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390 results for “Character Analysis”
FIGURE 9 in The Naticidae (Mollusca: Gastropoda) of Giglio Island (Tuscany, Italy): Shell characters, live animals, and a molecular analysis of egg masses
FIGURE 9: A, Euspira nitida (Donovan, 1804); B, Euspira macilenta (Philippi, 1844). Further details as in Figure 3. Scale bars represent 0.5 cm.
FIGURE 4 in The Naticidae (Mollusca: Gastropoda) of Giglio Island (Tuscany, Italy): Shell characters, live animals, and a molecular analysis of egg masses
FIGURE 4: Schematic map of Giglo Island, Grosseto County, Tuscany, Italy (42°21.000´´N 10°54.000´´E), including all collecting sites with naticid occurence: 1, Campese Bay; 2, Pt. del Faraglione; 3, Pt. delle Secche; 4, Cala dell´Allume; 5, Pt. del Corvo; 6, Pt. del Morto; 7, Pt. della Campana; 8, Cannelle Bay; 9,´Swiss House´; 10, Pt. del Fenaio. Pure shallow sandy sites are Campese Bay, Pt. del Faraglione, and Canelle Bay, while the remaining sites are bluffs with rocks, coarse sand flats, and sea weeds. The circular charts show the material (A, living specimens; E, egg masses; S, empty shells) collected at each site in a qualitative manner. N. dillwynii is distributed widest. Collected egg masses listed here were included in the molecular analysis.
FIGURE 6 in The Naticidae (Mollusca: Gastropoda) of Giglio Island (Tuscany, Italy): Shell characters, live animals, and a molecular analysis of egg masses
FIGURE 6: A, Naticarius hebraeus (Martyn, 1786); B, Notocochlis dillwynii (Payraudeau, 1826). Further details as in Figure 3. Scale bars represent 0.5 cm.
FIGURE 1 in The Naticidae (Mollusca: Gastropoda) of Giglio Island (Tuscany, Italy): Shell characters, live animals, and a molecular analysis of egg masses
FIGURE 1: Phylogenetic tree based on an analysis of the entire data set (H3, COI, 16S, and 18S sequences) of all specimens listed in Table 2. The phylogenetic model (GTR+I+G) was estimated by MrModeltest (Nylander 2004) performed with Paup*4.0b10 (Swofford 2003). Protein coding data sets were coded as "CODON". Based on different base compositions (chi-square test) in each of the single data sets, all parameters were defined as unlinked. Paup*4.0b10 tree characteristics: RI=0.851, CI=0.579. 325 positions were parsimony-informative, 76 were parsimony-uninformative, and 1141 were constant (1542 bp). Tonna cerevisina (Hedley, 1919) and Cypraea annulus (Linnaeus, 1758) were used as outgroup.
FIGURE 5 in The Naticidae (Mollusca: Gastropoda) of Giglio Island (Tuscany, Italy): Shell characters, live animals, and a molecular analysis of egg masses
FIGURE 5: A, Sparsely dotted form of Naticarius stercusmuscarum (Gmelin, 1791); B, Naticarius stercusmuscarum (Gmelin, 1791). All specimens are shown in four standardized views (dorsal, apertural, apical, umbilical) as well as alive. The pictures of living specimens were taken in an aquarium with a black bottom. Scale bars represent 0.5 cm.
FIGURE 5. R. myrmecophilus. A. Head, dorsal view. B. Mandible. C. Antennae. D. Mesossoma, dorsal view. E. Mesopleuron, lateral view. F. Tarsal claw. G in Phylogenetic analysis of Rhabdepyris (Hymenoptera: Bethylidae) and redefinition of generic limits based on morphological characters
FIGURE 5. R. myrmecophilus. A. Head, dorsal view. B. Mandible. C. Antennae. D. Mesossoma, dorsal view. E. Mesopleuron, lateral view. F. Tarsal claw. G. Hing wing. Scale = 0.35 mm.
FIGURE 4. A. E in Phylogenetic analysis of Rhabdepyris (Hymenoptera: Bethylidae) and redefinition of generic limits based on morphological characters
FIGURE 4. A. E. niger: mesopleuron. B. E. blandus: mesopleuron. C. A. amazonicus: mesopleuron. D. Rhabdepyris sp. 4: mesopleuron. E. B. aurata: mesopleuron. F. A. smithanus: mesopleuron. Scale = 0.35 mm.
FIGURE 3. A. B in Phylogenetic analysis of Rhabdepyris (Hymenoptera: Bethylidae) and redefinition of generic limits based on morphological characters
FIGURE 3. A. B. aurata: thorax, dorsal view. B. Rhabdepyris sp. 4: mesoscutum and scutellar disc, dorsal view. C. Trachepyris sp.: thorax, dorsal view. D. A. smithanus: mesoscutum and scutellar disc, dorsal view. E. B. aurata: propodeal disc, dorsal view. F. L. yamatonis: hind wing. Fig. G. Rhabdepyris sp. 4: tarsal claw. Scale = 0.35 mm.
FIGURE 2. A. A in Phylogenetic analysis of Rhabdepyris (Hymenoptera: Bethylidae) and redefinition of generic limits based on morphological characters
FIGURE 2. A. A. amazonicus: mandible. B, E. Trachepyris sp.: mandible. C. L. yamatonis: head, dorsal view. D. B. aurata: head, lateral view. F. L. yamatonis: head, lateral view. G. A. amazonicus: head, lateral view. H. A. subviolaceus: pronotal disc. I. Trachepyris sp.: antenna. J. A. amazonicus: antenna. K. E. niger: pronotum, lateral view. Scale = 0.35 mm.
FIGURE 6 in Phylogenetic analysis of Rhabdepyris (Hymenoptera: Bethylidae) and redefinition of generic limits based on morphological characters
FIGURE 6. Strict consensus of 72 most parsimonious cladograms derived from morphological analyses with equal weighting (L=463 steps, CI= 0.18 and RI=0.54). Numbers above branch indicate Bootstrap (%), under Bremer support. Bootstrap values below 50 and Bremer support values of 1 are not reported.
FIGURE 8 in Phylogenetic analysis of Rhabdepyris (Hymenoptera: Bethylidae) and redefinition of generic limits based on morphological characters
FIGURE 8. One of the 72 most parsimonious trees, from equal weighting analyses, presented with character-state mapping. Dark circles represent synapomorphic characters and open circles represent homoplasious characters. Numbers above the line represent number, while those below the line represent the character state.
FIGURE 1. A in Phylogenetic analysis of Rhabdepyris (Hymenoptera: Bethylidae) and redefinition of generic limits based on morphological characters
FIGURE 1. A. Rhabdepyris sp.4: mesopleuron, major features, lateral view. B. A. smithanus: mesopleuron, major features, lateral view. C. B. aurata, propodeal disc, major features. Scale = 0.35 mm.
FIGURE 9 in A new species of the genus Mesosmittia Brundin, 1956 (Diptera: Chironomidae) from the Neotropics with a cladistic analysis of the genus using quantitative characters
FIGURE 9. Cladogram obtained from the analysis of standardized ranges data set under equal weights (Length= 167.082; CI= 55.9; RI= 51.51; Fit= 22.3). Below nodes the characters and its optimized character states are shown, synapomorphies in bold. Continuous characters were transformed from the standardization to raw data for a better understanding. Above nodes from left to right: Absolute frequency, GC, Absolute Bremer support, Relative Bremer support.
FIGURE 7 in A new species of the genus Mesosmittia Brundin, 1956 (Diptera: Chironomidae) from the Neotropics with a cladistic analysis of the genus using quantitative characters
FIGURE 7. Strict consensus trees calculated for each set of trees obtained from each of the four data sets.
FIGURES 5–6 in A new species of the genus Mesosmittia Brundin, 1956 (Diptera: Chironomidae) from the Neotropics with a cladistic analysis of the genus using quantitative characters
FIGURES 5–6. Mesosmittia museophila sp. n. Male adult. Hypopygium general view. (5) dorsal view. (6) ventral view.
FIGURES 1–4 in A new species of the genus Mesosmittia Brundin, 1956 (Diptera: Chironomidae) from the Neotropics with a cladistic analysis of the genus using quantitative characters
FIGURES 1–4. Mesosmittia museophila sp. n. Male adult. (1) Tentorium, stipes and cibarial pump. (2) Wing. (3) Hypopygium dorsal view. (4) Hypopygium with tergite IX removed, right ventral view, left dorsal view.
FIGURE 8 in A new species of the genus Mesosmittia Brundin, 1956 (Diptera: Chironomidae) from the Neotropics with a cladistic analysis of the genus using quantitative characters
FIGURE 8. Agreement subtrees calculated for each set of trees obtained from each of the four data sets.
FIGURE 59 in Identification and character analysis of the Acerentomidae (Protura) of the northeastern Palearctic (Protura: Acerentomidae)
FIGURE 59. Two most parsimonious trees resulting from parsimony analyses of north-eastern Palearctic acerentomid species (L = 212, CI = 40, RI = 69).
FIGURE 60 in Identification and character analysis of the Acerentomidae (Protura) of the northeastern Palearctic (Protura: Acerentomidae)
FIGURE 60. Phylogenetic hypothesis for Acerentomidae, strict consensus cladogram. Black circles indicate true synapomorphies (without reverses), half-black circles indicate incomplete synapomorphies, white circles indicate homoplasies. Numbering of characters corresponds to those in the data matrix.
FIGURE 58 in Identification and character analysis of the Acerentomidae (Protura) of the northeastern Palearctic (Protura: Acerentomidae)
FIGURE 58. Strict consensus cladogram of two most parsimonious trees resulting from maximum parsimonious analysis (L = 210, CI = 41, R I= 70). Numbers above branches represent bootstrap values (given for nodes with 50% or higher bootstrap support).
ScienceDex guides
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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.