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Figure 13 from: Ridenbaugh RD, Barbeau E, Sharanowski BJ (2018) Description of four new species of Eadya (Hymenoptera, Braconidae), parasitoids of the Eucalyptus Tortoise Beetle (Paropsis charybdis) and other Eucalyptus defoliating leaf beetles. Journal of Hymenoptera Research 64: 141-175. https://doi.org/10.3897/jhr.64.24282
Figure 13 Eadya spitzer Ridenbaugh, sp. n. paratype. A Lateral habitus B Dorsal habitus C Metasoma, lateral view. All scale bars are 1mm in length.
Figure 11 from: Ridenbaugh RD, Barbeau E, Sharanowski BJ (2018) Description of four new species of Eadya (Hymenoptera, Braconidae), parasitoids of the Eucalyptus Tortoise Beetle (Paropsis charybdis) and other Eucalyptus defoliating leaf beetles. Journal of Hymenoptera Research 64: 141-175. https://doi.org/10.3897/jhr.64.24282
Figure 11 Eadya paropsidis. A Head, frontal view B Head, dorsal view, arrow pointing to emarginate occipital carinae C Head and mesoscutum, dorsal view D Mesopleuron, lateral view E Propodeum, dorsal view F Propodeum, dorsal view, with arrows indicating transverse carinae. All scale bars are 1mm in length.
Figure 12 from: Ridenbaugh RD, Barbeau E, Sharanowski BJ (2018) Description of four new species of Eadya (Hymenoptera, Braconidae), parasitoids of the Eucalyptus Tortoise Beetle (Paropsis charybdis) and other Eucalyptus defoliating leaf beetles. Journal of Hymenoptera Research 64: 141-175. https://doi.org/10.3897/jhr.64.24282
Figure 12 Eadya spitzer Ridenbaugh, sp. n. holotype. A Lateral habitus B Dorsal habitus C Metasoma, lateral view. All scale bars are 1mm in length.
Figure 10 from: Ridenbaugh RD, Barbeau E, Sharanowski BJ (2018) Description of four new species of Eadya (Hymenoptera, Braconidae), parasitoids of the Eucalyptus Tortoise Beetle (Paropsis charybdis) and other Eucalyptus defoliating leaf beetles. Journal of Hymenoptera Research 64: 141-175. https://doi.org/10.3897/jhr.64.24282
Figure 10 Eadya paropsidis. A Lateral habitus B Dorsal habitus C Fore and hindwing. All scale bars are 1mm in length.
Figure 1 from: Ridenbaugh RD, Barbeau E, Sharanowski BJ (2018) Description of four new species of Eadya (Hymenoptera, Braconidae), parasitoids of the Eucalyptus Tortoise Beetle (Paropsis charybdis) and other Eucalyptus defoliating leaf beetles. Journal of Hymenoptera Research 64: 141-175. https://doi.org/10.3897/jhr.64.24282
Figure 1 Multivariate morphometric ratio analysis of female specimens of Eadya paropsidis, and Eadya daenerys Ridenbaugh, sp. n. A Scatterplot of the first shape principal component plotted against the second shape principal component. Black - Eadya paropsidis, Green - Eadya daenerys sp. n. B Scatterplot of isosize plotted against the first shape principal component. Black - Eadya paropsidis, Green - Eadya daenerys sp. n. C Ratio spectrum for the first principal component with horizontal bars representing 68% confidence based on 1000 bootstrap replicates D Allometry ratio spectrum with horizontal bars representing 68% confidence based on 1000 bootstrap replicates.
Figure 3 from: Tan MK, Wahab RHA (2018) Preliminary study on the diversity of Orthoptera from Kuala Belalong Field Studies Centre, Brunei Darussalam, Borneo. Journal of Orthoptera Research 27(2): 119-142. https://doi.org/10.3897/jor.27.24152
Figure 3 Acrididae: Craneopsis cf. olivacea: A. Male adult; B. Nymph; C, D. Female adult; E. Male genitalia in dorsal (top and bottom left inset), ventral (bottom right inset) views.
Figure 9 from: Rowell CHF, Jago ND, Hemp C (2018) Revision of Aresceutica (Orthoptera: Acrididae: Catantopinae) with comments on related genera. Journal of Orthoptera Research 27(2): 107-118. https://doi.org/10.3897/jor.27.23441
Figure 9 Duviardia vansomereni (comb. n.), phallus. A. Entire phallic complex, lateral view. Fine stippling indicates remaining portions of the epiphallic membrane; B. As in A, but dorsal view. The epiphallus is twisted out of its normal position in this preparation; C. As in A, but entire epiphallic layer removed; D. As in C, but after removal of ectophallic cingulum and rami, showing endophallus and ectophallic arch. The arrow indicates the cut edge of the arch sclerite. E, F, G. Epiphallus in axial, dorsal and lateral views.
Figure 6 from: Rowell CHF, Jago ND, Hemp C (2018) Revision of Aresceutica (Orthoptera: Acrididae: Catantopinae) with comments on related genera. Journal of Orthoptera Research 27(2): 107-118. https://doi.org/10.3897/jor.27.23441
Figure 6 Aresceutica lemarineli, comb. n., phallus. A. Epiphallus, axial view; B. Epiphallus, dorsal view; C. Phallic complex in lateral view, with epiphallus and epiphallic membrane removed; D. As in C, but dorsal view; E. Endophallus and arch, lateral view; F. As in E, but course of dorsal and ventral aedeagal valves inside the aedeagal sheath indicated.
Figure 5 from: Rowell CHF, Jago ND, Hemp C (2018) Revision of Aresceutica (Orthoptera: Acrididae: Catantopinae) with comments on related genera. Journal of Orthoptera Research 27(2): 107-118. https://doi.org/10.3897/jor.27.23441
Figure 5 Aresceutica nguruensis sp. n., phallus. A. Epiphallus, axial view; B. Epiphallus and oval sclerites, dorsal view; C. Epiphallus, lateral view; D. Phallic complex after removal of epiphallus and epiphallic membrane, lateral view; E. As in D, but dorsal view; F. Endophallus and arch, lateral view; G. As in F, but dorsal view.
Figure 3 from: Rowell CHF, Jago ND, Hemp C (2018) Revision of Aresceutica (Orthoptera: Acrididae: Catantopinae) with comments on related genera. Journal of Orthoptera Research 27(2): 107-118. https://doi.org/10.3897/jor.27.23441
Figure 3 Aresceutica morogorica, phallus. A. Epiphallus, axial view; B. Epiphallus, and oval sclerites, dorsal view; C. Epiphallus, lateral view; D. Phallic complex after removal of epiphallus, lateral view. The arrow indicates the cut edge of the epiphallic membrane, where the epiphallus was removed; the remaining epiphallic membrane has dropped down behind the zygoma. In the other figures of this series (i.e. Figs 4–6) this membrane has been dissected off; E. As in D, but dorsal view; F. Endophallus and arch. The region where the connection between arch and zygoma has been cut is arrowed. The lighter shading indicates the ectophallic aedeagal sheath.
Figure 15 from: Tan MK, Wahab RHA (2018) Preliminary study on the diversity of Orthoptera from Kuala Belalong Field Studies Centre, Brunei Darussalam, Borneo. Journal of Orthoptera Research 27(2): 119-142. https://doi.org/10.3897/jor.27.24152
Figure 15 Tettigoniidae: A. Viriacca modesta; B. Lipotactes alienus; C. Asiophlugis longiuncus; D. Neophisis (Indophisis) cf. longipennis or curvata; Mecopoda elongata: E. Female; F. Calling song.
Figure 11 from: Tan MK, Wahab RHA (2018) Preliminary study on the diversity of Orthoptera from Kuala Belalong Field Studies Centre, Brunei Darussalam, Borneo. Journal of Orthoptera Research 27(2): 119-142. https://doi.org/10.3897/jor.27.24152
Figure 11 Phalangopsidae: Parendacustes (Minizacla) mulu: A. Male; B, C. Male genitalia in dorsal and ventral views respectively; D. Male tegmen; Terrozacla borneo: E. Female; F. Male; G. Nymph; Phaloria (Papuloria) trista: H. Male; I. Female; J, K. Male genitalia in dorsal and ventral views respectively. Scale bar: 1mm.
Figure 12 from: Tan MK, Wahab RHA (2018) Preliminary study on the diversity of Orthoptera from Kuala Belalong Field Studies Centre, Brunei Darussalam, Borneo. Journal of Orthoptera Research 27(2): 119-142. https://doi.org/10.3897/jor.27.24152
Figure 12 Mogoplistidae, Gryllotalpidae, and Rhaphidophoridae: A. Cycloptiloides sp.; B. Ectatoderus cf. angusticollis; C. Gryllotalpa (?) sp. (frequency in kHz); D. Rhaphidophora (?) sp. male; E, F. Male abdominal apex. Scale bars: 1mm.
Figure 1 from: Rowell CHF, Jago ND, Hemp C (2018) Revision of Aresceutica (Orthoptera: Acrididae: Catantopinae) with comments on related genera. Journal of Orthoptera Research 27(2): 107-118. https://doi.org/10.3897/jor.27.23441
Figure 1 A–D. Aresceutica lemarineli comb. n.: A. Male; B. Female, lateral; C. Female, dorsal, alive; D. Female, ventral view, to show characteristic red suffusion; E–G. Aresceutica nguruensis, sp. n.: E. Male holotype, lateral; F. Male paratype, lateral; G. Female paratype, alive.
Fig 2 from: Mckean NE, Trewick SA, Griffin MJ, Dowle EJ, Morgan-Richards M (2018) Viability and fertility of hybrid New Zealand tree wētā Hemideina spp. (Orthoptera: Anostostomatidae). Journal of Orthoptera Research 27(2): 97-106. https://doi.org/10.3897/jor.27.14963
Fig 2 A. Tibia length of adult female F1 hybrids compared with adult females from the two parent species, showing no significant difference; B. Tibia length of F1 hybrid males compared with males of the two parent species, showing a significant difference: p-value = 0.0001.
Figure 8 from: Rowell CHF, Jago ND, Hemp C (2018) Revision of Aresceutica (Orthoptera: Acrididae: Catantopinae) with comments on related genera. Journal of Orthoptera Research 27(2): 107-118. https://doi.org/10.3897/jor.27.23441
Figure 8 Serpusia succursor, phallus. A. Epiphallus, axial view; B. Epiphallus, dorsal view. C. Phallic complex after removal of epiphallus and epiphallic membrane, dorsal view. The two cross hatched areas are the zones of attachment of the the arch to the inner surface of the zygoma; D. As in C, but lateral view; E. Endophallus and arch in lateral view; F. As in E but dorsal view. The arrows indicate cut margins of the arch where it has been freed from the inner surface of the zygoma; G. As F, but ventral view. In E, F and G the ejaculatory sac has been removed to show the detail of the gonopore processes.
Figure 2 from: Tan MK, Wahab RHA (2018) Preliminary study on the diversity of Orthoptera from Kuala Belalong Field Studies Centre, Brunei Darussalam, Borneo. Journal of Orthoptera Research 27(2): 119-142. https://doi.org/10.3897/jor.27.24152
Figure 2 Environment of KBFSC and surrounding habitats: A. View of the KBFSC from Sungai Belalong; B. View of Sungai Belalong from KBFSC; C. Afternoon view of the canopy on the ridge along Ashton Trail; D. Sungai Mata Ikan, a small forest stream near KBFSC; E. Morning view of the canopy at Ulu Temburong National Park; F. Dusk time at the Canopy Tower.
Figure 4 from: Rowell CHF, Jago ND, Hemp C (2018) Revision of Aresceutica (Orthoptera: Acrididae: Catantopinae) with comments on related genera. Journal of Orthoptera Research 27(2): 107-118. https://doi.org/10.3897/jor.27.23441
Figure 4 Aresceutica subnuda, phallus. A. Epiphallus and oval sclerites, axial view; B. Phallic complex after removal of epiphallus and epiphallic membrane, lateral view. x: cut edge of epiphallic membrane. y: aedeagal sheath. z: chitinous fringe to ectophallic ramus and basal endophallic sclerites; C. As in B, but dorsal view; D. Endophallus and arch of cingulum, lateral view. w: cut attachment of arch to zygoma; E. As D, but dorsal view; F. As D, but ventral view.
Figure 2 from: Rowell CHF, Jago ND, Hemp C (2018) Revision of Aresceutica (Orthoptera: Acrididae: Catantopinae) with comments on related genera. Journal of Orthoptera Research 27(2): 107-118. https://doi.org/10.3897/jor.27.23441
Figure 2 H–I. Aresceutica morogorica: H. Male, alive; I. Female, alive; J–K. Aresceutica subnuda: J. Male alive; K. Male and female, in cop., alive; L–M. Duviardia vansomereni: L. Male alive; M. Male and female, in cop., alive.
Fig 1 from: Mckean NE, Trewick SA, Griffin MJ, Dowle EJ, Morgan-Richards M (2018) Viability and fertility of hybrid New Zealand tree wētā Hemideina spp. (Orthoptera: Anostostomatidae). Journal of Orthoptera Research 27(2): 97-106. https://doi.org/10.3897/jor.27.14963
Fig 1 Distribution of the three North Island New Zealand species of tree wētā (Hemideina) and an H. thoracica × H. crassidens F1 hybrid. The distributions of the species were taken from Morgan-Richards and Wallis (2003) and Morgan-Richards (2000).
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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.