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949 results for “species names”
FIGURE 4. Viola columnaris. A in Viola pachysoma (Violaceae), a new name for a rosulate species endemic to the Andes of Argentinian Patagonia
FIGURE 4. Viola columnaris. A. Original syntype drawing in protologue. (Carl Skottsberg). B. Frontal view of flower. Argentina, Chubut Province, Lago Vintter. 30 November 2017. (Photo: Harry Jans). C. Individual unirosulate plant. Argentina, Chubut Province, Lago Vintter. 30 November 2017. (Photo: Harry Jans). D. An entire unirosulate plant unearthed, showing axial rootstock. Argentina, Chubut Province, Lago Vintter. 30 November 2017. (Photo: Harry Jans).
FIGURE 1. Viola huanucoensis W. Becker, new name for Viola truncata W in Nomenclatural and taxonomic study in species of Viola (Violaceae) from Argentina
FIGURE 1. Viola huanucoensis W. Becker, new name for Viola truncata W. Becker, nom. illeg. non Meyen (synonym of V. boliviana Britton), digital image of the lectotype A. Weberbauer 3715 (MOL 00002771).
FIGURE 1 in Notes on the genus Pseudoliparis (Orchidaceae, Malaxidinae), with description of a new species from New Guinea and a new synonymous name
FIGURE 1. Habit of Pseudoliparis malinowskiana Margońska. (based on the holotype, drawn by H.B. Margońska).
FIGURE 2 in Notes on the genus Pseudoliparis (Orchidaceae, Malaxidinae), with description of a new species from New Guinea and a new synonymous name
FIGURE 2. Flower of Pseudoliparis malinowskiana Margońska. A. Flower, lateral side view (left side of the lip in natural position, right side of the lip flattened and spread). B. Lip, front view (left side of the lip in natural position, right side of the lip flattened and spread). C. Dorsal sepal, front view. D. Petal, front view. E. Lateral sepal, front view. (All based on the holotype, drawn by H.B. Margońska.)
FIGURE 2 in Typification of the two Arariba names published by Martius and of the two Pinckneya names published by Allemão & Saldanha, synonymous with the names of two species of Simira (Rubiaceae, Condamineeae)
FIGURE 2. Holotype of Pinckneya viridiflora (=Simira rubra). Herbier de J. Saldanha No. 469 (R [No. 144579]).
FIGURE 1 in Typification of the two Arariba names published by Martius and of the two Pinckneya names published by Allemão & Saldanha, synonymous with the names of two species of Simira (Rubiaceae, Condamineeae)
FIGURE 1. Holotype of Pinckneya rubescens (=Simira alba). Herbier de J. Saldanha No. 468 (R [No. 144571]).
FIGURE 2. Page 489 in Delphinium sinovitifolium (Ranunculaceae), a superfluous name for the species D. vitifolium Finet & Gagnepain from northern Sichuan, China
FIGURE 2. Page 489 in Steudel's (1840) Nomenclator Botanicus (ed. 2), vol. 1, on which the name "Delphinium vitifolium Willd." was listed.
FIGURE 1 in Typification of the names of three species of Carex (Cyperaceae)-proposed by Francis Boott
FIGURE 1. Lectotype of Carex decora Boott (CAL0000001946) deposited at CAL (©The Director, Botanical Survey of India).
FIGURE 1 in Lectotypification of the name Chenopodium hircinum, a wild relative of the pseudocereal crop species C. quinoa (Chenopodiaceae)
FIGURE 1. Lectotype of the name Chenopodium hircinum Schrad. (LE00011694!, the right-hand specimen consisting of two plant fragments).
FIGURE 1 in Galanthus panjutinii sp. nov.: a new name for an invalidly published species of Galanthus (Amaryllidaceae) from the northern Colchis area of Western Transcaucasia
FIGURE 1. Galanthus panjutinii (A–J from Bondareva & Zubov s.n., by Lucy T. Smith). A. Habit. B. Flower and upper part of scape. C. Leaf (adaxial view). D. Leaf (abaxial). E. Outer perianth segment (abaxial). F. Outer perianth segment (adaxial). G. Inner perianth segment (abaxial). H. Inner perianth segment (adaxial view). J. Receptacle (including ovary), showing attachment of anthers. K. Anthers (abaxial and side views). Scale bar: A, C, D = 3.0 cm; B = 1.5 cm; E–H = 7.0 mm; J = 4.0 mm; K = 2.5 mm.
FIGURE 2 in Galanthus panjutinii sp. nov.: a new name for an invalidly published species of Galanthus (Amaryllidaceae) from the northern Colchis area of Western Transcaucasia
FIGURE 2. Galanthus panjutinii (all photographs by Olga Bondareva). A. Variation in inner perianth segment markings. B. Plants in natural habitat in the Tuapse-Adler region, on the Aїbga Ridge. C. Close up of inflorescence.
FIGURE 1 in Ficus goiana, a replacement name for a Brazilian species of fig (Moraceae)
FIGURE 1. Isotype of Ficus goiana (Pereira & Alvarenga 3291) as Ficus rupicola C.C.Berg & Carauta.
FIGURE 2 in Species delimitation and name application in Deyeuxia abnormis, Agrostis zenkeri, A. pleiophylla and related taxa (Poaceae: Agrostidinae)
FIGURE 2. Box plots of selected characters showing mean (point), mean ± SD (box), and range of variation (bars) for Deyeuxia abnormis (abno), D. diffusa (diff), D. flaccida (flac), A. gigantea (gig), A. pleiophylla (plei) and A. zenkeri (zenk).
FIGURE 7 in Species delimitation and name application in Deyeuxia abnormis, Agrostis zenkeri, A. pleiophylla and related taxa (Poaceae: Agrostidinae)
FIGURE 7. The first syntype of Agrostis pleiophylla, Clarke 44736B (B). The left-hand specimen (covered by the label attached to the upper left-hand corner of the sheet) and the right-hand specimen are identified as Deyeuxia diffusa. The middle specimen is recognized as Agrostis pleiophylla.
FIGURE 6 in Species delimitation and name application in Deyeuxia abnormis, Agrostis zenkeri, A. pleiophylla and related taxa (Poaceae: Agrostidinae)
FIGURE 6. Inflorescence of Deyeuxia diffusa (CHINA: NW Yunnan, ca. 12 km E of Zhongdian (Shangrila), photograph: Beata Paszko).
FIGURE 4. Glumes and floret. A–B in Species delimitation and name application in Deyeuxia abnormis, Agrostis zenkeri, A. pleiophylla and related taxa (Poaceae: Agrostidinae)
FIGURE 4. Glumes and floret. A–B. Deyeuxia abnormis, Ohba et al. 62069 (TI); C–D. Deyeuxia diffusa, Kanai et al. 6302070 (TI). Scale bar = 1 mm.
FIGURE 3 in Species delimitation and name application in Deyeuxia abnormis, Agrostis zenkeri, A. pleiophylla and related taxa (Poaceae: Agrostidinae)
FIGURE 3. Lectotype of Deyeuxia abnormis designated by Bor (1954a) (K). Reproduced with permission from the Board of the Trustees of the RBG, Kew.
FIGURE 1 in Species delimitation and name application in Deyeuxia abnormis, Agrostis zenkeri, A. pleiophylla and related taxa (Poaceae: Agrostidinae)
FIGURE 1. Scatter plot of two ratios: callus hairs to lemma length against palea to lemma length, for Deyeuxia abnormis (open circles), D. diffusa (solid squares), D. flaccida (asterisks), Agrostis gigantea (open triangles), A. pleiophylla (solid triangles) and A. zenkeri (solid circle). Abbreviations: 1, Aulacolepis petelotii—holotype; 2, Anisachne gracilis—epitype selected in the present study; 3, Deyeuxia abnormis—lectotype selected by Bor (1954a); 4, Agrostis continentalis—lectotype selected in the present study; 5, A. zenkeri—holotype; 6, A. pleiophylla—lectotype selected by Noltie (1999); 7, Deyeuxia abnormis—lectotype selected by Noltie (1999); 8, D. diffusa—holotype; 9, D. flaccida—holotype; 10, Agrostis nagensis—holotype; 11, A. pleiophylla—lectotype selected in the present study.
FIG UR E 3 (a) Dated phylogeny of the genus Theodoxus constructed in BEAST based on COI, 16S and ATPα. Node labels denote divergence times in millions of years ago (Ma); node bars indicate the 95% credibility interval around these dates. Small squares at nodes indicate significant support of divergence events found with BEAST and other phylogenetic analyses (see Figures S2.1 and S2.2), as explained through the key. Where MOTUs (A–R) show conspecifics among a number of morphospecies, species names are given in order of their year of description. Morphospecies, incorporated from GenBank, where determination was potentially dubious are highlighted by an asterisk. Clades (C) and subclades (SC) are demarcated by dashed lines between MOTUs. (b) LTT plots indicating the build‐up of lineages in Theodoxus over geological time. Dashed lines surrounding the solid LTT lines indicate the 95% confidence intervals. Where intra‐ and interspecific diversity diverge, interspecific diversity is highlighted in blue and intraspecific diversity in red. Transitions in geological ages are highlighted by narrow grey lines, while the grey bar marks the period of pronounced glacial cycles (last 900 kyr) [Colour figure can be viewed at wileyonlinelibrary.com] in Contributions of biogeographical functions to species accumulation may change over time in refugial regions
FIG UR E 3 (a) Dated phylogeny of the genus Theodoxus constructed in BEAST based on COI, 16S and ATPα. Node labels denote divergence times in millions of years ago (Ma); node bars indicate the 95% credibility interval around these dates. Small squares at nodes indicate significant support of divergence events found with BEAST and other phylogenetic analyses (see Figures S2.1 and S2.2), as explained through the key. Where MOTUs (A–R) show conspecifics among a number of morphospecies, species names are given in order of their year of description. Morphospecies, incorporated from GenBank, where determination was potentially dubious are highlighted by an asterisk. Clades (C) and subclades (SC) are demarcated by dashed lines between MOTUs. (b) LTT plots indicating the build‐up of lineages in Theodoxus over geological time. Dashed lines surrounding the solid LTT lines indicate the 95% confidence intervals. Where intra‐ and interspecific diversity diverge, interspecific diversity is highlighted in blue and intraspecific diversity in red. Transitions in geological ages are highlighted by narrow grey lines, while the grey bar marks the period of pronounced glacial cycles (last 900 kyr) [Colour figure can be viewed at wileyonlinelibrary.com]
FIGURE 2 in Typification of names in the Sesleria juncifolia species complex (Poaceae)
FIGURE 2. Lectotype of the name Sesleria tenuifolia Schrad. (W0030267). The label on the sheet reporting "Typus….Sesleria tenuifolia Schrader….typificavit L. Pignotti (W) 2011-09-30" is not effective publication (Art. 7.9).
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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.