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.
129
datasets available to search
ShareScore release 0.9.0
Dataset results
129 results for “aw”
Figure 5 from: Campos-Rocha A, Meerow AW, Lopes EFM, Semir J, Mayer JLS, Dutilh JHA (2017) Eithea lagopaivae, a new critically endangered species in the previously monotypic genus Eithea Ravenna (Amaryllidaceae). PhytoKeys 85: 45-58. https://doi.org/10.3897/phytokeys.85.13369
Figure 5 - Comparative leaf anatomy of Eithea lagopaivae and E. blumenavia. A Cross section of the pseudopetiole of E. lagopaivae and B E. blumenavia C Cross section detail of the adaxial epidermis of E. lagopaivae and D E. blumenavia E Cross section of the leaf blade of E. lagopaivae and F E. blumenavia G Longitudinal paradermic section detail of the leaf blade, showing the arm-cells of the chlorenchyma in E. lagopaivae and H E. blumenavia (slide of stained fresh material) I Cross section of the leaf blade in the midrib region of E. lagopaivae and J E. blumenavia. * = arm-cell; ab = abaxial epidermis; ad = adaxial epidermis; ae = aerenchyma; ep = epidermis; vb = vascular bundle. Scales bars: 500 µm (A, B); 10 µm (C, D), 50 µm (E, F), 20 µm (G, H); 200 µm (I, J).
Figure 4 from: Campos-Rocha A, Meerow AW, Lopes EFM, Semir J, Mayer JLS, Dutilh JHA (2017) Eithea lagopaivae, a new critically endangered species in the previously monotypic genus Eithea Ravenna (Amaryllidaceae). PhytoKeys 85: 45-58. https://doi.org/10.3897/phytokeys.85.13369
Figure 4 - Distribution map showing collections of Eithea lagopaivae (red circles) and E. blumenavia (black diamonds). PR = Paraná. SC = Santa Catarina. SP = São Paulo.
Figure 1 from: Campos-Rocha A, Meerow AW, Lopes EFM, Semir J, Mayer JLS, Dutilh JHA (2017) Eithea lagopaivae, a new critically endangered species in the previously monotypic genus Eithea Ravenna (Amaryllidaceae). PhytoKeys 85: 45-58. https://doi.org/10.3897/phytokeys.85.13369
Figure 1 - Eithea lagopaivae A Habit in flower B Detail of leaf venation C Spathe bracts D Flower with perigone removed, showing stamens and style E Sepals and petals F Tips of sepals and petals F1 Upper sepal F2 Lateral petal F3 Lateral sepal F4 Lower petal G Detail of fimbriae of the paraperigone H Stigma I Longitudinal section of the ovary J Cross section of the ovary K Habit in fruit L Fruit M Seed.
Figure 3 from: Campos-Rocha A, Meerow AW, Lopes EFM, Semir J, Mayer JLS, Dutilh JHA (2017) Eithea lagopaivae, a new critically endangered species in the previously monotypic genus Eithea Ravenna (Amaryllidaceae). PhytoKeys 85: 45-58. https://doi.org/10.3897/phytokeys.85.13369
Figure 3 - Eithea blumenavia A Flowering plants in habitat B Lateral view of inflorescence C Detail of spathe bracts D Bracteoles (white arrow) E Sepals and petals (adaxial view) separated from stamens and style. B–E of Campos-Rocha 1624, UEC.
Figure 2 from: Campos-Rocha A, Meerow AW, Lopes EFM, Semir J, Mayer JLS, Dutilh JHA (2017) Eithea lagopaivae, a new critically endangered species in the previously monotypic genus Eithea Ravenna (Amaryllidaceae). PhytoKeys 85: 45-58. https://doi.org/10.3897/phytokeys.85.13369
Figure 2 - Eithea lagopaivae A Typical habitat (October 2016) B Individual plant flowering amid trash dumped at type locality C Flowering plant (Campos-Rocha 1647) D Flower buds E Flower, frontal view (Bernacci 4483) F Flower buds and flowers (Campos-Rocha 1654) G Plants in fruit H Mature capsule exposing the seeds I Seed (elaiosome indicated by the arrow).
Figure 1 from: Lehmann AW, Devriese H, Tumbrinck T, Skejo J, Lehmann GUC, Axel Hochkirch A (2017) The importance of validated alpha taxonomy for phylogenetic and DNA barcoding studies: a comment on species identification of pygmy grasshoppers (Orthoptera, Tetrigidae). ZooKeys 679: 139-144. https://doi.org/10.3897/zookeys.679.12507
Figure 1 - Neighbour-joining tree based upon the COI data, illustrating the clustering of the Chinese samples by Zhao et al. (2016) together with Paratettix and not Tetrix species, data extracted from the Barcoding of life project.
Figures 7-12 from: Lee S-G, Osborn AW, Ahn K-J (2016) A new species of Iotarphia Cameron (Coleoptera, Staphylinidae, Aleocharinae) from Tasmanian seacoasts, Australia. ZooKeys 632: 67-74. https://doi.org/10.3897/zookeys.632.10657
Figures 7-12 - Diagnostic characters of Iotarphia rufobrunnea sp. n.: 7 antenna 8 male tergite VIII, dorsal aspect 9 male sternite VIII, ventral aspect 10 median lobe, lateral aspect 11 median lobe, ventral aspect 12 paramere, lateral aspect. Scale bars = 0.1 mm.
Figures 2-6 from: Lee S-G, Osborn AW, Ahn K-J (2016) A new species of Iotarphia Cameron (Coleoptera, Staphylinidae, Aleocharinae) from Tasmanian seacoasts, Australia. ZooKeys 632: 67-74. https://doi.org/10.3897/zookeys.632.10657
Figures 2-6 - Mouthparts of Iotarphia rufobrunnea sp. n.: 2 labrum, dorsal aspect 3 right mandible, ventral aspect 4 right maxilla, ventral aspect 5 labium, ventral aspect 6 mentum, ventral aspect. Scale bars = 0.1 mm.
Figure 1 from: Burridge AK, Janssen AW, Peijnenburg KTCA (2016) Revision of the genus Cuvierina Boas, 1886 based on integrative taxonomic data, including the description of a new species from the Pacific Ocean (Gastropoda, Thecosomata). ZooKeys 619: 1-12. https://doi.org/10.3897/zookeys.619.10043
Figure 1 - Holotype and paratypes of Cuvierina tsudai and holotype of Cuvierina pacifica. A Holotype (RMNH.5004167) and B–I paratypes (RMNH.5004168-72) of Cuvierina tsudai and J holotype of Cuvierina pacifica (RGM 458.690) photographed in a ventral view. Photographs of RMNH.5004169-72 from Burridge et al. (2015); RMNH.5004167-68 taken by R. van der Hulst and RGM 458.692 taken by E.F. de Vogel, this study. RMNH = Naturalis Biodiversity Center, mollusc collection and RGM = Naturalis Biodiversity Center, fossil planktonic mollusc collection, Leiden.
Figure 2 from: Burridge AK, Janssen AW, Peijnenburg KTCA (2016) Revision of the genus Cuvierina Boas, 1886 based on integrative taxonomic data, including the description of a new species from the Pacific Ocean (Gastropoda, Thecosomata). ZooKeys 619: 1-12. https://doi.org/10.3897/zookeys.619.10043
Figure 2 - Shape variation in Cuvierina tsudai and Cuvierina pacifica by means of Relative Warp (RW) data. Ordination of RW data of Cuvierina tsudai and Cuvierina pacifica for the first ventral and apertural RWs (N = 167 excluding 1 specimen with only one orientation). On the X-axis, RW1 depicts 78.26% of the total ventral shape variation. On the Y-axis, 69.43% of the apertural shape variation is explained by its RW1. Shape variations depicted by ventral and apertural RW1 (with subsequent RWs = 0) are shown.
Figure 3 from: Oliver EGH, Forshaw N, Oliver IM, Volk F, Schumann AWS, Dorr LJ, Hoekstra RD, Musker SD, Nürk NM, Pirie MD, Rebelo AG (2024) Genus Erica: An identification aid version 4.00. PhytoKeys 241: 143-154. https://doi.org/10.3897/phytokeys.241.117604
Figure 3 Distribution data presented on a Google Earth map. The Quarter Degree Square (QDS) map references listed in the main aid are projected as grid squares with separate individual dots for openly available GBIF data in different colours for different taxa displayed. In this example, on clicking 'map distributions' whilst viewing the inclusive species Erica plukenetii, data points representing observations/specimens determined to species only are presented in red, with those determined to the five different subspecies presented in orange (ssp. bredensis), green (ssp. breviflora), dark blue (ssp. lineata), purple (ssp. penicillata), and light blue (ssp. plukenetii) respectively. On clicking on an individual dot, the underlying information is shown, including links where available, such as in this case an iNaturalist observation. Note that the QDS grid data derived from version 3.00 does not cover all the point data, and that there also isn't point data representing all the QDS. This could indicate errors and/or gaps in the data that are worth further investigation.
Figure 2 from: Oliver EGH, Forshaw N, Oliver IM, Volk F, Schumann AWS, Dorr LJ, Hoekstra RD, Musker SD, Nürk NM, Pirie MD, Rebelo AG (2024) Genus Erica: An identification aid version 4.00. PhytoKeys 241: 143-154. https://doi.org/10.3897/phytokeys.241.117604
Figure 2 The main screen of the Erica ID aid in 'view' mode. The top ribbon provides access to, from left to right, the different identification and view modes; separate windows for information sources (open below the ribbon); options for presenting data in the aid; and links to the help file, webpage, and version information. The open windows, clockwise from top left are the characters used for narrowing down possible species identifications with options underneath for showing and finding data within the ID aid or through external links ('map distributions' opens Google Earth); distribution (a list of QDS map references in which the taxon is found); subspecific taxa; synonyms presented with World Flora Online (WFO) links; and references, including where available a DOI link to the relevant taxonomic treatment.
Figure 1 from: Oliver EGH, Forshaw N, Oliver IM, Volk F, Schumann AWS, Dorr LJ, Hoekstra RD, Musker SD, Nürk NM, Pirie MD, Rebelo AG (2024) Genus Erica: An identification aid version 4.00. PhytoKeys 241: 143-154. https://doi.org/10.3897/phytokeys.241.117604
Figure 1 The publications of earlier versions of the Erica Identification Aid (formerly 'Interactive Identification Key'). Note: version 2.00 was published as Contributions from the Bolus Herbarium vol. 22, and version 3.00 as volume 23 idem.
Terraform and AWS CDK: A Comparative Analysis of Infrastructure Management Tools
Open the record for dataset details and reuse information.
Figure 2 from: Meerow AW, Silverstone-Sopkin PA, Zuluaga-Tróchez A, Sánchez-Taborda JA (2019) A remarkable new species of Pamianthe (Amaryllidaceae) from the Department of Cauca, Colombia. PhytoKeys 115: 73-82. https://doi.org/10.3897/phytokeys.115.30755
Figure 2 Pamiantheecollis. A Androecium, with staminal cup B Tip of outer tepal, showing apex and adaxial protuberance C Adaxial protuberance, showing glandular papillae D Opened ovary with ovules (ovules in two locules are visible) E Infructescence of living plant F Seeds, showing variation in shape A–D, F photographs by Juan Felipe Ortega-Giraldo, Laboratorio de Imágenes del Postgrado en Ciencias-Biología, Universidad del Valle, Cali, Colombia E photo by Laura Clavijo.
Figure 1 from: Meerow AW, Silverstone-Sopkin PA, Zuluaga-Tróchez A, Sánchez-Taborda JA (2019) A remarkable new species of Pamianthe (Amaryllidaceae) from the Department of Cauca, Colombia. PhytoKeys 115: 73-82. https://doi.org/10.3897/phytokeys.115.30755
Figure 1 Pamiantheecollis. APamiantheecollis growing in its native habitat, on a steep, rocky bank B Base of plant C Habit D Inflorescence E Flower, lateral view F Flower, front view A photo by Fredy Gómez-Ortiz B photo by Laura Clavijo C–F type collection, photographs taken in the field by Jhon A. Sánchez-Taborda.
Figure 4 from: Meerow AW, Silverstone-Sopkin PA, Zuluaga-Tróchez A, Sánchez-Taborda JA (2019) A remarkable new species of Pamianthe (Amaryllidaceae) from the Department of Cauca, Colombia. PhytoKeys 115: 73-82. https://doi.org/10.3897/phytokeys.115.30755
Figure 4 Strict branch and bound parsimony consensus tree of the Clinantheae, based on ITS sequences, with jackknife support values.
Figure 4 from: Meerow AW, Cano A (2019) Taxonomic novelties in Amaryllidaceae from the Department of Ancash, Peru, and a new combination in Clinanthus. PhytoKeys 131: 115-126. https://doi.org/10.3897/phytokeys.131.36160
Figure 4 A Plate 28 from Herbert (1837) with Stenomesson rubrum Herb. illustrated (number 6, red arrow). Stenomesson breviflorum Herb. is illustrated in the same plate (numbers 7 & 8, black arrows), evidence that Herbert considered these two different species B Painting of Coburgia coccinea Herb. [= Clinanthus ruber (Herb.) Meerow & A. Cano] that accompanied the description by Herbert (1841)CClinanthus ruber, photographed in Peru. Photo by Oscar de Viveroscar DClinanthus coccineus (Ruiz & Pav.) Meerow, loma form, photographed in Lima Dept., Peru. Photo by Norton Cuba Melly.
Figure 2 from: Meerow AW, Cano A (2019) Taxonomic novelties in Amaryllidaceae from the Department of Ancash, Peru, and a new combination in Clinanthus. PhytoKeys 131: 115-126. https://doi.org/10.3897/phytokeys.131.36160
Figure 2 Clinanthus inflatus. A Habit B whole flower C whole flower cut open to show staminal corona and ovule number. Drawing by Klei Sousa.
Figure 3 from: Meerow AW, Cano A (2019) Taxonomic novelties in Amaryllidaceae from the Department of Ancash, Peru, and a new combination in Clinanthus. PhytoKeys 131: 115-126. https://doi.org/10.3897/phytokeys.131.36160
Figure 3 Map of northern Peru showing type localities of Clinanthus inflatus (white circle) and Ismene parviflora (black square). Inset: map of South America with Peru filled in black.
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.