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FIG. 17 in Cranial Morphology And Phylogenetic Relationships Of Trigonostylops Wortmani, An Eocene South American Native Ungulate
FIG. 17. Cochilius volvens AMNH VP-29651, transverse segments through caudal cranium in rostrocaudal sequence (on this and opposite page). Note different scales. In A, external acoustic canal bordered by epitympanic sinus, retroarticular canal. In B, closely spaced segments depict trajectory of channel (prootic canal) for lateral head vein/prootic sinus, which typically opens into tympanic cavity on margin of secondary facial foramen (asterisks). In C, asterisk marks distal part of intratympanic sulcus for
FIG. 16 in Cranial Morphology And Phylogenetic Relationships Of Trigonostylops Wortmani, An Eocene South American Native Ungulate
FIG. 16. Cochilius volvens AMNH VP-29651, parasagittal segments through caudal cranium, from lateral to medial. A, prootic canal traceable from temporal sinus within endocranium to track of facial nerve in tympanic cavity (see fig. 17). B, large vacuity dorsal to petrosal formed by confluence of posttemporal canal and sulcus for temporal sinus. C, channels for accessory lacunae of transverse sinus and sinus communicans housed in calvarial bones.
FIG. 18 in Cranial Morphology And Phylogenetic Relationships Of Trigonostylops Wortmani, An Eocene South American Native Ungulate
FIG. 18. Cochilius volvens AMNH-VP 29651, left auditory region in slightly oblique ventral aspect. A, virtual horizontal slice through reconstructed left auditory region, with bulla digitally removed. B, same specimen, skull intact (stereopair). Bulla shifted slightly out of position post mortem, as it would normally cover caudal portion of basicapsular fenestra. Entotympanic-ectotympanic suture fully visible running parasagitally across bullar surface (see MacPhee, 2014). Key: 1, basisphenoid surface articulating with rostromedial portion of expanded bulla; 2, caudal aperture of pterygoid canal; 3, groove for greater petrosal and deep petrosal nerves; 4, transclival foramina in basioccipital; 5, groove connecting transclival foramen with small foramen in basioccipital-basisphenoid synchondrosis. In A, asterisks identify continuous basicapsular fenestra, covered by bulla in intact skull except for jugular area and foramen ovale. Dorsal wing of entotympanic (ENT) forms "medial flange," roofing over space between promontorium and medial bullar wall. For adital connection between epitympanic sinus and tympanic cavity, see figures 16 and 17.
FIG. 38 in Cranial Morphology And Phylogenetic Relationships Of Trigonostylops Wortmani, An Eocene South American Native Ungulate
FIG. 38. Tapirus, selected basicranial features in subadult and adult specimens on this and facing page. A, T . terrestris AMNH M-77576 (adult), caudal cranium in ventral aspect; B, T . indicus AMNH M-130108 (adult), segment through articular process of tegmen tympani; C, D, T . indicus AMNH M-200300 (subadult), isolated right petrosal in lateral (top) and ventral (bottom) aspects; E, F, T . indicus AMNH M-200300, isolated left ectotympanic (stereopair) in oblique medial (top) and oblique lateral (bottom) aspects. Key: 1, incisura ovalis; 2, incisura carotidis; 3, rostral (piriform) and caudal (jugular) portions of continuous basicapsular fenestra; 4, incomplete "canal" for internal carotid artery; 5, prominent groove for
Figure 1 in Redescription and phylogenetic relationships of Meridiosaurus vallisparadisi, a pholidosaurid from the Late Jurassic of Uruguay
Figure 1. Map showing the Tacuarembó Formation (shaded area) and Valle Edén locality.
Figure 3 in A new specimen of Uruguaysuchus aznarezi (Crocodyliformes: Notosuchia) from the middle Cretaceous of Uruguay and its phylogenetic relationships
Figure 3. FC-DPV 2320, anterior end of rostrum in left lateral view. Scale bar = 2 cm.
Figure 7 in A new specimen of Uruguaysuchus aznarezi (Crocodyliformes: Notosuchia) from the middle Cretaceous of Uruguay and its phylogenetic relationships
Figure 7. FC-DPV 2320, otic region of right quadrate in lateral view. Scale bar = 2 cm.
Figure 4 in A new specimen of Uruguaysuchus aznarezi (Crocodyliformes: Notosuchia) from the middle Cretaceous of Uruguay and its phylogenetic relationships
Figure 4. FC-DPV 2320, detail of right jugal and lacrimal in lateral view. Scale bar = 2 cm.
Figure 13 in A new specimen of Uruguaysuchus aznarezi (Crocodyliformes: Notosuchia) from the middle Cretaceous of Uruguay and its phylogenetic relationships
Figure 13. FC-DPV 2320, atlas intercentrum. A, dorsal view. B, ventral view. Scale bar = 1 cm.
Figure 6 in Phylogenetic relationships in the tribe Oxyptilini (Lepidoptera, Pterophoridae, Pterophorinae) based on morphological data of adults
Figure 6. Antenna. The numbers indicate the character and its state (character: character state).
Figure 8 in Comparative morphology, phylogenetic relationships, and historical biogeography of plesiolebiasine seasonal killifishes (Teleostei: Cyprinodontiformes: Rivulidae)
Figure 8. General area cladogram for plesiolebiasine areas of endemism.
Figure 7 in Phylogenetic relationships among sloths (Mammalia, Xenarthra, Tardigrada): the craniodental evidence
Figure 7. Skull and lower jaw of Hapalops. A, skull and lower jaw shown in left lateral view. B, skull shown in ventral view. Characters and states illustrated: 3(2), C1 & c1 slightly depressed relative to molariforms in lateral view; 6(1), elongate diastema present; 10(1), orthodentine forms thin layer, thinner than outer layer of cementum; 17(2), occlusal surface of molariforms with strong transverse crests; 27(1), M4 curved anteriorly in lateral view; 31(2), M1 rectangular in cross-section; 56(2), condylar surface inclined posteroventrally in lateral view; 65(2), mandibular symphysis with concave profile in lateral view; 68(1), symphyseal spout of moderate length; 73(0), symphyseal spout horizontal in lateral view; 76(1), mandible with weak fossa posterior to c1; 106(1), buccinator fossa weakly developed; 122(4), palate short, uniformly wide; 140(0), orbital portion of lacrimal larger than facial exposure; 143(1), lacrimal eminence present; 147(1), jugal and lacrimal overlap facial portion of maxilla in lateral view; 169(1), zygomatic process of squamosal horizontal or inclined slightly dorsad in lateral view; 184(1), nuchal crest overhangs occiput posteriorly; 195(0), occipital condyles elongated anteroposteriorly in ventral view; E21(1), anteroventral process of entotympanic present. [Modified from Scott (1903–4).]
Figure 2 in Phylogenetic relationships among sloths (Mammalia, Xenarthra, Tardigrada): the craniodental evidence
Figure 2. Phylogeny of the Tardigrada based on PAUP analysis of 286 craniodental characters, including the 85 auditory region characters from Gaudin (1995), in 33 extinct and extant sloth genera. This tree represents a strict consensus of all MPT obtained in the present study under various weighting and outgroup schemes (see Materials and Methods and Results for a discussion). Extant taxa are written in all-capital letters. The clade illustrated with dark grey lines represents the family Megalonychidae. The clade illustrated with single-dashed black lines represents the family Nothrotheriidae; that with single-dashed dark grey lines the family Megatheriidae; that with double-dashed black lines the family Mylodontidae.
Figure 12 in Revisiting the contribution of larval characters to an analysis of phylogenetic relationships of basal anurans
Figure 12. Most parsimonious tree (Fig. 10) with characters addressed in Discussion mapped on tree. Characters in italics are homoplastic. Those with grey bars are reversals, and the states of characters associated with white bars are equivocal.
Figure 23 in The phylogenetic relationships of Morgan's Sphinx, Xanthopan morganii (Walker), the tribe Acherontiini, and allied long-tongued hawkmoths (Lepidoptera: Sphingidae, Sphinginae)
Figure 23. Bremer support (above branches) and relative Bremer support values (below branches) for the EW analysis of the complete data set.
Figure 16. Corpora bursarum and signa. A in The phylogenetic relationships of Morgan's Sphinx, Xanthopan morganii (Walker), the tribe Acherontiini, and allied long-tongued hawkmoths (Lepidoptera: Sphingidae, Sphinginae)
Figure 16. Corpora bursarum and signa. A, Agrius cingulata, lateral (left) view, BMNH sphingid preparation #980. B, Manduca hannibal, lateral (right) view, BMNH sphingid preparation #1078. C, Coelonia fulvinotata, ventral view, BMNH sphingid preparation #997.
Figure 25 in The phylogenetic relationships of Morgan's Sphinx, Xanthopan morganii (Walker), the tribe Acherontiini, and allied long-tongued hawkmoths (Lepidoptera: Sphingidae, Sphinginae)
Figure 25. Bremer support (above branches) and relative Bremer support values (below branches) for the IW analysis of the complete data set.
Figure 7 in Description of a new Eocene osteoglossid fish and additional information on †Singida jacksonoides Greenwood and Patterson, 1967 (Osteoglossomorpha), with an assessment of their phylogenetic relationships
Figure 7. Cladogram of relationships for the Osteoglossomorpha. A, Li et al. (1997b fig. 7). B, Hilton (2003: fig. 5). C, 50% majority rule consensus of five cladograms from the data matrix of Li et al. (1997b) with changes made to data for †Singida, and addition of the new genus. D, 50% majority rule consensus of 24 cladograms from the data matrix of Hilton (2003) with changes made to data for †Singida, and addition of data for the new genus. The branches of cladograms in C and D are supported in 100% of the trees except where otherwise noted. All the data in the original matrices were analysed, but in all the figures the species have been grouped by genera (e.g. those of Eohiodon and Hiodon) or families (e.g. Notopteridae, Mormyridae). † fossil taxa.
Figure 6 in Description of a new Eocene osteoglossid fish and additional information on †Singida jacksonoides Greenwood and Patterson, 1967 (Osteoglossomorpha), with an assessment of their phylogenetic relationships
Figure 6. Reconstruction of the caudal skeleton of †Singida jacksonoides, based predominantly on WM 314/96. Scale bar = 5 mm. Arrows indicate the unbranched principal rays.
Figure 1. A in Phylogenetic relationships and evolution of Orbiniidae (Annelida, Polychaeta) based on molecular data
Figure 1. A, Protoaricia oerstedi, lateral view. B, Methanoaricia dendrobranchiata, anterior end. C, Naineris dendritica, anterior end. D, Naineris dendritica, notopodium with camerated chaetae. Abbreviations: cc, camerated chaetae; per, peristomal ring.
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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.