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767 results for “Theropoda”
Figure 6 in Pelecanimimus (Theropoda: Ornithomimosauria) postcranial anatomy and the evolution of the specialized manus in Ornithomimosaurs and sternum in maniraptoriforms
Figure 6. Posterior cervical vertebrae of Pelecanimimus (MCCM-LH 7777) in right side. A B, cervical vertebrae (Cv) from 3–10 in connection, photo (A), drawing (B). Abbreviations: CRb, cervical rib, ns, neural spine; pop, posterior process; poz, postzygapophysis; pozrg, postzygapophysis ridge; prz, prezygapophysis; prerg, prezigapophysis ridge. Scale bars: 20 mm.
Figure 18 in Pelecanimimus (Theropoda: Ornithomimosauria) postcranial anatomy and the evolution of the specialized manus in Ornithomimosaurs and sternum in maniraptoriforms
Figure 18. Digital reconstruction of the left forelimb of Pelecanimimus (MCCM-LH 7777). Reconstructed from broken elements of the left (red) and mirrored right (blue) bones of LH-7777, with hypothetical reconstructed bone in grey, in left lateral (A), anterior (B), medial (C) and posterior (D) views. Notice the slight medial curvature of the humerus in the proximal humerus fragment in anterior view (B). Scale bar: 100 mm.
Figure 4 in Pelecanimimus (Theropoda: Ornithomimosauria) postcranial anatomy and the evolution of the specialized manus in Ornithomimosaurs and sternum in maniraptoriforms
Figure 4. Digital atlas and axis of Pelecanimimus (MCCM-LH 7777). A–D, atlas in anterior (A), lateral right (B), posterior (C) and lateral left (D) views. E–J, axis in lateral right (E), anterior (F), lateral left (G), posterior (H), dorsal (I) and ventral (J) views. Abbreviations: ep, epipophysis; pn, pneumatic foramina; odo, odontoid; pa, parapophysis; podl, postzygodiapophyseal lamina; poz, postzygapophysis. Scale bars: 10 mm.
Figure 14 in Pelecanimimus (Theropoda: Ornithomimosauria) postcranial anatomy and the evolution of the specialized manus in Ornithomimosaurs and sternum in maniraptoriforms
Figure 14. Right forelimb of Pelecanimimus (MCCM-LH 7777) in the left slab: photo (A) and drawing (B). Abbreviations: dpc, deltopectoral crest; ect, ectepicondyle; RH, right humerus; RR, right radius; RU, right ulna; scf, supracondylar fossa; op, olecranon process. Scale bars: 20 mm.
Figure 11 in Pelecanimimus (Theropoda: Ornithomimosauria) postcranial anatomy and the evolution of the specialized manus in Ornithomimosaurs and sternum in maniraptoriforms
Figure 11. Left and right scapulocoracoids of Pelecanimimus (MCCM-LH 7777): photo (A) and drawing (B). Abbreviations: ap, acromion process; Fu, furcula; H, humerus; igb, infraglenoid butress; L Cd, left coracoid; L Sc, left scapula; n, notch; r, ridge; R Cd, right coracoid; R Sc, right scapula; pvp, posteroventral process. Scale bars: 50 mm.
FIGURE 7 in Phylogenetic position of Kinnareemimus khonkaenensis (Dinosauria: Theropoda: Ornithomimosauria) from the Lower Cretaceous of Thailand
FIGURE 7. Comparison of proximal tibia in lateral view (line drawing) of Kinnareemimus (A), Tyrannomimus (B), Garudimimus (C), Beishanlong (D), and Deinocheirus (E). Comparison of fibula in proximal view (line drawing) of Kinnareemimus (F), Garudimimus (G), Deinocheirus (H), Sinornithomimus (I), and Gallimimus (J). Pedal unguals in lateral (K, M, O, Q) and ventral (L, N, P, R, S - V) views of (K, L) Nqwebasaurus (Choiniere et al. 2012), (M, N) Kinnareemimus (SM-PW5A-122), (O, P) Tyrannomimus (Hattori et al. 2023), (Q, R) Garudimimus (Kobayashi & Barsbold 2005b), (S) Deinocheirus (Lee et al. 2014), (T) cf. Qiupalong sp. (McFeeters et al. 2017), (U) Bissekty ornithomimid (Sues & Averianov 2016), and (V) Kazak Ornithomimid (Averianov et al. 2017). Not to scale.
FIGURE 5 in Phylogenetic position of Kinnareemimus khonkaenensis (Dinosauria: Theropoda: Ornithomimosauria) from the Lower Cretaceous of Thailand
FIGURE 5. Phylogenetic analyses (A) modified after Choiniere et al. (2012) and found Kinnareemimus within the Deinocheiridae, (B) modified after McFeeters et al. (2016) and found Kinnareemimus as a basal ornithomimosaur. Numbers next to nodes are Bremer support values.
FIGURE 2 in Phylogenetic position of Kinnareemimus khonkaenensis (Dinosauria: Theropoda: Ornithomimosauria) from the Lower Cretaceous of Thailand
FIGURE 2. Previous cladistic analyses from (A) Senter 2007, (B) Choiniere et al. 2012, (C) Lee et al. 2014, (D) McFeeters et al. 2017.
FIGURE 4 in Phylogenetic position of Kinnareemimus khonkaenensis (Dinosauria: Theropoda: Ornithomimosauria) from the Lower Cretaceous of Thailand
FIGURE 4. Left metatarsals of Kinnareemimus in proximal (A, C, G, N), anterior (B, D, E, I, J), posterior (H, L), and distal (F, K, M) views. Incomplete left metatarsal III SM-PW5A-100 (E-H), mid shaft of the left metatarsal III SM-PW5A-103 (I, L, M), and distal portion of the left metatarsal III SM-PW5A-107 (J, K, N). Cross section of metatarsal III SM-PW5A-100 (G), SM-PW5A-103 (M), and SM-PW5A-107 (N). Abbreviation: bif: bifurcation of posterior ridge; elp: extensor ligament pit; nap: nonarticular platform; prid: posterior ridge; arrowhead = medial expansion. Scale bar = 5 cm.
FIGURE 3 in Phylogenetic position of Kinnareemimus khonkaenensis (Dinosauria: Theropoda: Ornithomimosauria) from the Lower Cretaceous of Thailand
FIGURE 3. Left tibia of Kinnareemimus in anterior (A, B), posterior (C), medial (D), lateral (E, F), proximal (G, H), and distal (I, J) views. Left fibula of Kinnareemimus in proximal (K) and lateral (L) views. Abbreviations: cc, cnemial crest; fc, fibular crest; ig, intercondylar groove; it, incisura tibialis; lc, lateral condyle; lm, lateral malleolus; mc, medial condyle; mm, medial malleolus. Scale bar = 10 cm.
FIGURE 6 in Phylogenetic position of Kinnareemimus khonkaenensis (Dinosauria: Theropoda: Ornithomimosauria) from the Lower Cretaceous of Thailand
FIGURE 6. Phylogenetic analysis modified after Hattori et al. (2023) and found Kinnareemimus as a basal ornithomimosaur.
FIGURE 8 in Phylogenetic position of Kinnareemimus khonkaenensis (Dinosauria: Theropoda: Ornithomimosauria) from the Lower Cretaceous of Thailand
FIGURE 8. Simplified cladogram showing morphological diversity of ornithomimosaur metatarsals (left metatarsals II, III, IV in proximal and anterior views). Nqwebasaurus (modified from Choiniere et al. 2012; Sereno 2017); Harpymimus (modified from Kobayashi & Barsbold 2005a); Kinnareemimus (modified from Buffetaut et al. 2009); Beishanlong (modified from Makovicky et al. 2010); Garudimimus (modified from Kobayashi & Barsbold 2005b); Deinocheirus (modified from Lee et al. 2014); Ornithomimus velox (modified from Claessens & Loewen 2015); arcto = arctometatarsus; pre-sub = pre-subarctometatarsus; sub = subarctometatarsus; DEINO = Deinocheiridae; * = Ornithomimoidea (according to Sereno 2017) or Macrocheiriformes (according to Cuesta et al. 2021).
text-fig. 60. Consensus of recent phylogenetic analyses. All recent analyses agree that Theropoda is a monophylum, and within Theropoda, a monophyletic clade etanurae exists. There is further agreement that Tetanurae includes a monophyletic Coelurosauria and that Aves is part of the latter clade. in The interrelationships and evolution of basal theropod dinosaurs
text-fig. 60. Consensus of recent phylogenetic analyses. All recent analyses agree that Theropoda is a monophylum, and within Theropoda, a monophyletic clade etanurae exists. There is further agreement that Tetanurae includes a monophyletic Coelurosauria and that Aves is part of the latter clade.
Fig. 7 in An Embryonic Oviraptorid (Dinosauria: Theropoda) from the Upper Cretaceous of Mongolia
Fig. 7. The skull of IGM 100/971 in dorsal view. The anterior right lateral surface of the skull is visible due to oblique crushing on the palate. Abbreviations are given in appendix 1.
Fig. 6 in An Embryonic Oviraptorid (Dinosauria: Theropoda) from the Upper Cretaceous of Mongolia
Fig. 6. Although refuted by evidence, museum displays and popular accounts often show Protoceratops andrewsi associated with oviraptorid eggs and nests. This example from the American Museum of Natural History shows two Protoceratops in the vicinity of a nest. This mount was created in 1935 to highlight the findings of the first reported dinosaur nests by the museum's Central Asiatic Expeditions.
Fig. 2 in An Embryonic Oviraptorid (Dinosauria: Theropoda) from the Upper Cretaceous of Mongolia
Fig. 2. The Ukhaa Tolgod Xanadu site looking east. The site of the IGM 100/971 find is indicated with an arrow.
Fig. 8 in An Embryonic Oviraptorid (Dinosauria: Theropoda) from the Upper Cretaceous of Mongolia
Fig. 8. The skull and left knee of IGM 100/971. The skull is in anterior view showing the mandibular symphysis and the suture between the premaxillae. Abbreviations are given in appendix 1.
Fig. 9 in An Embryonic Oviraptorid (Dinosauria: Theropoda) from the Upper Cretaceous of Mongolia
Fig. 9. Detail of the basicranium, cervical vertebra, and shoulder region of IGM 100/971. Abbreviations are given in appendix 1.
FIGURE A7 in Abelisauridae (Dinosauria: Theropoda) from the Late Jurassic of Portugal and dentition-based phylogeny as a contribution for the identification of isolated theropod teeth
FIGURE A7. Strict consensus cladogram of 10 most parsimonious trees recovered from analysis of dentition based characters, with each nodes numbered (see the list of synapomorphies for each clades below). Initial analysis was a New Technology Search using TNT v.1.1 of a data matrix comprising 141 dentition-based characters for one outgroup (Eoraptor lunensis) and 59 nonavian theropod taxa. Tree length = 681 steps; CI = 0.338; RI = 0.56.
FIGURE 7 in Abelisauridae (Dinosauria: Theropoda) from the Late Jurassic of Portugal and dentition-based phylogeny as a contribution for the identification of isolated theropod teeth
FIGURE 7. Plots of MAVG versus DAVG of ML 962, ML 327, ML 966 and 19 theropod taxa comprising the data set. For reasons of clarity, only taxa with serration of less than 20 denticles were considered.
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Allen Brain Atlas
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DANDI Archive for NWB datasets
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