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195 results for “RC”
Supplementary material 1 from: Gbedomon RC, Salako VK, Schlaepfer MA (2020) Diverse views among scientists on non-native species. NeoBiota 54: 49-69. https://doi.org/10.3897/neobiota.54.38741
Raw data of the survey on perception and valuation of non-native species
Figure 2 from: Köhler F, Willan RC, Bourke AJ, Barden P, Shea M (2024) A new species of land snail, Xanthomelon amurndamilumila, from the North East Isles off Groote Eylandt (= Ayangkidarrba), Gulf of Carpentaria, Australia (Stylommatophora, Camaenidae). Zoosystematics and Evolution 100(1): 61-68. https://doi.org/10.3897/zse.100.113243
Figure 2 Maximum Likelihood phylogram based on analysis of a concatenated alignment of partial 16S and COI sequences using IQ-Tree. Numbers on branches indicate nodal support by 10,000 ultrafast bootstrap replicates. Sequences of Quistrachia leptogramma were used to root this tree. Scale bar indicating modelled evolutionary distance of 10%.
Figure 1 from: Köhler F, Willan RC, Bourke AJ, Barden P, Shea M (2024) A new species of land snail, Xanthomelon amurndamilumila, from the North East Isles off Groote Eylandt (= Ayangkidarrba), Gulf of Carpentaria, Australia (Stylommatophora, Camaenidae). Zoosystematics and Evolution 100(1): 61-68. https://doi.org/10.3897/zse.100.113243
Figure 1 Map of the North East Isles off Groote Eylandt, Arnhem Land, Northern Territory. Specimens of Xanthomelon amurndamilumila sp. nov. have been found on North East Island as well as Hawk and Lane Islands. Small circles indicate sampling sites.
Figure 4 from: Köhler F, Willan RC, Bourke AJ, Barden P, Shea M (2024) A new species of land snail, Xanthomelon amurndamilumila, from the North East Isles off Groote Eylandt (= Ayangkidarrba), Gulf of Carpentaria, Australia (Stylommatophora, Camaenidae). Zoosystematics and Evolution 100(1): 61-68. https://doi.org/10.3897/zse.100.113243
Figure 4 Reproductive anatomy of Xanthomelon amurndamilumila sp. nov., based on dissection of the holotype NTM P.65134. A Genital system; B Penial interior. Abbreviations used: ag, albumen gland; at, atrium; bc, bursa copulatrix; ep, epiphallus; hd, hermaphroditic duct; ipp, penial wall pilasters, ipw, inner penial wall; p, penis; rm, retractor muscle, so, spermoviduct; va, vagina; vd, vas deferens. Scale bars: 5 mm.
Figure 5 from: Köhler F, Willan RC, Bourke AJ, Barden P, Shea M (2024) A new species of land snail, Xanthomelon amurndamilumila, from the North East Isles off Groote Eylandt (= Ayangkidarrba), Gulf of Carpentaria, Australia (Stylommatophora, Camaenidae). Zoosystematics and Evolution 100(1): 61-68. https://doi.org/10.3897/zse.100.113243
Figure 5 Shell morphology of Xanthomelon amurndamilumila sp. nov. A Living specimen from North East Island, not to scale; B Paratype NTM P.62888. Scale bar: 10 mm.
Figure 3 from: Köhler F, Willan RC, Bourke AJ, Barden P, Shea M (2024) A new species of land snail, Xanthomelon amurndamilumila, from the North East Isles off Groote Eylandt (= Ayangkidarrba), Gulf of Carpentaria, Australia (Stylommatophora, Camaenidae). Zoosystematics and Evolution 100(1): 61-68. https://doi.org/10.3897/zse.100.113243
Figure 3 Shell size comparison between the putative new species (circles) and X. arnhemense from adjacent Groote Eylandt (full triangles) by plotting shell height (H) against shell diameter (D).
Residual Life and Reliability Assessment of Underground RC sanitary Sewer Pipelines Under Uncertainty
<p>Prioritization of limited funding for pipelines maintenance is a major issue that concerns municipalities nationwide. Conducting a probabilistic assessment can provide a complete characterization of the performance of structural elements and systems along with optimizing the limited resources. The most widely used probabilistic performance indicator is reliability, a measure of the probability of failure corresponding to a particular limit state (e.g., ultimate strength or serviceability). Reliability methods can be used to identify which pipeline sections within a particular system require the most urgent inspection or repair. To this end, an automated data-driven framework for large diameter reinforced concrete pipes (RCPs) is developed that converts the raw unfiltered inspection readings to data that is used for estimating residual life and further reliability assessment purposes. In the current work, initially, the wall thickness erosion is determined based on the inspection data collected using Light Detection and Ranging (LiDAR). Furthermore, the best fit among several probability distribution functions for the wall thickness loss is obtained, which is integrated with a serviceability limit state that defines failure as the complete loss of 1-in concrete cover caused by environmental conditions such as sulfide-induced erosion. Considering this limit state and a prescribed probability of exceedance threshold, a reliability-based prediction of the remaining service life is proposed. The developed framework requires minimal user interference and is, therefore, less time consuming and more consistent compared to previous research. From an asset management point of view, the most vulnerable pipeline sections are identified that will require further inspection and attention. This will provide decision makers crucial information regarding the current state of the pipeline network, to better allocate the already scarce maintenance funding of these pipelines.</p>
Supplementary material 1 from: Freitas L, Salino A, Neto LM, Almeida TE, Mortara SR, Stehmann JR, Amorim AM, Guimarãe EF, Coelho MN, Zanin A, Forzza RC (2016) A comprehensive checklist of vascular epiphytes of the Atlantic Forest reveals outstanding endemic rates. PhytoKeys 58: 65-79. https://doi.org/10.3897/phytokeys.58.5643
Species list of vascular (hemi-)epiphytes of Brazilian Atlantic Forest :
Figures 9-17 from: Lima-Gomes RC, de Farias Lima J, Magalhães C (2017) Description of ten additional ossicles in the foregut of the freshwater crabs Sylviocarcinus pictus and Valdivia serrata (Decapoda: Trichodactylidae). Zoologia 34: 1-7. https://doi.org/10.3897/zoologia.34.e13731
Figures 9-17 - The ten additional ossicles of the foregut of Sylviocarcinus pictus and Valdivia serrata, found in the present study and not previously recognized by Alves et al. (2010): (9) dorsolateral cardiac plate (VIIb); (10) dorsomedial cardiac plate (VIIa); (11) suprapectineal lateral ossicle (VIIIa); (12) lateral mesopyloric ossicle (XIXa); (13) pleuro-pyloric valve's ossicle (XXXIa); (14) lateral-inferior post-ampullary plate (XXVIIa); (15) lateral pleuro-pyloric plate (XXXIIa); (16) inferior cardiac valve (XIIa); (17) process of the ampullary roof-upper portion (XXVIa), ampullary roof-mediun portion ossicle (XXVa) Scale bars: 9-15, 17 = 2 mm, 16 = 1 mm.
Figures 5-8 from: Lima-Gomes RC, de Farias Lima J, Magalhães C (2017) Description of ten additional ossicles in the foregut of the freshwater crabs Sylviocarcinus pictus and Valdivia serrata (Decapoda: Trichodactylidae). Zoologia 34: 1-7. https://doi.org/10.3897/zoologia.34.e13731
Figures 5-8 - Foregut of Valdivia serrata: (5) dorsal view; (6) ventral view (7) lateral view; (8) lateral view with the additional ossicles found in the present study. (CS) cardiac sac, (eso) esophagus. Scale bar = 5 mm.
Figures 1-4 from: Lima-Gomes RC, de Farias Lima J, Magalhães C (2017) Description of ten additional ossicles in the foregut of the freshwater crabs Sylviocarcinus pictus and Valdivia serrata (Decapoda: Trichodactylidae). Zoologia 34: 1-7. https://doi.org/10.3897/zoologia.34.e13731
Figures 1-4 - Foregut of Sylviocarcinus pictus: (1) dorsal view; (2) ventral view; (3) lateral view; (4) lateral view with the additional ossicles found in the present study. (CS) Cardiac sac, (eso) esophagus. Scale bar = 5 mm.
Figure 6 from: Pellegrini MOO, Forzza RC, Sakuragui CM (2017) Novelties in Brazilian Tradescantia L. (Commelinaceae). PhytoKeys 80: 1-31. https://doi.org/10.3897/phytokeys.80.12232
Figure 6 - Tradescantia boliviana (Hassk.) J.R.Grant. A detail of the tuberous roots B habit C detail of fertile branch, showing the conduplicate leaf-blades, and axillary inflorescences D front view of a flower at anthesis, showing the rectangular connectives and C-shaped anther sacs E detail of an immature capsule, showing the densely glandular-pubescent pedicel and sepals, and the capsule apically velutine. Photograph A–B & D by P. Christian (RarePlants.co.uk), C & E by Instituto Darwinion.
Figure 5 from: Pellegrini MOO, Forzza RC, Sakuragui CM (2017) Novelties in Brazilian Tradescantia L. (Commelinaceae). PhytoKeys 80: 1-31. https://doi.org/10.3897/phytokeys.80.12232
Figure 5 - Tradescantia ambigua Mart. A sterile habit, showing the amplexicaulous leaf-blades B detail of the stem and leaf-sheath, showing the densely hispid leaf-sheath and blade C detail of the leaf-blade, showing the reddish, ciliate margin, and the sparsely hispid blade D fertile habit, showing the axillary, sessile inflorescences E removed leaf, exposing the sessile inflorescence and showing the reduced cincinni bracts (arrows) F post-anthesis flower, showing the apically spirally-coiled filaments. Photograph A by E.O. Moura, D & F by L.J. Leitão, B–C & E by M.O.O. Pellegrini.
Figure 4 from: Pellegrini MOO, Forzza RC, Sakuragui CM (2017) Novelties in Brazilian Tradescantia L. (Commelinaceae). PhytoKeys 80: 1-31. https://doi.org/10.3897/phytokeys.80.12232
Figure 4 - Tradescantia zanonia (L.) Sw. A habit, showing the axillary inflorescences perforating the leaf-sheaths B detail of the leaf-sheath C detail of the inflorescence, showing the spathaceous, saccate cincinni bracts, geniculate flowers, and basally conate sepals D side view of a flower, showing the shallowly-tubular flower, subequal stamens, sagittate connectives, round anther sacs, and trilobate stigma E detail of a branched synflorescence, bearing berry-like fruits. Photograph A by A.P. Maceda, B by P. Schwirkowski, C–E by M.O.O. Pellegrini.
Figure 7 from: Pellegrini MOO, Forzza RC, Sakuragui CM (2017) Novelties in Brazilian Tradescantia L. (Commelinaceae). PhytoKeys 80: 1-31. https://doi.org/10.3897/phytokeys.80.12232
Figure 7 - Tradescantia zebrina Heynh. ex Bosse. A habit B detail of a branch, showing the subpetiolate basal leaves, and blades with silver stripes C detail of the abaxial side of the leaf-blade D detail of the stem and leaf-sheath E detail of the terminal inflorescence, showing the spathaceous, saccate, unequal, conduplicate cincinni bracts, and long-tubular flowers with clawed petals F flowers. Photographs by M.O.O. Pellegrini.
Figure 2 from: Pellegrini MOO, Forzza RC, Sakuragui CM (2017) Novelties in Brazilian Tradescantia L. (Commelinaceae). PhytoKeys 80: 1-31. https://doi.org/10.3897/phytokeys.80.12232
Figure 2 - Tradescantia chrysophylla M.Pell. A habit B detail of the stem and leaf-sheath, showing the hispid indumentum, and detail of the sessile leaf-blade C detail of the hispid hairs of the leaf-blade and of the ciliolate margin D detail of the inflorescence, showing the unequal cincinni bracts E detail of the bracteole F detail of the pedicel and sepals, showing the glandular hairs G frontal view of the flower H stamen, showing the filament with basal, dense and long moniliform hairs, the rhomboid connective, and the ellipsoid anther sacs I detail of the gynoecium, showing the punctate stigma J mature, partially open capsule, still covered by the persistent sepals. K–L seed: K dorsal view of a seed, showing the costate testa and dorsal embryotega L ventral view of the seed, showing the linear hilum. Line drawing by M.A. Rezende.
Figure 1 from: Pellegrini MOO, Forzza RC, Sakuragui CM (2017) Novelties in Brazilian Tradescantia L. (Commelinaceae). PhytoKeys 80: 1-31. https://doi.org/10.3897/phytokeys.80.12232
Figure 1 - Tradescantia crassula Link & Otto. A habit, showing the erect stems, and distichously-alternate leaves with conduplicate blades B detail of the stem and leaf-sheath C detail of the abaxial side of the leaf-blade, showing the lack of hairs and the slightly conspicuous secondary veins D detail of floral buds, showing the setose hairs, restricted to the keels of the sepals E flower F detail of the inflorescence, showing the non-saccate cincinni bracts. Photographs by M.O.O. Pellegrini.
Figure 8 from: Pellegrini MOO, Forzza RC, Sakuragui CM (2017) Novelties in Brazilian Tradescantia L. (Commelinaceae). PhytoKeys 80: 1-31. https://doi.org/10.3897/phytokeys.80.12232
Figure 8 - Distribution map of studied Tradescantia L. in the South American domains. Full squares– T. crassula; White squares– T. chrysophylla; Triangles– T. valida; Circles– T. ambigua; Stars– T. boliviana. Light green– Amazon Forest; Orange– Cerrado; Red– Caatinga; Yellow– Chaco and Pantanal; Olive-green– Pampa; Dark green– Atlantic Forest; Purple– Andean Yungas.
Figure 3 from: Pellegrini MOO, Forzza RC, Sakuragui CM (2017) Novelties in Brazilian Tradescantia L. (Commelinaceae). PhytoKeys 80: 1-31. https://doi.org/10.3897/phytokeys.80.12232
Figure 3 - Tradescantia valida G.Brückn. Holotype of T. valida (B barcode B100296487). Photograph courtesy of the Botanic Garden and Botanical Museum Berlin-Dahlem, Freie Universität Berlin.
Figure 6 from: Pellegrini MOO, Forzza RC (2017) Synopsis of Commelina L. (Commelinaceae) in the state of Rio de Janeiro, reveals a new white-flowered species endemic to Brazil. PhytoKeys 78: 59-81. https://doi.org/10.3897/phytokeys.78.11932
Figure 6 - Commelina singularis Vell. A–B Original plate of Vellozo's C. singularis: A line drawings of habit, inflorescence and floral characters B detail of floral characters. C, photos of a natural population of Tripogandra diuretica from the Jardim Botânico Rio de Janeiro, RJ: detail of the inflorescence, showing flowers with white corolla D–E photos of T. diuretica from the municipality of Petrópolis, RJ: D detail of floral characters of a flower with lilac corolla E detail showing the leaves (note the parallel venation characteristic of the species) SS sterile stamens; FS fertile stamens; Gy gynoecium. Photo of C. singularis plate from Biodiversity Heritage Library; All field photos by M.O.O. Pellegrini.
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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.