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FIGURE 4. Ficinia arnoldii. A. Habit. B. Leaf blade and sheath. C. Spikelet. D in Two new species in the Ficinia indica complex (Cyperaceae, tribe Cypereae) from South Africa
FIGURE 4. Ficinia arnoldii. A. Habit. B. Leaf blade and sheath. C. Spikelet. D. Glume. Artist: Kay-Leigh Kilian.
FIGURE 2 in Two new species in the Ficinia indica complex (Cyperaceae, tribe Cypereae) from South Africa
FIGURE 2. Strip plots showing the univariate distributions of morphological characters in the Ficinia indica complex. Boxes represent the range between the 0.025th and 0.975th quantiles, i.e. the middle 95% of values; the thick bar in the box represents the median. The group labels are the abbreviations of the taxa's specific epithets, namely Ficinia argyropus, F. elatior, F. indica, F. laevis, Taxon A (F. montana), and Taxon B (F. arnoldii), respectively.
FIGURE 1 in Two new species in the Ficinia indica complex (Cyperaceae, tribe Cypereae) from South Africa
FIGURE 1. Ordination of specimens of the Ficinia indica complex on the first and second discriminant functions. Taxon A = F. montana; Taxon B = F. arnoldii.
FIGURE 3 in Systematics of the Gracilariales (Rhodophyta) including new subfamilies, tribes, subgenera, and two new genera, Agarophyton gen. nov. and Crassa gen. nov.
FIGURE 3. Diagram showing the newly proposed taxonomy and intra-ordinal classification of the Gracilariales (Rhodophyta) based on rbcL phylogenies and morphological evidence.
FIGURE 1 in Systematics of the Gracilariales (Rhodophyta) including new subfamilies, tribes, subgenera, and two new genera, Agarophyton gen. nov. and Crassa gen. nov.
FIGURE 1. One of 18,002 ML trees of the marine red algal order Gracilariales derived from a Bayesian phylogenetic analysis (after burnin removal). Molecular data used: rbcL DNA sequence alignment composed of 68 taxa and 1,459 bp. New taxonomic proposal for the order is presented. Numbers above branches correspond to Bayesian posterior probabilities (PP); * = 1.0 PP.
FIGURE 2 in Systematics of the Gracilariales (Rhodophyta) including new subfamilies, tribes, subgenera, and two new genera, Agarophyton gen. nov. and Crassa gen. nov.
FIGURE 2. One of 18,000 ML trees of the marine red algal order Gracilariales derived from a Bayesian phylogenetic analysis (after burnin removal). RbcL sequence alignment composed of 36 taxa and 1,467 bp focusing on the relationhsips inside the large genus-complex Gracilaria sensu lato. New taxonomic proposal for the genera within Gracilaria sensu lato is presented. Numbers above branches correspond to Bayesian posterior probabilities (PP); * = 1.0 PP.
FIGURE 4. Maximum likelihood tree showing the seven Moraceae tribes. Unlabeled nodes had 100 in Delimitation of the new tribe Parartocarpeae (Moraceae) is supported by a 333- gene phylogeny and resolves tribal level Moraceae taxonomy
FIGURE 4. Maximum likelihood tree showing the seven Moraceae tribes. Unlabeled nodes had 100% bootstrap support in both analyses. Labeled nodes show support from maximum likelihood analysis, with support from the ASTRAL species tree reconciliation in parentheses.
FIGURE 1 in Delimitation of the new tribe Parartocarpeae (Moraceae) is supported by a 333- gene phylogeny and resolves tribal level Moraceae taxonomy
FIGURE 1. Map of distribution of tribe Parartocarpeae. Map created with SimpleMappr, http://www.simplemappr.net.
FIGURE 5 in Delimitation of the new tribe Parartocarpeae (Moraceae) is supported by a 333- gene phylogeny and resolves tribal level Moraceae taxonomy
FIGURE 5. Characters of tribe Parartocarpeae as seen in its two genera, Hullettia and Parartocarpus. Inflorescence involucres and spirally arranged leaves of Hullettia (a) and Parartocarpus (b); flowers lacking perianth tissue and embedded in the receptacle in Hullettia staminate (c) and carpellate (d) flowers, and Parartocarpus staminate (e) and carpellate (f) flowers in longitudinal sections. a: Alvins 3290; b: Sinclair 39426; c: Robinson s.n. 20-III-1913; d: Ridley s.n. II1921; e: Corner SFN 28145; f: Corner SFN 28145. Illustrations are reproduced here from Flora Malesiana v. 17: 1, with permission from the Flora Malesiana Secretariat. Parartocarpus images come from fig. 22, p. 132; Hullettia images come from fig. 21, p. 127.
FIGURE 3. Heat map showing recovery efficiency for 333 in Delimitation of the new tribe Parartocarpeae (Moraceae) is supported by a 333- gene phylogeny and resolves tribal level Moraceae taxonomy
FIGURE 3. Heat map showing recovery efficiency for 333 genes. Each column is a gene, and each row is one sample. The intensity of color in each cell is determined by the length of sequence recovered divided by the length of the reference gene (maximum of 1.0).
FIGURE 2 in Delimitation of the new tribe Parartocarpeae (Moraceae) is supported by a 333- gene phylogeny and resolves tribal level Moraceae taxonomy
FIGURE 2. Parartocarpus venenosus. (a) shoot showing spiral arrangement of leaves, late-stage carpellate inflorescences, and the inflorescence involucre (arrow); (b) bark with pustular lenticels; (c) buttressed tree trunk; (d) submature syncarp; (e) young carpellate inflorescence with inflorescence involucre (arrow); and (f) staminate inflorescence with inflorescence involucre (arrow). a, f: Gardner 224, Tambunan, Sabah, Malaysia (SAN); b–d: Kebun Raya Bogor living collection VIII.B.1, Bogor, Indonesia; e: N. Zerega 877 (SAN). Beaufort, Sabah, Malaysia; photos: N. Zerega).
FIGURE 2. Youngia baoxingensis Y. S in Youngia baoxingensis, a new species of Asteraceae (tribe Cichorieae) from Sichuan, China
FIGURE 2. Youngia baoxingensis Y. S. Chen, sp. nov. A. Habit. B. Phyllaries. C. Achene and pappus. D. Capitulum. E. Achene. F. Corolla. (drawn by Ms. Ping Liu based on the holotype).
FIGURE 1. Youngia baoxingensis Y. S in Youngia baoxingensis, a new species of Asteraceae (tribe Cichorieae) from Sichuan, China
FIGURE 1. Youngia baoxingensis Y. S. Chen, sp. nov. (Y. S. Chen 7280). A. Living plant in the wild; B. Capitulum in front view; C. Capitulum in later view.
FIGURE 2. Sipaneopsis duckei. A in Two new species of the tribe Sipaneeae (Rubiaceae) from white-sand areas of Brazilian and Colombian Amazon
FIGURE 2. Sipaneopsis duckei. A. Branch with two frondose inflorescences and one infructescence (note last fruit on the infructescence). B. Stipule. C. Detail of an inflorescence. D. Flower at early stage of anthesis. E. Flower at intermediate stage of anthesis. F. Flower at final stage of anthesis, with corolla lobes reflexed, and receptive stigmas. G. Indehiscent fruit, fallen off as dispersal unit. A–B: drawn from Egler 273 (MG); C, G: drawn from Rosa & Lira 2268 (MG); D–F: drawn from Prance et al. 28853 (US). Illustration by Piero Delprete.
FIGURE 1. Dendrosipanea prancei. A. Branch with terminal, frondose inflorescence. B–C in Two new species of the tribe Sipaneeae (Rubiaceae) from white-sand areas of Brazilian and Colombian Amazon
FIGURE 1. Dendrosipanea prancei. A. Branch with terminal, frondose inflorescence. B–C. Stipule shapes present on the same branch. D. Detail of inflorescence branch, with secondary branches subtended by two leaf-like bracts (i.e., pherophylls). E. Flower in anthesis. F. Dissected long-styled flower, with stamens inserted at basal portion of corolla tube. A–D: drawn from Prance et al. 16199 (F, S); E–F: drawn from Prance et al. 15472 (US). Illustration by Piero Delprete.
FIGURES 73−74 in New species and new records of fruit flies of tribe Acanthonevrini (Diptera: Tephritidae: Phytalmiinae) from India
FIGURES 73−74. Anatergite of Acanthonevrini. 73, Ptilona confracta David & Hancock, sp. nov.; 74, Rioxoptilona dunlopi (van der Wulp).
FIGURES 65, 66 in New species and new records of fruit flies of tribe Acanthonevrini (Diptera: Tephritidae: Phytalmiinae) from India
FIGURES 65, 66. Head (frontal view). 65, male of Themara yunnana Zia; 66, female of Themara yunnana. FIGURES 67−72. Thorax (dorsal view). 67, Diarrhegma modestum (Fabricius); 68, Rioxa parvipunctata de Meijere; 69, Felderimyia fuscipennis Hendel; 70, Themara yunnana; 71, Ectopomyia baculigera Hardy; 72, Hexacinia radiosa (Rondani).
FIGURES 57−64 in New species and new records of fruit flies of tribe Acanthonevrini (Diptera: Tephritidae: Phytalmiinae) from India
FIGURES 57−64. Postabdominal structures of Phorelliosoma hilaratum Hering. 57, epandrium (lateral view); 58, epandrium (posterior view); 59, glans of phallus; 60, ovipositor; 61, spicules on distal end of eversible membrane; 62, aculeus; 63, aculeus tip; 64, spermatheca.
FIGURES 48−55. Felderimyia gombakensis Hancock & Drew. 48 in New species and new records of fruit flies of tribe Acanthonevrini (Diptera: Tephritidae: Phytalmiinae) from India
FIGURES 48−55. Felderimyia gombakensis Hancock & Drew. 48, epandrium and surstyli (lateral view); 49, epandrium and surstyli (posterior view); 50, glans of phallus; 51, ovipositor; 52, spicules of proximal end of eversible membrane; 53, spicules on distal end of eversible membrane; 54, aculeus tip; 55, spermatheca.
FIGURES 75−82 in New species and new records of fruit flies of tribe Acanthonevrini (Diptera: Tephritidae: Phytalmiinae) from India
FIGURES 75−82. Wings of Tephritidae. 75, Ectopomyia baculigera; 76, Hexacinia radiosa; 77, Felderimyia fuscipennis; 78, Ptilona confinis; 79, Rioxa parvipunctata; 80, Rioxoptliona dunlopi; 81, R. vaga; 82, Themara yunnana.
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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.