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727 results for “phylogenetic diversity”

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Fig. 4 Phylogenetic chronogram, a in Mitochondrial evidence for genetic diversity and low phylogeographic differentiation in the Marsh Warbler Acrocephalus palustris (Aves: Acrocephalidae)

Fig. 4 Phylogenetic chronogram, a coalescent analysis implemented in BEAST with lognormal relaxed clock (uniform distribution and 0.01105– 0.02500 substitutions per million years) and population expansion model as priors. Thick horizontal bars represent the 95 % HDP of the age of major nodes and numbers indicate node posterior probability values

opennotspecifiedJun 2014View details →
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FIGURE 3. A in Morphological diversity and phylogenetic relationships within a South-American clade of iguanian lizards (Liolaemidae: Phymaturus)

FIGURE 3. A—Scale organs on postrostral scales (character 16, continuous). Scale= 1 mm. B—Rostral scale divided, Phymaturus antofagastesis MCN 1436 (Character 105-1). Scale= 2 mm. C—Interparietal color (white, P. excelsus MCN 1582, character 121-1). Scale= 5 mm. D—Enlarged scales in the center of chest, P. extrilidus MCN 2856 (Character 122-1). Scale= 5 mm. E—Loreal region of P. sp3. MNHN 1632 (Character 154-1 absence of contact between canthal and preocular scales). F—Same view of P. palluma (neotype BMNH 1946.8.29.84). Character 155-1 preocular larger than canthal scale.

opennotspecifiedMay 2012View details →
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FIGURE 10 in Morphological diversity and phylogenetic relationships within a South-American clade of iguanian lizards (Liolaemidae: Phymaturus)

FIGURE 10. Alternative hypotheses of relationships within the patagonicus group found applying different values of constant of weighting K. Analysis with K=19–57 recovers the same topology of a conventional parsimony analysis an equally weighted analysis.

opennotspecifiedMay 2012View details →
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Figure 2. BEAST chronogram from a in Molecular data extend Australian Cricotopus midge (Chironomidae) species diversity, and provide a phylogenetic hypothesis for biogeography and freshwater monitoring

Figure 2. BEAST chronogram from a data set of single representatives per species/clade that corresponds with Table 1. Lettered nodes are those for which time to most recent common ancestor (tmrca) was estimated and correspond with Table 1; black stars indicate nodes to which prior calibrations were applied. The time scale is in millions of years before present.

opennotspecifiedMay 2015View details →
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Figure 6. A in Deciphering the diversity and history of New World nightjars (Aves: Caprimulgidae) using molecular phylogenetics

Figure 6. A phylogeny of the genera Lurocalis, Nyctidromus, and Nyctiprogne within the South American clade, based on a maximum-likelihood (ML) analysis of a concatenated 5298-bp molecular data set. ML bootstrap values higher than 60 and Bayesian posterior probability values higher than 0.95 are displayed on the nodes. Names on the tree represent current taxonomy; names on the right represent those resulting from this revision (see text).

opennotspecifiedMar 2014View details →
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Figure 5. A in Deciphering the diversity and history of New World nightjars (Aves: Caprimulgidae) using molecular phylogenetics

Figure 5. A phylogeny of the poorwill clade based on a maximum-likelihood (ML) analysis of a concatenated 5298-bp molecular data set. ML bootstrap values higher than 60 and Bayesian posterior probability values higher than 0.95 are displayed on the nodes. Names on the tree represent current taxonomy; names on the right represent those resulting from this revision (see text).

opennotspecifiedMar 2014View details →
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Figure 9. Phylogenetic relationships within the Xiphinema americanum-group complex. Bayesian 50 in Cryptic diversity and species delimitation in the Xiphinema americanum-group complex (Nematoda: Longidoridae) as inferred from morphometrics and molecular markers

Figure 9. Phylogenetic relationships within the Xiphinema americanum-group complex. Bayesian 50% majority rule consensus tree as inferred from D2-D3 expansion segments of 28S rRNA sequence alignment under the general time reversible model with invariable sites and gamma-shaped distribution. Posterior probabilities more than 65% are given for appropriate clades; bootstrap values greater than 50% are given on appropriate clades in the maximum likelihood analysis. Sequences newly obtained in this study are in bold. Scale bar = expected changes per site.

opennotspecifiedFeb 2016View details →
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Figure 70 in Beyond the wasp-waist: structural diversity and phylogenetic significance of the mesosoma in apocritan wasps (Insecta: Hymenoptera)

Figure 70. Tree produced by implied weighting analysis with k = 25. Monophyletic superfamilies coloured. Abbreviations as in Figure 67.

opennotspecifiedFeb 2010View details →
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Figure 65 in Beyond the wasp-waist: structural diversity and phylogenetic significance of the mesosoma in apocritan wasps (Insecta: Hymenoptera)

Figure 65. Petiole, lateral view, anterior to the top, dorsal to the right. A, Megischus sp. (Stephanidae); B, Diplolepis rosae (Cynipidae); C, Orthogonalys pulchella (Trigonalidae); D, Doryctes erythromelas (Braconidae); E, Pseudofoenus sp. (Gasteruptiidae); F, Podagrion sp. (Torymidae). Abbreviations in Appendix 2.

opennotspecifiedFeb 2010View details →
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Figure 64. Petiole, anterior view. A in Beyond the wasp-waist: structural diversity and phylogenetic significance of the mesosoma in apocritan wasps (Insecta: Hymenoptera)

Figure 64. Petiole, anterior view. A, Ycaploca evansi (Scolebythidae); B, Rhysipolis sp. (Braconidae); C, Sparasion formosum (Scelionidae); D, Telenomus podisi (Scelionidae); E, Nasonia vitripennis (Pteromalidae); F, Coccophagus rusti (Aphelinidae). Abbreviations in Appendix 2.

opennotspecifiedFeb 2010View details →
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Figure 62. Propodeum, posterior view. A in Beyond the wasp-waist: structural diversity and phylogenetic significance of the mesosoma in apocritan wasps (Insecta: Hymenoptera)

Figure 62. Propodeum, posterior view. A, Ceraphron sp. (Ceraphronidae); B, Anacharis sp. (Figitidae); C, Ycaploca evansi (Scolebythidae); D, Orthogonalys pulchella (Trigonalidae). Abbreviations in Appendix 2.

opennotspecifiedFeb 2010View details →
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Figure 20 in Beyond the wasp-waist: structural diversity and phylogenetic significance of the mesosoma in apocritan wasps (Insecta: Hymenoptera)

Figure 20. Pro- and mesothorax of Proctotrupoidea. A, B, Monomachus antipodalis (Monomachidae): A, pronotum, median view; B, prothorax, median view; C, Pelecinus polyturator (Pelecinidae), propectus posterolateral view; D, Helorus spp. (Heloridae), propectus median view; E, F, M. antipodalis, propectus and procoxa posterolateral view (anterior to the left). Abbreviations in Appendices 2 and 3.

opennotspecifiedFeb 2010View details →
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Figure 25 in Beyond the wasp-waist: structural diversity and phylogenetic significance of the mesosoma in apocritan wasps (Insecta: Hymenoptera)

Figure 25. Metathorax–propodeum complex of Stephanoidea and pro-, mesothorax, and procoxa of Apoidea. A–C, Megischus sp. (Stephanidae), metathorax–propodeum complex, median view; D–H, Pison chilense (Crabronidae): D, procoxa, median view; E, propectus dorsal view; F, propectus posterior view; G, mesopleuron, median view; H, propectus, posterior view (anterior to the left). Abbreviations in Appendices 2 and 3.

opennotspecifiedFeb 2010View details →
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Figure 12 in Beyond the wasp-waist: structural diversity and phylogenetic significance of the mesosoma in apocritan wasps (Insecta: Hymenoptera)

Figure 12. Metathorax–propodeum complex of Evanioidea. A, B, Evaniella semaeoda (Evaniidae): A, anterior view; B, median view; C–E: Evania albofascialis, median view; F, Pristaulacus strangaliae (Aulacidae), median view (anterior to the left). Abbreviations in Appendices 2 and 3.

opennotspecifiedFeb 2010View details →
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Figure 9 in Beyond the wasp-waist: structural diversity and phylogenetic significance of the mesosoma in apocritan wasps (Insecta: Hymenoptera)

Figure 9. Metathorax-propodeum complex of Cynipoidea. A, Diplolepis rosae (Cynipidae), anterior view; B, C, Andricus sternlichti (Cynipidae) B, metathorax–propodeum complex, median view; C, metanotum, median view; D, E, D. rosae: D, dorsomedian view; E, median view (anterior to the left). Abbreviations in Appendices 2 and 3.

opennotspecifiedFeb 2010View details →
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Figure 30 in Beyond the wasp-waist: structural diversity and phylogenetic significance of the mesosoma in apocritan wasps (Insecta: Hymenoptera)

Figure 30. Prothorax of non-apocritan Hymenoptera. A, Orussus abietinus (Orussidae), prothorax, median view; B–C, Cephus pygmeus (Cephidae): B, prothorax, median view, C, prothorax, posterior view; D, propectus, posterior view; E, Athalia rosae (Tenthredinidae), propectus, posterolateral view; F, Xiphydria camelus (Xiphydriidae), propectus, median view (anterior to the left). Abbreviations in Appendices 2 and 3.

opennotspecifiedFeb 2010View details →
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Figure 51. Mesopectus. A in Beyond the wasp-waist: structural diversity and phylogenetic significance of the mesosoma in apocritan wasps (Insecta: Hymenoptera)

Figure 51. Mesopectus. A, Pseudofoenus sp. (Gasteruptiidae), dorsal view, anterior to the top; B–D, posteroventral view: B, Diplolepis rosae (Cynipidae); C, Acanthochalcis nigricans (Chalcididae); D, Poecilospilus sp. (Diapriidae). Abbreviations in Appendix 2.

opennotspecifiedFeb 2010View details →
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Figure 48 in Beyond the wasp-waist: structural diversity and phylogenetic significance of the mesosoma in apocritan wasps (Insecta: Hymenoptera)

Figure 48. Mesopectus, pronotum, mesonotum. A–D, lateral view, anterior to the left: A, Periclistus brandtii (Cynipidae); B, Pison chilense (Crabronidae); C, Evaniella semaeoda (Evaniidae); D, Rhopalosoma nearcticum (Rhopalosomatidae); E–F, dorsal view, anterior to the left: E, Megischus sp. (Stephanidae); F, Nasonia vitripennis (Pteromalidae). Abbreviations in Appendix 2.

opennotspecifiedFeb 2010View details →
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Figure 4 in Beyond the wasp-waist: structural diversity and phylogenetic significance of the mesosoma in apocritan wasps (Insecta: Hymenoptera)

Figure 4. Pro- and mesothorax of Megaspilus fuscipennis (Megaspilidae). A, pronotum, median view; B, propectus, lateral view; C, propectus, posterolateral view; D, propectus, dorsal view; E, F, pro- and mesothorax, median view (anterior to the left). Abbreviations in Appendices 2 and 3.

opennotspecifiedFeb 2010View details →
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Figure 84 in Previously undocumented diversity and abundance of cryptic species: a phylogenetic analysis of Indo-Pacific Arminidae Rafinesque, 1814 (Mollusca: Nudibranchia) with descriptions of 20 new species of Dermatobranchus

Figure 84. Dermatobranchus tuberculatus sp. nov. Buccal armature, CASIZ 173400, Tokong Kamundi, Malaysia. A, jaws; B, masticatory margin; C, entire radula; D, central portion of radula; E, middle radular teeth; F, outer radular teeth.

opennotspecifiedJan 2011View details →

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Allen Brain Atlas

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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.

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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.

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Last verified 2026-04-29Open record

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.

openneuro
neuroscienceopenPublished datasets are available on demand over the internet.
Last verified 2026-04-29Open record