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.
6
datasets available to search
ShareScore release 0.9.0
Dataset results
6 results for “Saccocoma”
Fig. 6 in Functional anatomy and mode of life of the latest Jurassic crinoid Saccocoma
Fig. 6. Fifth (A), sixth (B, C), seventh (F, G) and more distal (H, I) secundibrachials of Saccocoma from Tithonian red Rogoża Coquina at Rogoźnik, Pieniny Klippen Belt, Poland. A, B, E, F, H, I. Saccocoma tenella (Goldfuss, 1831). A. ZPAL Ca.6/28, probably IIBr5, oral (A1) and aboral (A2) views. B. ZPAL Ca.6/29, probably IIBr6, oral (B1) and aboral (B2) views. E. ZPAL Ca.6/32, probably IIBr6 or 7, oral (E1) and aboral (E2) views. F. ZPAL Ca.6/30, probably IIBr7, oral (F1) and aboral (F2) view. H. ZPAL Ca.6/10, distal secundibrachial (IIBr8 and higher), oral (H1), proximal (H2), lateral (H3, proximal side right), and distal (H4) views. I. ZPAL Ca.6/31, distal brachial, lateral view (I1) and articulation facet (I2). C. Saccocoma sp., ZPAL Ca.6/34, probably IIBr6, oral (C1), aboral (C2), lateral/aboral (C3), and distal/aboral (C4) views. D. Saccocoma vernioryi Manni and Nicosia, 1984, ZPAL Ca.6/35, IIBr5, 6 or 7, oral (D1), aboral (D2), lateral (D3, proximal side left), proximal (D4), distal (D5), and lateral (D6, proximal side right) views. G. Saccocoma aff. vernioryi Manni and Nicosia, 1984, ZPAL Ca.6/33, probably IIBr7 or more distal secundibrachial, oral (G1), aboral (G2), and lateral (G3, proximal side right) views.
Fig. 4 in Functional anatomy and mode of life of the latest Jurassic crinoid Saccocoma
Fig. 4. First (A) and second (B–F) primibrachials of Saccocoma from Tithonian red Rogoża Coquina at Rogoźnik, Pieniny Klippen Belt, Poland. A, B. Saccocoma tenella (Goldfuss, 1831). A. ZPAL Ca.6/25, IBr1, oral (A1), aboral (A2), lateral (A3), proximal (A4), and distal (A5) views. B. ZPAL Ca.6/16, IBr2 (IAx), oral (B1), aboral (B2), lateral/oral (B3), and distal (B4) views. C. Saccocoma sp., ZPAL Ca.6/19, IBr2 (IAx), oral (C1), aboral (C2), and distal (C3) views. D, E.Saccocoma aff. vernioryi Manni and Nicosia, 1984. D. ZPAL Ca.6/18, IBr2 (IAx), oral (D1), aboral (D2), lateral (D3), distal (D4), and lateral/slightly aboral (D5) views. E. ZPAL Ca.6/17, IBr2 (IAx), oral (E1), aboral (E2), lateral/slightly aboral (E3), and distal (E4) views. F. S. vernioryi Manni and Nicosia, 1984, ZPAL Ca.6/20, IBr2 (IAx), oral (F1), aboral (F2), and lateral (F3) views.
Fig. 5 in Functional anatomy and mode of life of the latest Jurassic crinoid Saccocoma
Fig. 5. First or third (A), second (B–G) and fourth (H, I) secundibrachials of Saccocoma from Tithonian red Rogoża Coquina at Rogoźnik, Pieniny Klippen Belt, Poland. A, B, H, I. Saccocoma tenella (Goldfuss, 1831). A. ZPAL Ca.6/21, IIBr1 or 3, proximal (A1), lateral (A2, proximal side to the left), distal (A3), and aboral (A4) views. B. ZPAL Ca.6/15, IIBr2, oral (B1) and aboral (B2) views. H. ZPAL Ca.6/27, IIBr4, oral (H1) and aboral (H2) views. I. ZPAL Ca.6/26, IIBr4, oral (I1) and aboral (I2) views. C, D. Saccocoma tenella? (Goldfuss, 1831). C. ZPAL Ca.6/14, IIBr2, oral (C1) and aboral (C2) views. D. ZPAL Ca.6/13, IIBr2, oral (D1) and aboral (D2) views. E, F. Saccocoma aff. vernioryi Manni and Nicosia, 1984. E. ZPAL Ca.6/23, IIBr2, oral (E1) and aboral (E2) views. F. ZPAL Ca.6/22, IIBr2, oral (F1) and aboral (F2) views. G. Saccocoma vernioryi Manni and Nicosia, 1984, ZPAL Ca.6/24, IIBr2, oral (G1), aboral (G2), proximal (G3), distal (G4), and lateral/proximal views.
Fig. 3 in Functional anatomy and mode of life of the latest Jurassic crinoid Saccocoma
Fig. 3. Radials of Saccocoma from Tithonian red Rogoża Coquina at Rogoźnik, Pieniny Klippen Belt, Poland. A–E. Saccocoma tenella (Goldfuss, 1831). A. ZPAL Ca.6/01, exterior view. B. ZPAL Ca.6/02, exterior view. C. ZPAL Ca.6/03, exterior view. D. ZPAL Ca.6/09, interior view (D1) and details of the upper part (D2, enlarged twice). E. ZPAL Ca.6/12, interior view (E1) and details of the upper part (E2, enlarged twice); oral view (E3) and details of the articulation facet (E4, enlarged twice). F–I. Saccocoma vernioryi Manni and Nicosia, 1984. F. ZPAL Ca.6/11, oral view (F1) and details of the articulation facet (F2, enlarged twice). G. ZPAL Ca.6/08, interior view (G1) and muscle fields viewed from different angle (G2, enlarged twice). H. ZPAL Ca.6/06, exterior view. I. ZPAL Ca.6/05, exterior view.
Fig. 2 in Functional anatomy and mode of life of the latest Jurassic crinoid Saccocoma
Fig. 2. Arrangement and articulation of proximal brachials in Saccocoma tenella. Asterisks denote non−muscular (cryptosynarthrial) articulations. Not to scale.
Fig. 1 in Functional anatomy and mode of life of the latest Jurassic crinoid Saccocoma
Fig. 1. Restoration of Saccocoma tenella (Goldfuss, 1831). Some arms or their distal parts omitted for clarity (drawing by Jerzy Dzik based on a model constructed by the author).
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.