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Fig. 4 in Two New Species Of Iphidozercon (Acari: Ascidae) With A Key To Females
Fig. 4. Iphidozercon altaicus sp. n. – genu II (a), tibia II (b), tarsus II (c)
Fig. 1 in Two New Species Of Iphidozercon (Acari: Ascidae) With A Key To Females
Fig. 1. Iphidozercon altaicus sp. n. – dorsal view
Fig. 3 in Two New Species Of Iphidozercon (Acari: Ascidae) With A Key To Females
Fig. 3. Iphidozercon altaicus sp. n. – hypostome (a), chelicera (b), epistome (c)
Fig. 2 in Two New Species Of Iphidozercon (Acari: Ascidae) With A Key To Females
Fig. 2. Iphidozercon altaicus sp. n. – ventral view
Figure 4. Female Eustiromastix spinipes. A in First report of Eustiromastix spinipes (Taczanowski 1872) (Araneae: Salticidae: Saltafresia) from Colombia, with new salticid records for the Department of Córdoba
Figure 4. Female Eustiromastix spinipes. A, Habitus, dorsal view. B, Chelicerae, posterior aspect. C-E, Epigyne, (C) ventral view, (D), same, cleared, (E) dorsal view, cleared.
Figure 11. Female paratype, Maratus pinniger. 1-5 in Maratus pinniger, a new peacock spider in the vespa group from southwestern Australia (Araneae: Salticidae: Euophryini)
Figure 11. Female paratype, Maratus pinniger. 1-5, Submerged in alcohol. 6, Ventral view of epigynum (anterior toward top of page). 7, Ventral view of living spider.
Figure 8. Female paratypes, Maratus candens. 1-10, 13-14 in Maratus candens, a new peacock spider in the linnaei group from southwestern Australia (Araneae: Salticidae: Euophryini)
Figure 8. Female paratypes, Maratus candens. 1-10, 13-14, Views of paratypes preserved in alcohol. 11-12, Ventral views of living paratypes. 13-14, Ventral views of epigynum (anterior toward top of page).
Fig. 4. Pachyneuron gibbiscuta Thomson, 1878, female. A in New records of Pteromalinae (Hymenoptera: Chalcidoidea, Pteromalidae) from Iran
Fig. 4. Pachyneuron gibbiscuta Thomson, 1878, female. A – body, lateral view; B – an-
Figs. 33–40. Barsine spp., female genitalia. 33 – B in Four new species of the genus Barsine Walker, 1854 (Lepidoptera: Erebidae, Arctiinae) from Oriental Region
Figs. 33–40. Barsine spp., female genitalia. 33 – B. midzhan sp. n., paratype, N Myanmar;
Figure 46 in Males of a new species of Jotus from Australia wave a paddle-shaped lure to solicit nearby females (Araneae: Salticidae: Euophryini)
Figure 46. Field records of predation on ants by a male Jotus remus at Barrington Tops (1), a female Anasaitis canosa from Greenville County, South Carolina (2), and a male Naphrys pulex, also from Greenville County (3). Although found on a different continent, Naphrys is thought to be more closely related to the Australian Jotus than to the Anasaitis that shares its leaf-litter habitat (Zhang & Maddison 2013). 2-3, Scale = 1 mm.
Figure 45 in Males of a new species of Jotus from Australia wave a paddle-shaped lure to solicit nearby females (Araneae: Salticidae: Euophryini)
Figure 45. Take-off sequence by an adult male Jotus remus based on analysis of high-speed (sequential frames at 1000 FPS), low resolution video frames. Note the paddles on legs III. In this sequence, the spider crouched (1-4), then sprung off of the surface in a near-vertical trajectory, extending all four hind legs in about 3 msec.
Figure 43 in Males of a new species of Jotus from Australia wave a paddle-shaped lure to solicit nearby females (Araneae: Salticidae: Euophryini)
Figure 43. Take-off sequence by an adult male Jotus auripes based on analysis of high-speed (1000 FPS) video frames. In this example, legs IV accelerated the spider to ~50 cm/s, then to ~55 cm/s, and extension of legs III brought this up to ~90 cm/s.
Figure 42 in Males of a new species of Jotus from Australia wave a paddle-shaped lure to solicit nearby females (Araneae: Salticidae: Euophryini)
Figure 42. Take-off sequence by an adult male Jotus auripes based on analysis of high-speed (1000 FPS) video frames. In this example, legs IV accelerated the spider to ~40 cm/s, then to ~60 cm/s, and extension of legs III brought this up to ~90 cm/s.
Figure 41 in Males of a new species of Jotus from Australia wave a paddle-shaped lure to solicit nearby females (Araneae: Salticidae: Euophryini)
Figure 41. Take-off sequence by an adult male Jotus auripes based on analysis of high-speed (1000 FPS) video frames. In this example, legs IV accelerated the spider to ~55 cm/s, then to ~70 cm/s, and extension of legs III brought this up to ~80 cm/s. Since vertical deceleration due to gravity takes place as the spider is accelerating, the actual acceleration due to vertical extension of the legs is somewhat greater than this.
Figure 39 in Males of a new species of Jotus from Australia wave a paddle-shaped lure to solicit nearby females (Araneae: Salticidae: Euophryini)
Figure 39. Take-off sequence by an adult male Jotus auripes based on analysis of high-speed (1000 FPS) video frames. In this example, legs IV accelerated the spider to ~50 cm/s, then to ~60 cm/s, and extension of legs III brought this up to ~80 cm/s.
Figure 37 in Males of a new species of Jotus from Australia wave a paddle-shaped lure to solicit nearby females (Araneae: Salticidae: Euophryini)
Figure 37. Selected composite images showing successive positions of a jumping male Jotus remus (1000 FPS video). The position of the pedicel was plotted with small circles a 1 msec intervals, superimposed on a grid of 1 mm squares (1 mm/msec corresponds to 100 cm/s). The take-off velocity (at position 7 at right side of grid) shown here was ~79 cm/s in a direction of 18.4° above horizontal (horizontal velocity ~75 cm/s, vertical velocity ~25 cm/s). The red line represents a ballistic flight trajectory from the take-off position, and the actual flight path (small circles) approximates this. Like other jumping spiders, Jotus use their dragline during these targeted jumps. Note the reversal of pitch (backward to forward) at the end of this jump.
Figure 38 in Males of a new species of Jotus from Australia wave a paddle-shaped lure to solicit nearby females (Araneae: Salticidae: Euophryini)
Figure 38. Take-off sequence by an adult male Jotus auripes based on analysis of high-speed (1000 FPS) video frames. In this and in subsequent figures (Figures 31-36), four frames are shown to represent [1] the start position when extension of legs IV begins, [2] the start of extension of legs III, as legs IV continue to extend, [3] the end of extension of legs IV, when only legs III are still extending, and [4] the take-off position at which legs III are completely extended. Small circles show the position of a reference position on the spider (identifed by the presence of the lateral band of white scales on the carapace) for each frame, separated by 1 msec. In the background is a 1 mm grid. In this example, the spider accelerated to ~60 cm/s with legs IV, then to ~70 cm/s with legs III and IV, and finally to ~80 cm/s with only legs IV. In this and in subsequent examples the spider crouched down against the surface before extending its legs.
Figure 44 in Males of a new species of Jotus from Australia wave a paddle-shaped lure to solicit nearby females (Araneae: Salticidae: Euophryini)
Figure 44. Take-off sequence by an adult male Jotus remus based on analysis of high-speed (sequential frames at 1000 FPS), low resolution video frames. In this species legs III and IV are also close in length and both contribute to acceleration.
Figure 31 in Males of a new species of Jotus from Australia wave a paddle-shaped lure to solicit nearby females (Araneae: Salticidae: Euophryini)
Figure 31. Sequential frames (25 FPS video, not consecutive) showing a male Jotus remus making a first (1-4) and then a second (5-9) rapid swing of a paddle in front of a female on the opposite side of a leaf, then quickly flipping to the top of the leaf (10-11) to mount that female (12-16). White arrows indicate the position of the paddle during each rapid swing.
Figure 33 in Males of a new species of Jotus from Australia wave a paddle-shaped lure to solicit nearby females (Araneae: Salticidae: Euophryini)
Figure 33. Sequential frames (25 FPS, not consecutive) showing a female Jotus remus on top of a leaf turning to follow the rapid forward and slower rearward movement of the male's paddle (1-10). With the female watching the male raised one paddle (11) to complete a rapid swing in front of the female (12-13), briefly vibrated (14-16), completed a second rapid swing of the paddle (17-18), vibrated (19-20), and finally flipped quickly around to the top of the leaf to join the female (21-24). Both rapid swings of the paddle were completed in little more than half of a second.
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.