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.
191
datasets available to search
ShareScore release 0.9.0
Dataset results
191 results for “ICON”
Dataset: ICON Public Limited Company (ICLR) 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.
Figure 4. After merging, overview is more transparent. Tens of persons were merged together into clusters in order to clarify the visualization. Firms and persons are recognized based on their icons.-Browsing Semantic Data in Slovakia
<p>The usefulness of such visualization has its key points regarding connections. Thanks to SBR browsing module, we were able to get 22 firm records for “Váhostav” query. Between any 2 companies, connections may be (and often are) not bidirectional, so, in order to navigate through connections, we have refined all 22 records. Although, even being filtered, graph is still complex. And it is possible to further navigate and search for outgoing connections, for example firm “MERLIN TRADE, a.s.” on Fig.4 contains item on “Ján Kato”, which is already included in our graph and connected to “VÁHOSTAV&SK&DEVELOPEMENT” on bottom left side and “VÁHOSTAV&SK, a.s.” in the center. Edge coloring and drawing is helpful with overlapped edges. For methods of visualization, including coloring, we refer to studies of H. Omote and K. Sugiyama (2006), and I. Herman, G. Melanon, and M. S. Marshall (2000) or our study on graph clutter filtering and connectivity distance (Mojzis & Laclavik, 2014).</p>
High resolution ICON simulation over the Tropical Atlantic
<p>This dataset contains binary info on liquid water content of an ICON simulation performed over the subtropics. Detailed information available in the readme file. This data is used in the publication titled: On the size dependence of cumulus cloud spacing.</p> <p> </p>
Fig. 5 in Hiding in the bushes for 110 years: rediscovery of an iconic Angolan gecko (Afrogecko ansorgii Boulenger, 1907, Sauria: Gekkonidae)
Fig. 5. Kalotermitid termites active on blackthorn bushes at type locality. (A) Hollow branch in tree. (B) Termite soldier and evidence of wood excavation. (C) Termite and eggs inside branch. (D) Workers active inside hollow branch.
Fig. 2 in Hiding in the bushes for 110 years: rediscovery of an iconic Angolan gecko (Afrogecko ansorgii Boulenger, 1907, Sauria: Gekkonidae)
Fig. 2. Afrogecko ansorgii: adult male, PEM R23907 (in life). (A) Whole body on small branch of Senegalia mellifera detinens with epiphytic lichen. (B) Close up of head of same adult male. (C) Afrogecko ansorgii: adult female, PEM R23912 (in life) on small branch of Senegalia mellifera detinens. (D) Close up of head of same adult female. Note elongate, subcylindrical body, relatively short cylindrical tail that is shorter than SVL and partially prehensile, long toes with expanded terminal scansors, predominantly dark brown dorsal coloration, and dorsolateral series of irregular pale blotches that extend on to the tail.
Fig. 1 in Hiding in the bushes for 110 years: rediscovery of an iconic Angolan gecko (Afrogecko ansorgii Boulenger, 1907, Sauria: Gekkonidae)
Fig. 1. Travel routes in Angola by Dr. Ansorge between 1904 and 1906, as per Chapin's manuscript. Former district (broadly corresponding to current provinces) borders are shown, as well as collecting sites and other relevant localities.
Fig. 4 in Hiding in the bushes for 110 years: rediscovery of an iconic Angolan gecko (Afrogecko ansorgii Boulenger, 1907, Sauria: Gekkonidae)
Fig. 4. Habitat of Afrogecko ansorgii. (A) IsOlated granite OutcrOp beside the dry COcumba stream near its cOnfluence with COnjO Stream (12°52'S, 13°21'E, 355 m asl), the correct site of Boulenger's type locality 'Maconjo' for Phyllodactylus ansorgii and Mabouia laevis. (B) Spiny savanna of Senegalia mellifera detinens with Terminalia prunioides and Aloe littoralis at the type locality. (C) Scattered blackthorn bushes subject to thick morning fog and covered with lichen within which Afrogecko ansorgii was rediscovered. (D) Aerial view of dry spiny savannah at the head of a valley leading down to Cape Sta Maria, Benguela Province (13°31'S, 12°38'E, 288 m asl).
Fig. 3 in Hiding in the bushes for 110 years: rediscovery of an iconic Angolan gecko (Afrogecko ansorgii Boulenger, 1907, Sauria: Gekkonidae)
Fig. 3. Afrogecko ansorgii in its biotope, the termite-hollowed, thin branches of Senegalia mellifera detinens. (A) Coming out of a hollow blackthorn twig. (B) Specimen caught trapped inside a blackthorn branch.
Fig. 6 in Hiding in the bushes for 110 years: rediscovery of an iconic Angolan gecko (Afrogecko ansorgii Boulenger, 1907, Sauria: Gekkonidae)
Fig. 6. (A) Specimen of Psammophis leopardinus foraging at night on a blackthorn bush at Maconjo, possibly preying on A. ansorgii. (B) First topotypic material of Trachylepis laevis cOllected in Over 110 years, FKH0018 in life; nOte flattened bOdy adapted to shelter among tight rocky spaces.
Fig. 7 in Hiding in the bushes for 110 years: rediscovery of an iconic Angolan gecko (Afrogecko ansorgii Boulenger, 1907, Sauria: Gekkonidae)
Fig. 7. (A) Female Afrogecko ansorgii from Maconjo, FKH0007, gravid with two eggs. Note enlarged precloacal scales and presence of one cloacal spur. (B) Cloacal region of male A. ansorgii, FKH0008. Note single chevron row of nine precloacal pores, hemipenial bulges (as paired light swellings) and cloacal spurs (small white tubercular scales on lateral surfaces of tail base) in the male. (C) Cloacal region of female A. ansorgii, FKH0009. Note lack of precloacal pores on the chevron row of enlarged scales or of enlarged tubercular lateral scales on tail base. Both sexes have delicate elongate toes with a single pair of terminal scansors. The cylindrical tail is finely scaled, and nOn-verticillate, lacking ObviOus lateral constrictions.
Domain Nesting in ICON and its Application to AMIP Experiments with Regional Refinement
<p>Model output generated with the new configuration of ICON-A described in the corresponding publication submitted to the Journal of Advances in Modeling the Earth System (American Geophysical Union). Data from the reference experiment is included as well.</p>
Exploring Augmented Reality Privacy Icons for Smart Home Devices and their Effect on Users' Privacy Awareness
<p><strong>Exploring Augmented Reality Privacy Icons for Smart Home Devices and their Effect on Users' Privacy Awareness</strong></p> <p><strong>Authors</strong></p> <p>Kathrin Knutzen, Florian Weidner, Wolfgang Broll</p> <p> </p> <p><strong>About</strong></p> <p>This data represents the supplementary material for the conference paper with above title submitted at ISMAR 2021.</p> <p> </p> <p><strong>Contents</strong></p> <p>The supplementary material contains five files:</p> <ol> <li>The abstraction of paraphrases and transcripts after each condition respectively.<br> According to qualitative content analysis procedure, the conducted interviews were transcribed, paraphrased and subsequently abstracted to generate a category system. Every category is described with a definition and some exemplary quotes. Statements of participants are condensed and abstracted. Number of participants who made statements regarding a category, and most prominent valence are taken as basis to generate tree maps in Figure 5 and 6.<br> Please note that the prevalences represent the views or opinions of the participants on the single categories. Also, the mentioned categories have several subcategories and only the most important regarding privacy awareness are mentioned in the article.<br> <br> Transcripts, audio files and paraphrases are available upon request.</li> <li>The experimental task description. It served as exposition for the task that the participants had to complete.</li> <li>The interview guideline. Please note that this study was part of a larger project that also focused on topics such as usability and immersion, however, the article reports only on privacy awareness.</li> <li>The R script file to generate the tree maps in Figures 5 and 6. The dataset is created using data from the abstraction Excel sheet.</li> <li>A demonstration video of the experimental setup.</li> </ol>
Survey Comics and Education. ICOn MICs CA19119 Validation 2021
<p>Survey "Comics and education" of the WG5 of the COST ICOnMICs action. Presentation at Teaching with comics Congress, Valencia. Presentation of the validated survey. Results (anonymous) of the validation by the members of the working group 5.</p> <p>More information on: <a href="https://iconmics.hypotheses.org/2140">https://iconmics.hypotheses.org/2140</a></p>
Effect of Vertical Shear in the Zonal Wind on Equatorial Electrojet Sidebands: An Observational Perspective Using Swarm and ICON Data
<p>This data set consists of outputs from the EEJ model by Richmond (1973). The data provided is used in the manuscript titled 'Effect of Vertical Shear in the Zonal Wind on Equatorial Electrojet Sidebands: An Observational Perspective Using Swarm and ICON Data' by J. Sreelakshmi et al.</p> <p>Abstract of the manuscript:</p> <p>The wind dynamo in the ionosphere leads to differential motion of ions and electrons, which in turn sets up electric fields and currents. Observations show that daytime lower thermospheric horizontal winds have large vertical gradients. Numerical modelling conducted approximately 50 years ago demonstrated that the zonal wind shears in the ~130-180km altitude range can generate off-equatorial relative minima (dips) in the daytime height-integrated eastward current density, appearing as westward sidebands north and south of the equatorial electrojet (EEJ). This study observationally confirms this connection for the first time by combining Ionospheric CONnection explorer zonal wind profiles and Swarm latitudinal zonal currents. We demonstrate observationally that the magnitude of the EEJ sideband current is proportional to the strength of westward turning winds with altitude in the Pedersen conductivity dominated region. Additional numerical experiments explain the importance of wind shear in different altitude regions in generating the sideband current. This study contributes to the better understanding of the neutral wind effect on local current generation.</p>
Fig. 2 in Eco-taxonomic profile of an iconic vermicomposter - the 'African Nightcrawler' earthworm, Eudrilus eugeniae (Kinberg, 1867)
Fig. 2. Eudrilus eugeniae: (a) ventral view of Qld specimen, (b) vasa deferentia unite to form the muscular euprostates ducting to the centre of the copulatory chamber (characteristic Y-shaped gland on rhs ducts to lhs), (c) 'spermathecal' aperture and combined oviduct (unravelled) to ovisac opposite saccular gland at junction of duct and 'ampulla' (ovary not shown), (d) prostomium, (e) calciferous glands, hearts and dorsal vessel, (f) dorso-lateral view of caudal segments narrowing to pygomere, (g) cocoon. BoXed are: Perrier's (1872: figs 27, 28, 30) figures of male organs – with penis both retracted and everted – plus an enlargement of a seta (his fig. 29 differs somewhat in its internal organ details); Michaelsen's (1892: fig. 10) figure of female organs also showing ovary "ov" (or ovisac?) on 12/13; plus Beddard's (1895: fig. 30) figure of male organs with glandular appendices to bursa copulatriX sometimes fused to form a "single horseshoe-shaped" appendiX neXt to what Eisen (1900: fig. 44) called the silk-producing "Y-shaped gland" (indicated as "Y-sg").
Fig. 3 in Eco-taxonomic profile of an iconic vermicomposter - the 'African Nightcrawler' earthworm, Eudrilus eugeniae (Kinberg, 1867)
Fig. 3. Distribution map from Michaelsen (1903: chart 1) (hash marks family distribution). Note that New Zealand was in error but other records outside its West African homeland are due mainly to human transportation and the worm's acclimatisation; early Caribbean and Latin American introductions possibly relate to the 16th – 19th century Atlantic slave trade.
Philodendron imperiale - Lectotype Schott Icones 3620
<pre>The lectotype for <em>Philodendron</em> <em>imperiale</em> Schott, a synonym of <em>P</em>. <em>orantum</em> Schott (Araceae), ‘Schott Aroideae’ No. 3620 (see arrowhead). Most of Schott’s specimens were destroyed in a fire at the end of WWII, and taxonomists use the illustrations of original material commissioned by Schott (this one done by W. Liepoldt, double arrowhead) for typification.</pre> <p> </p>
Boletus cinnabarinus Jacq. (= Pycnoporus cinnabarinus (Jacq.) - Jacquin Icones 682
<p>Mycological illustrations in Jacquin's F<em>lorae Austriacae sive plantarum selectarum in Austriae archiducatu sponte crescentium, Vol. IV. </em>(1776) , as few, if any, of Jacquin’s specimens of fungi have survived; for example, the published illustration of <em>Boletus cinnabarinus</em> Jacq. (= <em>Pycnoporus cinnabarinus</em> (Jacq.) P.Karst., Polyporaceae)</p>
ICON NAWDEX grids and extpar files
<p>Horizontal grids and extpar data for ICON simulations in a limited area setup of the extended North Atlantic domain ("NAWDEX setup").</p> <p>The grids cover horizontal resolutions of 80, 40, 20, 10, 5 and 2.5 km. For each grid file there is a corresponding extpar file.</p> <p>The grids and extpar files were generated by Aiko Voigt in 2017 and were used for simulations in the following papers:</p> <ul> <li>Senf, Voigt et al., 2020: https://agupubs.onlinelibrary.wiley.com/doi/full/10.1029/2020JD032667</li> <li>Choudhary and Voigt, 2022: https://wcd.copernicus.org/articles/3/1199/2022/wcd-3-1199-2022.html</li> <li>Sullivan et al. (incld. Voigt), 2023: https://egusphere.copernicus.org/preprints/2023/egusphere-2023-109/</li> </ul>
ICON-Coast model output for a study on increasing CO2 uptake of the coastal ocean
<p>Primary output of the ocean-biogeochemistry model ICON-Coast that has been used to create the figures in the publication Mathis et al. (2024) on the increasing CO2 uptake of the coastal ocean.<br>https://www.nature.com/articles/s41558-024-01956-w</p>
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.