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.
14
datasets available to search
ShareScore release 0.9.0
Dataset results
14 results for “Rosoideae”
FIGURE 8. Tetraglochin cristata—a in Taxonomic revision of the genus Tetraglochin (Rosaceae, Rosoideae) and morphometric analysis of its species
FIGURE 8. Tetraglochin cristata—a general aspect of a branch; b detail of a petiole-rachis axis of a macroblast with leaflets; c flower; d winged hypanthium covering the fruit, showing the wings with opaque rays and dentate margins; e trasversal section of the hypanthium and fruit. a–e from Zuloaga et al. 13058.
FIGURE 2 in Taxonomic revision of the genus Tetraglochin (Rosaceae, Rosoideae) and morphometric analysis of its species
FIGURE 2. Phenogram representing the Euclidean distances obtained by UPGMA among species of Tetraglochin.
FIGURE 7. Tetraglochin caespitosa—a in Taxonomic revision of the genus Tetraglochin (Rosaceae, Rosoideae) and morphometric analysis of its species
FIGURE 7. Tetraglochin caespitosa—a general aspect of the plant; b detail of a leaf of a macroblast, showing the sheating base, the petiole and the compound leaf blade; c two flowers; d irregular winged hypanthium covering the fruit; e trasversal section of the hypanthium and fruit. a–e from Zuloaga et al. 14805.
FIGURE 4. Tetraglochin acanthocarpa—a in Taxonomic revision of the genus Tetraglochin (Rosaceae, Rosoideae) and morphometric analysis of its species
FIGURE 4. Tetraglochin acanthocarpa—a general aspect of the plant; b detail of several leaves of a macroblast and a flower; c and d details of a leaves of a macroblast, showing the sheating base, the petiole and the compound leaf blade; e flower; f thorny indurated hypanthium covering the fruit; g trasversal section of the hypanthium and fruit. a-g from Barboza et al. 2393.
FIGURE 1 in Taxonomic revision of the genus Tetraglochin (Rosaceae, Rosoideae) and morphometric analysis of its species
FIGURE 1. Details of some vegetative characters considered for morphometric analyses. a: sector of a macroblast in Tetraglochin alata; the leaves of the macroblast present sheating petiolar base and thorny petiole-rachis axis, as the leaflets are deciduous; b: leaf of a macroblast in T. caespitosa; c: sector of a macroblast in T. andina.
FIGURE 6. Tetraglochin andina—a in Taxonomic revision of the genus Tetraglochin (Rosaceae, Rosoideae) and morphometric analysis of its species
FIGURE 6. Tetraglochin andina—a general aspect of a branch; b detail of a macroblast showing several thorny petiole-rachis axis without leaflets, and groups of axilar brachiblasts with compound leaves and flowers; c detail of a leaf of a macroblast, showing the sheating base, the petiole and the compound leaf blade; d flower; e winged hypanthium covering the fruit; f trasversal section of the hypanthium and fruit. a–f from Zuloaga et al. 12046.
FIGURE 3 in Taxonomic revision of the genus Tetraglochin (Rosaceae, Rosoideae) and morphometric analysis of its species
FIGURE 3. Plot of the canonical discriminant analysis from the morphometric data. a: plot of the canonical axis 1 vs. canonical axis 2; b: plot of the canonical axis 1 vs. canonical axis 3.
FIGURE 5. Tetraglochin alata. var. alata—a in Taxonomic revision of the genus Tetraglochin (Rosaceae, Rosoideae) and morphometric analysis of its species
FIGURE 5. Tetraglochin alata. var. alata—a general aspect of a branch; b detail of a long thorny petiole-rachis axis of a macroblast without leaflets; c general aspect of a macroblast with short thorny petiole-rachis axis; d detail of a short thorny petiole-rachis axis; e winged hypanthium covering the fruit; f trasversal section of the hypanthium and fruit. Tetraglochin alata var. ameghinoi—g winged hypanthium covering the fruit; h trasversal section of the hypanthium and fruit. a–b, e–f from Gentili 162; c–d from Morrone 6032; g–h from Zuloaga 13961.
FIGURE 9. Tetraglochin inermis—a in Taxonomic revision of the genus Tetraglochin (Rosaceae, Rosoideae) and morphometric analysis of its species
FIGURE 9. Tetraglochin inermis—a general aspect of the plant; b detail of a leaf of a macroblast, showing the sheating base and the leaflets (petiole-rachis axis absent); c detail of a flower and leaves; d globose hypanthium with narrow wings, covering the fruit; e trasversal section of the hypanthium and fruit. a–e from Zuloaga et al. 13169.
FIGURE 4 in Is Rosa × archipelagica (Rosaceae, Rosoideae) really a spontaneous intersectional hybrid between R. rugosa and R. maximowicziana? Molecular data confirmation and evidence of paternal leakage
FIGURE 4. Fragments of electropherograms of four sequences (Rosa maximowicziana max7, R. × archipelagica arc4, R. × archipelagica arc3, and R. rugosa rug2) of ndhC–trnV IGS. Blue rectangles indicate substitutions in 117, 173, and 185 positions of the alignment, and an indel T/- in the 228th position of the alignment, differing Rosa maximowicziana and R. rugosa. The sequence arc4 possesses double peaks in corresponding positions, the sequence arc3 is identical to that of max7.
FIGURE 2. Rosa maximowicziana. A. Flowers. B in Is Rosa × archipelagica (Rosaceae, Rosoideae) really a spontaneous intersectional hybrid between R. rugosa and R. maximowicziana? Molecular data confirmation and evidence of paternal leakage
FIGURE 2. Rosa maximowicziana. A. Flowers. B. Fruits. Rosa × archipelagica. C. Flowering plants. Rosa rugosa. D. Flowers. E. Fruits. Scale bar: A–B, D–E = 5 cm; C = 10 cm. A, B, E: photo by Ivan Schanzer; C, D: photo by Elena Chubar.
FIGURE 1 in Is Rosa × archipelagica (Rosaceae, Rosoideae) really a spontaneous intersectional hybrid between R. rugosa and R. maximowicziana? Molecular data confirmation and evidence of paternal leakage
FIGURE 1. Sample locations: 1–Russkiy Island (max1, max2); 2–Popova Island (max5, rug3); 3–Poima River (max13); 4–Stenina Island (arc1, arc2, arc3, arc4, max10, max11, rug9, rug10); 5–Bolshoy Pelis Island (max8, max9, rug6, rug7, rug8); 6–Cape Astafyeva (rug11, rug12); 7–Posyet (max3, max4, rug2); 8–Krabbe Peninsula (max12); 9–Very Island (max7, rug5); 10–Kievka village, sea shore (rug4); 11–Kievka village, meadow (max6).
Data from: Molecular phylogeny and morphological analysis of Tetraglochin (Rosaceae: Rosoideae: Sanguisorbeae) and recognition of the new species T. andina
Open the record for dataset details and reuse information.
FIGURE 3. A in Is Rosa × archipelagica (Rosaceae, Rosoideae) really a spontaneous intersectional hybrid between R. rugosa and R. maximowicziana? Molecular data confirmation and evidence of paternal leakage
FIGURE 3. A. The ML tree based on plastid data. B. The ML tree based on ITS data.
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.