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Fig. 76. Results from exploratory phylogenetic analysis including Epidendrosaurus ningchengensis. A, reduced strict consensus cladogram. B in A Review Of Dromaeosaurid Systematics And Paravian Phylogeny
Fig. 76. Results from exploratory phylogenetic analysis including Epidendrosaurus ningchengensis. A, reduced strict consensus cladogram. B, detail of the base of Avialae showing the number of additional steps required to constrain Epidendrosaurus and Epidexipteryx are sister taxa.
Fig. 74 in A Review Of Dromaeosaurid Systematics And Paravian Phylogeny
Fig. 74. Modified cladogram showing manipulated paravian relationships. Constraining Troodontidae to be paraphyletic relative to Avialae with Xiaotingia + Anchiornis and Jinfengopteryginae as successive sister taxa to Avialae requires 12 additional steps.
Fig. 77 in A Review Of Dromaeosaurid Systematics And Paravian Phylogeny
Fig. 77. Reduced strict consensus cladogram of exploratory phylogenetic analysis including Pedopenna daohugouensis and Epidendrosaurus ningchengensis.
FIG. 11 in 41: New and previously described species of Dactylogyridae (Platyhelminthes) from the gills of marine and freshwater perciform fishes (Teleostei) with proposal of a new genus and a hypothesis on phylogeny
FIG. 11. — Sclerotized structures of Euryhaliotrema n. gen. species; A-G; Euryhaliotrema chrysotaeniae (Young, 1968) n. comb.; A, vagina (ventral view); B, ventral anchor; C, dorsal anchor; D, ventral bar; E, dorsal bar; F, hook; G, copulatory complex (ventral view); H-N; Euryhaliotrema lutiani (Yamaguti, 1953) n. comb.; H, ventral anchor; I, dorsal anchor; J, ventral bar; K, dorsal bar; L, vagina (ventral view); M, hook; N, copulatory complex (dorsal view); O-U; Euryhaliotrema johni (Tripathi, 1959) n. comb.; O, ventral anchor; P, dorsal anchor; Q, ventral bar; R, vagina (ventral view); S, hook; T, copulatory complex (ventral view); U, dorsal bar. Scale bar: 25 µm.
Fig. 69 in A Review Of Dromaeosaurid Systematics And Paravian Phylogeny
Fig. 69. Bremer analysis. Strict consensus cladogram of basal coelurosaurs. Values indicate Bremer support derived from the BREMER.RUN script supplied by TNT.
Fig. 68 in A Review Of Dromaeosaurid Systematics And Paravian Phylogeny
Fig. 68. Jackknife analysis. Reduced strict consensus cladogram of paravians. Values indicate jackknife support reflected as GC frequencies derived from 1000 jackknife replicates with a characterremoval probability of 0.20.
Fig. 75 in A Review Of Dromaeosaurid Systematics And Paravian Phylogeny
Fig. 75. Reduced strict consensus cladogram of Paraves + Oviraptorosauria showing the number of extra steps required to place Epidexipteryx as a basal avialan (2 steps longer), or to place it at the base of Oviraptorosauria (1 step longer). Analysis conducted in TNT using positive constraints.
Fig. 67 in A Review Of Dromaeosaurid Systematics And Paravian Phylogeny
Fig. 67. Jackknife analysis. Strict consensus cladogram of paravians. Values indicate jackknife support reflected as GC frequencies derived from 1000 jackknife replicates with a character-removal probability of 0.20.
FIG. 5. — Euryhaliotrema monacanthus n. gen., n in 41: New and previously described species of Dactylogyridae (Platyhelminthes) from the gills of marine and freshwater perciform fishes (Teleostei) with proposal of a new genus and a hypothesis on phylogeny
FIG. 5. — Euryhaliotrema monacanthus n. gen., n. sp.; A, whole mount (composite, ventral view); B, vagina (ventral view); C, hook; D, copulatory complex (ventral view); E, ventral bar; F, ventral anchor. Scale bars: A, 100 µm; B-F, 25 µm.
Fig. 66 in A Review Of Dromaeosaurid Systematics And Paravian Phylogeny
Fig. 66. Jackknife analysis. Strict consensus cladogram of basal coelurosaurs. Values indicate jackknife support reflected as GC frequencies derived from 1000 jackknife replicates with a character-removal probability of 0.20.
FIG. 4. — Euryhaliotrema thatcheri n. gen., n in 41: New and previously described species of Dactylogyridae (Platyhelminthes) from the gills of marine and freshwater perciform fishes (Teleostei) with proposal of a new genus and a hypothesis on phylogeny
FIG. 4. — Euryhaliotrema thatcheri n. gen., n. sp.; A, whole mount (composite, ventral view); B, vagina (ventral view); C, copulatory complex (ventral view); D, ventral bar; E, dorsal bar; F, ventral anchor; G, hook; H, I, dorsal anchors. Scale bars: A, 100 µm; B-I, 25 µm.
Fig. 70 in A Review Of Dromaeosaurid Systematics And Paravian Phylogeny
Fig. 70. Bremer analysis. Strict consensus cladogram of paravians. Values indicate Bremer support derived from the BREMER.RUN script supplied by TNT.
Fig. 64 in A Review Of Dromaeosaurid Systematics And Paravian Phylogeny
Fig. 64. Reduced strict consensus cladogram illustrating the dromaeosaurid relationships when the alternate positions of Pyroraptor are ignored. Troodontid taxa have been collapsed into a single terminal.
Fig. 65 in A Review Of Dromaeosaurid Systematics And Paravian Phylogeny
Fig. 65. Reduced strict consensus cladogram illustrating avialan relationships when the alternate positions of Limenavis are ignored. Deinonychosaurian taxa have been collapsed into a single terminal.
Fig. 63. Strict consensus cladogram illustrating the troodontid relationships. Dromaeosaurid taxa have been collapsed into a in A Review Of Dromaeosaurid Systematics And Paravian Phylogeny
Fig. 63. Strict consensus cladogram illustrating the troodontid relationships. Dromaeosaurid taxa have been collapsed into a single terminal.
Fig. 62. Reduced strict consensus cladogram illustrating the relationships among nonparavian maniraptorans. Paravian taxa have been collapsed into a in A Review Of Dromaeosaurid Systematics And Paravian Phylogeny
Fig. 62. Reduced strict consensus cladogram illustrating the relationships among nonparavian maniraptorans. Paravian taxa have been collapsed into a single terminal.
Fig. 61 in A Review Of Dromaeosaurid Systematics And Paravian Phylogeny
Fig. 61. Reduced strict consensus cladogram of basal coelurosaur relationships. Maniraptoran taxa have been collapsed into a single terminal.
Fig. 60 in A Review Of Dromaeosaurid Systematics And Paravian Phylogeny
Fig. 60. Cladograms illustrating the eight alternate positions that Limenavis patagonicus can take in the most parsimonious set of trees. Topology highlighted in the box is the only one with unambiguous support of the position of Limenavis patagonicus.
Fig. 55 in A Review Of Dromaeosaurid Systematics And Paravian Phylogeny
Fig. 55. Select postcranial material of Rahonavis ostromi (UA 8656). A, left scapula in lateral view; B, left ilium in lateral view; C, proximal part of right femur in lateral view; D, right tibia in proximal view. Important paravian features include: 1, acromion of scapula laterally everted (char. 133.1) and projecting anteriorly past the articular surface of the coracoid (char. 354.0); 2, lobate anterior edge of ilium (char. 156.1); 3, tuber along the dorsal edge of the ilium (char. 160.1).
Fig. 46 in A Review Of Dromaeosaurid Systematics And Paravian Phylogeny
Fig. 46. Select material of Buitreraptor gonzalezorum (MPCA 245). A, skull in left lateral view; B, right humerus in anterodorsal view; C, proximal view of left ulna; D, dorsal view of distal end of humerus. Important features include: 1, proximal median process on the posterior edge of the ischium (char. 165.1); 2, obturator process of ischium located at the distally (char. 169.3) and triangular obturator process with a short base and long anteriorly directed process (char. 234.1); 3, presence of a small bicipital scar (char. 384.1); 4, proximal surface of ulna divided into two distinct fossae (char. 144.1); 5, distal margin of the humerus developed into well-projected flexor process (char. 374.1).
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
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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.
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.