after Robardet et al. 1991).
FIGURE 3 in Rare myodocopid ostracods from Mesozoic sections of Hungary: summary, revision and description of new taxa
FIGURE 3. Jurassic lithologic columns: D) Csurgókút outcrop (after Fülöp 1975). E) Somhegy outcrop (after Wernli & Görög 1999).
FIGURE 1 in Rare myodocopid ostracods from Mesozoic sections of Hungary: summary, revision and description of new taxa
FIGURE 1. Location of the studied sections in a simplified geographical map of the Transdanubian Range, Hungary (after Budai & Fodor 2008).
FIGURE 2 in Rare myodocopid ostracods from Mesozoic sections of Hungary: summary, revision and description of new taxa
FIGURE 2. Triassic lithologic columns: A) Vászoly section (after Vörös & Pálfy 1989 and Vörös 1998). B) Köveskál section (after Kozur 2004). C) Litér quarry (after Budai & Vörös 2006).
FIGURE 4 in Rare myodocopid ostracods from Mesozoic sections of Hungary: summary, revision and description of new taxa
FIGURE 4. Cretaceous lithologic columns: F) Vértessomló Vst-2. G) Agostyán Agt-2. Legend: 1: limestone, 2: marly limestone, 3: marl, 4: argillaceous marl, 5: siltstone, 6: sandy marl, 7: sandstone breccia, 8: Orbitolina, 9: limestone nodule.
FIGURE 1 in First fossil Eccoptarthridae (Coleoptera: Curculionoidea) from the Mesozoic of China
FIGURE 1. Cretonanophyes zherikhini sp. nov., holotype, habitus (lateral view): A, line drawing; B, photograph of part CNUCLB2005103; C, photograph of counterpart CNUCLB2005104.
Fig. 10 in New fossil data and phylogenetic inferences shed light on the morphological disparity of Mesozoic Sinoalidae (Hemiptera, Cicadomorpha)
Fig. 10 Reconstruction of hind tibia of representatives within Sinoalidae: a Jiania crebra Wang et Szwedo, 2012; b Fangyuania xiai Chen, Szwedo et Wang, 2018; c Mesodorus orientalis gen. et sp. nov.
Fig. 8 in New fossil data and phylogenetic inferences shed light on the morphological disparity of Mesozoic Sinoalidae (Hemiptera, Cicadomorpha)
Fig. 8 Details of wings of Mesodorus orientalis gen. et sp. nov.: a puncta and piliferous granules on costal area of tegmen; b puncta and piliferous granules on clavus of tegmen; c puncta and piliferous granules on C1 of
Fig. 9 in New fossil data and phylogenetic inferences shed light on the morphological disparity of Mesozoic Sinoalidae (Hemiptera, Cicadomorpha)
Fig. 9 Reconstruction of head and thorax of representatives within Sinoalidae: a Stictocercopis wuhuaensis Fu et Huang, 2018; b Sinoala parallelivena Wang et Szwedo, 2012; c Fangyuania xiai Chen, Szwedo et Wang, 2018; d Mesodorus orientalis gen. et sp. nov.
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.