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690 results for “antennae”
Figs 38–41. Antennae morphology. 38 in ON SPLITTING OF THE GENUS NOTOCUPES (COLEOPTERA: ARCHOSTEMATA): NEW DATA ON MORPHOLOGY AND TAXONOMY
Figs 38–41. Antennae morphology. 38 – filiform of Notocupes pulcher; 39 – moniliform of Notocupes excellens; 40 – weakly serrated of Rhabdocupes minisculus; 41 – filiform of Brachilatus nigrimonticola. Scale bar = 1 mm.
Plate VII (Figures 55–64). Streblocera (Eutanycerus) sharifi Shamim, sp. nov. Figure 55. Head dorsal view. Figure 60. Metasoma showing ovipositor and ovipositor sheath. Figure 56. Head ventral view. Figure 61. Forewing. Figure 57. Pronotal side. Figure 62. Hind leg. Figure 58. Mesosoma in dorsal view. Figure 63. Part of hindwing. Figure 59. First metasomal tergite. Figure 64. Antenna. in The genus Streblocera Westwood (Hymenoptera: Braconidae: Euphorinae) from India, with descriptions of 9 new species
Plate VII (Figures 55–64). Streblocera (Eutanycerus) sharifi Shamim, sp. nov. Figure 55. Head dorsal view. Figure 60. Metasoma showing ovipositor and ovipositor sheath. Figure 56. Head ventral view. Figure 61. Forewing. Figure 57. Pronotal side. Figure 62. Hind leg. Figure 58. Mesosoma in dorsal view. Figure 63. Part of hindwing. Figure 59. First metasomal tergite. Figure 64. Antenna.
Plate III (Figures 17–24): Streblocera (Eutanycerus) etawahiana Shamim, sp. nov. Figure 17. Head dorsal view. Figure 21. Metasoma showing ovipositor and ovipositor sheath. Figure 18. Head ventral view. Figure 22. Antenna. Figure 19. Propodeum. Figure 23. Forewing. Figure 20. First metasomal tergite. Figure 24. Hindwing. in The genus Streblocera Westwood (Hymenoptera: Braconidae: Euphorinae) from India, with descriptions of 9 new species
Plate III (Figures 17–24): Streblocera (Eutanycerus) etawahiana Shamim, sp. nov. Figure 17. Head dorsal view. Figure 21. Metasoma showing ovipositor and ovipositor sheath. Figure 18. Head ventral view. Figure 22. Antenna. Figure 19. Propodeum. Figure 23. Forewing. Figure 20. First metasomal tergite. Figure 24. Hindwing.
Metadata of "Incorporating a molecular antenna in diatom microalgae cells enhances photosynthesis"
<p>Metadata of "Incorporating a molecular antenna in diatom microalgae cells enhances photosynthesis"</p>
Figs 25–32. Ctenoceratoda spp. antennae. 25 in Review Of The Species Groups Of The Genus Ctenoceratoda Varga, 1992 With Description Of Four New Species And A New Subspecies (Lepidoptera, Noctuidae)
Figs 25–32. Ctenoceratoda spp. antennae. 25 = C. persephone sp. n., paratype, male, Mongolia, 26 = C. khorgossi (Alphéraky, 1882), male, Kazakhstan, 27 = C. scotosparsa sp. n., paratype, male, Mongolia, 28 = C. argyrea (Varga, 1992) holotype, male, Mongolia, 29 = C. cyanochrea sp. n., paratype, male, Mongolia, 30 = C. tancrei (Graeser, 1892), male, Kazakhstan, 31 = C. mallopyga mallopyga sp. n., paratype, male, Pakistan, 32 = C. contempta (Püngeler, 1914), male, Kirghisia
Maximum performance expression is affected by octopamine and antennae removal in Acheta domesticus
<p>Animals in nature seldom use their maximum performance abilities, likely in part due to context-dependent differences in performance motivation. Despite interest in the factors affecting performance expression, the physiological mechanisms underlying variation in performance motivation are poorly understood. We manipulated levels of the biogenic amine octopamine (OA) to test the hypothesis that OA drives motivation to express maximum bite force in male house crickets. We also tested the effect of antenna removal on bite force given prior evidence of potential links among antennaectomy, aggression, and OA. We found that administration of an OA antagonist, epinastine, significantly decreases realized maximum bite force, as does antenna removal. In addition, the performance decrement induced by antennaectomy is abolished by administration of excess OA, and that rescue effect is itself nullified by the simultaneous administration of epinastine. These data show that OA is an important mediator of performance, and thus of performance motivation, in insects, and potentially a promising candidate for the short term manipulation of performance as well.</p>
Burst Noise Injection through Antenna Recorded on a UAV at Logic Level using HEIST
<p>A UAV exposed to burst noise injected through an antenna. The noise is recorded at logic level using HEIST.</p> <p> </p> <p>https://github.com/MaSkr09/heist_datalog.git</p>
Angle measurements with 3D Vector antenna for localization purposes – open-access datasets
<p>This dataset contains data on positioning measurements of the angle of arrival (AoA) as well as the azimuth angle estimation using the MUSIC Algorithm. The data was collected from four ports (p1,p2,p3,p4) of a 3D Vector Antenna (3D VA) provided by ENAC. Data were captured in a laboratory environment with conditions that affect the positioning performance. </p>
Fig. 6. Right antennae, dorsal view. A–K. Males. L–U. Females. A, L in A revision of Discodon tricolor (Guérin-Méneville) and its mimics from the Atlantic forests of Brazil (Coleoptera: Cantharidae)
Fig. 6. Right antennae, dorsal view. A–K. Males. L–U. Females. A, L. Discodon tricolor (GuérinMéneville, 1832). B, M. Discodon neoteutonum sp. nov. C, N. Discodon vanini sp. nov. D, O. Discodon obscurior Pic, 1906 stat. nov. E, P. Discodon lineaticorne sp. nov. F, Q. Discodon aurimaculatum sp. nov. G, R. Discodon marginicolle sp. nov. H, S. Discodon tenuecostatum sp. nov. I, T. Discodon tamoio sp. nov. J, U. Discodon viridimontanum sp. nov. K. Discodon crassipes Wittmer, 1952. Scale bars = 1.0 mm.
Supplementary material S3. Leiestes tomaszewskae sp. nov., holotype, Nr. 6723 [MAIG], X-ray micro-CT volume rendering of the right antenna.
<p>X-ray micro-CT volume rendering of the right antenna of <em>Leiestes</em> <em>tomaszewskae</em> sp. nov., holotype, Nr. 6723 [MAIG].</p>
Dual-band Reflectarray Antennas Using Integrated Resonant and Non-Resonant Natures of Metallic Waveguide Elements at Millimeter Wave Frequencies
<p>Pure metallic reflectarray antennas have good power efficiency and low fabrication cost, which were limited to single band operation. A dual-band reflectarray antenna is developed for two directional beams by two feeds. The reflecting elements are metal waveguides, and have novel properties of both resonant and non-resonant modes at the two frequency bands. The low and high frequency bands can be easily separated by the cutoff frequency of waveguide modes. The phase changing mechanisms via ray optics and fundamental waveguide modes, respectively provide simple formulations for elemental structure design of directional beams. Radiation characteristics of the linear and circular polarizations are cross-examined with good performance by full-wave simulations using HFSS, FEKO and CST at 28 and 60 GHz bands for 5G front-haul network applications.</p>
Fig. 19. Phaedon mellyi Achard, 1926. A. Antenna, male. B. Aedeagus, lateral view. C in Revision of Phaedon Latreille from China (Coleoptera: Chrysomelidae)
Fig. 19. Phaedon mellyi Achard, 1926. A. Antenna, male. B. Aedeagus, lateral view. C. Aedeagus, dorsal view. Scale bars: A = 0.5 mm; B–C = 0.2 mm.
Fig. 9. Phaedon concinus Stephens, 1834. A. Antenna, male. B. Antenna, female. C. Aedeagus, lateral view. D. Aedeagus, dorsal view. E in Revision of Phaedon Latreille from China (Coleoptera: Chrysomelidae)
Fig. 9. Phaedon concinus Stephens, 1834. A. Antenna, male. B. Antenna, female. C. Aedeagus, lateral view. D. Aedeagus, dorsal view. E. Spermatheca. Scale bars: A–B = 0.5 mm; C–D = 0.2 mm; E = 0.1 mm.
Fig. 4. Phaedon alticola Chen, 1974. A. Antenna, male. B. Antenna, female. C. Aedeagus, dorsal view. D. Aedeagus, lateral view. E in Revision of Phaedon Latreille from China (Coleoptera: Chrysomelidae)
Fig. 4. Phaedon alticola Chen, 1974. A. Antenna, male. B. Antenna, female. C. Aedeagus, dorsal view. D. Aedeagus, lateral view. E. Spermatheca. Scale bars: A–B = 0.5 mm; C–D = 0.2 mm; E = 0.1 mm.
Fig. 7. Phaedon brassicae Baly, 1874. A. Antenna, male. B. Antenna, female. C. Aedeagus, dorsal view. D. Aedeagus, lateral view. E in Revision of Phaedon Latreille from China (Coleoptera: Chrysomelidae)
Fig. 7. Phaedon brassicae Baly, 1874. A. Antenna, male. B. Antenna, female. C. Aedeagus, dorsal view. D. Aedeagus, lateral view. E. Spermatheca. Scale bars: A–B = 0.5 mm; C–D = 0.2 mm; E = 0.1 mm.
Fig. 12. Phaedon gressitti Daccordi, 1979. A. Antenna, male. B. Aedeagus, dorsal view. C in Revision of Phaedon Latreille from China (Coleoptera: Chrysomelidae)
Fig. 12. Phaedon gressitti Daccordi, 1979. A. Antenna, male. B. Aedeagus, dorsal view. C. Aedeagus, lateral view. Scale bars: A = 0.5 mm; B–C = 0.2 mm.
Fig. 10. Phaedon flavotibialis Lopatin, 2005. A. Antenna, male. B. Antenna, female. C. Aedeagus, dorsal view. D. Aedeagus, lateral view. E in Revision of Phaedon Latreille from China (Coleoptera: Chrysomelidae)
Fig. 10. Phaedon flavotibialis Lopatin, 2005. A. Antenna, male. B. Antenna, female. C. Aedeagus, dorsal view. D. Aedeagus, lateral view. E. Spermatheca. Scale bars: A–B = 0.5 mm; C–D = 0.2 mm; E = 0.1 mm.
Supplementary material S5. Ptilodactyla odnosum Telnov, Perkovsky, Kundrata and Bukejs sp. nov., holotype, MAIG-6710, female, X-ray micro-CT volume rendering of the left antenna.
<p>Supplementary material S5 in paper: Telnov D., Perkovsky E.E., Kundrata R., Kairišs K., Vasilenko D.V., Bukejs A. Revealing Palaeogene distribution of the Ptilodactylidae (Insecta: Coleoptera): the first <em>Ptilodactyla </em>Illiger, 1807 records from Rovno amber of Ukraine. <em>Historical Biology</em>.</p>
Figs 208–217. Male antennae. 208. Platynocera murina Blanchard, 1846. 209 in New World genera of Galerucinae Latreille, 1802 (tribes Galerucini Latreille, 1802, Metacyclini Chapuis, 1875, and Luperini Gistel, 1848): an annotated list and identification key (Coleoptera: Chrysomelidae)
Figs 208–217. Male antennae. 208. Platynocera murina Blanchard, 1846. 209. Cornubrotica dilaticornis (Baly, 1879). 210. Cerotoma arcuata (Olivier, 1791). 211. Eccoptopsis costaricensis Blake, 1966. 212. Metrobrotica geometrica (Erichson, 1847). 213. Pseudoluperus longulus (LeConte, 1857). 214. Metacoryna fulvicollis Jacoby, 1888. 215. Iucetima minor (Bechyné, 1954). 216. Oroetes flavicollis Jacoby, 1888. 217. Deinocladus sp.
Figs. 11–17. Calophya species, adults. 11, 14. Forewing. 12, 14. Forewing showing surface spinules. 15. Head. 16. Antenna. 17 in Taxonomy of Calophya (Hemiptera: Calophyidae) species associated with Schinus terebinthifolia (Anacardiaceae)
Figs. 11–17. Calophya species, adults. 11, 14. Forewing. 12, 14. Forewing showing surface spinules. 15. Head. 16. Antenna. 17. Female terminalia, in profile. 11, 12, 15–17. C. lutea sp. nov. 3, 4. C. latiforceps. 11–14. Scale = 0.2 mm. 15, 16. Scale = 0.1 mm. 17. Scale = 0.05 mm.
ScienceDex guides
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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.