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690 results for “antennae”
FIGURE 2 in Description of a new genus and species of Encyrtidae (Hymenoptera: Chalcidoidea) from Danish amber, based on a male specimen featuring an antenna with a distinct anellus
FIGURE 2. Electroanellus belokobylskiji, holotype male: A, B head, antennae, mandible, anterolateral view C left antenna D head, mesosoma, dorsolateral view. Scale bars: 0.1 mm (A–C); 0.2 mm (D).
FIGURE 2. Smicromyrme plantourianus, female. A dorsal habitus B ventral habitus C lateral habitus D pygidium E antenna F in Smicromyrme ceballosi Suárez, 1959 and S. plantourianus Schwartz, 1986: two little known species new for Portugal (Hymenoptera, Mutillidae)
FIGURE 2. Smicromyrme plantourianus, female. A dorsal habitus B ventral habitus C lateral habitus D pygidium E antenna F mandible, ventral view
FIGURE 2. A. Antenna, B. Labial palps, C. Labium, D. Right maxilla, E in Description of the Last Instar Larva of Platylestes platystylus (Rambur, 1842) from Kerala, India (Odonata: Lestidae)
FIGURE 2. A. Antenna, B. Labial palps, C. Labium, D. Right maxilla, E. Right mandible—dorsal and inner view, F. Dorsal view of abdomen showing lateral spines, G. Tibial comb, H. Caudal appendages (the tip of the appendages are folded in this image), I. Magnified view of the caudal appendages showing small spines at margins.
FIGURE 2. Burmempheria densuschaetae, under green fluorescence. A, Antenna. B in First record of fossil psocodeans in copula from mid-Cretaceous Burmese amber
FIGURE 2. Burmempheria densuschaetae, under green fluorescence. A, Antenna. B, Maxillary palpomere (red arrow: spur sensillum). C, Lacinia. D, Hind tibial spurs. E, Tibial apical spines. F, Claws. G, Forewing. H, Hind wing. Scale bars = 0.2 mm for A, G, H, 0.1 mm for B, 0.05 mm for D, 0.02 mm for C, E, F.
Bluetooth Low Energy Separate Channel Fingerprinting dataset with Frequency-Scanned Antennas and Monopole
<p><span>This dataset contains Bluetooth Low Energy Separate Channel (SC BLE) Fingerprinting (FP) data recorded in an indoor facility. The dataset includes Received Signal Strength Information (RSSI) data collected from two independent location systems: one created with four BLE beacons connected to four traditional monopole antennas, and the other four beacons connected to two dual-port Frequency-Scanned Leaky Wave Antennas (FS LWA). Both systems are installed covering the same 7m x 5m area located in a basement zone. </span></p> <p><span>The dataset includes a reference radiomap file for each point equidistant 50cm to generate Fingerprinting techniques. The calibrated radiomap files are included in the Calibration_21112023 folder. In the name of each file, the {x, y} position where the data were recorded is included, with a total of 130 reference points. The data labelled as P1 and P2 are the RSSI recorded from beacons connected to FS LWA1, while P3 and P4 data corresponds to RSSI obtained from beacons of FS LWA2. Finally, P5, P6, P7 and P8 data sets belong to beacons connected to individual monopole antennas. Each calibration file contains 100 samples of RSSI received from the corresponding beacons at each one of the 130 reference points forming the calibration grid. </span></p> <p><span>The dataset also includes test samples for different days. These days are labelled as day 1, 8, 15, 22, 29, 51, 86 and 94 after the calibration day 0. This way, the variation of the different SC FP BLE antenna systems’ performance over time, can be studied. This classification of the data as a function of time, is categorized in the folders with the names Test_day_XX_date. As done with the reference calibration information for day 0, a file with the RSSI collected in each reference point (within a total of 130 grid points) can be found in each folder. The name of the file indicates the reference point where the data were collected. </span></p> <p><span>Different to the reference calibration data of day 0 (where 100 RSSI samples were considered for each one of the 130 calibrated {x, y} positions), the test data obtained in different subsequent days is composed by ten samples of RSSI for each one of the 130 test point. </span></p> <p><span>Moreover, to test the performance of the systems when some modifications occur where the calibration was performed, some data tests are collected adding several offices' furniture on the days 15, 22, 29, 51 and 94 after the calibration procedure performed at day 0. These data are stored in folders with the name Test_day_XX_with_furnitures_date. Similar to the previous test data, the name of the file includes 130 reference {x,y} points, with 10 RSSI samples each, and for the corresponding eight beacons (P1..P8), which are labelled for both monopole (P5, P6, P7 and P8) and FS LWA antenna systems (P1 and P2 for FS LWA1 and P3 and P4 for FS LWA2). <span> </span></span></p>
FIG 7. Australiagraecia gladiator. A. Adult female. B. Antenna. Note annulations. C in Studies in Australian Tettigoniidae: New short-winged Agraeciini from Australia (Orthoptera: Tettigoniidae; Conocephalinae; Agraeciini)
FIG 7. Australiagraecia gladiator. A. Adult female. B. Antenna. Note annulations. C. Adult male, tip of abdomen. D. Adult male, dorsal view. Note dissipated dorsal stripe. E. Adult male, subgenital plate, ventral view. Note relatively elongate styles. F. Left cercus, adult male. G. Left tegmen, male. H. Phallic complex. Note absence of sclerotised portions.
Figure 9. Antenna characters and states. A in From Arge to Zenarge: adult morphology and phylogenetics of argid sawflies (Hymenoptera: Argidae)
Figure 9. Antenna characters and states. A, Pampsilota zebra ♂. B, Aprosthema tardum ♂. C, Digelasinus diversipes ♀, proximal region. D, Pampsilota dahomeyanus ♂. E, Arge pullata ♂. F, Tanyphatnidea microcephala ♀. G, Antargidium sp. H, Triarge nigra ♀. Abbreviations: fl = flagellum, ol = lateral ocellus, om = median ocellus, pdc = pedicel, scp = scape.
FIGURES 17–24. Figures 17–20. Antenna. 17 in Rudogorites simonei gen. nov. and sp. nov. from Central Bosnia (Coleoptera: Leiodidae: Cholevinae: Leptodirini)
FIGURES 17–24. Figures 17–20. Antenna. 17, Rudogorites simonei sp. nov., male. 18, Rudogorites simonei sp. nov., female. 19, Charonites scheibeli, female. 20, Charonites matzenaueri, male. Figures 21–23, metatergal apparatus, posterior process is indicated with black arrow. 21, Rudogorites simonei sp. nov., male. 22, Charonites matzenaueri, male. 23, Charonites scheibeli, female. Figure 24, metendosternite, Rudogorites simonei sp. nov., male.
FIGURE 10. Ectamenogonus spp., right antenna. A in Taxonomic revision of the genus Ectamenognonus Buysson (Coleoptera, Elateridae, Elaterinae) from Japan
FIGURE 10. Ectamenogonus spp., right antenna. A: E. miyakoensis, holotype, male [EMM01]; B: E. plebejus [GN. 2124]; C: E. plebejus [KEP20]; D: E. yakuensis, holotype, male (= E. plebejus).
Recording of DELFI-PQ/EASAT-2/HADES PocketQubes and other amateur satellites in the SpaceX Transporter 3 launch with the Allen Telescope Array on 2022-01-15 (antenna 1f)
<p>This dataset contains a recording of the 435 MHz telemetry signals of the DELFI-PQ, EASAT-2, HADES PocketQubes and other amateur satellites in the SpaceX Transporter 3 launch. The recording was done on 2022-01-15, two days after launch. Antennas 1a and 1f from the Allen Telescope Array were used in dual XY (linear) polarization.</p> <p>The hardware configuration was as follows: the two antennas were connected to RFCB LO d, which was tuned to a frequency of 436.5 MHz and used an output IF of 512 MHz. A USRP N321 and a USRP N320 were connected to the IF output of the RFCB. The USRP N321 and digitized both polarizations of antenna 1a, and the USRP N320 digitized both polarizations of antenna 1f. Both USRPs used external 10 MHz reference and PPS coming from the observatory distribution system, and LO sharing was set up among all the channels. The IQ sample rate of the USRP was 3.84 Msps and a GNU Radio flowgraph was used to record IQ data to disk.</p> <p>The GNU Radio flowgraph stored the IQ data for each channel as 16-bin integers in the <a href="https://wiki.gnuradio.org/index.php/Metadata_Information">GNU Radio metatata file format</a>, with detached headers. After recording, the data was converted to <a href="https://github.com/gnuradio/SigMF">SigMF</a> format.</p> <p>This dataset contains the data for antenna 1f. The data for antenna 1a is in the dataset <a href="https://zenodo.org/record/5874005#.YecgA4qCGCg">Recording of DELFI-PQ/EASAT-2/HADES PocketQubes and other amateur satellites in the SpaceX Transporter 3 launch with the Allen Telescope Array on 2022-01-15 (antenna 1a)</a>. The sigmf-collection file grouping all the recordings is provided in both datasets for convenience.</p> <p>Due to the lack of reliable TLEs, during the first part of the recording, the following TLE was tracked:</p> <p>1 99489U 22013.68438100 .00000000 00000-0 57534-2 0 06<br> 2 99489 97.5121 83.3548 0000001 54.9139 307.6602 15.14117915 08</p> <p>This TLE was fitted to previous Doppler observations of DELFI-PQ done by amateurs.</p> <p>After this object set, the following TLE was tracked:</p> <p>1 70302C 22002B 22013.68430822 .00096806 00000-0 57494-2 0 02<br> 2 70302 97.5121 83.3548 0012811 276.7340 85.5055 15.11291562 14</p> <p>This comes from the post-deployment TLEs in Celestrak for DELFI-PQ/EASAT-2/HADES.</p>
Recording of DELFI-PQ/EASAT-2/HADES PocketQubes and other amateur satellites in the SpaceX Transporter 3 launch with the Allen Telescope Array on 2022-01-15 (antenna 1a)
<p>This dataset contains a recording of the 435 MHz telemetry signals of the DELFI-PQ, EASAT-2, HADES PocketQubes and other amateur satellites in the SpaceX Transporter 3 launch. The recording was done on 2022-01-15, two days after launch. Antennas 1a and 1f from the Allen Telescope Array were used in dual XY (linear) polarization.</p> <p>The hardware configuration was as follows: the two antennas were connected to RFCB LO d, which was tuned to a frequency of 436.5 MHz and used an output IF of 512 MHz. A USRP N321 and a USRP N320 were connected to the IF output of the RFCB. The USRP N321 and digitized both polarizations of antenna 1a, and the USRP N320 digitized both polarizations of antenna 1f. Both USRPs used external 10 MHz reference and PPS coming from the observatory distribution system, and LO sharing was set up among all the channels. The IQ sample rate of the USRP was 3.84 Msps and a GNU Radio flowgraph was used to record IQ data to disk.</p> <p>The GNU Radio flowgraph stored the IQ data for each channel as 16-bin integers in the <a href="https://wiki.gnuradio.org/index.php/Metadata_Information">GNU Radio metatata file format</a>, with detached headers. After recording, the data was converted to <a href="https://github.com/gnuradio/SigMF">SigMF</a> format.</p> <p>This dataset contains the data for antenna 1a The data for antenna 1f is in the dataset <a href="https://zenodo.org/record/5866602#.YecgMoqCGCg">Recording of DELFI-PQ/EASAT-2/HADES PocketQubes and other amateur satellites in the SpaceX Transporter 3 launch with the Allen Telescope Array on 2022-01-15 (antenna 1f)</a>. The sigmf-collection file grouping all the recordings is provided in both datasets for convenience.</p> <p>Due to the lack of reliable TLEs, during the first part of the recording, the following TLE was tracked:</p> <p>1 99489U 22013.68438100 .00000000 00000-0 57534-2 0 06<br> 2 99489 97.5121 83.3548 0000001 54.9139 307.6602 15.14117915 08</p> <p>This TLE was fitted to previous Doppler observations of DELFI-PQ done by amateurs.</p> <p>After this object set, the following TLE was tracked:</p> <p>1 70302C 22002B 22013.68430822 .00096806 00000-0 57494-2 0 02<br> 2 70302 97.5121 83.3548 0012811 276.7340 85.5055 15.11291562 14</p> <p>This comes from the post-deployment TLEs in Celestrak for DELFI-PQ/EASAT-2/HADES.</p>
Dataset for publication: Design and Characterization of a Magnetic Loop Antenna for Partial Discharge Measurements in Gas Insulated Substations
<p>Data set belonging to the IEEE Sensors Journal paper with DOI: <a href="https://doi.org/10.1109/JSEN.2021.3089084">10.1109/JSEN.2021.3089084</a></p> <p>Mier Escurra, Christian; Mor, Armando Rodrigo; Vaessen, Peter</p> <p><em>Design and Characterization of a Magnetic Loop Antenna for Partial Discharge Measurements in Gas Insulated Substation</em></p>
◂Fig. 6 Scanning electronmicroscopy images of Ramisyllis kingghidorahi n. sp. A Anterior region up to first 17 segments, dorsal view. B Prostomium in detail, anterodorsal view (broken antennae on stub). C Prostomium and first segments in detail showing dorsal bands of cilia, dorsal view. D–F Pores on dorsal cirri. Scale bars: 1 mm A, 200 µm B, 300 µm C, 50 µm E, 30 µm D, F in Ramisyllis kingghidorahi n. sp., a new branching annelid from Japan
◂Fig. 6 Scanning electronmicroscopy images of Ramisyllis kingghidorahi n. sp. A Anterior region up to first 17 segments, dorsal view. B Prostomium in detail, anterodorsal view (broken antennae on stub). C Prostomium and first segments in detail showing dorsal bands of cilia, dorsal view. D–F Pores on dorsal cirri. Scale bars: 1 mm A, 200 µm B, 300 µm C, 50 µm E, 30 µm D, F
FIGURE 1 in A new primitive genus of the family Psychidae having long-scaled female antennae from the Ryukyus, Japan (Lepidoptera, Tineoidea)
FIGURE 1. Lepidoceropsyche manoi gen. & sp. nov. (A, C–G) and Psychidae gen. sp.(B). A. holotype female; B. female from South Africa in the collection of the Natural History Museum, London (photo by T. Sobczyk); C. left antenna of the holotype; D. part of left antenna of the holotype; E. part of macerated antenna of a paratype, most of scales were lost; F. unscaled wings of a pratype; G. metathoracic sternum and apophyses from empimera of a paratype, right pleuron was cut and taken off, right lateral aspect (apep: apophysis from metepimeron; dbs: discrimen of basisternum; cx2: left hind coxa; fra: metafuracal arm; frs: metafurcisternum; st1; 1st abdominal sternum).
FIGURE. 2 in A new primitive genus of the family Psychidae having long-scaled female antennae from the Ryukyus, Japan (Lepidoptera, Tineoidea)
FIGURE. 2. Lepidoceropsyche manoi gen. & sp. nov. A. head of paratype, anterior aspect; B. ditto, left lateral spect; C. ditto, ventral aspect; D. legs; E. apical 1/2 of fore tibia with epiphysis; F. terminalia of a paratype, ventral aspect (apa: apophysis anterioris; app: apophysis posterioris; apv: ventral apophysis); G. part of terminalia, ventral aspect (bc: bursa copulatrix; db: ductus bursae; ds: ductus seminalis; lav: lamella antevaginalis); H. apical part of ovipositor (apv: ventral apophysis; pa: papilla analis).
Plate III. Anagyrus almoriensis Shafee, Alam & Agarwal. Male on card (ZDAMU) figures (10−15) 10. Mandible; 11. Antenna; 12. Scape and pedicel sculpture; 13. Fore wing; 14. Metasoma; 15. Axillae and scutellum in First description of the male of Anagyrus almoriensis Shafee, Alam & Agarwal (Hymenoptera: Encyrtidae) with details of new host Pseudococcus calceolariae (Maskell) (Hemiptera: Pseudococcidae) on Rubus ellipticus (Rosaceae) from Himalayas
Plate III. Anagyrus almoriensis Shafee, Alam & Agarwal. Male on card (ZDAMU) figures (10−15) 10. Mandible; 11. Antenna; 12. Scape and pedicel sculpture; 13. Fore wing; 14. Metasoma; 15. Axillae and scutellum
FIGURES 3–16. D. shenzhenensis—3. Antenna, 4. Head, 5. Labrum, 6. Mentum, 7 in Discoxenus Wasmann new to China with description of a new species (Coleoptera: Staphylinidae: Aleocharinae)
FIGURES 3–16. D. shenzhenensis—3. Antenna, 4. Head, 5. Labrum, 6. Mentum, 7. Mandible, left, 8. Mandible, right, 9. Tergite VIII, 10. Sternite VIII, male, 11. Tergites IX and X, 12. Pronotum, 13. Elytron, 14. Median lobe of aedeagus, ventral view, 15. Median lobe of aedeagus, lateral view, 16. Paramere. Scales = 0.1 mm.
single-nucleus RNAseq data from female Aedes aegypti antenna
<p>Single-nucleus RNA sequencing data accompanying Herre*, Goldman* et al. (2022), "Non-Canonical Odor Coding in the Mosquito" (https://doi.org/10.1016/j.cell.2022.07.024)</p> <p>For further analysis see: https://github.com/VosshallLab/Younger_Herre_Vosshall2020/tree/main/snRNAseq_SupplementaryData</p> <p>For raw sequencing files see NCBI BioProject: PRJNA794050</p>
Supplementary data to "Variability of Antenna Signals from Dust Impacts"
<p>Supplementary data to "Variability of Antenna Signals from Dust Impacts"</p>
FIGURES 24–27. Antenna. 24–26 in Descriptions of the developmental stages of Cafius nauticus (Fairmaire) (Coleoptera: Staphylinidae: Staphylininae), with comments on its biology
FIGURES 24–27. Antenna. 24–26. First larval instar; 27. Third larval instar; 24, 27. General appearance in dorsal aspect; 25. Apex of antennal article IV; 26. Region of sensory appendage of antennal article III. Abbreviations: 1–6=setae, a–d=pores, SA=sensory appendage, SO=solenidia.
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.