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1,492 results for “species delimitation”
FIG. 7. Amazon and Orinoco Lowlands. A. Yellow area delimits the distribution pattern. B in The Fishes Of The Amazon: Distribution And Biogeographical Patterns, With A Comprehensive List Of Species
FIG. 7. Amazon and Orinoco Lowlands. A. Yellow area delimits the distribution pattern. B. Moenkhausia lepidura (data from Marinho and Langeani, 2016). C. Potamorhina altamazonica (data from Vari, 1984). D. Vandellia cirrhosa (M.P., unpublished data).
FIG. 13. Guiana Mangrove Province. A. Yellow area delimits the distribution pattern. B in The Fishes Of The Amazon: Distribution And Biogeographical Patterns, With A Comprehensive List Of Species
FIG. 13. Guiana Mangrove Province. A. Yellow area delimits the distribution pattern. B. Curimata cyprinoides (data from Vari, 1989a). C. Cyphocharax helleri (data from Vari, 1992b) with additional records from MZUSP). D. Polycentrus schomburgkii (see data from Coutinho and Wosiacki, 2014).
FIG. 6. Amazon Core. A. Yellow area delimits the distribution pattern. B in The Fishes Of The Amazon: Distribution And Biogeographical Patterns, With A Comprehensive List Of Species
FIG. 6. Amazon Core. A. Yellow area delimits the distribution pattern. B. Boullengerella spp. (data from Vari (1995) with additional records from MZUSP). C. Moenkhausia collettii (records from MZUSP). D. Moenkhausia oligolepis (records from MZUSP).
Figure 1 in Phylogeny-based species delimitations and the evolution of host associations in symbiotic zoanthids (Anthozoa, Zoanthidea) of the wider Caribbean region
Figure 1. Phylogeny of Caribbean symbiotic zoanthids based on the internal transcribed spacer (ITS) region of the rRNA nuclear gene. Support values are 100 pseudoreplicate maximum likelihood (ML) bootstrap values followed by three million iteration Bayesian posterior probabilities. The clades of symbiotic species are colour coded according to their host associations. The information presented in parentheses after the specimens collected for this study includes: the colour of the zoanthid, presence of Symbiodinium, host taxa, and individual identifier (which includes the collection location).
Figure 1 in Species delimitation based on multiple criteria: the Spotted Bush Warbler Bradypterus thoracicus complex (Aves: Megaluridae)
Figure 1. Distribution of the Bradypterus thoracicus complex compiled from previously published sources (grey; Dement'ev & Gladkov, 1968; Ali & Ripley, 1983; Flint et al., 1984; Meyer de Schauensee, 1984; Watson et al., 1986; Cheng, 1987; Round & Loskot, 1995; Rasmussen & Anderton, 2005) and the present study (numbers). Dark grey refers to breeding and pale grey to non-breeding. Field study sites are indicated by numbers (see Table 1 for details): (1) Manali, Himachal Pradesh; (2) Laoye Shan, Qinghai; (3) Huzu Bei Shan, Qinghai; (4) Mengda, Qinghai; (5) Wolong, Sichuan; (6) Emei Shan, Sichuan; (7) Jiuzhaigou, Gansu; (8) Taibai Shan, Shaanxi; (9) Listvyanka; (10) Panquengou, Shanxi; (11) Huzong, Heilongjiang; (12) Dailing, Heilongjiang. Localities where thoracicus and davidi and przevalskii and davidi, respectively, have been found sympatrically in the breeding season in the present study are indicated by white numbers. The winter distribution for kashmirensis has not been given in the literature, and the winter distribution for davidi has been considered uncertain.
Figure 4 in Species delimitation based on multiple criteria: the Spotted Bush Warbler Bradypterus thoracicus complex (Aves: Megaluridae)
Figure 4. Tree for all haplotypes, estimated by Bayesian analysis of cytochrome b (1073 bp) under the GTR + G model. Posterior probabilities (Ź 50%; 50 000 trees) are indicated above the nodes and parsimony bootstrap values (Ź 50%; 1000 replicates) below the nodes.
Figure 5 in Species delimitation based on multiple criteria: the Spotted Bush Warbler Bradypterus thoracicus complex (Aves: Megaluridae)
Figure 5. Altitudinal distributions of thoracicus/ przevalskii and davidi at three localities in central China where these two groups have been found in sympatry. Includes observations by T. E. Ortvad and J. S. Hansen (in litt.).
Figure 3 in Species delimitation based on multiple criteria: the Spotted Bush Warbler Bradypterus thoracicus complex (Aves: Megaluridae)
Figure 3. Sonograms of songs: A, thoracicus Emei Shan, Sichuan, China, early May; B, przevalskii Mengda, Qinghai province, China, mid-June; C, kashmirensis Manali, Himachal Pradesh, India, late June; D, suschkini Listvyanka, Lake Baikal, Russia, June; E, davidi Huzong, Heilongjiang province, China, late June; F, davidi Jiuzhaigou, Gansu province, China, mid-June. All recordings by Per Alström.
FIGURE 11 in Revised Species Delimitation in the Giant Water Lily Genus Victoria (Nymphaeaceae) Confirms a New Species and Has Implications for Its Conservation
FIGURE 11 | Victoria cruziana (A) bud whole, (B) bud L.S., (C) bud from above, (D) first night flower, (E) first night flower L.S., (F) second night flower, (G) second night flower LTS, (H) habit, and (I) seed. (A–D,F,G) (photo LTS), (I) (CM) cultivated RBG Kew, (D,E) cultivated Denver Botanic Gardens (LTS).
FIGURE 10 in Revised Species Delimitation in the Giant Water Lily Genus Victoria (Nymphaeaceae) Confirms a New Species and Has Implications for Its Conservation
FIGURE 10 | Victoria boliviana sp. nov. (A) bud whole, (B) bud L. S., (C) bud from above, (D) first night flower, (E) first night flower L. S., (F) second night flower, (G) second night flower L.S., (H) habit, and (I) seed. (A–G) (LTS), (I) (CM) cultivated RBG Kew, H (CM) Beni, Bolivia.
FIGURE 9 in Revised Species Delimitation in the Giant Water Lily Genus Victoria (Nymphaeaceae) Confirms a New Species and Has Implications for Its Conservation
FIGURE 9 | Victoria amazonica (A) bud whole, (B) bud L.S., (C) bud from above, (D) first night flower, (E) first night flower L.S., (F) second night flower, (G) second night flower LTS, (H) habit, and (I) seed. (A–H) (LTS) and (I) (CM) cultivated RBG Kew.
FIGURE 7 in Revised Species Delimitation in the Giant Water Lily Genus Victoria (Nymphaeaceae) Confirms a New Species and Has Implications for Its Conservation
FIGURE 7 | (A) Chronogram tree from StarBEAST2 representing molecular dating analysis of splits between V. amazonica, V. cruziana, and V. boliviana with confidence intervals highlighted. (B) Visual representation of plastid structure of V. boliviana assembled using GetOrganelle, with genomic locations of diagnostic characters indicated. Details of polymorphisms (indels) – in the context of multi plastid alignments – displayed within insets.
FIGURE 5 in Revised Species Delimitation in the Giant Water Lily Genus Victoria (Nymphaeaceae) Confirms a New Species and Has Implications for Its Conservation
FIGURE 5 | Victoria boliviana sp. nov. (A) habit, (B) abaxial leaf, (C) leaf rim profiles, (D) bud, whole and LS, (E) flower prickles, (F) first night flower, (G) second night flower, (H) carpellary appendages and tepal, staminode attachments; (I) ovule, whole and LS, (J) stamens, (K) seed. (All from material cultivated at RBG Kew). Illustration: Lucy T. Smith.
FIGURE 6 in Revised Species Delimitation in the Giant Water Lily Genus Victoria (Nymphaeaceae) Confirms a New Species and Has Implications for Its Conservation
FIGURE 6 | Victoria cruziana (A) habit, (B) abaxial leaf, (C) leaf rim profiles, (D) bud, whole and LS, (E) flower prickles, (F) first night flower, (G) second night flower, (H) carpellary appendages and tepal, staminode attachments; (I) ovule, whole and LS, (J) stamens, (K) seed. (A–E, G–K, cultivated at RBG Kew, F cult. Denver Botanic Gardens). Illustration: Lucy T. Smith.
FIGURE 4 in Revised Species Delimitation in the Giant Water Lily Genus Victoria (Nymphaeaceae) Confirms a New Species and Has Implications for Its Conservation
FIGURE 4 | Victoria amazonica (A) habit, (B) abaxial leaf, (C) leaf rim profiles, (D) bud, whole and LS, (E) flower prickles, (F) first night flower, (G) second night flower, (H) carpellary appendages and tepal, staminode attachments; (I) ovule, whole and LS, (J) stamens, (K) fruit, (L) seed. (All from material cultivated at RBG Kew). Illustration: Lucy T. Smith.
FIGURE 1 in Revised Species Delimitation in the Giant Water Lily Genus Victoria (Nymphaeaceae) Confirms a New Species and Has Implications for Its Conservation
FIGURE 1 | Wild populations of (A) Victoria amazonica (Peru, Loreto), (B) V. boliviana sp. nov. (Bolivia, Beni) and (C) V. cruziana (Argentina, Chaco). (Photo Credits: (A) Laurel Allen, iNaturalist ID 821386. (B) Carlos Magdalena. (C) Fernanda Alarcón, iNaturalist ID. 19516477).
FIGURE 3 in Revised Species Delimitation in the Giant Water Lily Genus Victoria (Nymphaeaceae) Confirms a New Species and Has Implications for Its Conservation
FIGURE 3 | Line drawing comparing flower and seed morphology in: Victoria amazonica (A–C), V. boliviana sp. nov. (D–F), and V. cruziana (G–I); flower bud whole and in longitudinal section showing abaxial surface of outer tepals, bud profile, stigmatic chamber, carpellary appendage and prickle morphology; seeds. (cultivated at RBG Kew) Illustration: Lucy T Smith.
FIGURE 2 in Revised Species Delimitation in the Giant Water Lily Genus Victoria (Nymphaeaceae) Confirms a New Species and Has Implications for Its Conservation
FIGURE 2 | Flower morphology and terms, using a Victoria amazonica second-night flower in longitudinal section for reference (above) and a fully dissected flower (below). (A) Ovary, (B) stigmatic surface and stigmatic chamber, (C) locule and ovules, (D) floral apex, (E) outer tepals, (F) inner tepals, (G) outer staminodia, (H) stamens, (I) inner staminodia, (J) carpellary appendages. Illustration and photo: Lucy T. Smith.
FIGURE 8 in Revised Species Delimitation in the Giant Water Lily Genus Victoria (Nymphaeaceae) Confirms a New Species and Has Implications for Its Conservation
FIGURE 8 | Geographical context with population genomic and phylogenomic results. (A) Geographical coordinates of all Victoria samples used in analyses, where symbols are color-coded according to morphotype/species and symbol type denotes data source. (B) Phylogenomic representation of relationships between plastomes of 15 Victoria samples, with Nymphaea ampla as the outgroup and constructed using RAxML. (C) Principal component analysis of Victoria nuclear dataset in 16 individuals based on 229,281 genotype likelihoods obtained after skimming for a minor allele frequency (maf) threshold of 0.2.
Fig. 5 in Revision of Neotropical Scelolabes Philippi (Diptera, Hybotidae, Ocydromiinae): two new species and a proposal of delimitation
Fig. 5. Scelolabes verasilvae sp. nov. A, C–G. Holotype, ♂ (CNC). B. Paratype, ♀ (CNC). A. Lateral habitus. B. Lateral habitus of female. C. Antenna in lateral view. D. Scutum in dorsal view. E. Hind legs. F. Abdomen in dorsal view. G. Wing. Fig. 5B provided by Bradley Sinclair.
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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.