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85 results for “Hornet”
Figure 2 in The pre-overwintering nests and the immature stages of the hornet Vespa fumida van der Vecht (Hymenoptera: Vespidae)
Figure 2. Vespa fumida. (A) Egg. (B–I) Mature larva: (B) body, lateral view; (C) ventral view; (D) head, frontal view; (E) head, dorsal view; (F) mouthparts; (G) palate; (H) labium and palate, ventral view; (I) spiracle. (J–L) Pupa: (J) lateral view; (K) ventral view; (L) pre-emergence, lateral view.
Figure 6 in The pre-overwintering nests and the immature stages of the hornet Vespa fumida van der Vecht (Hymenoptera: Vespidae)
Figure 6. Ultrastructures of Vespa fumida (scanning electron micrographs). (A) Right maxilla, ventrofrontal view. (B) Distal part of galea (ga) and maxillary palp (mxp). (C) Right maxillary palp. (D) Labium. (E) Right labial palp. (F) Left labial palp (lbp). bs, basiconic sensillum; cas, campaniform sensillum marked by cas1, cas2 respectively; cos, coeloconic sensillum; spn, spinnert.
Figure 1 in The pre-overwintering nests and the immature stages of the hornet Vespa fumida van der Vecht (Hymenoptera: Vespidae)
Figure 1. Vespa fumida. (A) Combs of nest. (B) Comb, frontal view. (C) Head of female, frontal view. (D) Head of male, frontal view. (E) Genitalia of male, caudal view; (F–H) Caste of adults, dorsal view: (F) queen; (G) worker; (H) male.
Figure 5 in The pre-overwintering nests and the immature stages of the hornet Vespa fumida van der Vecht (Hymenoptera: Vespidae)
Figure 5. Ultrastructures of Vespa fumida (scanning electron micrographs). (A–C) Parts of labrum. (D–F) Parts of palate. bs, basiconic sensillum; cp, conical papilla; cpc, conical papillae congregated; mp, minute pit; ps, puncture bearing a minute seta; scp, sclerotized patch; spi, spicules.
Figure 4 in The pre-overwintering nests and the immature stages of the hornet Vespa fumida van der Vecht (Hymenoptera: Vespidae)
Figure 4. Ultrastructures of Vespa fumida (scanning electron micrographs). (A) Micropyle of egg. (B–G) Larvae: (B) clypeus, frontal view; (C) lower gena, frontal view; (D) dorsolateral part of cranium; (E) a seta of cranium, magnified; (F, G) antenna (ant), mpo, microscopic pore.
The effects of dietary proline, β-alanine, and γ-aminobutyric acid (GABA) on the nest construction behavior in the Oriental hornet
<p>Dataset for "The effects of dietary proline, β-alanine, and γ-aminobutyric acid (GABA) on the nest construction behavior in the Oriental hornet "</p>
Supplementary material 2 from: Cerri J, Lioy S, Porporato M, Bertolino S (2022) Combining surveys and on-line searching volumes to analyze public awareness about invasive alien species: a case study with the invasive Asian yellow-legged hornet (Vespa velutina) in Italy. NeoBiota 73: 177-192. https://doi.org/10.3897/neobiota.73.80359
Distribution of scores to the questions on the perceived impacts of V. velutina and its severity in relation to various threats for beekeeping
Continuous exchange of nectar nutrients in an Oriental hornet colony- Dataset
<p>Raw data of the experiments " Continuous exchange of nectar nutrients in an Oriental hornet colony".</p>
Data from: Predicting the spatio-temporal dynamics of biological invasions: Have rapid responses in Europe limited the spread of the Asian yellow-legged hornet (Vespa velutina nigrithorax)?
<p>This data was collated from multiple sources including aktion-wespenschutz.de (Germany), The Biological Records Centre, UKCEH (UK), GBIF, L'Inventaire national du patrimoine naturel (France), iNaturalist (Belgium), StopVelutina (Italy), Waarneming.nl (Netherlands), MAGRAMA. Inventario Español del Patrimonio Natural y la Biodiversidad (Spain). </p> <p>Coordinates of occurence records were obatained from the sources above. These records were used in ecological niche models and mechanistic models to simulate the spread of <em>Vespa velutina nigrithorax</em> in Belgium, Germany, The Netherlands and the United Kingdom. </p> <p>Please be sure to cite and credit the orginal data providers if you intend to use this data. </p>
Hornet 40: Network Dataset of Geographically Placed Honeypots
<p>Hornet 40 is a dataset of 40 days of network traffic attacks captured in cloud servers used as honeypots to help understand how geography may impact the inflow of network attacks. The honeypots are located in eight different cities: Amsterdam, London, Frankfurt, San Francisco, New York, Singapore, Toronto, Bangalore. The data was captured in April, May, and June 2021.</p> <p>The eight cloud servers were created and configured simultaneously following identical instructions. The network capture was performed using the Argus network monitoring tool in each cloud server. The cloud servers had only one service running (SSH on a non-standard port) and were fully dedicated as a honeypot. No honeypot software was used in this dataset.</p> <p>The dataset consists of eight scenarios, one for each geographically located cloud server. Each scenario contains bidirectional NetFlow files in the following format:</p> <ul> <li>hornet40-biargus.tar.gz: all scenarios with bidirectional NetFlow files in Argus binary format;</li> <li>hornet40-netflow-v5.tar.gz: all scenarios with bidirectional NetFlow v5 files in CSV format;</li> <li>hornet40-netflow-extended.tar.gz: all scenarios with bidirectional NetFlows files in CSV format containing all features provided by Argus.</li> <li>hornet40-full.tar.gz: download all the data (biargus, NetFlow v5, and extended NetFlows)</li> </ul>
Simulation dataset for "HORNET - A Power Density Quantifying Out of Thermodynamic Equilibrium Energy Conversion"
<p>Simulation dataset for reproducing figures used in the manuscript</p>
Data from: Evolution of wing shape in hornets: why is the wing venation efficient for species identification?
Open the record for dataset details and reuse information.
Data from: Differences in caste dimorphism among three hornet species (Hymenoptera: Vespidae): forewing size, shape and allometry
Open the record for dataset details and reuse information.
Data from: Phylogenomic analysis of yellowjackets and hornets (Hymenoptera: Vespidae, Vespinae)
Open the record for dataset details and reuse information.
FIGURE 9 in A large hornet mimic clearwing moth of the genus Lamellisphecia Kallies & Arita 2004 (Lepidoptera, Sesiidae) from Nanling, Guangdong, southern China
FIGURE 9. Lamellisphecia minwangi Arita & Kallies, sp. nov., male genitalia, holotype.
Figs. 52 and 53 in The Diversity of Hornets in the Genus Vespa (Hymenoptera: Vespidae; Vespinae), Their Importance and Interceptions in the United States
Figs. 52 and 53. Vespa color forms, (a) Lateral view. (b) Dorsal view. (c) Front view of face. Fig. 53. V. velutina. Fig. 54. V. vivax.
Figs. 23 and 24 in The Diversity of Hornets in the Genus Vespa (Hymenoptera: Vespidae; Vespinae), Their Importance and Interceptions in the United States
Figs. 23 and 24. Vespa crabro color forms. (a) Lateral view. (b) Dorsal view. (c) Front view of face.
Figs. 15 and 16 in The Diversity of Hornets in the Genus Vespa (Hymenoptera: Vespidae; Vespinae), Their Importance and Interceptions in the United States
Figs. 15 and 16. Vespa analis color forms. (a) Lateral view. (b) Dorsal view. (c) Front view of face.
Figs. 19 and 20 in The Diversity of Hornets in the Genus Vespa (Hymenoptera: Vespidae; Vespinae), Their Importance and Interceptions in the United States
Figs. 19 and 20. Vespa bicolor color forms. (a) Lateral view. (b) Dorsal view. (c) Front view of face.
Figs. 50 and 51 in The Diversity of Hornets in the Genus Vespa (Hymenoptera: Vespidae; Vespinae), Their Importance and Interceptions in the United States
Figs. 50 and 51. Vespa velutina color forms. (a) Lateral view. (b) Dorsal view. (c) Front view of face.
ScienceDex guides
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OpenNeuro
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