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709 results for “Conocephalinae”
FIGURE 7. A. Male Afroanthracites inopinatus n in New Agraeciini species from the Eastern Arc Mountains, East Africa (Orthoptera: Tettigoniidae; Conocephalinae; Agraeciini)
FIGURE 7. A. Male Afroanthracites inopinatus n. sp. B. female A. inopinatus n. sp.
FIGURE 2. Female A. guttatus n in New Agraeciini species from the Eastern Arc Mountains, East Africa (Orthoptera: Tettigoniidae; Conocephalinae; Agraeciini)
FIGURE 2. Female A. guttatus n. sp. A. Habitus B. Pronotum and head with acute fastigium verticis.
FIGURE 4 in The Little Harlequin Katydid-a new species of Paraxiphidium Redtenbacher, 1891 (Orthoptera: Tettigoniidae: Conocephalinae; Conocephalini) from the Amazonian Rainforest
FIGURE 4. Paraxiphidium iriodes sp. nov., stridulatory file of male. A: left file; B: right file.
FIGURE 10 in The Little Harlequin Katydid-a new species of Paraxiphidium Redtenbacher, 1891 (Orthoptera: Tettigoniidae: Conocephalinae; Conocephalini) from the Amazonian Rainforest
FIGURE 10. Immature male on leaves of Conceveiba sp. (Euphorbiaceae).
FIGURE 11 in The Little Harlequin Katydid-a new species of Paraxiphidium Redtenbacher, 1891 (Orthoptera: Tettigoniidae: Conocephalinae; Conocephalini) from the Amazonian Rainforest
FIGURE 11. Geographical records of species Paraxiphidium.
Fig. 5 in Topography and climatic fluctuations boosting speciation: biogeography and a molecular phylogeny of the East African genera Afroanthracites Hemp & Ingrisch and Afroagraecia Ingrisch & Hemp (Orthoptera, Tettigoniidae, Conocephalinae, Agraeciini)
Fig. 5 Distribution of Afroanthracites in East Africa
Fig. 3 in Topography and climatic fluctuations boosting speciation: biogeography and a molecular phylogeny of the East African genera Afroanthracites Hemp & Ingrisch and Afroagraecia Ingrisch & Hemp (Orthoptera, Tettigoniidae, Conocephalinae, Agraeciini)
Fig. 3 Map of the Usambara Mountains of Tanzania with forest reserves visited
Fig. 1 in Ecology, acoustics and chromosomes of the East African genus Afroanthracites Hemp & Ingrisch (Orthoptera, Tettigoniidae, Conocephalinae, Agraeciini) with the description of new species
Fig. 1 Map of northern Tanzania and southern Kenya
Fig. 3 Male A. lutindi n in Ecology, acoustics and chromosomes of the East African genus Afroanthracites Hemp & Ingrisch (Orthoptera, Tettigoniidae, Conocephalinae, Agraeciini) with the description of new species
Fig. 3 Male A. lutindi n. sp., dorso-lateral view on pronotum
Fig. 8 in Ecology, acoustics and chromosomes of the East African genus Afroanthracites Hemp & Ingrisch (Orthoptera, Tettigoniidae, Conocephalinae, Agraeciini) with the description of new species
Fig. 8 Female subgenital plates of a A. pseudodiscolor n. sp. and b A. lutindi n. sp.
Fig 13 in Ecology, acoustics and chromosomes of the East African genus Afroanthracites Hemp & Ingrisch (Orthoptera, Tettigoniidae, Conocephalinae, Agraeciini) with the description of new species
Fig 13 Sonogram and power spectrum of calling song of Afroanthracites viridis
FIGURE 10. Anthracites pyramidalis Ingrisch, 2015 in A taxonomic review on the katydids of the genus Anthracites Redtenbacher, 1891 (Tettigoniidae: Conocephalinae: Agraeciini) from Mindanao, Philippines
FIGURE 10. Anthracites pyramidalis Ingrisch, 2015 females in their natural habitat at Claveria.
FIGURE 9. Anthracites pyramidalis Ingrisch, 2015 in A taxonomic review on the katydids of the genus Anthracites Redtenbacher, 1891 (Tettigoniidae: Conocephalinae: Agraeciini) from Mindanao, Philippines
FIGURE 9. Anthracites pyramidalis Ingrisch, 2015 males in their natural habitat at Claveria.
TABLE 1 in A taxonomic review on the katydids of the genus Anthracites Redtenbacher, 1891 (Tettigoniidae: Conocephalinae: Agraeciini) from Mindanao, Philippines
<p><b>TABLE 1.</b> Measurements of <i>Anthracites</i>, in mm.</p><table><tbody><tr><th><b>ID</b></th><th><b>Sex</b></th><th><b>BL</b></th><th><b>PL</b></th><th><b>PW</b></th><th><b>TL</b></th><th><b>HFL</b></th><th><b>HTL</b></th><th><b>OL</b></th></tr><tr><th><i>Anthracites alatus</i> <b>sp. nov.</b></th></tr></tbody><tbody><tr><th>JS12</th><td>♂</td><td>27.9</td><td>10.2</td><td>6.9</td><td>7.4</td><td>20.5</td><td>21.2</td><td>NA</td></tr><tr><th>KS31</th><td>♂</td><td>29.7</td><td>9.3</td><td>6.6</td><td>7.5</td><td>18.3</td><td>19.3</td><td>NA</td></tr><tr><th>KS5</th><td>♂</td><td>26.4 28.0±1.7 (26.4–29.7)</td><td>10.1 9.9±0.5 (9.3–10.2)</td><td>6.4 6.7±0.3 (6.4–6.9)</td><td>7.3 7.4±0.1 (7.3–7.5)</td><td>20.0 19.6±1.2 (18.3–20.5)</td><td>19.7 20.1±1.0 (19.3–21.2)</td><td>NA NA</td></tr><tr><th><i>Anthracites geniculatus</i></th></tr><tr><th>11JAS287</th><td>♂</td><td>27.6</td><td>10.0</td><td>7.2</td><td>5.1</td><td>21.5</td><td>20.9</td><td>NA</td></tr><tr><th>kimaldo</th><td>♂</td><td>24.4 26±2.2 (24.4–27.6)</td><td>9.6 9.8±0.3 (9.6–10.0)</td><td>7.2 7.2±0.0 (7.2–7.2)</td><td>4.0 4.5±0.8 (4.0–5.1)</td><td>20.2 20.8±0.9 (20.2–21.5)</td><td>20.4 20.6±0.3 (20.4–20.9)</td><td>NA NA</td></tr><tr><th><i>Anthracites pyramidalis</i></th></tr><tr><th>JB8</th><td>♂</td><td>23.5</td><td>8.9</td><td>6.1</td><td>4.5</td><td>18.0</td><td>18.9</td><td>NA</td></tr><tr><th>KB9</th><td>♂</td><td>25.0</td><td>8.6</td><td>5.9</td><td>3.9</td><td>18.0</td><td>17.9</td><td>NA</td></tr><tr><th>KS31</th><td>♂</td><td>21.8</td><td>8.6</td><td>5.9</td><td>4.7</td><td>17.9</td><td>18.5</td><td>NA</td></tr><tr><th>MIN.23.64</th><td>♂</td><td>23.3</td><td>8.5</td><td>5.8</td><td>4.3</td><td>18.1</td><td>16.9</td><td>NA</td></tr><tr><th>SB24</th><td>♂</td><td>26.4</td><td>9.2</td><td>6.1</td><td>4.1</td><td>18.5</td><td>18.3</td><td>NA</td></tr><tr><th>SS3</th><td>♂</td><td>22.7 23.8±1.6 (21.8–26.4)</td><td>8.7 8.7±0.3 (8.5–9.2)</td><td>5.9 6.0±0.1 (5.8–6.1)</td><td>3.9 4.2±0.3 (3.9–4.7)</td><td>18.2 18.1±0.2 (17.9–18.5)</td><td>17.8 18±0.7 (16.9–18.9)</td><td>NA NA</td></tr><tr><th><i>Anthracites sebu</i> <b>sp. nov.</b></th></tr><tr><th>AI5.6</th><td>♂</td><td>24.2</td><td>9.7</td><td>6.3</td><td>6.9</td><td>17.0</td><td>17.1</td><td>NA</td></tr><tr><th>LS57A</th><td>♂</td><td>23.0 23.6±0.8 (23–24.2)</td><td>8.9 9.3±0.6 (8.9–9.7)</td><td>6.1 6.2±0.2 (6.1–6.3)</td><td>7.0 6.9±0.1 (6.9–7.0)</td><td>16.5 16.7±0.4 (16.5–17.0)</td><td>15.4 16.3±1.2 (15.4–17.1)</td><td>NA NA</td></tr><tr><th>LS15</th><td>♀</td><td>27.2</td><td>9.5</td><td>6.7</td><td>4.5</td><td>18.7</td><td>17.5</td><td>15.2</td></tr></tbody></table>
FIGURE 20 in A new genus and three new species of Agraeciini (Orthoptera: Tettigoniidae: Conocephalinae) from the Brazilian Atlantic Forest, with comments on the function of some phallic components
FIGURE 20. Pictorial identification key of species within Warimiri gen. nov..
FIGURE 18 in A new genus and three new species of Agraeciini (Orthoptera: Tettigoniidae: Conocephalinae) from the Brazilian Atlantic Forest, with comments on the function of some phallic components
FIGURE 18. Warimiri zumbi gen. et sp. nov.. A) live male, lateral view.
FIGURE 10 in A new genus and three new species of Agraeciini (Orthoptera: Tettigoniidae: Conocephalinae) from the Brazilian Atlantic Forest, with comments on the function of some phallic components
FIGURE 10. Warimiri karutasywa gen. et sp. nov.. A) live male, lateral view, and B) dorsal view.
FIGURE 22 in Studies in Australian Tettigoniidae: New genera and species from North Queensland (Tettigoniidae; Conocephalinae; Armadillagraeciini trib. nov. and Agraeciini; Listroscelidinae; Requenini)
FIGURE 22. Xingbaoia irvineorum Rentz, Su, Ueshima sp. nov. Adult male holotype.
Figure 4 from: Fianco M, Engelking PW, Tavares GC (2021) Rediscovering the rare short-winged unicorn katydid Toledopizia salesopolensis (Piza) (Tettigoniidae: Conocephalinae) from South and Southeastern Brazil: First description of male and bioacoustics. Journal of Orthoptera Research 30(2): 193-200. https://doi.org/10.3897/jor.30.72513
Figure 4 Male genitalia of Toledopizia salesopolensis. A, B. Anterior view; C, D. Posterior view.
Fig. 13 in Studies in Australian Tettigoniidae: New Fully-winged Agraeciini From Northeastern Australia (Orthoptera: Tettigoniidae; Conocephalinae; Agraeciini)
Fig. 13. Scanning electron micrographs of stridulatory files of agraeciine species (scale bar: 1 mm). A, Greenagraecia attenuata, Kuranda. B, G. attenuata, Daintree, Boardwalk. C, G. cooloola, paratopotype. D, Geoffagraecia gwinganna, Bird Tree. E, G. gwinganna, paratopotype. F, Barbaragraecia unicorn, Longlands Gap. G, B. richardsoni, paratopotype. H, B. richardsoni, Kuranda.
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.