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128 results for “Cladogram”
FIGURE 4. Cladogram constructed from cox1 in A new species of habitat – forming Suberites (Porifera, Demospongiae, Suberitida) in the Benguela upwelling region (South Africa)
FIGURE 4. Cladogram constructed from cox1 sequences. Tree topology is based on the neighbour–joining method. Numbers next to nodes are bootstrap support values. The cox1 sequences of the Suberites specimens from the South African west coast formed a distinct but weakly supported (bootstrap support: 62%) phylogenetic cluster (red line).
Figure 1. Simplified cladogram inferred from a in Revision of the Bark Beetle Genera Within the Former Cryphalini (Curculionidae: Scolytinae)
Figure 1. Simplified cladogram inferred from a>100-gene phylogeny presented in Johnson et al. (2018). Blue text represents genera of Cryphalini sensu (Wood 1986a)
Figure 9. Consensus cladogram resulted from 12 minimum-length trees with 1287 in Systematic revision of Sarcosuchus hartti (Crocodyliformes) from the Recôncavo Basin (Early Cretaceous) of Bahia, north-eastern Brazil
Figure 9. Consensus cladogram resulted from 12 minimum-length trees with 1287 steps (CI: 0.327 and RI: 0.610). The numbered nodes are the following clades: 1, Neosuchia; 2, Susisuchidae; 3, Eusuchia; 4, Allodaposuchidae; 5, Crocodylia; 6, Coelognathosuchia; 7, Goniopholididae; 8, Tethysuchia; 9, Pholidosauridae; 10, Tethysuchoidea; 11, Dyrosauridae.
FIGURES 2–5. Pectinate cladogram and unordered correlations. 2 in Character correlation and its use for identification
FIGURES 2–5. Pectinate cladogram and unordered correlations. 2, pectinate tree, optimized for characters 0 and 1; 3, correlation of characters 0 (x) and 1 (y) on pectinate tree ("·": observed state combination; 0: zero extra steps needed; 1: one extra step needed); 4, pectinate tree with optimization for characters 2 and 3, showing ambiguity; 5, correlation of characters 2 (x) and 3 (y) on pectinate tree.
Figure 13. Strict consensus cladograms from the modified Young matrix analyses. A, results from the analysis using all 104 in Revision of the enigmatic crocodyliform Elosuchus felixi de Lapparent de Broin, 2002 from the Lower-Upper Cretaceous boundary of Niger: potential evidence for an early origin of the clade Dyrosauridae
Figure 13. Strict consensus cladograms from the modified Young matrix analyses. A, results from the analysis using all 104 operational taxonomic units (OTUs). B, subset of results from the analysis excluding Fortignathus felixi (de Lapparent de Broin, 2002) comb. nov., showing the only differences with the 104 OUT analyses (i.e. in the resolution of Dyrosauridae, Pholidosauridae and Crocodylia). Bootstrap values are shown above the relevant nodes. C, subset of results from the analysis excluding F. felixi comb. nov. and Pholidosaurus schaumbergensis von Meyer, 1841, showing the differences with the 104 OUT analysis alone (i.e. in the resolution of Dyrosauridae and Pholidosauridae). Abbreviations: CI, ensemble consistency index; RI, ensemble retention index; RC, rescaled consistency index; HI, ensemble homoplasy index.
FIGURE 18. Single cladogram obtained with setk.run and concavity 10.239258 in Taxonomic revision and cladistic analysis of the tarantula genera Tapinauchenius Ausserer, 1871, Psalmopoeus Pocock, 1985, and Amazonius n. gen. (Theraphosidae, Psalmopoeinae)
FIGURE 18. Single cladogram obtained with setk.run and concavity 10.239258. All characters non-additive. Fit = 67.17391, length = 276.47. Absolute and relative Bremer support are in each node.
FIGURE 19. Single cladogram obtained with setk.run and concavity 10.239258 in Taxonomic revision and cladistic analysis of the tarantula genera Tapinauchenius Ausserer, 1871, Psalmopoeus Pocock, 1985, and Amazonius n. gen. (Theraphosidae, Psalmopoeinae)
FIGURE 19. Single cladogram obtained with setk.run and concavity 10.239258 (continued), showing the resolution of Psalmopoeinae clade. Absolute and relative Bremer support are in each node.
FIGURE 12. Single cladogram recovered for the data from Tables 1–2 in New Species, Host Record, and Male Discovery for Three Messatoporus Cushman (Hymenoptera, Ichneumonidae, Cryptinae) from Brazil
FIGURE 12. Single cladogram recovered for the data from Tables 1–2, using exact search with implicit enumeration (in 15752.34 secs). Score: 98.628
FIGURE 3. Cladogram using Bayesian inference with concatenated data from Cytochrome b, 12S in A review of the relationships of Xenochrophis cerasogaster Cantor, 1839 (Serpentes: Colubridae) to its congeners
FIGURE 3. Cladogram using Bayesian inference with concatenated data from Cytochrome b, 12S rRNA, and ND4 gene sequences with Coelognathus radiatus as the out-group. (Red: specimens from Northern Assam, Blue: Specimen from Southern Assam, Green: Specimen from Hyderabad)
FIGURE 2. Cladogram using Maximum likelihood with concatenated data from Cytochrome b, 12S in A review of the relationships of Xenochrophis cerasogaster Cantor, 1839 (Serpentes: Colubridae) to its congeners
FIGURE 2. Cladogram using Maximum likelihood with concatenated data from Cytochrome b, 12S rRNA, and ND4 gene sequences with Coelognathus radiatus as the out-group (Red: specimens from Northern Assam, Blue: Specimen from Southern Assam, Green: Specimen from Hyderabad)
text-fig. 57. Diagrams showing the relations between age rank and clade rank and the SRC for pectinate components of the cladogram figured in Text-figure 55 and the total cladogram. Names of the diagrams refer to the terminal taxa to which the pectinate components lead. in The interrelationships and evolution of basal theropod dinosaurs
text-fig. 57. Diagrams showing the relations between age rank and clade rank and the SRC for pectinate components of the cladogram figured in Text-figure 55 and the total cladogram. Names of the diagrams refer to the terminal taxa to which the pectinate components lead.
text-fig. 59. Consensus cladogram of theropod relationships, showing relationships between several theropod taxa common to all recent cladistic analyses. Possible phylogenetic positions of several important problematic taxa are also indicated. in The interrelationships and evolution of basal theropod dinosaurs
text-fig. 59. Consensus cladogram of theropod relationships, showing relationships between several theropod taxa common to all recent cladistic analyses. Possible phylogenetic positions of several important problematic taxa are also indicated.
text-fig. 58. Diagrams showing how character distribution in a cladogram indicates gaps in the fossil record, a, arrangement of three taxa in a cladogram; synapomorphies a-f support the monophyly of the clade (B-C). B, if gradual acquisition of characters is assumed, several taxa must be missing in the phylogeny between taxon A and clade (B-C). The number of taxa missing is positively (though not necessarily linearly) correlated with the number of synapomorphies that diagnose any given node. in The interrelationships and evolution of basal theropod dinosaurs
text-fig. 58. Diagrams showing how character distribution in a cladogram indicates gaps in the fossil record, a, arrangement of three taxa in a cladogram; synapomorphies a-f support the monophyly of the clade (B-C). B, if gradual acquisition of characters is assumed, several taxa must be missing in the phylogeny between taxon A and clade (B-C). The number of taxa missing is positively (though not necessarily linearly) correlated with the number of synapomorphies that diagnose any given node.
FIGURE 1B. Two most parsimonious cladograms obtained with the PAUP program for 49 oligochaete taxa and 68 in A monograph of the Oligochaete family Alluroididae
FIGURE 1B. Two most parsimonious cladograms obtained with the PAUP program for 49 oligochaete taxa and 68 characters. Moniligastridae are shown to be more basal than Alluroididae. Sparganophilidae appear more distant from Alluroididae. (From Jamieson (1988).
FIGURE 1. The single tnt generated maximum likelihood cladogram showing internal cladistic relationships within Seraphsidae Jung, 1974 in Resolving phylogenetic and classical nomenclature: A revision of Seraphsidae Jung, 1974 (Gastropoda: Neostromboidae)
FIGURE 1. The single tnt generated maximum likelihood cladogram showing internal cladistic relationships within Seraphsidae Jung, 1974.
FIGURES 8–13. Cladograms obtained. 8–11 in A new species of Hystrichopsylla Taschenberg (Siphonaptera: Hystrichopsyllidae) from the Mexican transition zone
FIGURES 8–13. Cladograms obtained. 8–11, Four most parsimonious cladograms obtained; 12, strict consensus cladogram; 13, most parsimonious cladogram obtained removing H. guatemalensis.
FIGURE 3. Cladogram constructed from 1,967 in Indigofera himachalensis (Fabaceae: Indigofereae), a new species from Himachal Pradesh, India
FIGURE 3. Cladogram constructed from 1,967 trees in Mr Bayes. Numbers corresponding to branches indicate the posterior probabilites which are above 0.8 (moderate+strong support).
FIGURE 4. Parsimony cladogram inferred from ITS1 in New combinations in Asiatic Oxybasis (Amaranthaceae s.l.): evidence from morphological, carpological and molecular data
FIGURE 4. Parsimony cladogram inferred from ITS1 nucleotide sequences from Oxybasis sp., Chenopodiastrum murale, C. hybridum and C. coronopus. Bootstrap consensus tree built by Maximum Parsimony method. Bootstrap values higher than 70% are shown. The tree was rooted with Polygonum aviculare.
FIGURE 36. Strict consensus cladogram summarizing 675 in Taxonomic revision and systematics of New Guinea and Oceania pygmy water boatmen (Hemiptera: Heteroptera: Corixoidea: Micronectidae)
FIGURE 36. Strict consensus cladogram summarizing 675 most parsimonious trees recovered from MP analysis of New Guinea micronectid morphology data matrix with all characters mapped over topology (length = 47; CI = 1.0). Numbers in (parentheses) above branches are Bremer support values. Numbers in black circles indicate respective node number discussed in text. Black bars indicate characters; number below bar corresponds to character number listed in Table 13.
FIGURE 2. Individual hypothetical area cladograms and matrix creation through BuM 2.0. A. Individual area cladogram with a redundant Area E. B. Individual area cladogram with a redundant Area D. C. Individual area cladogram with a in BuM 2.0: Software for online generation of matrices for Brooks Parsimony Analysis
FIGURE 2. Individual hypothetical area cladograms and matrix creation through BuM 2.0. A. Individual area cladogram with a redundant Area E. B. Individual area cladogram with a redundant Area D. C. Individual area cladogram with a MAST (D#E). D. Combined MRP-matrix after BuM 2.0 (option Modified BPA); og: outgroup. E. General area cladogram after the parsimony analysis of the combined matrix. The resulting pattern converges with the actual pattern of fragmentation of ancestral Area 0.
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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)
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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.
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.