Skip to main content
Powered by ShareScore

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.

1,036

datasets available to search

ShareScore release 0.9.0

Reset

Dataset results

1,036 results for “Modernization”

Learn how ShareScore rates datasets ↗
zenodo40/100

Fig. 32 in Temporary expansion to shelf depths rather than an onshore-offshore trend: the shallow-water rise and demise of the modern deep-sea brittle star family Ophiacanthidae (Echinodermata: Ophiuroidea)

Fig. 32. Fossil skeletal plates of ophiacanthid brittle stars; lateral arm plates (LAPs) in external (a) and internal (b) views. 1. Ophiomitrella? sp. 2 from the Bathonian (Middle Jurassic) of Jumara, India; GZG. INV.78740, median to distal LAP. 2. Ophiomitrella sp. nov. from the late Maastrichtian (Late Cretaceous) of Maastricht, the Netherlands; NHMM JJ 5104, proximal LAP. 3-6. Ophiomalleus beneficarum gen. et sp. nov. from the Callovian of Bauer-Wehrland (3), Althüttendorf (4-5) and Hohensaaten (6), Germany. 3. GZG.INV.78741 (holotype), proximal to median LAP. 4. GZG.INV.78742 (paratype), proximal LAP. 5. GZG.INV.78743 (paratype), distal LAP. 6. GZG.INV.78744 (paratype), arm spine. 7-9. Ophiomalleus stevenwilsoni gen. et sp. nov. from the latest Hauterivian (Early Cretaceous) of Sarstedt, Germany. 7. GZG.INV.78748 (holotype), proximal LAP. 8. GZG.INV.78749 (paratype), median LAP. 9. GZG. INV.78750 (paratype), distal LAP. One common scale bar per species except for 6.

opencc-by-3.0Jul 2013View details →
zenodo40/100

Fig. 28 in Temporary expansion to shelf depths rather than an onshore-offshore trend: the shallow-water rise and demise of the modern deep-sea brittle star family Ophiacanthidae (Echinodermata: Ophiuroidea)

Fig. 28. Fossil lateral arm plates (LAPs) of ophiacanthid brittle stars in external (a) and internal (b) views. 1-4. Dermocoma numbergerorum sp. nov. from the middle Oxfordian (Late Jurassic) of Foug, France. 1. GZG.INV.78695 (holotype), proximal LAP. 2. GZG.INV.78696 (paratype), proximal LAP. 3. GZG.INV.78697 (paratype), median LAP. 4. GZG.INV.78698 (paratype), distal LAP. 5-8. Dermocoma simonschneideri sp. nov. from the early Kimmeridgian (Late Jurassic) of the Pointe du Chay, France (5) and the late Kimmeridgian (Late Jurassic) of Trancoso, Portugal (6-8). 5. GZG.INV.78700 (holotype), proximal LAP. 6. GZG.INV.78701 (paratype), proximal LAP. 7. GZG.INV.78702 (paratype), median LAP. 8. GZG. INV.78703 (paratype), distal LAP. 9. Dermocoma sp. nov. innom. 2 from the early Kimmeridgian (Late Jurassic) of Geisingen, Germany; GZG.INV.78705, median to distal LAP. 10-11. Dermocoma sp. nov. innom. 3 from the late Valanginian (Early Cretaceous) of the Ternberg Nappe, Austria. 10. NHMW 2012/0138/0009, proximal LAP. 11. NHMW 2012/0138/0010, distal LAP. One common scale bar per species.

opencc-by-3.0Jul 2013View details →
zenodo40/100

Fig. 2 in Temporary expansion to shelf depths rather than an onshore-offshore trend: the shallow-water rise and demise of the modern deep-sea brittle star family Ophiacanthidae (Echinodermata: Ophiuroidea)

Fig. 2. Phylogeny of the Ophiacanthidae. A. Majority rule consensus of 2572 most parsimonious trees (182 steps length) resulting from the phylogenetic analysis of the full data set. B. Strict consensus of nine most parsimonious trees (47.91375 steps length) resulting from the analysis of the reweighed dataset (characters reweighed by their maximum rescaled consistency index). Numbers above branches represent bootstrap support for the respective nodes (10 000 replicates); numbers below branches are node frequencies of the majority rule consensus tree.

opencc-by-3.0Jul 2013View details →
zenodo40/100

Fig. 27 in Temporary expansion to shelf depths rather than an onshore-offshore trend: the shallow-water rise and demise of the modern deep-sea brittle star family Ophiacanthidae (Echinodermata: Ophiuroidea)

Fig. 27. Fossil lateral arm plates in external (a) and internal (b) views and articulated arm fragment of ophiacanthid brittle stars. 1-2. Dermocoma wrighti Hess, 1964 from the early Callovian (Middle Jurassic) of Liesberg, Switzerland. 1. NHMB M11218, proximal LAP. 2. NHMB M11219, distal LAP. 3-4. Dermocoma sp. 1 from the Callovian (Middle Jurassic) of Jumara, India. 3. GZG.INV.78687, proximal LAP. 4. GZG.INV.78688, distal LAP. 5-8. Dermocoma biformis (Hess, 1975) comb. nov. from the late Oxfordian (Late Jurassic) of Guldental, Switzerland (5-6) and Savigna, France (7-8). 5. NHMB M11220, proximal LAP. 6. NHMB M11221, distal LAP. 7. GZG.INV.78690, proximal LAP. 8. GZG. INV.78692, proximal arm fragment in ventral (a) and dorsal (b) views. One common scale bar for 1-2, 3-4, 5-6, 7 and 8 respectively.

opencc-by-3.0Jul 2013View details →
zenodo40/100

Fig. 1 in Temporary expansion to shelf depths rather than an onshore-offshore trend: the shallow-water rise and demise of the modern deep-sea brittle star family Ophiacanthidae (Echinodermata: Ophiuroidea)

Fig. 1. Ophiacanthid brittle star lineages and their fossil record in shallow (<200 m palaeodepth, thick grey lines) and deep (> 200 m palaeodepth, thick black lines) environments through time. Extant lineages are indicated by the thin median line extending to the Holocene.

opencc-by-3.0Jul 2013View details →
zenodo40/100

Fig. 6 in Temporary expansion to shelf depths rather than an onshore-offshore trend: the shallow-water rise and demise of the modern deep-sea brittle star family Ophiacanthidae (Echinodermata: Ophiuroidea)

Fig. 6. Fossil lateral arm plates (LAPs) of ophiacanthid brittle stars in external (a) and internal (b) views. 1. Eolaxoporus sp. from the latest Anisian (Middle Triassic) of Oberscheffach, Germany, MHI 2083/1, median LAP. 2-4. Eolaxoporus hagdorni gen. et sp. nov. from the late Carnian (Late Triassic) of Jushui, China. 2. MHI 2084/1 (holotype), proximal LAP. 3. MHI 2085/1 (paratype), median LAP. 4. MHI 2086/1 (paratype), distal LAP. 5. Eolaxoporus sp. nov. innom. from the early Carnian (Late Triassic) of Milieres, Italy; GZG.INV.78500, proximal to median LAP. 6-8. Eolaxoporus imminens gen. et sp. nov. from the late Sinemurian to early Pliensbachian (Early Jurassic) of the Glasenbach Gorge, Austria. 6. NHMW 2012/0137/0001 (holotype), proximal LAP. 7. NHMW 2012/0137/0002 (paratype), median LAP. 8. NHMW 2012/0137/0003 (paratype), distal LAP. One common scale bar per species is given.

opencc-by-3.0Jul 2013View details →
zenodo40/100

Fig. 23 in Temporary expansion to shelf depths rather than an onshore-offshore trend: the shallow-water rise and demise of the modern deep-sea brittle star family Ophiacanthidae (Echinodermata: Ophiuroidea)

Fig. 23. Fossil lateral arm plates in external (a) and internal (b) views and articulated arm fragments of Alternacantha schwermannorum sp. nov. from the late Oxfordian (Late Jurassic) of Savigna, France. 1. GZG.INV.78654 (holotype), proximal LAP. 2. GZG.INV.78655 (paratype), median LAP. 3. GZG. INV.78656 (paratype), distal LAP. 4. GZG.INV.78657 (paratype), proximal arm fragment in ventral (a) and dorsal (b) views and with detail in dorso-lateral (c) view. 5. GZG.INV.78658 (paratype), distal arm fragment in dorsal (a) and ventral (b) view. One common scale bar for 1-3.

opencc-by-3.0Jul 2013View details →
zenodo40/100

Appendix 1 in Temporary expansion to shelf depths rather than an onshore-offshore trend: the shallow-water rise and demise of the modern deep-sea brittle star family Ophiacanthidae (Echinodermata: Ophiuroidea)

Appendix 1. Faunal list for the assemblages studied with corresponding counts of lateral arm plates or articulated individual (art.). Note that previously published assemblages which lack ophiacanthids or for which no significant taxonomic changes or new counts are proposed have been omitted. Records marked with an asterisk (*) are not described in the present study.

opencc-by-3.0Jul 2013View details →
zenodo40/100

Fig. 35 in Temporary expansion to shelf depths rather than an onshore-offshore trend: the shallow-water rise and demise of the modern deep-sea brittle star family Ophiacanthidae (Echinodermata: Ophiuroidea)

Fig. 35. Skeletal plates and arm fragments of fossil and Recent ophiacanthid brittle stars; lateral arm plates (LAPs) in external (a) and internal (b) views. 1-3. Ophiocamax vitrea Lyman, 1878, Recent. 1. Proximal LAP. 2. Median LAP. 3. Dorsal arm plate. 4-5. Ophiocamax hystrix Lyman, 1878, Recent. 4. Proximal LAP. 5. Median LAP. 6. Ophiocamax austera Verrill, 1899, Recent; proximal LAP. 7-11. Ophiocamax dorotheae sp. nov. from the late Oxfordian (Late Jurassic) of Savigna, France. 7. GZG.INV.78763 (holotype), proximal LAP. 8. GZG.INV.78764 (paratype), median LAP. 9. GZG.INV.78765 (paratype), distal LAP. 10. GZG.INV.78766 (paratype), proximal arm fragment in ventral view. 11. GZG.INV.78767 (paratype), median arm fragment in dorsal view. One common scale bar per species except for 10 and 11.

opencc-by-3.0Jul 2013View details →
zenodo40/100

Fig. 17 in Temporary expansion to shelf depths rather than an onshore-offshore trend: the shallow-water rise and demise of the modern deep-sea brittle star family Ophiacanthidae (Echinodermata: Ophiuroidea)

Fig. 17. Fossil skeletal plates of ophiacanthid brittle stars; lateral arm plates (LAPs) in external (a) and internal (b) views. 1-2. Ophiotreta striata (Kutscher & Jagt, 2000) comb. nov. from the early Maastrichtian of Rügen, Germany. 1. GZG.INV.78588, proximal LAP. 2. GZG.INV.78589, distal LAP. 3-11. Ophiotreta dendrophyllicola sp. nov. from the middle Danian (Paleocene) of Fakse, Denmark. 3. MGUH 30236 (holotype), proximal LAP. 4. NHMM 2012 050 (paratype), median LAP. 5. NHMM 2012 051 (paratype), distal LAP. 6. NHMM 2012 052 (paratype), vertebra in distal view. 7. NHMM 2012 053 (paratype), vertebra in proximal view. 8. NHMM 2012 054 (paratype), vertebra in dorsal view. 9. NHMM 2012 055 (paratype), oral plate in adradial (a) and abradial (b) view. 10. NHMM 2012 056 (paratype), arm spine fragment. 11. NHMM 2012 057 (paratype), arm spine fragment. 12-15. Ophiotreta hedone sp. nov. from the middle Lutetian (Eocene) of Grignon, France. 12. GZG.INV.78590 (holotype), proximal LAP. 13. GZG.INV.78591 (paratype), median LAP. 14. GZG.INV.78592 (paratype), distal LAP. 15. GZG.INV.78593 (paratype), median LAP. One common scale bar per species.

opencc-by-3.0Jul 2013View details →
zenodo40/100

Fig. 4 in Temporary expansion to shelf depths rather than an onshore-offshore trend: the shallow-water rise and demise of the modern deep-sea brittle star family Ophiacanthidae (Echinodermata: Ophiuroidea)

Fig. 4. Palaeogeographic reconstruction for the Middle Triassic [after Smith et al. (1994)] with positions of currently known Triassic ophiuroid occurrences (grey areas indicate emerged land). Round dots indicate assemblages quantitatively assessed in this study (see Table 1 for details). 1. Fischerwiese, Oberscheffach, Schillingstadt. 2. Górazdze, Strzelce Opolski, Felsöörs, Sóly. 3. Alpe di Specie, Romerlo, Milieres, Recoaro. 4. Kitakami Mountains. 5. Jushui. Squares indicate previously published Triassic records. At the same positions as round dots 1-3: Bachmayer & Kollmann (1968), Broglio Loriga & Berti Cavicchi (1972), Hess (1970a), Kutscher (1987b, 2000), Radwański (2002), Salamon (2004) and ophiuroid records revised by Hess (1965b). Squares: 6. Calzada & Gutiérrez (1988). 7. Hess (1972b), Kristan-Tollmann et al. (1979). 8. Twitchett et al. (2005). 9. Zonneveld (2001). 10. Kummel & Teichert (1970). 11. Runnegar (1969). 12. Kristan-Tollmann & Gramann (1992). At the same position as round dot 5: Yang (1960), Feng (1985), Chen et al. (2004). Square 13. Ishida et al. (2011).

opencc-by-3.0Jul 2013View details →
zenodo40/100

Fig. 20 in Temporary expansion to shelf depths rather than an onshore-offshore trend: the shallow-water rise and demise of the modern deep-sea brittle star family Ophiacanthidae (Echinodermata: Ophiuroidea)

Fig. 20. Fossil lateral arm plates (LAPs) of ophiacanthid brittle stars in external (a) and internal (b) views and articulated arm fragment. 1-2. Ophiogaleus dorecki (Hess, 1962) comb. nov. from the late Pliensbachian (Early Jurassic) of Seewen, Switzerland. 1. NHMB M11214, proximal LAP. 2. NHMB M11215, distal LAP. 3-5. Ophiogaleus stans sp. nov. from the early Bathonian (Middle Jurassic) of La Pouza, France. 3. GZG.INV.78615 (holotype), proximal LAP. 4. GZG.INV.78616 (paratype), median LAP. 5. GZG.INV.78617 (paratype), distal LAP. 6-7. Ophiogaleus sp. nov. innom 2 from the Callovian (Middle Jurassic) of Jumara, India. 6. GZG.INV.78619, proximal LAP. 7. GZG.INV.78620, distal LAP. 8-10. Ophiogaleus constrictus (Hess, 1966) comb. nov. from the late Oxfordian (Late Jurassic) of Savigna, France. 8. GZG.INV.78624, proximal LAP. 9. GZG.INV.78625, distal LAP. 10. GZG.INV.78626, proximal arm fragment in ventral (a) and dorsal (b) views. One common scale bar per species except for 10.

opencc-by-3.0Jul 2013View details →
zenodo40/100

Fig. 8 in Erect bifoliate species of Microporella (Bryozoa, Cheilostomata), fossil and modern

Fig. 8. Microporella ordoides sp. nov. A–D. Holotype NIWA 144883, Recent, New Zealand. A. Group of zooids at the branch tip. B. Close-up of autozooids. C. Close-up of the orifice, ascopore and adVentitious avicularium. D. Close-up of an autozooid and ovicell. E–F. Paratype NIWA 119893 (unbleached), Recent, New Zealand. Two avicularia with closed and open mandible, respectively. Scale bars: A = 500 µm; B = 200 µm; C–D = 100 µm; E–F = 150 µm.

opencc-by-4.0Jul 2020View details →
zenodo40/100

Fig. 9 in Erect bifoliate species of Microporella (Bryozoa, Cheilostomata), fossil and modern

Fig. 9. Microporella lingulata sp. nov., holotype, NIWA 144886 (unbleached), Recent, Foveaux Strait, New Zealand. A. General view of the tongue-shaped colony. B. Apparent ancestrula and periancestrular zooids. C. Group of ovicellate and non-ovicellate zooids. Some avicularia show the long, lanceolate mandibles. D. Close-up of an autozooid, having the avicularian mandible open, and an ovicellate zooid (right). Scale bars: A = 1 mm; B–D = 200 µm.

opencc-by-4.0Jul 2020View details →
zenodo40/100

Ume Saami lexical data from Álgu database with modernized spelling

<p>The files in this archive contain several processed versions of Ume Saami dictionary data originating from (Schlachter 1958). The data has been retrieved from the &Aacute;lgu database &lt;<a href="http://kaino.kotus.fi/algu/">http://kaino.kotus.fi/algu/</a>&gt; and checked against the original dictionary for headword variants. The final versions have the headword mechanically converted to (approximate) the current Ume Saami orthography (as in Barruk 2018). In addition to an alphabetized list, a reverse-alphabetized (a tergo) file is provided.</p> <p>For convenience, .xlsx versions of the final files are&nbsp;provided in addition to the plain-text (.tsv) versions (in zip file).<br> The orthography conversion program can be found at &lt;<a href="https://doi.org/10.5281/zenodo.4162535">https://doi.org/10.5281/zenodo.4162535</a>&gt;.</p> <p><strong>NOTE: The mechanically converted lemmas do not always fully correspond to the modern orthography and should be checked before use in further applications!</strong></p> <p>Authors: Juha Kuokkala (data processing and programming), Wolfgang Schlachter (original dictionary data).</p>

opencc-by-4.0Oct 2020View details →
zenodo40/100

Evolutionary history of the Galápagos Rail revealed by ancient mitogenomes and modern samples

<p>Beast v. 2.6.3 input (<em>.xml</em>) files and output (<em>.log</em> and <em>.trees</em>) files for phylogenetic analyses of rails, used to determined the evolutionary history of the Gal&aacute;pagos Rail <em>Laterallus spilonota</em>. There are two main datasets: coding sequences of the mitochondrial genome (&#39;mtCDS&#39;), partitioned per codon position,&nbsp;and a two mitochondrial/one nuclear marker dataset (&#39;2mt1nc&#39;). For each of the datasets, separate runs have been made in which the fossil calibration of Rallidae is applied to the stem of the present-day family (&#39;calRallidaeStem&#39;) or the crown node (&#39;calRallidaeCrown), and finally all runs have been replicated with three different starting seeds (&#39;seed_NNNNNNNNN&#39;, with the different seeds 123456789, 456789123, and 789123456).</p> <p>We provide raw output&nbsp;(<em>.log</em> and <em>.raw.trees</em>) as well as maximum clade credibility (&#39;mcc&#39;) trees (<em>.mcc.trees</em>), calculated after discarding 10% of the trees as burn-in, using median (&#39;heights_median&#39;) or mean (&#39;heights_mean&#39;) node heights as estimated node age.</p> <p>The runs used for Table 1 (and Figure 2) in the accompanying paper are:</p> <ul> <li>Dataset mtCDS, Rallidae calibration of stem: seed 123456789</li> <li>Dataset mtCDS, Rallidae calibration of crown: seed 456789123&nbsp;</li> <li>Dataset 2mt1nc, Rallidae calibration of stem: seed 789123456</li> <li>Dataset 2mt1nc, Rallidae calibration of crown: seed&nbsp;123456789</li> </ul> <p>This version of the data includes <em>Pellornis mikkelseni</em> among the fossils making up the calibration distribution for crown Gruiformes. In a previous version of this data deposit, that&nbsp;data point was represented by <em>Messelornis cristata </em>(see accompanying paper).</p>

opencc-by-4.0Sep 2020View details →
zenodo40/100

5 Modern Kitchen Ideas For Your Next Renovation

<p><strong>If you&#39;re one of those who love spending a lot of time in your cooking area and it is a huge part of your routine, then having your <a href="https://www.caliberkitchens.com.au/">kitchen renovations Canberra</a> would be a very pleasant upgrade for your most favourite part of the house. But, if you don&#39;t have any idea about where to start decorating your kitchen, here are a few modern ideas for you.&nbsp;</strong></p>

opencc-by-4.0Nov 2020View details →
zenodo40/100

FIG. 11 in Entre tradition classique et imaginaire germano-celtique: les monstres anthropomorphes des mers septentrionales, au Moyen Âge et au début de l'époque moderne

FIG. 11. — Sirène. Chapiteau de la cathédrale de Bâle, avant-choeur, fin XIIe siècle (cliché P. Heman, Bâle).

opencc-by-4.0Feb 2018View details →
zenodo40/100

FIG. 9 in Entre tradition classique et imaginaire germano-celtique: les monstres anthropomorphes des mers septentrionales, au Moyen Âge et au début de l'époque moderne

FIG. 9. — Ondine? Sirène? Psautier dit de Charlemagne, Saint-Riquier, 800. (Paris, BnF, lat. 13159,f. 13v). © Bibliothèque nationale de France, Paris.

opencc-by-4.0Feb 2018View details →
zenodo40/100

FIG. 7 in Entre tradition classique et imaginaire germano-celtique: les monstres anthropomorphes des mers septentrionales, au Moyen Âge et au début de l'époque moderne

FIG. 7. — Monachus maris. Thomas de Cantimpré, De natura rerum. Nord de la France, 1275-1290 (Valenciennes, B.M. 320, f. 117) © Bibliothèque municipale de Valenciennes.

opencc-by-4.0Feb 2018View details →

ScienceDex guides

Understand access before you commit

These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.

Compare curated 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.

allen-brain-atlas
neuroscienceopenDocumentation, web resources, and API references are available online.
Last verified 2026-04-30Open record

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.

abode-home-cage
behavioral-neuroscienceopenThe DataShare record exposes download links for annotations, documentation, license text, and the zipped per-snippet data directory.
Last verified 2026-04-30Open record

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.

dandi-nwb
electrophysiologyopenPublished Dandiset metadata and archive endpoints are available through the production DANDI API.
Last verified 2026-04-30Open record

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.

ibl
behavioral-neuroscienceopenPublic sessions can be searched and loaded from the IBL public data server through ONE.
Last verified 2026-04-29Open record

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.

openneuro
neuroscienceopenPublished datasets are available on demand over the internet.
Last verified 2026-04-29Open record