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.
33
datasets available to search
ShareScore release 0.9.0
Dataset results
33 results for “early Middle Pleistocene”
APPENDIX 5 in Equids from the late Middle Pleistocene to Early Holocene of the Apulia Peninsula (southern Italy): reassessment of their taxonomy and biochronology
APPENDIX 5. — Boxplot of length of lower premolars (A, P2L; B, P3-4L) from the late Middle Pleistocene to Early Holocene sites of the Apulia.Abbreviations see: Table 1.
APPENDIX 4 in Equids from the late Middle Pleistocene to Early Holocene of the Apulia Peninsula (southern Italy): reassessment of their taxonomy and biochronology
APPENDIX 4. — Boxplot of length of upper molars (A, M1-2L; B, M3L) from the late Middle Pleistocene to Early Holocene sites of the Apulia. Abbreviations: see Table 1.
APPENDIX 2 in Equids from the late Middle Pleistocene to Early Holocene of the Apulia Peninsula (southern Italy): reassessment of their taxonomy and biochronology
APPENDIX 2. — Schematic stratigraphical log of Grotta Uluzzo C (modified from Borzatti von LÖwenstern & Magaldi 1969).
FIG. 7 in Equids from the late Middle Pleistocene to Early Holocene of the Apulia Peninsula (southern Italy): reassessment of their taxonomy and biochronology
FIG. 7. — Postflexid index of the lower teeth of Equus species from the late Middle Pleistocene to Early Holocene sites of the Apulia. Abbreviations: see Table 1.
APPENDIX 1 in Equids from the late Middle Pleistocene to Early Holocene of the Apulia Peninsula (southern Italy): reassessment of their taxonomy and biochronology
APPENDIX 1. — Schematic stratigraphic log of Grotta Mario Bernardini (modified from Borzatti von LÖwenstern 1970).
APPENDIX 3 in Equids from the late Middle Pleistocene to Early Holocene of the Apulia Peninsula (southern Italy): reassessment of their taxonomy and biochronology
APPENDIX 3. — Boxplot of length of upper premolars (A, P2L; B, P3-4L) from the late Middle Pleistocene to Early Holocene sites of the Apulia. For the abbreviations: see Table 1.
FIG. 6 in Equids from the late Middle Pleistocene to Early Holocene of the Apulia Peninsula (southern Italy): reassessment of their taxonomy and biochronology
FIG. 6. — Protocone index of the upper teeth of Equus species from the late Middle Pleistocene to Early Holocene sites of the Apulia. Abbreviations: see Table 1.
Text-fig. 1. a: Po Plain and foothills of the Northern Apennine in Northern Italy (inset) with the location of Oriolo (black star) and other Early and Middle Pleistocene plant localities, Enza and Stirone. Red lines indicate the frontal thrust arcs (modified from Martinetto et al. 2015). b: The "La Salita" section, Oriolo and chronology of the two "Sabbie gialle" cycles based on large mammals and palaeomagnetic correlation (modified from Toniato et al. 2017; IMMS 2020* [Italian Mediterranean Marine Stages] updated from Cohen and Gibbars 2020; GTS 2021* [Global Time Scale] updated from Head et al. 2021). c: Quarry "La Salita", Oriolo, in 1987. Main unconformities (U) separating the two "Sabbie gialle" cycles and terrestrial deposits on top are shown. Leaf symbols indicate the positions of some of the layers rich in fossil leaves (photo by G. B. Vai, modified). d: Surroundings of Faenza with the location of Oriolo and adjacent coeval sites yielding plant macrofossils. in The Late Early Pleistocene Flora Of Oriolo, Faenza (Italy): Assembly Of The Modern Forest Biome
Text-fig. 1. a: Po Plain and foothills of the Northern Apennine in Northern Italy (inset) with the location of Oriolo (black star) and other Early and Middle Pleistocene plant localities, Enza and Stirone. Red lines indicate the frontal thrust arcs (modified from Martinetto et al. 2015). b: The "La Salita" section, Oriolo and chronology of the two "Sabbie gialle" cycles based on large mammals and palaeomagnetic correlation (modified from Toniato et al. 2017; IMMS 2020* [Italian Mediterranean Marine Stages] updated from Cohen and Gibbars 2020; GTS 2021* [Global Time Scale] updated from Head et al. 2021). c: Quarry "La Salita", Oriolo, in 1987. Main unconformities (U) separating the two "Sabbie gialle" cycles and terrestrial deposits on top are shown. Leaf symbols indicate the positions of some of the layers rich in fossil leaves (photo by G. B. Vai, modified). d: Surroundings of Faenza with the location of Oriolo and adjacent coeval sites yielding plant macrofossils.
Figure 3 in Early to middle Pleistocene occurrences of Litoria, Neobatrachus and Pseudophryne (Anura) from the Nullarbor Plain, Australia: first frogs from the "frog-free zone"
Figure 3. Pleistocene frog ilia from Leaena's Breath Cave (prefix WAM) compared with modern specimens (prefix SAMA). a) WAM 09.3.264. Right ilium of holotype of Litoria lundeliusi sp. nov. from Leaena's Breath Cave (unit 3). b) WAM 09.3.264. Enlargement of acetabular region of holotype of Litoria lundeliusi sp. nov. c) SAMA R68398. Representative left ilium of Litoria adelaidensis. d) SAMA R68399. Representative right ilium of Litoria rubella sensu stricto. e–h) Representative ilia of Neobatrachus sudelli highlighting extreme divergence in the form of the dorsal prominence. e) WAM 09.3.265. f) WAM 09.3.261. g) WAM 09.3.269. h) WAM 09.3.273. i) Right ilium of Pseudophryne sp. indet.
Figure 1 in Early to middle Pleistocene occurrences of Litoria, Neobatrachus and Pseudophryne (Anura) from the Nullarbor Plain, Australia: first frogs from the "frog-free zone"
Figure 1. Map of Australia showing modern occurrence records extracted from the Atlas of Living Australia (www.ala.org.au) and location of Leaena's Breath Cave (black triangle). a) Anura. b) Neobatrachus sudelli. Note that the two most northwestern records may represent N. aquilonius (J. D. Roberts, pers. comm., 27 June 2015). c) Pseudophryne guentheri (light green) and P. occidentalis (dark green). d) Litoria adelaidensis (red), L. cyclorhyncha (purple) and L. moorei (light brown).
Figure 2 in Early to middle Pleistocene occurrences of Litoria, Neobatrachus and Pseudophryne (Anura) from the Nullarbor Plain, Australia: first frogs from the "frog-free zone"
Figure 2. Anatomical features of the frog ilium mentioned in the text. Adapted from Tyler (1976).
Supporting Data 1 for Potential drivers of disparity in early Middle Pleistocene interglacial climate response over Eurasia
<p>This document contains Supporting Data for the manuscript "Potential drivers of disparity in early Middle Pleistocene interglacial climate response over Eurasia" by B. Bradák, G. Újvári, T. Stevens, M.F. Bógalo, M. I. González, and M. Hyodo, submitted to Paleoceanography and Paleoclimatology. </p> <p>Content description:</p> <ul> <li>AMS_raw [Sheet 1]: the sheet contains the raw AMS (anisotropy of magnetic susceptibility) data which was used during the determination of paleowind directions.</li> <li>AMS_stereoplots [Sheet 2]: the sheet contains the reconstructed paleowind direction is based on the stereoplot analysis and the alignment of the kmax axis.</li> <li>IRM_unmix_GAPplots [Sheet 3]: the sheet contains the so called gradient acquisition plots, used during the decomposition of isothermal remanent magnetization (IRM) curves and indicating the separated populations of magnetic components.</li> <li>IRM_unmix_raw [Sheet 4]: the sheet contains the characteristics of the magnetic components, identified during the decomposition of IRM curves.</li> <li>Xlf_fd_raw [Sheet 5]: the sheet contains all of the measured magnetic susceptibility frequency dependent magnetic susceptibility data from the profile and its average unit by unit.</li> <li>Xbckg [Sheet 6]: the sheet contains the Xlf vs. Xfd plot which is essential to the determination of background susceptibility (Xbckg) and the paleoprecipitation data.</li> <li>Data (Fig.2) [Sheet 7]: the complex dataset contains essential information about the units of the profile and about the proxy data, which were used during the analysis and appears at Fig. 2. As an additional information it contains step by step information about the calculation of paleoprecipitation values and about the calculation of IRM proxies.</li> <li>Age-depth model (Fig. 3) [Sheet 8]: the sheet contains data and additional information about the age model, used in the study and appears at Fig. 3.</li> <li>Pleist wind in Eurasia (Fig. 4) [Sheet 9]: the sheet summerizes basic information about the profiles which was used during the determination of the influence of various climate centres and characteristic wind directions.</li> <li>Data (Discussion) [Sheet 10]: The sheet summarises the information about the paleoenvironment reconstructed between MIS19 and MIS11 at Paks succession. </li> </ul>
Image archive for the paper: The Middle Pleistocene small mammals from the lower layers of Tunel Wielki Cave (Kraków-Częstochowa Upland, Poland). An Early Toringian assemblage in Poland.
<p>Image archive of the measured specimens of the small mammal assemblage from Tunel Wielki cave. </p>
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.