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.
808
datasets available to search
ShareScore release 0.7.1
Dataset results
808 results for “visitation”
FIGURE 1 in Rollo H. Beck's Visits to Isla Guadalupe, Mexico, with Additions and Corrections to the Island's Avifauna
FIGURE 1. Labels on the type specimens of Oceanodroma macrodactyla, the only bird specimens saved from the fire following the 1906 San Francisco earthquake. Photo courtesy of CAS.
FIGURE 2 in Rollo H. Beck's Visits to Isla Guadalupe, Mexico, with Additions and Corrections to the Island's Avifauna
FIGURE 2. Specimens collected on 3 August 1912 by Rollo H. Beck labeled Oceanodroma macrodactyla. Photos courtesy AMNH.
Images from the textile study visit at the Yale University Art Gallery, New Haven, USA for the TEX-KR project
<p>These pictures were taken at the Yale University Art Gallery storage facility as part of a study trip in March 2022 to research on the Cambodian textiles in the Yale collection for the EU-funded MSCA TEX-KR project.<br>The objects photographed by Magali An BERTHON are part of Helen Ibbitson Jessup's gift to Yale University Art Gallery.</p> <p>These objects are also accessible on the Yale University Art Gallery database: <a href="https://artgallery.yale.edu/collection?query=jessup&page=0" target="_blank" rel="noopener">Jessup gift textiles Yale</a></p> <p>To find out more: <br><span>"Acquisitions July 1, 2017–June 30, 2018," <em>Yale University Art Gallery Bulletin: Online Supplement</em> (accessed December 1, 2018), 21.</span></p> <p>This repository presents what has been relevant to the TEX-KR project, that is, images of textile details, marks of wear and tears, repairs, and motifs in the resist-dyed ikat technique. </p> <p>To credit the images appropriately:<br>- The photos with BERTHON in the file names are to credit © Magali An Berthon for TEX-KR. <br>- The photos with Yale in the file names come from the Yale University Art Gallery and are to credit ©Yale University Art Gallery with <a href="https://rightsstatements.org/page/UND/1.0/?language=en">Copyright undetermined</a>.</p>
Fig. 1. Heracleum verticillatum, general Fig. 2 in Flower visitation of fungus gnats from the genera Antlemom, Asindulum and Macrorrhyncha (Diptera: Keroplatidae): published data and a new record
Fig. 1. Heracleum verticillatum, general Fig. 2. Specimens of Macrorrhyncha flava view. (marked with arrow) on the flowers.
Fig. 3 in Effect of Solenopsis invicta (Hymenoptera: Formicidae) on flower-visiting behavior of insects on Brassica napus (Brassicales: Brassicaceae)
Fig. 3. The cumulative probability of visiting frequency and duration of each visit of Pieris rapae on Brassica napus in fire ant–excluded, fire ant–included, and fire-ant-and-aphid-included plots.
Fig. 2 in Effect of Solenopsis invicta (Hymenoptera: Formicidae) on flower-visiting behavior of insects on Brassica napus (Brassicales: Brassicaceae)
Fig. 2. Daily number (mean ± SE, the number of Frankliniella intonsa was calculated per 10 min per 10 flowers) of flower visitors on Brassica napus in fire ant–excluded, fire ant–included, and fire-ant-and-aphid-included plots.
Fig. 1 in Effect of Solenopsis invicta (Hymenoptera: Formicidae) on flower-visiting behavior of insects on Brassica napus (Brassicales: Brassicaceae)
Fig. 1. Means (± SE) of species richness (A) and total number (B) of flower visitors on Brassica napus in fire ant–excluded, fire ant–included, and fire-antand-aphid-included plots.
Fig. 4 in Effect of Solenopsis invicta (Hymenoptera: Formicidae) on flower-visiting behavior of insects on Brassica napus (Brassicales: Brassicaceae)
Fig. 4. GC-EAD responses of Pieris rapae males to volatiles of Solenopsis invicta. GC-EAD active compounds: (1) n-tricosane; (2) 3-methyl tricosane; (3) unknown; (4) n-pentacosane; (5) 13-methyl pentacosane; (6) n-heptacosane; (7) 13,15-dimethyl heptacosane.
Data and code for "Pollen wars: Explosive pollination removes pollen deposited from previously visited flowers
<p>This data consist of 02 data files, 01 code script, and this README document, with the following data and code filenames and variables</p> <p>Data files and variables<br>1. [red flower experiment.csv] [Date: the date the data was taken; Flower number: the flower identity; labelled Pollen count on beak: number of pollen grains placed on hummingbird’s bill; Total unlabelled pollen grains on beak: number of unlabelled pollen grains on the hummingbird’s bill after visit; labelled pollen on flower keel: number of pollen grains on flower keel after visit; labelled pollen on petals: number of labelled pollen on petals after visit; labelled pollen on flower hairs: number of labelled pollen on flower hairs after visit; Before or After treatment: whether the pollen grains were counted before or after floral visit; Treatment: whether the visit was done on triggered or untriggered flower; Beak Photo number: photo identity of the bill; Keel photo number: photo identity for the keel (none was taken); hair photo number: photo identity for the floral hairs (none was taken); comment: any observation on the experiment; Labelled grains transferred to stigma: number of labelled pollen grains on the stigma after explosion (only one data point); unlabelled grains transferred to stigma: number of unlabelled pollen grains on the stigma after explosion (only one data point)].</p> <p>2. 2. [explosion_data.csv] [Flower number: the flower identity; Before count: number of pollen grains before floral explosion; After Count: number of pollen grains after explosion; Before Minus after: the subtraction of the last two values; % pollen removed: percentage of pollen grains removed by the explosion; Proportion pollen removed: proportion of pollen grains removed by the explosion; % removed (arcsin root transformed): arcsin root transformation for the last values; Total unlabelled pollen grains on beak: total number of pollen grains counted on hummingbird’s bill; % removed (arcsin root transformed): arcsin root transformation for the percentage of pollen removed].<br> <br>Code scripts and workflow<br>[script_analysis_Hypenea.R: code for data analysis]<br>1. libraries used on the analysis;<br>2. data loading and processing for explosion analysis;<br>3. modelling; checking model adjustment; anova table; estimation of marginal means; getting predicted values by the model.<br>4. plotting figure;<br>5. data loading and processing for pollen removal;<br>6. modelling; checking model adjustment; anova table; getting predicted values by the model.<br>7. plotting figure; </p> <p>SOFTWARE VERSIONS</p> <p>All the statistical analyses were run in R environment version 4.3.1 (R Development Core Team, 2023) using the default and the following packages: glmmTMB (Brooks et al., 2017), emmeans (Russell, 2022) and car (Fox & Weisberg, 2019). Residual dispersion around the fitted models was checked using Dharma package (Hartig, 2022).</p> <p><br>REFERENCES<br>Brooks, M. E., Kristensen, K., van Benthem, K. J., Magnusson, A., Berg, C. W., Nielsen, A., Skaug, H. J., Mächler, M., and Bolker, B. M. 2017. glmmTMB Balances Speed and Flexibility Among Packages for Zero-inflated Generalized Linear Mixed Modeling. The R Journal, 9(2), 378-400. http://dx.doi.org/10.32614/RJ-2017-066 </p> <p>Fox, J., and Weisberg, S. 2019. An {R} Companion to Applied Regression, Third Edition. Thousand Oaks CA: Sage. URL: https://socialsciences.mcmaster.ca/jfox/Books/Companion/</p> <p>Hartig, F. 2022. DHARMa: residual diagnostics for hierarchical (multi-level/mixed) regression models. URL https://cran.r-project.org/web/packages/DHARMa/vignettes/DHARMa.html </p> <p>R Development Core Team. 2023. R: A language and environment for statistical computing. Vienna, Austria: R Foundation for Statistical Computing. URL https://www.r-project.org/ </p> <p>Russell, V. L. 2022. emmeans: Estimated Marginal Means, aka Least-Squares Means. R package version 1.7.4-1. https://CRAN.R-project.org/package=emmeans</p>
Fig. 4. Insects visiting Caesalpinia decapetala. A. Metasyrphus corollae. B. Xylocopa appendiculata circumvolans. C. Celastrina argiolus. D. Bombus ardens ardens. E. Megachile japonica. F in Pollination biology of Caesalpinia decapetala (Leguminosae) in Korea
Fig. 4. Insects visiting Caesalpinia decapetala. A. Metasyrphus corollae. B. Xylocopa appendiculata circumvolans. C. Celastrina argiolus. D. Bombus ardens ardens. E. Megachile japonica. F. Anastrangalia sequensi.
BRAIN Journal-Participative Teaching with Mobile Devices and Social Networks for K-12 Children-Figure 15. Social media visits
<p>We also point out the following the advantages of Google+: - Google+ is a more user-friendly than other social environments and very suitable for use by school children than other blogging environments (e.g. Wordpress); thus it stimulated the play-like learning. - Google+ is more customizable than other social environments; - By allowing teachers to post questionnaires and to share images and videos or links to content on the Time Maps website, the Google+ page acted as an aggregator of information and a for scaffolding the learning process. After different stages of experimentation, we produced different statistical analysis of our results: concerning the most accessed social media. It indicated that Panoramio was the most visited (Figure 15)</p> <p>The statistics indicate that the different social networks had different levels of impact on the children and that in the future developments the focus should be on those more frequently accessed. </p>
Figure 1 in Effect of thiamethoxam (organophosphate) on the flies and beetle visitation and cadaveric decomposition process
Figure 1 Decomposition phases in the carcasses of control group and the contaminated group with Thiamethoxam: A fresh, B bloated, C decay, D postdecay, E skeletal.
Figure 4 in Effect of thiamethoxam (organophosphate) on the flies and beetle visitation and cadaveric decomposition process
Figure 4 Nonmetric Multidimensional Scaling (nMDS) obtained from data on the presence and absence of species in each stage of decomposition, for the contaminated and control groups.
Fig. 3 in Bird visits and resource use in Butia odorata (Arecaceae) palm groves in southern Brazil
Fig. 3. Average indices of flower and ripe fruit supply of Butia odorata and number of frugivory and insectivory events in the evaluated months, Tapes, Rio Grande do Sul, Brazil.
Fig. 1. 1 in Bird visits and resource use in Butia odorata (Arecaceae) palm groves in southern Brazil
Fig. 1. 1. Study site location at municipality of Tapes, Rio Grande do Sul, Brazil. 2. Photo of an area of the palm grove (Photo by Cyro Menezes da Gloria). 3. Sampling area outlined in red; Map image created in R Studio; Study area in Google Earth, Google (C), 2019 (Edited by Cyro Menezes da GlÓria).
Fig. 11 in The stem crustacean Oelandocaris oelandica re-visited
Fig. 11. Reconstruction of sequence of appendage−movement of the stem crustacean Oelandocaris oelandica Müller, 1983, captured in succeeding steps from above towards below. Please watch movie at data repository of Acta Palaeontologica Polonica (http://app.pan.pl/SOM/app53−Stein_etal_ SOM.pdf).
Fig. 10. 3D in The stem crustacean Oelandocaris oelandica re-visited
Fig. 10. 3D model of the morphology of the early developmental stage and the ontogenetic sequence of Oelandocaris oelandica, with four developmental stages known. A. Early developmental stage in ventral view, for comparison, but not to scale the ventral view of the oldest developmental stage known is shown. B. Reconstruction of stages in lateral view. Early developmental stage (B1), first next older set (B2), second next older set (B3), and third, apparently, oldest stage (B4). Abbreviations: app, appendages.
Fig. 8 in The stem crustacean Oelandocaris oelandica re-visited
Fig. 8. SEM photographs of additional important details of the stem crustacean Oelandocaris oelandica Müller, 1983. A. UB W 262, exopods of appendages posterior to the third cephalic appendage, showing insertion of setae; note the weak sclerotisation of the exopod surface as demonstrated by the deformed exopod of the fifth appendage. B. UB W 261; B1, tail piece with marginal spines on last tergite and caudal end (arrows); B2, anterior wings of hypostome (arrow); B3, insertion sites of sensillae on tergite borders and exopods (arrows). C. UB 649, anal opening with displaced membrane on ventral side of caudal end. D. UB W 260, basipods and exopods of third to sixth limbs, showing the more strongly sclerotised lateral margin of the exopod (arrows) with seta distally, and the membranous area at the articulation of the exopod of the third limb with the basipod. Abbreviations: alt, antennula; an, anus; app, appendages; bas, basipod; ex, exopod; hyp, hypostome; me, median eyes; tel, telson; ts, tergites.
Fig. 7 in The stem crustacean Oelandocaris oelandica re-visited
Fig. 7. Reconstruction of the appendage morphology of later developmental stages of Oelandocaris oelandica Müller, 1983. A. Antennula. B–F. Second to sixth appendages. Note that the first three appendages differ from each other and from the sub−equal fourth to sixth appendages.
Fig. 3 in The stem crustacean Oelandocaris oelandica re-visited
Fig. 3. Reconstruction of the morphology of the latest known developmental stage of stem crustacean Oelandocaris oelandica Müller, 1983 in ventral view. Abbreviation: app, appendages.
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.