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.
767
datasets available to search
ShareScore release 0.9.0
Dataset results
767 results for “switzerland”
Fig. 5 in The first Jurassic coelacanth from Switzerland
Fig. 5 Skull of Libys callolepis sp. nov. on the part (holotype, NMBE 5034073). A Photos and B outline of the skull
Fig. 8 in The first Jurassic coelacanth from Switzerland
Fig. 8 Taxic diversity of coelacanths through time. A Number of observed coelacanth genera by Epoch and B Ratio of coelacanth genera by Epoch, calculated as the number of genera by Epoch per million of years. Dataset after Cavin et al. (2021a), with the addition of the occurrence of Libys in the Lower Jurassic
Fig. 14 in Postcranial osteology of the first early-stage juvenile skeleton of Plateosaurus trossingensis from the Norian of Frick, Switzerland
Fig. 14. Skeletal reconstruction of MSF 15.8B., preserved elements highlighted in white, grey elements restored following adult Plateosaurus skeletons SMNS 13200 (von Huene 1926) and GPIT 1 (Mallison 2010a, b).
Fig. 11 in Postcranial osteology of the first early-stage juvenile skeleton of Plateosaurus trossingensis from the Norian of Frick, Switzerland
Fig. 11. Femur, tibia, fibula, and proximal tarsus of juvenile Plateosaurus cf. trossingensis Fraas, 1913 skeleton MSF 15.8B. from the Norian of Frick, Switzerland. A. Left femur, MSF 15.8.565, in medial (A1), anterior (A2), lateral (A3), posterior (A4), proximal (A5), and distal (A6) views. B. Right femur, MSF 15.8.380, in lateral (B1), anterior (B2), and proximal (B3) views (note different effects of compaction). C. Left tibia, MSF 15.8.381, in anterior (C1), lateral (C2), medial (C3), proximal (C4), and distal (C5) views. D. Left fibula, MSF 15.8.518, in lateral (D1) and medial (D2) views. E. Right calcaneum, MSF 15.8.469, in proximal view. F. Right astragalus, MSF 15.8.585, in proximal (F1) and anterior (F2) views. G. Left astragalus, MSF 15.8.420, in proximal (G1) and anterior (G2) views.
Fig. 10 in Postcranial osteology of the first early-stage juvenile skeleton of Plateosaurus trossingensis from the Norian of Frick, Switzerland
Fig. 10. Pelvic girdle of juvenile Plateosaurus cf. trossingensis Fraas, 1913 skeleton MSF 15.8B. from the Norian of Frick, Switzerland. A. Left ilium, MSF 15.8.717, in lateral (A1) and medial (A2) views. B. Right ilium, MSF 15.8.486, in lateral (B1) and medial (B2) views (note differences due to effects of compaction). C. Right pubis, MSF 15.8.383, in lateral (C1) and anterior (C2) views. D. Articulated ischia, MSF 15.8.421, in posterior (D1) and right lateral (D2) views.
Fig. 9 in Postcranial osteology of the first early-stage juvenile skeleton of Plateosaurus trossingensis from the Norian of Frick, Switzerland
Fig. 9. Manus of juvenile Plateosaurus cf. trossingensis Fraas, 1913 skeleton MSF 15.8B. from the Norian of Frick, Switzerland. A. Left mc I (MSF 15.8.2032). B. Left mc II (MSF 15.8.480). C. Left mc IIII (MSF 15.8.668). D. Left mc IV (MSF 15.8.2033). E. Left mc V (MSF 15.8.597). In palmar (medial) (A1–E1) and dorsal (lateral) (A2–E2) views. F. Left p V-1 (MSF 15.8.671). G. Left p IV-1 (MSF 15.8.2014) and p IV-2 (MSF 15.8.2015). H. Left p III-1 (MSF 15.8.1077). I. Left p III-2 (MSF 15.8.677). J. Left p III-3 (MSF 15.8.481). In dorsal (lateral) view (F–J). K. Left u III (MSF 15.8.2018), in dorsal (lateral) (K1) and anterior (preaxial) (K2) views. L. Left p II-1 (MSF 15.8.489). M. Left p II-2 (MSF 15.8.477) in dorsal (lateral) view (L, M). N. Left u II (MSF 15.8.2017), in dorsal (lateral) (N1) and anterior (preaxial) (N2) views. O. Left p I-1 (MSF 15.8.467), in dorsal (lateral) view. P. Left u I (MSF 15.8.2016), in dorsal (lateral) (P1) and anterior (preaxial) (P2) views. Q. Right distal carpal I (MSF 15.8.2013). R. Right distal carpal II (MSF 15.8.406). In proximal view (Q, R).
Fig. 7 in Postcranial osteology of the first early-stage juvenile skeleton of Plateosaurus trossingensis from the Norian of Frick, Switzerland
Fig. 7. Pectoral girdle of juvenile Plateosaurus cf. trossingensis Fraas, 1913 skeleton MSF 15.8B. from the Norian of Frick, Switzerland. A. Left scapula, MSF 15.8.55. B. Right scapula, MSF 15.8.870. C. Left coracoid, MSF 15.8.552. D. Right coracoid, MSF 15.8.1035. All in lateral (external) views.
Fig. 4 in Postcranial osteology of the first early-stage juvenile skeleton of Plateosaurus trossingensis from the Norian of Frick, Switzerland
Fig. 4. Middle and posterior dorsal vertebrae of juvenile Plateosaurus cf. trossingensis Fraas, 1913 skeleton MSF 15.8B. from the Norian of Frick, Switzerland. A. Dorsal vertebra 6, MSF 15.8.654 (neural arch) and MSF 15.8.906 (centrum), in left lateral (A1), dorsal (A2), ventral (A3), anterior (A4), and posterior (A5) views. B. Dorsal vertebra 7, MSF 15.8.1076 (neural arch) and MSF 15.8.437 (centrum), in left lateral (B1), dorsal (B2), ventral (B3), anterior (B4), and posterior (B5) views. C. Dorsal vertebra 8, MSF 15.8.885, in left lateral (C1), dorsal (C2), ventral (C3), anterior (C4), and posterior (C5) views. D. Dorsal vertebrae 9 or 10, MSF 15.8.728 (neural arch) and MSF 15.8.679 (centrum), in left lateral (D1), dorsal (D2), ventral (D3), anterior (D4), and posterior (D5) views. E. Dorsal vertebra 12, MSF 15.8.468 (neural arch) and MSF 15.8.2007 (centrum), in left lateral (E1), dorsal (E2), ventral (E3), anterior (E4), and posterior (E5) views. Scale bars 10 mm.
Fig. 8 in Postcranial osteology of the first early-stage juvenile skeleton of Plateosaurus trossingensis from the Norian of Frick, Switzerland
Fig. 8. Humerus and antebrachium of juvenile Plateosaurus cf. trossingensis Fraas, 1913 skeleton MSF 15.8B. from the Norian of Frick, Switzerland. A. Right humerus, MSF 15.8.825, in lateral (A1), anterior (A2), medial (A3), and posterior (A4) views. B. Left humerus, MSF 15.8.520, in lateral (B1) and anterior (B2) views (note effects of compaction). C. Left radius, MSF 15.8.526 and ulna, MSF 15.8.525, in lateral view (C1) and left ulna, in anterior view with radius not shown (C2). D. Right radius, MSF 15.8.680, in lateral view.
Fig. 3 in Postcranial osteology of the first early-stage juvenile skeleton of Plateosaurus trossingensis from the Norian of Frick, Switzerland
Fig. 3. Anterior dorsal vertebrae of juvenile Plateosaurus cf. trossingensis Fraas, 1913 skeleton MSF 15.8B. from the Norian of Frick, Switzerland. A. Centrum of?dorsal vertebra 1, MSF 15.8.2003, in left lateral view. B. Dorsal vertebra 2, MSF 15.8.908 (neural arch) and MSF 15.8.978 (centrum), in left lateral (B1), dorsal (B2), ventral (B3), anterior (B4), and posterior (B5) views. C. Dorsal vertebra 3, MSF 15.8.2004 (neural arch) and MSF 15.8.2005 (centrum), in left lateral (C1), dorsal (C2), ventral (C3), anterior (C4), and posterior (C5) views. D. Dorsal vertebra 4, MSF 15.8.477, in left lateral (D1), dorsal (D2), ventral (D3), anterior (D4), and posterior (D5) views. E. Dorsal vertebra 5, MSF 15.8.2006, in left lateral (E1), dorsal (E2), ventral (E3), anterior (E4), and posterior (E5) views. Centra are only depicted in lateral view. Scale bars 10 mm.
Fig. 13 in Postcranial osteology of the first early-stage juvenile skeleton of Plateosaurus trossingensis from the Norian of Frick, Switzerland
Fig. 13. Comparative plot of zygapophyseal lengths of Plateosaurus neural arches. Note size difference between large juvenile (MSF 15.8B.) and adult neural arches described by Hofmann and Sander (2014).
Fig. 12 in Postcranial osteology of the first early-stage juvenile skeleton of Plateosaurus trossingensis from the Norian of Frick, Switzerland
Fig. 12. Pes of juvenile Plateosaurus cf. trossingensis Fraas, 1913 skeleton MSF 15.8B. from the Norian of Frick, Switzerland. A. Left pes, MSF 15.8.2019, in dorsal (A1) and medial (A2) views. B. Distal tarsal III or IV, MSF 15.8.823, in distal view. C. Right metatarsal V, MSF 15.8.826, in dorsal anterior) view.
Fig. 5 in Postcranial osteology of the first early-stage juvenile skeleton of Plateosaurus trossingensis from the Norian of Frick, Switzerland
Fig. 5. Sacral and caudal vertebrae of juvenile Plateosaurus cf. trossingensis Fraas, 1913 skeleton MSF 15.8B. from the Norian of Frick, Switzerland. A. Sacral neural arch, MSF 15.8.558, in left lateral (A1), dorsal (A2), ventral (A3), anterior (A4), and posterior (A5) views. B. Anterior caudal neural arch, MSF 15.8.889, in left lateral view. C. Mid-caudal neural arch, MSF 15.8.972, in left lateral (C1), anterior (C2), and posterior (C3) views. D. Mid-caudal neural arch, MSF 15.8.476, in left lateral view (note fused transverse process). E. Distal caudal vertebra, MSF 15.8.371 (note closed neurocentral suture), in left lateral view. F. Proximal caudal centrum, MSF 15.8.2008, in lateral view. G. Proximal caudal centrum, MSF 15.8.488, in lateral (G1) and ventral (G2) views. H. Proximal caudal centrum, MSF 15.8.975, in lateral view. I. Mid-caudal centrum, MSF 15.8.1058, in lateral view. Scale bars 10 mm.
Fig. 2 in Postcranial osteology of the first early-stage juvenile skeleton of Plateosaurus trossingensis from the Norian of Frick, Switzerland
Fig. 2. Cervical vertebrae of juvenile Plateosaurus cf. trossingensis Fraas, 1913 skeleton MSF 15.8B. from the Norian of Frick, Switzerland. A. Cervical vertebra 2 (axis), MSF 15.8.2001, in left lateral (A1), dorsal (A2), anterior (A3), posterior (A4), and ventral (A5) views. B. Cervical vertebra 3, MSF 15.8.669 (neural arch) and MSF 15.8.936 (centrum), in left lateral (B1), dorsal (B2), anterior (B3), posterior (B4), and ventral (B5) views, C. Cervical vertebra 4, MSF 15.8.1032 (neural arch) and MSF 15.8.979 (centrum), in left lateral (C1), dorsal (C2), anterior (C3), posterior (C4), and ventral (C5) views. D. Cervical vertebra 6, MSF 15.8.2002 (neural arch) and MSF 15.8.592 (centrum), in left lateral (D1), dorsal (D2), ventral (D3), anterior (D4), and posterior (D5) views. E. Cervical vertebra 9, MSF 15.8.671 (neural arch) and MSF 15.8.905 (centrum), in left lateral (E1), dorsal (E2), ventral (E3), anterior (E4), and posterior (E5) views. F. Cervical vertebra 1 (atlas), MSF 15.8.2000, in?anterior view. Centra are omitted in ventral view to show neural arch. Scale bars 10 mm.
Dataset: First Trust Switzerland AlphaDEX Fund (FSZ) Stock Performance
This dataset provides historical stock market performance data for specific companies. It enables users to analyze and understand the past trends and fluctuations in stock prices over time. This information can be utilized for various purposes such as investment analysis, financial research, and market trend forecasting.
Data on the administrative workload and perceived administrative burden of farmers in Switzerland
<table> <tbody> <tr> <td> <p>We present data from a paper-and-pencil survey of Swiss farmers. The survey was mailed to 2,000 randomly selected Swiss farmers from the two largest Swiss language regions (German and French) in February 2019. A reminder was sent in April 2019. The response rate was around 40% (N = 808). In the main part of the survey, we collected quantitative data on farmers’ workload and perceived burden due to (1) overall farming activities, (2) administrative activities related to the application of direct payments, and (3) other office work related to farm planning, bookkeeping, purchasing, and sales. We also asked farmers to rate their current workload and perceived administrative burden compared to five years earlier. We also collected data on the perceived burden of using e-government services, the administrative workload of various voluntary direct payment schemes, and the workload of inspections and sanctions. We collected personal information about the farmers, such as age, education, work experience on the farm, work outside the farm, and their political activities (e.g. as a board or executive member in political or agricultural organisations). Finally, the farmers were asked to rate a series of statements regarding agricultural policy measures, the importance of inspection measures, the obligation to provide proof of eligibility for direct payments, information on current policy measures, and the justification of penalties for non-compliance with environmental or animal welfare standards. The survey results showed that, on average, Swiss farmers spent 3–5% of their total working time on administrative tasks. Based on a 60-hour working week, this means that, on average, farmers spent about 1.8–3 hours per working week on administrative activities. The farmers rated the perceived burden of administrative activities as higher than the burden of overall farming activities or other office work. The results also showed that the time spent on administrative activities and the associated perceived administrative burden had increased compared to five years earlier. Finally, the results showed that 28% of the Swiss farmers had received a penalty for non-compliance with direct payment regulations.</p> <p> </p> </td> </tr> </tbody> </table>
Plate XXV, Fig. M.1 – River Cold Sense, near Zollhaus (FR), Switzerland, late March. Rare example of type A and type B in near syntopy. Black arrow: nymphal biotope of type A; white arrow: of type B. in Steps towards a revision of the Perla bipunctata Pictet, 1833 species complex (Plecoptera: Perlidae)
Plate XXV, Fig. M.1 – River Cold Sense, near Zollhaus (FR), Switzerland, late March. Rare example of type A and type B in near syntopy. Black arrow: nymphal biotope of type A; white arrow: of type B.
Fig. 9 in Pleistocene South American native ungulates (Notoungulata and Litopterna) of the historical Roth collections in Switzerland, from the Pampean Region of Argentina
Fig. 9 Cervical (C2–7) and thoracic (T1–5) vertebrae of Macrauchenia patachonica (PIMUZ A/V 5700). A1–3 Second cervical vertebra (C2) in anterior (A1), left lateral (A2), and ventral (A3) views. B1–3 Third cervical vertebra (C3) in anterior (B1), left lateral (B2; mirrored), and ventral (B3) views. C1–3 Fourth cervical vertebra (C4) in anterior (C1), left lateral (C2), and ventral (C3) views. D1–3 Fifth cervical vertebra (C5) in anterior (D1), left lateral (D2), and ventral (D3) views. E1–3 Sixth cervical vertebra (C6) in anterior (E1), left lateral (E2; mirrored), and ventral (E3) views. F1–3 Seventh cervical vertebra (C7) in anterior (F1), left lateral (F2), and ventral (F3) views. G1–3 First thoracic vertebra (T1) in anterior (G1), left lateral (G2; mirrored), and ventral (G3) views. H1–3 Second thoracic vertebra (T2) in anterior (H1), left lateral (H2), and ventral (H3) views. I1–3. Third thoracic vertebra (T3) in anterior (I1), left lateral (I2), and ventral (I3) views. J1–3. Fourth thoracic vertebra (T4) in anterior (J1), left lateral (J2), and ventral (J3) views. K1–3 Fifth thoracic vertebra (T5) in anterior (K1), left lateral (K2; mirrored), and ventral (K3) views. ant fov anterior costal fovea, dor dorsal, fov tran costal fovea of transverse process, nu can nutrient canal, odon proc odontoid process, postzyg postzygapophysis, pos fov posterior costal fovea, prezyg prezygapophysis, spin proc spinous process, tr for transverse foramen, tr proc transverse process, tub small posterior transverse process tubercle, vent ventral
Fig. 8 in Pleistocene South American native ungulates (Notoungulata and Litopterna) of the historical Roth collections in Switzerland, from the Pampean Region of Argentina
Fig. 8 Upper dentition of Macraucheniidae. A Illustration of a Cramauchenia normalis upper molar (M1) indicating the cusps and cristae. B Illustration of a Theosodon lydekkeri upper molar (M1) indicating the cusps and cristae. C Illustration of a Macrauchenia patachonica upper molar (M1) indicating the cusps and cristae. D–F Relatively unworn left upper molar (M2) of Ma. patachonica (PIMUZ A/V 4119) in occlusal (D), lingual (E), and mesial (F) views. G–I. Worn right upper molar (M2; here mirrored) of Ma. patachonica (PIMUZ A/V 4118) in occlusal (G), lingual (H), and mesial (I) views. J–L. Unworn right deciduous premolar (dP4; here mirrored) of Ma. patachonica (MHNG GEPI V3659) in occlusal (J), buccal (K), and lingual (L) views. M Left maxilla fragment with P4, M1–2 of Ma. patachonica (MHNG GEPI V3659). The illustration of C. normalis' M1 in A of was based on the specimens MLP 83-III-2–1 and MLP 85-V-VII-3-38a. The illustration of T. lydekkeri' s M1 in B was based on the specimens MACN-A 9269–88 and YPM VPPU 015717.The illustration of Ma. patachonica's M1 in C was based on the specimen MACN-PV 11361, among other specimens. In A–C, the labels of controversial structures are in bold and relevant cusps are highlighted in different colours: blue for paraconule, red for protocone, green for metaconule, yellow for hypocone, and dark yellow for hypocone–metaconule. Notice that even though the dP4 (J–L) and the maxilla fragment with P4, M1–2 (M) share the same specimen number (MHNG GEPI V3659), these are from different individuals considering their different and incompatible ontogenetic stage (see the extreme wear in the permanent P4 in M). dif distolingual fossette, ecg ectocingulum, ets entostyle, hy hypocone, hy-mtl hypocone–metaconule, lmef lingual median fossete, maf mesiolabial fossette, me metacone, mef median fossette, mif mesiolingual fossette, ms mesostyle, mt metastyle, mtl metaconule, pa paracone, pcg precingulum, pplc preparaconule crista, pprc preprotocrista, pr protocone, prl paraconule, ps parastyle, pscg postcingulum, psmlc postmetaconule crista, psplc postparaconule crista, psprc postprotocrista, tb trigon basin
Fig. 10 in Pleistocene South American native ungulates (Notoungulata and Litopterna) of the historical Roth collections in Switzerland, from the Pampean Region of Argentina
Fig. 10 Right forelimb of Macrauchenia patachonica (PIMUZ A/V 5700). A–C Scapula in lateral (A), medial (B), and distal (C) views. D–H Humerus in proximal (D), anterior (E), posterior (F), medial (G), and lateral (H) views. I–J Ulna-radius in anterior (I) and posterior (J) views. K Manus (carpals, metacarpals and phalanges) in anterior view. In E the olecranon fossa was restored, so it in PIMUZ is not as deep as it should be. In K the carpals and metacarpals were glued together with the different elements in the right position, but in many cases with a wrong orientation (e.g., pisiform and Mc IV). In addition, the ungual phalanx of the third digit is fragmentary, preserving only its distomedial portion. ae aliform expansion of the radius, bg bicipital groove; ca, capitulum, ce capitular eminence, ch crest of the humerus, ctm crista tuberculi minoris, cu cuneiform, dpc deltopectoral crest, dt deltoid tuberosity, gl glenoid cavity; gt, greater tubercle, h head of the humerus, hp hamatus process, ht humeral trochlea, if fossa infraspinata, it intermediate tubercle, le lateral epicondyle, lt lesser tubercle; lu lunate, ma magnum, mcp medial coronoid process (processus coronoideus medialis), me medial epicondyle, of olecranon fossa, ol olecranon (tuber olecrani), pa anconeal process (processus anconeus), pi pisiform, ra radius, rf radial fossa; rt, radial or bicipital tuberosity (tuberositas radii), sc scaphoid, scn scapular notch, sf fossa supraspinata, shp suprahamatus process, sp styloid process (processus styloideus), sr supracondylar ridge, st supraglenoid tubercle, tr trapezium, trd trapezoid, trl tricipital line, tsp tuber of the scapular spine, ttm tuberosity of the teres major, ul ulna, un unciform
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.