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13,453 results for “Australia.”
F I G U R E 4 The top 10 in Untangling the web: dynamics of Australia s online terrestrial invertebrate trade
F I G U R E 4 The top 10 most popular invertebrate species in online pet stores, and those that also feature in the top 10 most popular species on the Australian classifieds website. Note that Urodacus elongatus (Flinders Ranges scorpion) has the same relative abundance in online pet stores as Exatosoma tiaratum (giant prickly stick insect), the overall most traded species online.
F I G U R E 7 in Untangling the web: dynamics of Australia s online terrestrial invertebrate trade
F I G U R E 7 (a) Histogram of mean species price-per-unit differences (AUD) between classifieds and online pet stores (classifieds price minus pet store price, i.e., negative price difference indicates that classifieds species are less expensive). Median value of 7.442 is represented by the red line. (b) Examples of species with large price differences on the two e-commerce platforms. Photo credits: (a) Rosie Steinberg, (b) Ajay Narendra, (c) Stephan Höhne.
F I G U R E 2 in Phylogenetic placement and description of Ngaliadessus humphreysi gen. et sp. nov., Watts & Villastrigo (Coleoptera: Dytiscidae), a subterranean diving beetle from the Ngalia Basin in central Australia
F I G U R E 2 BEAST maximum clade credibility tree of Bidessini based on a combination of whole mitochondrial genome sequences, Histone 3 and 18S sequences (Table S1). The new genus/species is shown in bold, and numbers on branches represent Bayesian posterior probabilities.
F I G U R E 1 A in Phylogenetic placement and description of Ngaliadessus humphreysi gen. et sp. nov., Watts & Villastrigo (Coleoptera: Dytiscidae), a subterranean diving beetle from the Ngalia Basin in central Australia
F I G U R E 1 A geological representation of the Ngalia Basin with subterranean groundwaters and its main sampling sites for stygobiotic taxa, including Sullivans Well. The geology was determined from Australian Geological Survey 1: 250 000 maps SF52-12 Mt Doreen (1995) and Napperby SF53-09 (1982) and information compiled by Edgoose and Ahmad (2013). Inset shows the approximate location of the Ngalia Basin in central Australia.
FIGURE 4 in Confirming the identity of the Hypogeococcus species (Hemiptera: Pseudococcidae) associated with Harrisia martinii (Labour.) Britton (Cactaceae) in Australia: implications for biological control
FIGURE 4 Mean (± SE) development time in days of the first- and second-generation females, from the first nymph to adult emergence of the Australian Hypogeococcus (W = 39, p = 0.0545).
FIGURE 3 in Confirming the identity of the Hypogeococcus species (Hemiptera: Pseudococcidae) associated with Harrisia martinii (Labour.) Britton (Cactaceae) in Australia: implications for biological control
FIGURE 3 Phylogenetic trees based on COI sequence data (a) maximum likelihood (IQ-TREE) and (b) Bayesian (Mr. Bayes). Branch labels indicate the ultrafast bootstrap and SH-aLRT values for the maximum likelihood tree and posterior probabilities for the Bayesian tree. Paracoccus marginatus was used as the outgroup for both trees. The host plant family is followed by the country of collection. See Table S1 for further details on host plant species and specimen collection codes for Hypogeococcus. **Country of collection includes Argentina, Brazil, Puerto Rico, and the United States.
FIGURE 2 in Confirming the identity of the Hypogeococcus species (Hemiptera: Pseudococcidae) associated with Harrisia martinii (Labour.) Britton (Cactaceae) in Australia: implications for biological control
FIGURE 2 Phylogenetic trees based on EF1α sequence data (a) maximum likelihood (IQ-TREE) and (b) Bayesian (Mr. Bayes). Branch labels indicate the ultrafast bootstrap and SH-aLRT values for the maximum likelihood tree and posterior probabilities for the Bayesian tree. Planococcus ficus was used as the outgroup for both trees. The host plant family is followed by the country of collection. See Table S1 for further details on host plant species and specimen collection codes for Hypogeococcus.
FIGURE 5 in Confirming the identity of the Hypogeococcus species (Hemiptera: Pseudococcidae) associated with Harrisia martinii (Labour.) Britton (Cactaceae) in Australia: implications for biological control
FIGURE 5 (a) Mean (± SE) pre-oviposition period (days) of the first virgin females, the second virgin, and second mated female generations (H = 19.491, p <0.0001), means labelled with similar letters are not significantly different (Dunn's test, p <0.05); (b) realised fecundity of the first virgin females, the second virgin and second mated female generations (H = 1.2429, p = 0.5372).
F I G U R E 3 in Untangling the web: dynamics of Australia s online terrestrial invertebrate trade
F I G U R E 3 Bar graph of the top 10 most popular invertebrate species on the classifieds website by proportion of total listings, and those that also feature in the top 10 most popular species in online pet stores.
F I G U R E 2 in Untangling the web: dynamics of Australia s online terrestrial invertebrate trade
F I G U R E 2 (a) Total number of invertebrate orders traded on the classifieds website. (b) Total number of species within each invertebrate order traded on the classifieds website.
F I G U R E 4 in Phylogenetic placement and description of Ngaliadessus humphreysi gen. et sp. nov., Watts & Villastrigo (Coleoptera: Dytiscidae), a subterranean diving beetle from the Ngalia Basin in central Australia
F I G U R E 4 Line drawings of larva of Ngaliadessus humphreysi sp. nov.: (a) ventral view of head capsule; (b) dorsal surface of head capsule; (c) enlarged view of ventral surface of head capsule; (d) dorsal view of abdominal segment 8 and basal segment of urogomphi; small circle on segment 8 represents only visible pore.
FIGURE 1 in Confirming the identity of the Hypogeococcus species (Hemiptera: Pseudococcidae) associated with Harrisia martinii (Labour.) Britton (Cactaceae) in Australia: implications for biological control
FIGURE 1 The different morphological features of the Australian Hypogeococcus: Panels (a) and (b) show that the abdominal region has three circuli (1–3); panel (c) shows that the head region has two antennae (4), numerous slender capitate setae (5), and numerous multilocular pores (6); panel (d) shows the presence of numerous slender capitate setae (5) and numerous multilocular pores (6) in the abdominal region; panels (e) and (f) show that the posterior ventral area possess numerous multilocular pores (6) and numerous conical setae (7); panels (g) and (h) show the foreleg (8) with the curvature attachment point, mid-leg (9) and hindleg (10), both with attachment points ending in a bifurcation. These characters are consistent with Hypogeococcus pungens s.s.
FIGURE 1 in Biological control of weeds in Australia: the last 120 years
FIGURE 1 Number of weed biological control agent releases per decade (known deliberate releases only).
FIGURE 2 in Biological control of weeds in Australia: the last 120 years
FIGURE 2 Releases of plant pathogens per decade for weed biological control (known deliberate releases only).
Figures 187–190 in On some silverfish taxa from the Cape York region of northern Australia (Zygentoma: Lepismatidae: Ctenolepismatinae)
Figures 187–190. Acrotelsella obscura sp. nov. holotype ♀ (187) pronotum; (188) mesonotum; (189) metanotum; (190) presternum, prothoracic sternum and PI. Scale bars = 0.1 mm.
Figures 178–186 in On some silverfish taxa from the Cape York region of northern Australia (Zygentoma: Lepismatidae: Ctenolepismatinae)
Figures 178–186. Acrotelsella obscura sp. nov. holotype ♀ (178) long pectinate periocular macrochaeta; (179) curved slightly pectinate marginal macrochaeta of metanotum; (180) long strongly pectinate macrochaeta of PIII; (181) darker dorsal scale of mesonotum; (182) head (cross-hatched area obscured by eye pigment); (183) antenna, scape, pedicel and basal intervals of flagellum; (184) idem, most distal surviving complete interval; (185) maxilla; (186) labium. Arrows indicate the position of the basiconic sensilla. Scale bars = 0.1 mm.
Figures 162–166 in On some silverfish taxa from the Cape York region of northern Australia (Zygentoma: Lepismatidae: Ctenolepismatinae)
Figures 162–166. Acrotelsella septentrionalis sp. nov. holotype ♀ (162) pronotum, left half; (163) mesonotum, left side; (164) metanotum, left side; (165) prothoracic presternum and sternum; (166) PI. Scale bars = 0.1 mm.
Figures 152–161 in On some silverfish taxa from the Cape York region of northern Australia (Zygentoma: Lepismatidae: Ctenolepismatinae)
Figures 152–161. Acrotelsella septentrionalis sp. nov. holotype ♀ (152) pectinate macrochaeta of clypeus; (153) long pectinate macrochaeta of pronotum; (154) shorter pectinate macrochaeta of pronotum; (155) carrot-shaped pectinate macrochaeta of femur of PII; (156) darker scale from pronotum; (157) head (cross-hatched area obscured by eye pigment); (158) antenna, scape, pedicel and basal intervals of flagellum; (159) idem, most distal surviving complete interval; (160) maxilla, arrow indicates basiconic sensillum; (161) labium, smaller chaetotaxy and papillae omitted from one palp. Scale bars = 0.1 mm.
Figures 198–199 in On some silverfish taxa from the Cape York region of northern Australia (Zygentoma: Lepismatidae: Ctenolepismatinae)
Figures 198–199. Acrotelsella obscura sp. nov. holotype ♀ unless otherwise indicated by specimen number (198) base of cerci and medial filament (K.541677); (199) coxites IX and penis of ♂ (T259430). Scale bars = 0.1 mm.
Figures 174–175 in On some silverfish taxa from the Cape York region of northern Australia (Zygentoma: Lepismatidae: Ctenolepismatinae)
Figures 174–175. Acrotelsella septentrionalis sp. nov. paratype ♀ (K.541646) (174) base of left cercus and median filament, with epiproct and a paraproct; paratype ♂ (T259425); (175) urosternite VIII, coxites IX and penis. Scale bars = 0.1 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
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Annotated Behaviour and Observability Dataset (ABODe)
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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.