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129 results for “Monsoonal Tropics”
FIGURE 28 in New species of Anabarhynchus Macquart (Diptera: Therevidae) from arid and monsoon tropical Australia
FIGURE 28. Anabarhynchus tribulationensis sp. n., holotype male terminalia (ANIC_29:028797): A, epandrium, left dorsal view, right ventral view; B, atrium left dorsal view, right ventral view; C, aedeagus, dorsal view; D, aedeagus, lateral view; Scale line= 0.5mm.
FIGURE 25 in New species of Anabarhynchus Macquart (Diptera: Therevidae) from arid and monsoon tropical Australia
FIGURE 25. Anabarhynchus shiptonsflatensis sp. n., holotype female (ANIC_29:028979): E, furca; F sternite 8; Scale line= 0.5mm.
FIGURE 31 in New species of Anabarhynchus Macquart (Diptera: Therevidae) from arid and monsoon tropical Australia
FIGURE 31. Anabarhynchus weipaensis sp. n., paratype female (GDCB_18196) (AM_K:257926): E; furca, F; sternite 8. Scale line= 0.5mm.
FIGURE 13 in New species of Anabarhynchus Macquart (Diptera: Therevidae) from arid and monsoon tropical Australia
FIGURE 13. Anabarhynchus parilus sp. n., paratype male terminalia (ANIC_29:028788): A, epandrium, left dorsal view, right ventral view; B, gonocoxite left dorsal view, right ventral view; C, aedeagus, dorsal view; D, aedeagus, lateral view; paratype female (ANIC_29:028787): E, furca; F, female sternite 8, ventral surface. Scale line= 0.5mm.
FIGURE 10 in New species of Anabarhynchus Macquart (Diptera: Therevidae) from arid and monsoon tropical Australia
FIGURE 10. Anabarhynchus lyneborgi sp. n., paratype male terminalia (MEI_173904): A, epandrium, left dorsal view, right ventral view; B, gonocoxite left dorsal view, right ventral view; C, aedeagus, dorsal view; D, aedeagus, lateral view; paratype female (MEI_173921): E, furca; F, female sternite 8, ventral surface. Scale line= 0.5mm.
FIGURE 16 in New species of Anabarhynchus Macquart (Diptera: Therevidae) from arid and monsoon tropical Australia
FIGURE 16. Anabarhynchus parkeri sp. n., paratype male terminalia (MEI_173665): A, epandrium, left dorsal view, right ventral view; B, gonocoxite left dorsal view, right ventral view; C, aedeagus, dorsal view; D, aedeagus, lateral view; paratype female (MEI_173725): E, furca; F, female sternite 8, ventral surface. Scale line= 0.5mm.
FIGURE 7 in New species of Anabarhynchus Macquart (Diptera: Therevidae) from arid and monsoon tropical Australia
FIGURE 7. Anabarhynchus ewamin sp. n., paratype male terminalia (ANIC_29:005936): A, epandrium, left dorsal view, right ventral view; B, gonocoxite left dorsal view, right ventral view; C, aedeagus, dorsal view; D, aedeagus, lateral view; paratype female (ANIC_29:005925): E, furca; F, female sternite 8, ventral surface. Scale line= 0.5mm.
FIGURE 1. A in New species of Anabarhynchus Macquart (Diptera: Therevidae) from arid and monsoon tropical Australia
FIGURE 1. A, anterior view of frons; frons width (fw) is measured directly in front of the anterior ocellus and compared to the anterior ocellus width (ao); B, lateral view of head showing 'antennal base position low on frons'.
FIGURE 4 in New species of Anabarhynchus Macquart (Diptera: Therevidae) from arid and monsoon tropical Australia
FIGURE 4. Anabarhynchus doncollessi sp. n., holotype male terminalia (ANIC_29:028777): A, epandrium, left dorsal view, right ventral view; B, gonocoxite left dorsal view, right ventral view; C, aedeagus, dorsal view; D, aedeagus, lateral view. Scale line= 0.5mm.
Predictors of phylogeographic structure among codistributed taxa across the complex Australian monsoonal tropics
<p class="MsoCommentText"><span>Differences in the geographic scale and depth of phylogeographic structure across codistributed taxa can reveal how microevolutionary processes such as population isolation and persistence drive diversification. In turn, environmental heterogeneity, species' traits, and historical biogeographic barriers may influence the potential for isolation and persistence. Using extensive SNP data and a combination of population genetic summary statistics and landscape genomic analyses, we explored predictors of the scale and depth of phylogeographic structure in codistributed lizard taxa from the topographically and climatically complex monsoonal tropics (AMT) of Australia. We first resolved intraspecific lineages and then tested whether genetic divergence across space within lineages is related to isolation by distance, resistance and/or environment and whether these factors differ across genera or between rock-related versus habitat generalist taxa. We then tested whether microevolutionary processes within lineages explain differences in the geographic scale and depth of intraspecific phylogeographic lineages. The results indicated that landscape predictors of phylogeographic structure differ between taxa. Within lineages, there was prevalent isolation by distance, but the strength of isolation by distance is independent of the taxonomic family, habitat specialization, and climate. Isolation by environment is the strongest predictor of landscape-scale genetic divergence for all taxa, with both temperature and precipitation acting as limiting factors. The strength of isolation by distance does not predict the geographic scale of the phylogeographic structure. However, more localized lineages had higher mean individual heterozygosity and less negative Tajima's D. This result implies that finer-scale phylogeographic structuring within species is associated with larger and more stable populations and, hence, persistence.</span></p>
Data from: A revision of the bioregionalisation of freshwater fish communities in the Australian Monsoonal Tropics
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Predictors of phylogeographic structure among codistributed taxa across the complex Australian monsoonal tropics
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Data from: Multilocus phylogeography reveals nested endemism in a gecko across the monsoonal tropics of Australia
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FIGURE 11 in Species delimitation in the Gehyra nana (Squamata: Gekkonidae) complex: cryptic and divergent morphological evolution in the Australian Monsoonal Tropics, with the description of four new species
FIGURE 11. Variation within Gehyra pseudopunctata sp. nov. (scale bar = 10 mm).
FIGURE 6 in Species delimitation in the Gehyra nana (Squamata: Gekkonidae) complex: cryptic and divergent morphological evolution in the Australian Monsoonal Tropics, with the description of four new species
FIGURE 6. Holotype of Gehyra nana (WAM R28214) from King Edward River, WA (scale bar = 10 mm).
FIGURE 16 in Species delimitation in the Gehyra nana (Squamata: Gekkonidae) complex: cryptic and divergent morphological evolution in the Australian Monsoonal Tropics, with the description of four new species
FIGURE 16. Variation within Gehyra pluraporosa sp. nov. (scale bar = 10 mm).
FIGURE 13 in Species delimitation in the Gehyra nana (Squamata: Gekkonidae) complex: cryptic and divergent morphological evolution in the Australian Monsoonal Tropics, with the description of four new species
FIGURE 13. Variation within Gehyra granulum sp. nov. (scale bar = 10 mm).
FIGURE 9 in Species delimitation in the Gehyra nana (Squamata: Gekkonidae) complex: cryptic and divergent morphological evolution in the Australian Monsoonal Tropics, with the description of four new species
FIGURE 9. Variation within Gehyra paranana sp. nov. (scale bar = 10 mm).
Figure 4 from: McDonnell AJ, Wetreich HB, Cantley JT, Jobson P, Martine CT (2019) Solanum plastisexum, an enigmatic new bush tomato from the Australian Monsoon Tropics exhibiting breeding system fluidity. PhytoKeys 124: 39-55. https://doi.org/10.3897/phytokeys.124.33526
Figure 4 Map showing geographic distribution of all taxa compared in this study. red points = S.jobsonii, blue points = S.diversiflorum, black points = S.eburneum, pink points = S.watneyi, yellow points = S.succosum and purple asterisk = S.plastisexum. All points are based on specimens databased in the Australasian Virtual Herbarium (https://avh.chah.org.au/) and specimens held at BUPL.
Figure 1 from: McDonnell AJ, Wetreich HB, Cantley JT, Jobson P, Martine CT (2019) Solanum plastisexum, an enigmatic new bush tomato from the Australian Monsoon Tropics exhibiting breeding system fluidity. PhytoKeys 124: 39-55. https://doi.org/10.3897/phytokeys.124.33526
Figure 1 Morphology and the earliest-known herbarium specimen of Solanumplastisexum. A Flowering stem with a single staminate flower in 2016 B Mature fruit C Erect inflorescences bearing staminate flowers in 2018 and D Specimen collected by P. Latz in 1974, held at DNA and annotated by D. Symon with an annotation indicating his confusion about the reproductive morphology of the specimen (male rachis visible above fruit on far left).
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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.