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Figure 57. Characters III. A in A revision of the New World eximius lineage of Anelosimus (Araneae, Theridiidae) and a phylogenetic analysis using worldwide exemplars
Figure 57. Characters III. A, Anelosimus nelsoni, note a finger-shaped lower branch of the theridiid tegular apophysis hook (arrow); B, Anelosimus nigrescens, note a blade-like lower branch of the theridiid tegular apophysis hook (arrow); C, Anelosimus ethicus, with a small, barely separate embolic division b (arrow); D, Anelosimus baeza male palp, ventral view, showing the sperm duct trajectory in the tegulum relative to position of sclerites; E, Anelosimus eximius, a schematic view of the sperm duct trajectory from ectal view (view as in G), F, Anelosimus eximius from above; G, Anelosimus baeza ectal view, showing switchbacks I and II.
Figure 55. Characters I. A in A revision of the New World eximius lineage of Anelosimus (Araneae, Theridiidae) and a phylogenetic analysis using worldwide exemplars
Figure 55. Characters I. A, Anelosimus ethicus epigynum, note scape (arrow); B, Anelosimus may epigynum, note anterior septum (arrow); C, Enoplognatha ovata male palp, note unmodified terminal portion of the theridiid tegular apophysis (arrow); D, Argyrodes argyrodes male palp, note simple terminal hook on the theridiid tegular apophysis (vertical arrow) with terminal ridges, and the unique Argyrodes conductor (horizontal arrow); E, Anelosimus sp. 1 (Australia), male palp with a 'corkscrew' embolus (arrow); F, Kochiura aulica, male palp, note cymbial marginal setae strongly bent towards the palpal bulb (arrows); G, Anelosimus ethicus male prosoma, note robust femur I (arrow) compared with femur IV.
Figure 6 in Adulthood and phylogenetic analysis in gastropods: character recognition and coding in shells of Lavigeria (Cerithioidea, Thiaridae) from Lake Tanganyika
Figure 6. Plots of length against PC1 for all eight species of Lavigeria studied with regressed lines and R2 values. Length values are log transformed.
Figure 3 in Adulthood and phylogenetic analysis in gastropods: character recognition and coding in shells of Lavigeria (Cerithioidea, Thiaridae) from Lake Tanganyika
Figure 3. Character state APPL. An adult specimen of L. n. sp. X (left) and a juvenile (right). Notice the perimetric, wrinkle-like, lines on the front surface of the apertural lip of the adult. Scale bar = 0.2 cm.
Figure 7 in Adulthood and phylogenetic analysis in gastropods: character recognition and coding in shells of Lavigeria (Cerithioidea, Thiaridae) from Lake Tanganyika
Figure 7. Fifty per cent majority-rule consensus trees of five, nine, ten and 31 trees (from top to bottom, respectively) from four matrices. Matrices are coding the data of Table 1. See Analysis for explanation of the matrices. Tree and character statistics are given in Table 3. Optimality criterion: maximum parsimony, exhaustive search. All characters binary, of equal weight and unordered. Numbers indicate percentage of topologies that include the respective branches.
Figure 5 in Adulthood and phylogenetic analysis in gastropods: character recognition and coding in shells of Lavigeria (Cerithioidea, Thiaridae) from Lake Tanganyika
Figure 5. Character states DFST, AXRB and UEPW. Adult specimens of (A) L. n. sp. W, (B) L. n. sp. F, (C) L. n. sp. K, (D) L. n. sp. J showing the aperture in side view and (E) an apertural view of an adult L. n. sp. W. In A-D the trajectory of the suture tends to deviate downwards in comparison to the trajectory of the spiral cord of the previous whorl immediately above the suture (DFST). A and D also show the loss of, or irregularities in the appearance of axial sculpture (AXRB). In E, arrowheads show the undulations formed at the edge of the parietal side of the aperture (UEPW). Scale bar = 0.2 cm.
Figure 2 in Adulthood and phylogenetic analysis in gastropods: character recognition and coding in shells of Lavigeria (Cerithioidea, Thiaridae) from Lake Tanganyika
Figure 2. Character states WGPW and APLT. An adult specimen of L. n. sp. A (left) and a juvenile (right). The adult shows a thickened (APLT) and opaque (WGPW) inner surface of the apertural lip in comparison to the juvenile. Scale bar = 0.2 cm.
Figure 1 in Adulthood and phylogenetic analysis in gastropods: character recognition and coding in shells of Lavigeria (Cerithioidea, Thiaridae) from Lake Tanganyika
Figure 1. Eight species used in this study, apertural and side views of adult specimens. (A) Lavigeria new species N. (B) L. n. sp. F. (C) L. n. sp. J. (D) L. n. sp. X. (E) L. n. sp. K. (F) L. n. sp. W. (G) L. n. sp. A. (H) L. n. sp. U. C-H all belong to the same clade. A and B belong to different clades within the genus. Scale bar = 0.2 cm.
Figure 4 in Adulthood and phylogenetic analysis in gastropods: character recognition and coding in shells of Lavigeria (Cerithioidea, Thiaridae) from Lake Tanganyika
Figure 4. Character state APDT. An adult specimen of L. n. sp. J (left) and a juvenile on the right. Notice in the adult how the parietal side of the apertural lip is completely detached from the previous whorl and a false umbilicus has developed. Scale bar = 0.2 cm.
Figure 11 in Revisiting the contribution of larval characters to an analysis of phylogenetic relationships of basal anurans
Figure 11. (a) Strict consensus of eight most parsimonious trees based on 43 larval characters (TL = 46; RI = 0.93; CI = 0.84; RC = 0.78, after successive weighting of the characters). (b) Most parsimonious tree based on adult skeletal characters (TL = 78; RI = 0.86; CI = 0.68; RC = 0.58, after successive weighting of the characters). Bootstrap values are shown above each node and Bremer decay indices are presented beneath.
Figure 7 in Revisiting the contribution of larval characters to an analysis of phylogenetic relationships of basal anurans
Figure 7. Ventral views of vertebrae I and II of (a) Rhinophrynus dorsalis (Gosner Stage 43, KU 307176) (b) Pipa pipa (12.5 mm, KU 204077), and (c) Silurana tropicalis (Nieuwkoop and Faber Stage 62, SMB 172). Not to scale.
Figure 3 in Revisiting the contribution of larval characters to an analysis of phylogenetic relationships of basal anurans
Figure 3. Anterior view of suprarostral cartilages of (a) Ascaphus truei (Gosner Stage 36; TNHC 54025) (b) Alytes obstetricans (Gosner Stage 32/33; CAS 152175) (c) Bombina orientalis (Gosner Stage 35; KU 223509) (d) Pelobates cultripes (Gosner Stage 31; KU 110109) (e) Rhinophrynus dorsalis (Gosner Stage 32, KU 307147), and (f) Xenopus laevis (Nieuwkoop and Faber Stage 53; KU 217900). Grey denotes cartilage. Not to scale.
Figure 4 in Revisiting the contribution of larval characters to an analysis of phylogenetic relationships of basal anurans
Figure 4. Dorsal view of cornua trabeculae and suprarostral cartilages of (a) Ascaphus truei (Gosner Stage 36; TNHC 54025) (b) Bombina orientalis (Gosner Stage 35; KU 223509) (c) Spea bombifrons (Gosner Stage 36; KU 209876), and (d) Xenopus laevis (Nieuwkoop and Faber Stage 53; KU 217900). Grey denotes cartilage. Not to scale.
Figure 1 in Revisiting the contribution of larval characters to an analysis of phylogenetic relationships of basal anurans
Figure 1. Larval chondrocranium of Discoglossus sardus (Gosner Stage 34; KU 222383) in (a) dorsal (b) ventral, and (c) lateral views. Cartilage is shown in grey, ossification in stippling, and foramina in black.
Figure 6 in Revisiting the contribution of larval characters to an analysis of phylogenetic relationships of basal anurans
Figure 6. Larval hyobranchial skeleton of Discoglossus sardus (Gosner Stage 34; KU 222383). Grey denotes cartilage. Cb I–IV = Ceratobranchials I–IV.
Figure 2 in Revisiting the contribution of larval characters to an analysis of phylogenetic relationships of basal anurans
Figure 2. (a) Larval chondrocranium of Xenopus laevis (Nieuwkoop and Faber Stage 53; KU 217900) in dorsal view. (b) X. borealis (Nieuwkoop and Faber Stage 56; SMB 174) in lateral view. Cartilage is shown in grey, ossification in stippling, and foramina in black.
Figure 5 in Revisiting the contribution of larval characters to an analysis of phylogenetic relationships of basal anurans
Figure 5. Dorsal view of the left side of the chondrocranium of (a) Discoglossus sardus (Gosner Stage 34; KU 222383) and (b) Xenopus laevis (Nieuwkoop and Faber Stage 53; KU 217900). Cartilage is shown in grey; solid lines illustrate the angle of the suborbital cartilage of the palatoquadrate relative to the otic capsule. Not to scale.
Figure 10 in Revisiting the contribution of larval characters to an analysis of phylogenetic relationships of basal anurans
Figure 10. Most parsimonious tree based on 43 characters from larval morphology and 73 from adult skeletal morphology (TL = 121; RI = 0.88; CI = 0.72; RC = 0.63 after successive weighting of the characters). Bootstrap values are shown above each node and Bremer decay indices are presented beneath. Asterisks indicate taxa included in Mesobatrachia sensu Ford & Cannatella (1993).
Figure 6 in Suprageneric relationships of galliform birds (Aves, Galliformes): a cladistic analysis of morphological characters
Figure 6. Character supporting the monophyly of quails – secondary fossa pneumaticum on proximal end of humerus well developed (character 56). Caudal views of humeri: A, Crax globulosa; B, Numida meleagris; C, Meleagris gallopavo; D, Phasianus colchicus; E, Colinus virginianus. Not to scale – this figure reproduced from Holman (1964: Plate 2) with permission of the Florida Academy of Sciences. Abbreviations: pn, fossa pneumaticum; spn, second well-developed fossa pneumaticum.
Figure 5 in Suprageneric relationships of galliform birds (Aves, Galliformes): a cladistic analysis of morphological characters
Figure 5. One of the characters supporting the monophyly of the phasianoid Galliformes – processus craniolateralis angled at 45∞ with respect to carina sternum (character 51): A, sternum of Aburria pipile (Cracidae) in left lateral view; B, sternum of Lagopus lagopus (Tetraonidae) in left lateral view. Abbreviation: pc, processus craniolateralis (figure not to scale).
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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.