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214 results for “Evolutionary systematics”
Figure 7 in Evolutionary relationships and systematics of Atoposauridae (Crocodylomorpha: Neosuchia): implications for the rise of Eusuchia
Figure 7. (A) Results of phylogenetic analysis using Bayesian inference, when all OTUs are active and selected characters are considered to be ordered (see Appendix 1). (B) Results of phylogenetic analysis using Bayesian inference, when 'Alligatorellus' sp. (MB.R.3632) and Theriosuchus sp. (NMS G. 2014.52.1 and selected characters are considered to be ordered (see Appendix 1).
Figure 6 in Evolutionary relationships and systematics of Atoposauridae (Crocodylomorpha: Neosuchia): implications for the rise of Eusuchia
Figure 6. Single most parsimonious tree for phylogenetic analysis when implied weighting is employed with a weighting exponent of k = 3. Selected characters are considered to be ordered, and no taxa were excluded a priori. Absolute Bremer support values are provided adjacent to nodes.
Figure 9 in Evolutionary relationships and systematics of Atoposauridae (Crocodylomorpha: Neosuchia): implications for the rise of Eusuchia
Figure 9. (A) Skull of the holotype of Alligatorium meyeri (MNHL 15646) in dorsal view. Synapomorphies for Atoposauridae are indicated (see text for details). (B) Skull of the paratype of Theriosuchus pusillus (NHMUK PV R48330) in dorsal view. Shared characteristics with atoposaurids are indicated (see text for details).
Figure 10 in Evolutionary relationships and systematics of Atoposauridae (Crocodylomorpha: Neosuchia): implications for the rise of Eusuchia
Figure 10. Time-scaled phylogeny showing the relationships of Atoposauridae to the other taxa analysed in the present study (based on the topology provided in Fig. 5A). Atoposauridae is marked with a red star. Created using the strap package (Bell & Lloyd, 2015), using the geoscalePhylo() function and an 'equal' time-scaling method.
Figure 11 in Evolutionary relationships and systematics of Atoposauridae (Crocodylomorpha: Neosuchia): implications for the rise of Eusuchia
Figure 11. Relative positions of the choanae with respect to the main palatal bones in a range of neosuchian taxa. Citations are given were these reconstructions are based on in-text illustrations. (A) Eutretauranosuchus delfsi (Smith et al., 2010); (B) Theriosuchus guimarotae (Schwarz & Salisbury, 2005); (C) Theriosuchus pusillus; (D) Theriosuchus sympiestodon; (E) Wannchampsus kirpachi; (F) Shamosuchus djadochtaensis (Pol et al., 2009); (G) Koumpiodontosuchus aprosdokiti (Sweetman et al., 2015); (H) Hylaeochampsa vectiana (Clark & Norell, 1992).
Figure 8 in Evolutionary relationships and systematics of Atoposauridae (Crocodylomorpha: Neosuchia): implications for the rise of Eusuchia
Figure 8. (A) Skull of the holotype of Alligatorellus beaumonti (MNHL 15639) in dorsal view. See text for details. (B) Skull of the holotype of Alligatorellus bavaricus (BSPG 1937 I 26) in dorsolateral view. Synapomorphies for Atoposauridae indicated (see text for details).
Figure 3 in Evolutionary relationships and systematics of Atoposauridae (Crocodylomorpha: Neosuchia): implications for the rise of Eusuchia
Figure 3. Previously recovered intrarelationships within Atoposauridae. (A) Buscalioni & Sanz (1988); (B) Bronzati et al. (2012); (C) Turner (2015).
Figure 4 in Evolutionary relationships and systematics of Atoposauridae (Crocodylomorpha: Neosuchia): implications for the rise of Eusuchia
Figure 4. (A) Strict consensus topology for phylogenetic analysis when all taxa are included, and all characters are considered to be unordered (i.e., non-additive). Atoposauridae is marked with a red star. (B) Strict consensus for phylogenetic analysis when all taxa are included, and selected characters are considered to be ordered (see Appendix 1).
Figure 5 in Evolutionary relationships and systematics of Atoposauridae (Crocodylomorpha: Neosuchia): implications for the rise of Eusuchia
Figure 5. (A) Strict consensus topology for phylogenetic analysis when iterpcr script is employed, and Alligatorium franconicum and 'Alligatorellus' sp. are excluded a priori. (B) Single most parsimonious tree for phylogenetic analysis when Pachycheilosuchus trinquei and 'Alligatorellus' sp. (MB.R.3632) are excluded a priori. Absolute Bremer support values are provided adjacent to nodes. Atoposauridae is marked with a red star.
Figure 14 in Intraspecific versus interspecific variation in Miocene Great Basin mylagaulids: implications for systematics and evolutionary history
Figure 14. Occlusal morphology of the fourth premolars of the Virgin Valley specimens of indeterminate mylagaulids. Numbers refer to wear stages described in the text. Anterior is to the left of the figure. A, UCMP 11572, left p4 (mirrored); B, UCMP 11662, right p4; C, UCMP 41026, right P4. Scale bar = 1 cm.
Figure 13 in Intraspecific versus interspecific variation in Miocene Great Basin mylagaulids: implications for systematics and evolutionary history
Figure 13. Occlusal morphology of the fourth premolars of Mylagaulidae species A. Numbers refer to wear stages described in the text. Anterior is to the left of the figure. A, UOMNH F-6166, right P4; B, UOMNH F-17681, right P4; C, UCMP 188927, left P4 (mirrored). Scale bar = 1 cm.
Figure 10 in Intraspecific versus interspecific variation in Miocene Great Basin mylagaulids: implications for systematics and evolutionary history
Figure 10. Mandibular morphology of the type specimen of Hesperogaulus shotwelli, UCMP 320004, from RV-8000. A, dorsal (occlusal) view; B, lateral view. Scale bar = 1 cm.
Figure 6 in Intraspecific versus interspecific variation in Miocene Great Basin mylagaulids: implications for systematics and evolutionary history
Figure 6. Postcranial morphology of UCMP 130250. A, partial distal humerus; B, caudal vertebra. Scale bar = 1 cm.
Figure 2 in Intraspecific versus interspecific variation in Miocene Great Basin mylagaulids: implications for systematics and evolutionary history
Figure 2. Revised range of the mylagaulid species present in the Great Basin. Stratigraphy after Tedford et al. (2004). Abbreviations: EBAR, early Barstovian; ECLA, early Clarendonian; EEHP, early early Hemphillian; EHMF, early Hemingfordian; ELHP, early late Hemphillian; LBAR, late Barstovian; LCLA, late Clarendonian; LEHP, late early Hemphillian; LHMF, late Hemingfordian; LLHP, late late Hemphillian; MCLA, middle Clarendonian.
Figure 15 in Intraspecific versus interspecific variation in Miocene Great Basin mylagaulids: implications for systematics and evolutionary history
Figure 15. Occlusal morphology of the dp4–m2 of an indeterminate mylagaulid from the Mascall Formation of Oregon. Scale bar = 1 cm.
Figure 11 in Intraspecific versus interspecific variation in Miocene Great Basin mylagaulids: implications for systematics and evolutionary history
Figure 11. Occlusal morphology of the fourth premolars of Hesperogaulus shotwelli. Numbers refer to wear stages described in the text. Anterior is to the left of the figure. A, UCMP 29637, left p4 (mirrored); B, UOMNH F-5771, right p4; C, UOMNH F-6115, left p4 (mirrored); D, UCMP 320004 (type), right p4; E, UOMNH F-15697, right p4; F, UCMP 38665, left p4 (mirrored); G, UOMNH F-6113, right p4; H, UOMNH F-5771 sawed, right p4; I, UCMP 11878, left P4 (mirrored); J, UOMNH F-5557, right P4; K, UOMNH F-5558, right P4; L, UOMNH F-17508, left P4 (mirrored); M, UOMNH F-5772, left P4 (mirrored); N, UCMP 320004 (type), left P4 (mirrored); O, UOMNH F-15691, right P4; P, UOMNH F-5772 sawed, left P4 (mirrored); Q, UOMNH F-5443, left P4 (mirrored); R, UOMNH F-5771 sawed, right P4; S, UOMNH F-5558 sawed, right P4; T, UOMNH F-10977, right P4. Scale bar = 1 cm.
Figure 1 in Intraspecific versus interspecific variation in Miocene Great Basin mylagaulids: implications for systematics and evolutionary history
Figure 1. Map of the area considered in this study with the localities and North American Land Mammal Ages.
Figure 12 in Intraspecific versus interspecific variation in Miocene Great Basin mylagaulids: implications for systematics and evolutionary history
Figure 12. Occlusal morphology of the fourth premolars of Hesperogaulus wilsoni. Numbers refer to wear stages described in the text. Anterior is to the left of the figure. A, UOMNH F-10347, left p4 (mirrored); B, UOMNH F-10348, right p4; C, UOMNH F-10349, right P4. Scale bar = 1 cm.
Figure 9 in Intraspecific versus interspecific variation in Miocene Great Basin mylagaulids: implications for systematics and evolutionary history
Figure 9. Cranial morphology of the type specimen of Hesperogaulus shotwelli, UCMP 320004, from RV-8000. A, dorsal view; B, ventral view; C, lateral view. Scale bar = 1 cm.
Figure 4 in Intraspecific versus interspecific variation in Miocene Great Basin mylagaulids: implications for systematics and evolutionary history
Figure 4. Occlusal morphology of the fourth premolars of Alphagaulus vetus. Numbers refer to wear stages described in the text, and d to deciduous. Anterior is to the left of the figure. A, UCMP 318367 left deciduous p4 (mirrored); B, UCMP 11540, left p4 (mirrored); C, UCMP 61709, left p4 (mirrored); D, UCMP 316434, left p4 (mirrored); E, UCMP 316431, left p4 (mirrored); F, UCMP 11843, left p4 (mirrored); G, UCMP 315432, left p4 (mirrored); H, UCMP 316435, right p4; I, UCMP 316436, right p4; J, UCMP 316433, left p4 (mirrored); K, UCMP 11684, left p4 (mirrored); L, UCMP 315686, right p4; M, UCMP 316010, right p4; N, UCMP 316437, right deciduous P4; O, UCMP 316008, left P4 (mirrored); P, UCMP 315684, right P4; Q, UCMP 130244, left P4 (mirrored); R, UCMP 152495, left P4 (mirrored); S, UCMP 130240, right P4; T, UCMP 130247, right P4; U, UCMP 319237, right P4; V, UCMP 315431, left P4 (mirrored); W, UCMP 316007, right P4. Scale bar = 1 cm.
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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.