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.
5,954
datasets available to search
ShareScore release 0.7.1
Dataset results
5,954 results for “Wasps”
Fig. 1 in Defensive warning behavior expressed by three species of polistine wasps
Fig. 1. Diagram of foraging area, nest yard, and sting threshold point. Foraging territory is the area surrounding the nest in which colony workers scout for and obtain their prey, paper, and other resources. Outside the nest yard, they remain non-defensive unless they are subjected to personal threat. The nest yard includes the area around the nest but outside of the sting threshold point in which warning behaviors are expressed. An intruder who approaches the nest in the area within the sting threshold point is likely to experience stinging behavior.
Fig. 2 in Defensive warning behavior expressed by three species of polistine wasps
Fig. 2. Flow chart of defensive behavior expressed by polistine wasp workers toward vertebrate intrusion, as determined in this research and other investigations (Hermann 2017; Hermann & Dirks 1974). As initial lines of defense, aposematic coloration and pattern, along with nest location, offer some degree of colony protection. Once an intruder enters the nest yard, warning expressions are displayed by workers. Size of the nest yard and the stinging threshold point generally are species specific. Following the initial pretarsal twitching and the more obvious antennal raising and wing spreading, a wide array of defensive expressions ensue, terminating in stinging flights. There also are some interspecific differences in the display of certain warning expressions, as discussed in the text.
Fig. 6. Cotesia marginiventris wasps have a in Approaches for assessing the impact of Zea mays (Poaceae) on the behavior of Spodoptera frugiperda (Lepidoptera: Noctuidae) and its parasitoid Cotesia marginiventris (Hymenoptera: Braconidae)
Fig. 6. Cotesia marginiventris wasps have a marginal preference to oviposit on Spodoptera frugiperda on W22 compared to B104 Zea mays inbred plants. To test the effect of different Z. mays varieties on oviposition preference of C. marginiventris, a pair-wise oviposition assay was performed using 13 independent experiments (Experiments 1–13). In each experiment, the number of S. frugiperda larvae recovered from B104 or W22 genotypes that were parasitized by C. marginiventris (P), not-parasitized (NP), or had died shortly afer collection (D), and the percentage of larvae parasitized was calculated by (P/[P + NP]) × 100 for each plant variety (Table). Experiments that had less than 5 parasitized larvae or more than 15 dead (bold) were discarded. The graph shows mean (± SE) percentage parasitism for each treatment. The treatments were not significantly different using a pair-wise t-test with P ≤ 0.05 and n = 8.
Fig. 2 in First Record of the Oak Gall Wasp (Hymenoptera, Cynipidae) in Myanmar
Fig. 2. Habitus of asexual generation wasps of Andricus mukaigawae used for DNA extraction (scale bar=1 mm). A, Specimen from Chin, Myanmar; B, Specimen from Nagano, Japan.
Fig. 1 in First Record of the Oak Gall Wasp (Hymenoptera, Cynipidae) in Myanmar
Fig. 1. Asexual generation gall of Andricus mukaigawae collected in Myanmar. A, Gall appearance; B, Longitudinal section of gall with an adult wasp collected from inside.
Fig. 3 in First Record of the Oak Gall Wasp (Hymenoptera, Cynipidae) in Myanmar
Fig. 3. Head and mesosoma of asexual generation wasps of Andricus mukaigawae, collected in Chin, Myanmar (A and C) and Nagano, Japan (B and D). A–B, Head, frontal view; C–D, Head and mesosoma, dorsal view.
ERA5 atmospheric stability and Geostrophic wind shear for usage in WAsP
<p>The dataset "ERA5-meso.nc" is obtained by loading the variables needed for calculating the temperature scale from hourly ERA5 files. These files are available in grib format that have been obtained from the Copernicus Data Store (CDS). They are opened using xarray and cfgrib and processed using the functions stability_histogram from the python package PyWAsP. Because a conditional mean based on the 50% highest wind speeds must be calculated, all values are binned according to wind speed at 100 m and this histogram is then used to calculate the mean and root-mean-square of the temperature scale. The boundary layer height scale is calculated in a similar fashion. For more documentation see the accompanying paper. A validation of the WAsP model using these data is available in the references.</p> <p>The file "ERA5-baro.nc" contains the geostrophic wind shear. The mean magnitude and direction is obtained sector-wise in similar fashion as described above. The geostrophic wind shear can be calculated from the pressure level geopotential height. The way to do this is described here:</p> <p><a href="https://orbit.dtu.dk/en/publications/implementation-of-large-scale-average-geostrophic-wind-shear-in-w" target="_blank" rel="noopener">https://orbit.dtu.dk/en/publications/implementation-of-large-scale-average-geostrophic-wind-shear-in-w</a></p> <p>These data are for estimating atmospheric stability conditions, if you are looking for data to estimate air density, please refer to the item "ERA5 data for air density calculations in WAsP" (related materials item 5). The methods for this are described in related materials item 7.</p> <p>v1-v2: Version corresponding to paper before review (related materials 3), do not use these.</p> <p>v3: Final version that corresponds to the published version of the paper (related materials 6):<br>https://doi.org/10.1007/s10546-023-00803-3<br>This is slightly different then the first version due to Eq. 9</p> <p>v4: Updates to load the files using PyWAsP versions specifically suited for use in pywasp with the variable names adopted in PyWAsP. For ERA5-baro.nc NaNs are filled with 0.0, i.e. assuming a barotropic atmosphere.</p> <p>Mirror of: https://data.dtu.dk/articles/dataset/ERA5_atmospheric_stability_for_usage_in_WAsP_12_8/19576042</p>
Landmark dataset of fore wings of Darwin wasps (Ichneumonidae)
<p>This tps file includes the forewing landmark data of Darwin wasps (Ichneumonidae). The fore wing shape is defined with 21 fixed landmarks and additionally 1 curve consisting of 8 semi landmarks which represent the vein 2m-cu (landmarks equally spaced).</p> <p>Included are 669 taxa, representing 41 extant subfamilies. The landmark data of 333 extant taxa were published before in Viertler et al. (2022), and are here included together with many more taxa. The newly added data might still be errouneous. The landmarks were mainly placed on illustrations of Townes (see references), but some were added from photos of the respective species.</p>
Morphological data matrix for extant and fossil Darwin wasps (Ichneumonidae)
<p>This nexus file contains morphological coding for 289 ichneumonid taxa, including 203 extant and 86 fossil taxa. The descriptions of the coded characters and their states can be found in the following list: <a href="https://doi.org/10.5281/zenodo.13912975" target="_blank" rel="noopener">https://doi.org/10.5281/zenodo.13912975</a></p> <p>The Excel file shows a more detailed taxon list, including the fossil localities and age ranges for the included fossil taxa.</p> <p> </p> <p> </p>
Species diversity and community structure of braconid wasps (Hymenoptera) in two ecological hotspots of Iran: implication for conservation
<p><span><span>Species diversity and community structure of braconid wasps (Hymenoptera) <a name="_Hlk115346465"></a>in two ecological hotspots of <a name="_Hlk115825047"></a><span>Iran</span>: implication for conservation </span></span></p> <p><span>Parisa Abdoli<sup>1</sup>, Ali Asghar Talebi<sup>1</sup></span><a title="" href="#_ftn1" name="_ftnref1"><sup><span><span>*</span></span></sup></a><span>, Nickolas G. Kavallieratos<sup>2</sup>, Samira Farahani<sup>3­</sup> and Rasoul Khosravi<sup>4</sup> </span></p> <p><em><span> </span></em></p> <p><span>1. Department of Entomology, Faculty of Agriculture, Tarbiat Modares University, Tehran, I.R. Iran. <a name="_Hlk533412392"></a>talebia@modares.ac.ir; P.abdoli@modares.ac.ir</span></p> <p><span>2. Laboratory of Agricultural Zoology and Entomology, Department of Crop Science, Agricultural University of Athens; 75 Iera Odos <span> </span>str., 11855 Athens, Attica, Greece. </span><span>nick_kaval@aua.gr</span></p> <p><span>3. Research Institute of Forests and Rangelands, Agricultural Research Education and Extension Organization (AREEO), Tehran, I. R. Iran.<span> </span></span><a href="mailto:s.farahani@rifr-ac.ir"><span>s.farahani@rifr-ac.ir</span></a></p> <p><span><span>4. Department of Natural Resources and Environmental Engineering, College of Agriculture, Shiraz University, Shiraz, Iran, r-khosravi@shirazu.ac.ir</span></span></p> <div><br> <div> <p><a title="" href="#_ftnref1" name="_ftn1"><span><span><span>*</span></span></span></a><span> </span>Correspondence<span>. E-mail: talebia@modares.ac.ir</span></p> <p> </p> </div> </div>
Table 1 in Caradiophyodidae, a New Family of Micro-Wasps (Hymenoptera: Platygastroidea) Based on the Description of Caradiophyodus saradae gen. et sp. nov. in Mid-Cretaceous Burmese Amber
<p><b>Table 1.</b> List of Burmese amber micro-wasp genera with features that separate them from <i>Caradiophyodus saradae</i> gen. and sp. nov.</p><table><tbody><tr><th><b>Wasp Genus</b></th><th><b>Family</b></th><th><b>Features</b></th><th><b>Reference</b></th></tr></tbody><tbody><tr><th><i>Baeomorpha</i></th><td>Rotoitidae</td><td>13 antennomeres; 6-segmented clava; small body (ca. 645 µm); basal vein present</td><td>[22]</td></tr><tr><th><i>Burminata</i></th><td>Diversinitidae</td><td>13 antennomeres; 3-segmented clava; basal vein present; mulriporous plate sensilla</td><td>[23]</td></tr><tr><th><i>Cascoscelio</i></th><td>Scelionidae</td><td>12 antennomeres; ocelli on tubercle; 5-segmented clava; uncus present; hind wing with submarginal vein</td><td>[24]</td></tr><tr><th><i>Christophus</i></th><td>Diapriidae</td><td>14 antennomeres; radial cell closed; forewing oval-shaped; M + Cu vein present</td><td>[25]</td></tr><tr><th><i>Diversinitus</i></th><td>Diversinitidae</td><td>13 antennomeres; 3-segmented clava; basal vein present; mulriporous plate sensilla</td><td>[23]</td></tr><tr><th><i>Gallorama</i></th><td>Mymarommatidae</td><td>wing fringe; 2-segmented petiole; 3-segmented clavus</td><td>[26]</td></tr><tr><th><i>Glabiala</i></th><td>Diversinitidae</td><td>13 antennomeres; 3-segmented clava; basal vein present; mulriporous plate sensilla</td><td>[23]</td></tr><tr><th><i>Mintara</i></th><td>Diapriidae</td><td>14 antennomeres; antennae inserted on shelf; radial cell closed; M + Cu vein present</td><td>[25]</td></tr><tr><th><i>Proterosceliopsus</i></th><td>Proterosceliopsidae</td><td>bulla present; short, nebulous 1Rs vein; nebulous Rs + M vein; Rs vein extending to the wing margin; tibial spur formula of 1-2-2</td><td>[6]</td></tr><tr><th><i>Protobelyta</i></th><td>Diapriidae</td><td>antennae on distinct shelf; forewing with radial cell; hind wing with basal cell; petiole present</td><td>[27]</td></tr></tbody></table>
FIG. 16 in Taxonomic review of the potter wasp genus Antepipona de Saussure, 1855 (Hymenoptera, Vespidae, Eumeninae) from Vietnam, with descriptions of two new species and keys to the Oriental fauna
FIG. 16. — Characters of females of Antepipona de Saussure, 1855 (except a male of A. brunnipes (Fabricius, 1804) and A. minutissima Giordani Soika, 1982): A, A. excelsa Giordani Soika, 1982, SII, lateral view; B, D, I, L, A. sibilans (Cameron, 1903): SII, lateral view (B) pronotum dorsal view (D), clypeus, frontal view (I); metanotum, dorsal view (L); C, A. excelsa, pronotum, dorsal view; E, A. luzonensis (Rohwer, 1919), pronotum, dorsal view; F, A. minutissima, clypeus, frontal view; G, H, K, A. brunnipes: clypeus, frontal view, male (G); clypeus, frontal view (H); pronotal carina (K). Not to scale.
FIG. 3 in Taxonomic review of the potter wasp genus Antepipona de Saussure, 1855 (Hymenoptera, Vespidae, Eumeninae) from Vietnam, with descriptions of two new species and keys to the Oriental fauna
FIG. 3. — Antepipona bipustulata (de Saussure, 1855), from Vietnam: A, C, D, female; B, male: A, B, facial view; C, pronotum, frontal view; D, habitus, lateral view. Scale bar: 1 mm.
FIG. 6 in Taxonomic review of the potter wasp genus Antepipona de Saussure, 1855 (Hymenoptera, Vespidae, Eumeninae) from Vietnam, with descriptions of two new species and keys to the Oriental fauna
FIG. 6. — Antepipona ceylonica (de Saussure, 1867), genitalia: A, inner aspect of paramere with volsella and digitus; B, digitus; C, aedeagus, ventral view; D, aedeagus, lateral view. Scale bars: 1 mm.
FIG. 10 in Taxonomic review of the potter wasp genus Antepipona de Saussure, 1855 (Hymenoptera, Vespidae, Eumeninae) from Vietnam, with descriptions of two new species and keys to the Oriental fauna
FIG. 10. — Antepipona tytides (Cameron, 1904), genitalia: A, inner aspect of paramere with volsella and digitus; B, digitus; C, aedeagus, ventral view; D, aedeagus, lateral view. Scale bars: 1 mm.
FIG. 2 in Taxonomic review of the potter wasp genus Antepipona de Saussure, 1855 (Hymenoptera, Vespidae, Eumeninae) from Vietnam, with descriptions of two new species and keys to the Oriental fauna
FIG. 2. — Antepipona biguttulata (Fabricius, 1787), genitalia: A, inner aspect of paramere with volsella and digitus; B, digitus; C, aedeagus, ventral view; D, aedeagus, lateral view. Scale bars: 1 mm.
FIG. 9 in Taxonomic review of the potter wasp genus Antepipona de Saussure, 1855 (Hymenoptera, Vespidae, Eumeninae) from Vietnam, with descriptions of two new species and keys to the Oriental fauna
FIG. 9. — Antepipona tytides (Cameron, 1904), from Vietnam: A, female, facial view; B, male, facial view; C, female, habitus, lateral view. Scale bar: 1 mm.
FIG. 5 in Taxonomic review of the potter wasp genus Antepipona de Saussure, 1855 (Hymenoptera, Vespidae, Eumeninae) from Vietnam, with descriptions of two new species and keys to the Oriental fauna
FIG. 5. — Antepipona ceylonica (de Saussure, 1867), from Vietnam (female) and India (male): A, C, D, female; B, male: A, B, facial view; C, pronotum, lateral view; D, habitus, lateral view. Scale bar: 1 mm.
FIG. 1 in Taxonomic review of the potter wasp genus Antepipona de Saussure, 1855 (Hymenoptera, Vespidae, Eumeninae) from Vietnam, with descriptions of two new species and keys to the Oriental fauna
FIG. 1. — Antepipona biguttulata (Fabricius, 1787), from Vietnam: A, C-F, female; B, male: A, B, facial view; C, pronotum and mesoscutum, dorsal view; D, mesoscutellum, metanotum, and propodeum, dorsal view; E, metasoma, lateral view; F, habitus, lateral view. Scale bars: 1 mm.
FIG. 15 in Taxonomic review of the potter wasp genus Antepipona de Saussure, 1855 (Hymenoptera, Vespidae, Eumeninae) from Vietnam, with descriptions of two new species and keys to the Oriental fauna
FIG. 15. — Characters of female of genus Antepipona de Saussure, 1855: A, A. frontalis Giordani Soika, 1982, frons, frontal view; B, A. haryana Gusenleitner, 1996, frons, frontal view; C, E, A. aurantiaca Giordani Soika, 1982: clypeus, frontal view (C), habitus, lateral view (E); D, F, A. minutissima Giordani Soika, 1982: clypeus, frontal view (D), habitus, lateral view (F). Not to scale.
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.