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2,247 results for “Western Australia”
FIGURE 1 in Centrolepis milleri (Centrolepidaceae: Poales), a new species from Western Australia
FIGURE 1. Habit of Centrolepis milleri (S of Jurien Rd and E of Black Arrow Rd, 25.ix.2014, M.D. Barrett & D.D. Sokoloff 112). A. Plants in natural habitat, with sand blown away from leaves of one plant. B. Detail showing leaves mostly buried by sand. C. Plant removed from the sand. D. Centrolepis drummondiana (left) and C. milleri (right) growing side by side in natural habitat.
FIGURE 1 in The phylogenetic position of Polysiphonia scopulorum (Rhodomelaceae, Rhodophyta) based on molecular analyses and morphological observations of specimens from the type locality in Western Australia
FIGURE 1. Phylogenetic tree of the genus Polysiphonia sensu lato and outgroup taxon estimated with Maximum Likelihood (RAxML) analysis of rbcL sequences. Samples in bold type represent our data collected from Rottnest Island, Western Australia, while samples in plain type were downloaded from GenBank. Values at nodes indicate ML bootstrap support (BP) and the scale indicates substitutions per site.
FIGURE 2. Polysiphonia scopulorum Harvey. A in The phylogenetic position of Polysiphonia scopulorum (Rhodomelaceae, Rhodophyta) based on molecular analyses and morphological observations of specimens from the type locality in Western Australia
FIGURE 2. Polysiphonia scopulorum Harvey. A: Tetrasporophyte (Rottnest Island, Australia; 11 November 2015); B & C: Prostrate axes and numerous erect axes; D: Unicellular rhizoid in open connection (arrowhead) with a pericentral cell and apex of prostrate axes (arrow); E: Unicellular rhizoid in open connection (arrowhead) with pericentral cell and erect axes (arrow); F: Irregular branching pattern; G: Scar cells on erect axes; H: Cross-section of erect axes; I: Discoid rhodoplasts in pericentral cells; J: Apical cell (arrowhead) and endogenous branching (arrows) in erect axes; K–M: Apical cell (arrowhead) and exogenous branching (arrows) in erect axes; N: Apex of erect axes (arrowhead: apical cell); O & P: Trichoblast; Q: Adventitious branch (arrowhead); R: Tetrahedrally divided tetrasporangia; S: Tetrasporangia (arrowheads) and trichoblast or scar cells (arrows); T: Cross-section of tetrasporangial branch (arrowheads: pericentral cells, arrows: presporangial cover cells, t: tetrasporangium, cc: central cell); U: Slightly spiral arrangement of tetrasporangial series (Scale bars: A = 5 mm, B, C, F = 500 μm; D, E, H, I, Q, R, S, T = 50 μm; G, P, U = 100 μm; J–M = 20 μm; N = 30 μm; O = 200 μm).
FIGURE 3 in Filling a morphological gap between Australasian and Eurasian/African members of Althenia (Potamogetonaceae, Alismatales): A. hearnii sp. nov. from SW Western Australia
FIGURE 3. Habitat of Althenia hearnii (type locality) and habit of female plants from the type locality. Photographs by T.D. Macfarlane.
FIGURE 2 in Filling a morphological gap between Australasian and Eurasian/African members of Althenia (Potamogetonaceae, Alismatales): A. hearnii sp. nov. from SW Western Australia
FIGURE 2. Morphological details of Althenia hearnii (M.D. Barrett & D.D. Sokoloff 102), SEM. A, sheath to blade transition of vegetative leaf. B, distal part of vegetative leaf. C, leaf in female inflorescence. D, postanthetic female flower. E, postanthetic stigmas. F, preanthetic male flower. G, fruit. Scale bars = 100 μm.
FIGURE 1 in Filling a morphological gap between Australasian and Eurasian/African members of Althenia (Potamogetonaceae, Alismatales): A. hearnii sp. nov. from SW Western Australia
FIGURE 1. General view of fragments of dwarf male (above) and elongated female (below) plants of Althenia hearnii (M.D. Barrett & D.D. Sokoloff 102). Leaf senescence is shown in black.
FIGURE 3. A in A new pygmy sundew, Drosera albonotata (Droseraceae), from the western Wheatbelt and an updated diagnostic key to the orange-flowered pygmy Drosera of Western Australia
FIGURE 3. A map of the central Western Wheatbelt with the ranges of Drosera albonotata, D. coomallo and D. miniata indicated. Observed locations are those visited by the authors or their colleagues where identity of the plants present was directly confirmed. Inferred locations are those where plants thought to be of the same taxon (indicated by herbarium collections or photographs taken by cooperative members of the public) may occur but which could not be confirmed by the authors, mainly as a result of aborted or extremely early flowering during the poor flowering season that coincided with the study period (drawing by A. S. Robinson).
FIGURE 2 in A new pygmy sundew, Drosera albonotata (Droseraceae), from the western Wheatbelt and an updated diagnostic key to the orange-flowered pygmy Drosera of Western Australia
FIGURE 2. Living plants photographed in situ, showing left a flowering plant, and right a mature rosette. Photographs A.S. Robinson.
FIGURE 1. Drosera albonotata A.S.Rob., A.T in A new pygmy sundew, Drosera albonotata (Droseraceae), from the western Wheatbelt and an updated diagnostic key to the orange-flowered pygmy Drosera of Western Australia
FIGURE 1. Drosera albonotata A.S.Rob., A.T.Cross, Meisterl & A.Fleischm. a—habit of a plant with two inflorescences at anthesis. b—gemma, left adaxial surface, middle lateral view, right abaxial surface. c—leaf with attached stipule as well as unifacial marginal glands, which can be relatively short-lived and not always apparent later in the season, left adaxial surface, right abaxial surface d—petiole cross-section. e—stipule, abaxial surface. f—style arm with stigma. g—gynoecium. h—petal, adaxial surface. i—sepal, abaxial surface. j—stamens, right sub-mature with intact anthers, left mature with extrorse longitudinal thecal dehiscence initiating at anther apex. k— seed. a, c, h, j from living type material prior to pressing, b from cultivated material, d–g, i from herbarium material, k from cultivated material visualised by SEM. Drawn by A. S. Robinson.
FIGURE 6 in A new pygmy sundew, Drosera albonotata (Droseraceae), from the western Wheatbelt and an updated diagnostic key to the orange-flowered pygmy Drosera of Western Australia
FIGURE 6. Comparison of the flowers of (left) Drosera albonotata and (right) D. miniata from their respective type localities. Scale bar = 1 cm. Labels A, B and C indicate where comparative width measurements were made to test morphometric variation. The position of B was a fixed distance established in D. albonotata as the narrowest point of constriction of the centre bout (ii) of the pandurate shape, whilst A and C represent the widest points of the proximal (i) and distal (iii) bouts respectively (photographs and illustrations by A.S. Robinson).
FIGURE 8 in A new pygmy sundew, Drosera albonotata (Droseraceae), from the western Wheatbelt and an updated diagnostic key to the orange-flowered pygmy Drosera of Western Australia
FIGURE 8. Comparison of the flowers of all twelve orange-flowered Drosera species in D. section Bryastrum. A Drosera albonotata, B D. miniata, C D. coomallo, D D. bindoon, E D. callistos, F D. sewelliae, G D. hyperostigma, H D. platystigma, I D. barbigera, J D. echinoblastus, K D. leucoblasta, L D. pulchella (orange flowered variant). Flowers not all shown at same scale (photographs C, D, E, G, H, J, K by A. Fleischmann; A, B, F, I, L by A.S. Robinson).
FIGURE 7 in A new pygmy sundew, Drosera albonotata (Droseraceae), from the western Wheatbelt and an updated diagnostic key to the orange-flowered pygmy Drosera of Western Australia
FIGURE 7. Seeds of A Drosera albonotata, B D. miniata, C D. coomallo and D D. walyunga visualised by SEM (image A by M.E. Meisterl; B, C, D by H. Halbritter).
FIGURE 5 in A new pygmy sundew, Drosera albonotata (Droseraceae), from the western Wheatbelt and an updated diagnostic key to the orange-flowered pygmy Drosera of Western Australia
FIGURE 5. Comparison of the (top) adaxial and (bottom) abaxial surfaces of excised petals of Drosera miniata and D. albonotata collected at the respective type localities. Primary (1º), secondary (2º) and tertiary (3º) branching of the veins is indicated. Photographs and illustration A.S. Robinson.
FIGURE 4. A in A new pygmy sundew, Drosera albonotata (Droseraceae), from the western Wheatbelt and an updated diagnostic key to the orange-flowered pygmy Drosera of Western Australia
FIGURE 4. A pollinator of Drosera albonotata, identified as a Melolonthid (Scarabaeidae) possibly in the genus Liparetrus (photograph by A.S. Robinson).
FIGURE 1. Caladenia species and the sympatric species they are putatively mimicking. A in Endangered fairies: two new species of Caladenia (Orchidaceae; Orchidoideae; Diurideae), from the bauxite plateaux of southwestern Western Australia
FIGURE 1. Caladenia species and the sympatric species they are putatively mimicking. A. Hypocalymma robustum (Myrtaceae). B. Caladenia rosea (Orchidaceae). C. Conostylis setosa (Haemodoraceae). D. Caladenia lateritica (Orchidaceae). E. Conostylis aculeata (Haemodoraceae). F. Caladenia flava (Orchidaceae).
FIGURE 3 in Flowering in darkness: a new species of subterranean orchid Rhizanthella (Orchidaceae; Orchidoideae; Diurideae) from Western Australia
FIGURE 3. Sketch of Rhizanthella johnstonii. Adapted by M. Christenhusz from an anonymous sketch in the herbarium of the Royal Botanic Gardens, Kew.
FIGURE 2. Western Australian Rhizanthella species. A in Flowering in darkness: a new species of subterranean orchid Rhizanthella (Orchidaceae; Orchidoideae; Diurideae) from Western Australia
FIGURE 2. Western Australian Rhizanthella species. A. Rhizanthella johnstonii. Munglinup, Western Australia. Photo by A. Brown. B. Rhizanthella gardneri. Babakin, Western Australia. Photo by K. Dixon.
Syntectonic Late Devonian terrestrial sedimentation in the southern Bonaparte Basin, Western Australia
<p>Supplementary data for a paper on "<strong><span>Syntectonic Late Devonian terrestrial sedimentation in the southern Bonaparte Basin, Western Australia"</span></strong></p>
FIGURE 5 in An unusual new species of Paracnephia Rubtsov (Diptera: Simuliidae) from Western Australia
FIGURE 5. Paracnephia gladiator, new species. Larval head capsule, dorsal (top) and ventral (bottom).
FIGURE 3. Paracnephia gladiator, new species. Male terminalia. A in An unusual new species of Paracnephia Rubtsov (Diptera: Simuliidae) from Western Australia
FIGURE 3. Paracnephia gladiator, new species. Male terminalia. A. Ventral view, with left gonocoxa and gonostylus removed (median sclerite not shown). B. Ventral plate and median sclerite, lateral view.
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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)
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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.