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Fig. 57 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 57. Right humeri of Rhombomylus (A, IVPP V7461; B, IVPP V7463; C, IVPP V7428; D, IVPP V7464). A1–3, Posterior, anterior, and proximal views of a right proximal humerus. B1–3, Posterior,
Fig. 56 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 56. Scapulae, clavicle, and proximal humerus of Rhombomylus (A, B, and C, IVPP V7428; D, IVPP V5287). A, Right scapula and articulated proximal humerus: A1, lateral view; A2, medial view; A3, posterior view; A4, anterior view; B, lateral view of dorsal part of left scapula; C, anterior view of ventral part of left scapula and articulated proximal humerus; D, middle segment of a possible clavicle.
Fig. 54 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 54. Cervical, thoracic, and lumbar vertebrae of Rhombomylus (A, IVPP V5268; B, IVPP V5272.1; C, IVPP V5272.1; D, IVPP V5269.2). A, Last cervical and first three thoracic vertebrae and attached ribs: A1, dorsal view; A2, ventral view; B, two anterior lumbar vertebrae: B1, dorsal view; B2, lateral view; C, a middle lumbar vertebra: C1, lateral view; C2, anterior view; C3, dorsal view; D, two middle lumbar vertebrae: D1, dorsal view; D2, lateral view; D3, ventral view. ac, accessory process; body, vertebral body; Cla, last cervical vertebra; prezy, prezygapophysis; postzy, postzygapophysis; R1, first rib; R2, second rib; R3, third rib; sp can, spinal canal; sp pro, spinal process; T1, T2, T3, first three thoracic vertebrae; tran pro, transverse process; and vk, ventral keel of the vertebra.
Fig. 58 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 58. Ulna and radius of Rhombomylus (A, IVPP V7428; B, IVPP V7465). A1–2, Medial and lateral views of the right ulna and radius. B, Proximal part of left ulna and radius. B1, anterior view of ulna; B2, posterior view of radius; B3–6, anterior, anteromedial, posterior, and lateral views of the ulna. apro, anoconeal process; bitu, bicipital tuberosity; bra fo, brachialis fossa; cenpro, central process; cfac, facet for humeral capitulum; cpro, coronoid process; radnot, radial notch; and tn, trochlear notch.
Fig. 61 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 61. Femurs of Rhombomylus (A and C, IVPP V7428; B, IVPP V7480). A1–3, Posterior, lateral, and anterior views of a right femur. B1–4, Anterior, lateral, proximal, and medial views of the proximal part of a left femur. C1–2, Anterior and distal views of the distal part of a left femur. 3tr, third trochanter; ff, favea for femoral head ligament; gtr, greater trochanter; itf, intertrochantic fossa (or trochantic fossa); lc, lateral condyle; lr, lateral rim of femoral trochlea; ltr, lesser trochanter; mc, medial condyle; mr, medial rim of femoral trochlea; and ptr, patella trochlea.
Fig. 81. A in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 81. A, Plotted ratios of the moment arm for the dorsal fibers of the temporalis (mtd) to resistance arms of the molar (ram) and incisor (rai). B, Ploted ratios of the total molar length (dl) to resistance arms of the molar (ram) and incisor (rai). See text for discussion.
Fig. 51 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 51. Ventral, ventrolateral, and dorsal views of the endocranial cast of Rhombomylus (IVPP V7487).
Fig. 53. A–D in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 53. A–D, Lateral views of mandibles from individuals of different ages of Rhombomylus (IVPP V7585, V5280, V5288, V5278); E, ventral view of the mandible (IVPP V5278). The angular process of V5280 (B) is reconstructed based on other specimens.
Fig. 44 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 44. Frontal (horizontal) sections through the rostrum of Rhombomylus (IVPP V7492), showing internal structures of the nasal cavity. The sequence of sections is shown in the figure at the lower right corner (the specimen is the left side of the same skull in fig. 43). A total of 15 sections were made and 11 of them are illustrated. The number between brackets indicates the original position in the cutting sequence. cbp, cribriform plate; dI2, second upper deciduous incisor; enI, endoturbinal I; et, ethmoturbinals; fol, fossa for olfactory lobe; ifc, infraorbital canal; mx, maxilla; na, nasal; pm, premaxilla; rM1, roots of M1; tl, transverse lamina; and wvo, wing of the vomer.
Fig. 49 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 49. Cross sections through the ear regions of Rhombomylus (IVPP V5266, V5267), showing the auditory region and ear ossicles.?in, incus; mal, malleus; and st, stapes.
Fig. 48 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 48. Cross sections through the glenoid fossa and epitympanic recess of the ear region of Rhombomylus (IVPP V5267). ect, ectotympanic; epr, epitympanic recess; gf, glenoid fossa; hma, head of malleus; pgf, postglenoid foramen; ptm, petromastoid; and sq, squamosal.
Fig. 47 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 47. Cross sections through the auditory region of Rhombomylus (IVPP V5267) (only the right side sections are illustrated), showing some inner and middle ear structures and related architectures; these sections are in a continuous sequence. asc, anterior semicircular canal; ata, anterior ampulla; bc, braincase; boc, basioccipital; bps, bulla (ectotympanic)petrosal suture; bs, basisphenoid; ccn, canal for cochlear nerve cfn, canal for facial nerve; coc, cochlear canal; dms, dorsal exposure of mastoid of petrosal; eam, external acoustic meatus; ect, ectotympanic; ectb, ectotympanic bulla; epr, epitympanic recess; ews, epitympanic wing of the sphenoid; fc, fenestra cochleae (rotunda); fr, frontal; hF, hiatus Fallopii; hma, head of malleus; lsa, lateral semicircular canal; lta, lateral ampulla; mal, malleus; md,
Fig. 45 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 45. Cross sections anteroposteriorly through the braincase and basicanium of Rhombomylus (IVPP V5266), showing some basic structures and terminology. at, atlas; boc, basioccipital; bs, basisphenoid; coc, cochlear canal; dms, dorsal exposure of mastoid of petrosal; eam, external acoustic meatus; fr, frontal; mal, malleus; ms, mastoid of petrosal; msc, mastoid cavity of petrosal; occ, occipital condyle; pa, parietal; prm, promontorium; saf, subarcuate fossa; smc, septum (septa) in mastoid cavity; soc, supraoccipital; sq, squamosal; tmc, tympanic cavity; and tmr, tympanic ridge (or ring) that holds the tympanium in life.
Fig. 41 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 41. Cross sections through anterior and posterior nasal cavity (IVPP V7488) of Rhombomylus, showing internal structures of the cavity. dll, dorsolateral lamina of the Jacobson's fossa; ec1, ectoturbinal 1; ec2, ectoturbinal 2; ec3, ectoturbinal 3; enI, endoturbinal I; enII, endoturbinal II; enIII, endoturbinal III; enIV, endoturbinal IV; fr, frontal; if, incisive foramen; jf, Jacobson's fossa. mx, maxilla; na, nasal; pm, premaxilla; pmx, palatine process of maxilla; ppm, palatine process of premaxilla; tl, transverse lamina; and vo, vomer. See text for discussion.
Fig. 39 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 39. Stereoscopic view of internal side of ear region and braincase of Rhombomylus (IVPP V5263).
Fig. 29 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 29. Dorsal views of anterior skulls of Rhombomylus (IVPP V5288, V5275), showing the sutures between the nasal, premaxilla, and frontal.
Fig. 24 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 24. Ventral view of the skull of Rhombomylus. Reconstruction is based mainly on an adult skull (IVPP V5278).
Fig. 22. A, Left m1 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 22. A, Left m1 and the trigonid of m2 from a fragmentary mandible of Rhombomylus (IVPP V7493). The scanning electronic microscopic images (B–F) are closeup views of the areas labeled in A. All the figures are oriented in the same direction but are not on the same scale. Arrows indicate directions of strikes or movement of the teeth.
Fig. 21. A–B, Right M2 and M1 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 21. A–B, Right M2 and M1 of Rhombomylus (IVPP V7492, from the same specimen that has been cut to view the longitudinal and frontal sections of the nasal cavity in figs. 43 and 44). The scanning electronic microscopic images (C–G) are closeup views of the areas labeled in A and B. All the figures are oriented in the same direction but are not on the same scale. Arrows indicate directions of strikes or movement of the lower teeth. p, pit; s, striation. See text for description and discussion.
Fig. 16 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 16. Enamel structures of the left upper incisor of Rhombomylus (IVPP V7492; the rostrum of the same specimen was cut for the longitudinal and frontal sections of nasal cavity [figs. 43–44]) (the image in G was photographically reversed). A, C, E, Crosssectional views of the incisor enamel microstructure at segments of the same tooth shown in G; B, D, F, longitudinalsectional views of the incisor enamel microstructure near a, c and e in G; H, enamel distribution on the upper incisor. The scanning electronic microscopic images (A–F) are on the same scale. See text for description and discussion.
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