Bennett, S. C. The ontogeny of Pteranodon and other pterosaurs. Paleobiology 19, 92–106 (1993).
Google Scholar
Bennett, S. C. A statistical study of Rhamphorhynchus from the Solnhofen Limestone of Germany: Year-classes of a single large species. J. Paleontol. 69, 569–580 (1995).
Google Scholar
Bennett, S. C. Year-classes of pterosaurs from the Solnhofen Limestone of Germany: Taxonomic and systematic implications. J. Vertebr. Paleontol. 16, 432–444 (1996).
Google Scholar
Bennett, S. C. New smallest specimen of the pterosaur Pteranodon and ontogenetic niches in pterosaurs. J. Paleontol. 92, 254–271 (2018).
Google Scholar
Kellner, A. W. A. Comments on Triassic pterosaurs with discussion about ontogeny and description of new taxa. An. Acad. Bras. Ciênc. 87, 669–689 (2015).
Google Scholar
Chiappe, L. M., Codorniú, L., Grellet-Tinner, G. & Rivarola, D. Argentinian unhatched pterosaur fossil. Nature 432, 571–572 (2004).
Google Scholar
Wang, X. & Zhou, Z. Pterosaur embryo from the Early Cretaceous. Nature 429, 521 (2004).
Google Scholar
Manzig, P. C. et al. Discovery of a rare pterosaur bone bed in a Cretaceous desert with insights on ontogeny and behavior of flying reptiles. PLoS ONE 9, e100005. https://doi.org/10.1371/journal.pone.0100005 (2014).
Google Scholar
Wang, X. et al. Sexually dimorphic tridimensionally preserved pterosaurs and their eggs from China. Curr. Biol. 24, 1323–1330 (2014).
Google Scholar
Codorniú, L., Chiappe, L. & Rivarola, D. Neonate morphology and development in pterosaurs: evidence from a ctenochasmatid embryo from the Early Cretaceous of Argentina. In New Perspectives on Pterosaur Palaeobiology Vol. 455 (eds Hone, D. W. E. et al.) 83–94 (Geological Society London Special Publications, 2018).
Wang, X. et al. Egg accumulation with 3D embryos provides insight into the life history of a pterosaur. Science 358, 1197–1201 (2017).
Google Scholar
Unwin, D. M. The Pterosaurs from Deep Time (Pi Press, 2005).
Prondvai, E., Stein, K., Ősi, A. & Sander, M. P. Life history of Rhamphorhynchus inferred from bone histology and the diversity of pterosaurian growth strategies. PLoS ONE 7, e31392. https://doi.org/10.1371/journal.pone.0031392 (2012).
Google Scholar
Heij, C. J., Rompas, C. F. E. & Moeliker, C. W. The biology of the Mollucan megapode Eulipoa wallacei (Aves, Galliformes, Megapodiidae) on Haruku and other Mollucan Islands; part 2. Deinsea 3, 1–120 (1997).
Jackson, B. E., Segre, P. & Dial, K. P. Precocial development of locomotor performance in a ground-dwelling bird (Alectoris chukar): Negotiating a three-dimensional terrestrial environment. Proc. R. Soc. B 276, 3457–3466 (2009).
Google Scholar
Healey, C. Dispersal of newly hatched orange-footed scrubfowl Megapodius reinwardt. Emu 94, 220–221 (1994).
Google Scholar
Starck, J. M. Structural variants and invariants in avian embryonic and postnatal development. Oxford Ornithol. Ser. 8, 59–88 (1998).
Chinsamy, A., Codorniú, L. & Chiappe, L. Developmental growth patterns of the filter-feeder pterosaur, Pterodaustro guinazui. Biol. Lett. 4, 282–285 (2008).
Google Scholar
Hone, D. W. E., Ratcliffe, J. M., Riskin, D. K., Hermanson, J. W. & Reisz, R. R. Unique near isometric ontogeny in the pterosaur Rhamphorhynchus suggests hatchlings could fly. Lethaia 54, 106–112 (2020).
Google Scholar
Habib, M. B. Comparative evidence for quadrupedal launch in pterosaurs. Zitteliana B28, 159–166 (2008).
Codorniú, L. & Chiappe, L. M. Early juvenile pterosaurs (Pterodactyloidea: Pterodaustro guinazui) from the Lower Cretaceous of central Argentina. Can. J. Earth Sci. 41, 9–18 (2004).
Google Scholar
Kellner, A. W. A. Pterosaur phylogeny and comments on the evolutionary history of the group. In Evolution and Palaeobiology of Pterosaurs Vol. 217 (eds Buffetaut, E. & Mazin, J.-M.) 105–137 (Geol. Soc. Spec. Publ, 2003).
Wang, X., Kellner, A. W. A., Zhou, Z. & Campos, D. D. A. Discovery of a rare arboreal forest-dwelling flying reptile (Pterosauria, Pterodactyloidea) from China. Proc. Natl. Acad. Sci. USA 105, 1983–1987 (2008).
Google Scholar
Andres, B., Clark, J. & Xu, X. The earliest pterodactyloid and the origin of the group. Curr. Biol. 24, 1011–1016 (2014).
Google Scholar
Witton, M. P. Pterosaurs: Natural History, Evolution, Anatomy (Princeton University Press, 2013).
Hone, D. W. E., Farke, A. A. & Wedel, M. J. Ontogeny and the fossil record: What, if anything, is an adult dinosaur?. Biol. Lett. 12, 20150947 (2016).
Google Scholar
Campione, N. E., Brink, K. S., Freedman, E. A., McGarrity, C. T. & Evans, D. C. ‘Glishades ericksoni’, an indeterminate juvenile hadrosaurid from the Two Medicine Formation of Montana: Implications for hadrosauroid diversity in the latest Cretaceous (Campanian-Maastrichtian) of western North America. Palaeobio. Palaeoenv. 93, 65–75 (2013).
Wellnhofer, P. & Kellner, A. W. A. The skull of Tapejara wellnhoferi Kellner (Reptilia, Pterosauria) from the Lower Cretaceous Santana Formation of the Araripe Basin, Northeastern Brazil. Mitteilungen der Bayerischen Staatssammlung für Paläontologie und Historische Geologie 31, 89–106 (1991).
Unwin, D. M. On the phylogeny and evolutionary history of pterosaurs. In Evolution and Palaeobiology of Pterosaurs Vol. 217 (eds Buffetaut, E. & Mazin, J.-M.) 139–190 (Geol. Soc. Spec. Publ, 2003).
Kellner, A. W. A. New information on the Tapejaridae (Pterosauria, Pterodactyloidea) and discussion of the relationships of this clade. Ameghiniana 41, 521–534 (2004).
Lü, J. et al. A new species of Huaxiapterus (Pterosauria: Pterodactyloidea) from the Lower Cretaceous of Western Liaoning, China with comments on the systematics of tapejarid pterosaurs. Acta Geol. Sin. 80, 315–326 (2006).
Eck, K., Elgin, R. & Frey, E. On the osteology of Tapejara wellnhoferi KELLNER 1989 and the first occurrence of a multiple specimen assemblage from the Santana Formation, Araripe Basin, NE-Brazil. Swiss J. Paleontol. 130, 277–296 (2011).
Google Scholar
Bennett, S. C. Sexual dimorphism in Pteranodon and other pterosaurs, with comments on cranial crests. J. Vertebr. Paleontol. 12, 422–434 (1992).
Google Scholar
Tomkins, J. L., LeBas, N. R., Witton, M. P., Martill, D. M. & Humphries, S. Positive allometry and the prehistory of sexual selection. Am. Nat. 176, 141–148 (2010).
Google Scholar
Pinheiro, F. L. & Rodrigues, T. Anhanguera taxonomy revisited: Is our understanding of Santana Group pterosaur diversity biased by poor biological and stratigraphic control?. PeerJ 5, e3285. https://doi.org/10.7717/peerj.3285 (2017).
Google Scholar
Li, J. J., Lü, J. & Zhang, B. K. A new sinopterid pterosaur from the Mesozoic of western Liaoning Province, China. Acta Palaeontologica Sinica 42, 442–447 (2003).
Bennett, S. C. Juvenile specimens of the pterosaur Germanodactylus cristatus, with a review of the genus. J. Vertebr. Paleontol. 26, 872–878 (2006).
Google Scholar
Bennett, S. C. New information on body size and cranial display structures of Pterodactylus antiquus, with a revision of the genus. Palaeontol. Z. 87, 269–289 (2013).
Google Scholar
Bennett, S. C. Soft tissue preservation of the cranial crest of the pterosaur Germanodactylus from Solnhofen. J. Vertebr. Paleontol. 22, 43–48 (2002).
Google Scholar
Wang, X. & Zhou, Z. A new pterosaur (Pterodactyloidea, Tapejaridae) from the Early Cretaceous Jiufotang Formation of western Liaoning, China and its implications for biostratigraphy. Chin. Sci. Bull. 48, 16–23 (2003).
Google Scholar
Jouve, S. Description of the skull of a Ctenochasma (Pterosauria) from the latest Jurassic of eastern France, with a taxonomic revision of European Tithonian Pterodactyloidea. J. Vertebr. Paleontol. 24, 542–554 (2004).
Google Scholar
McGuire, J. A. Allometric prediction of locomotor performance: An example from Southeast Asian flying lizards. Am. Nat. 161, 337–349 (2003).
Google Scholar
McGuire, J. A. & Dudley, R. The biology of gliding in flying lizards (genus Draco) and their fossil and extant analogs. Integr. Comp. Biol. 51, 983–990 (2011).
Google Scholar
Witton, M. P. A new approach to determining pterosaur body mass and its implications for pterosaur flight. Zitteliana B28, 143–158 (2008).
Henderson, D. M. Pterosaur body mass estimates from three-dimensional mathematical slicing. J. Vertebr. Paleontol. 30, 768–785 (2010).
Google Scholar
Witton, M. P. Flight performance and lifestyle of Dimorphodon macronyx. Flugsaurier 2015 Portsmouth abstract volume, 57–60 (2015).
Martin, E. G. & Palmer, C. A novel method of estimating pterosaur skeletal mass using computed tomography scans. J. Vertebr. Paleontol. 34, 1466–1469 (2014).
Google Scholar
Martin-Silverstone, E. et al. Exploring the relationship between skeletal mass and total body mass in birds. PLoS ONE 10, e0141794. https://doi.org/10.1371/journal.pone.0141794 (2015).
Google Scholar
Elgin, R., Hone, D. W. E. & Frey, E. The extent of the pterosaur flight membrane. Acta Palaeontol. Pol. 56, 99–111 (2011).
Google Scholar
Pennycuick, C. J. Modelling the Flying Bird (Academic, 2008).
Witton, M. P. & Habib, M. B. On the size and flight diversity of giant pterosaurs, the use of birds as pterosaur analogues and comments on pterosaur flightlessness. PLoS ONE 5, e13982. https://doi.org/10.1371/journal.pone.0013982 (2010).
Google Scholar
Bennett, S. C. New interpretation of the wings of the pterosaur Rhamphorhynchus muensteri based on the Zittel and Marsh specimens. J. Paleont. 1, 1–25 (2016).
Palmer, C. & Dyke, G. J. Biomechanics of the unique pterosaur pteroid. P. Roy. Soc. B 277, 1121–1127 (2010).
Currey, J. D. Bones: Structure and Mechanics (Princeton University Press, 2002).
Vernes, K. Gliding performance of the Northern flying squirrel (Glaucomys sabrinus) in mature mixed forest of eastern Canada. J. Mammal. 82, 1026–1033 (2001).
Google Scholar
Socha, J. J. Gliding flight in the paradise tree snake. Nature 418, 603–604 (2002).
Google Scholar
Jackson, S. M. Gliding Mammals of the World (Csiro Publishing, 2012).
Alexander, D. E. Nature’s Flyers: Birds, Insects, and the Biomechanics of Flight (JHU Press, 2004).
Socha, J. J., Jafari, F., Munk, Y. & Byrnes, G. How animals glide: From trajectory to morphology. Can. J. Zoo. 93, 901–924 (2015).
Google Scholar
Biewener, A. A. Bone strength in small mammals and bipedal birds: Do safety factors change with body size?. J. Exp. Biol. 98, 289–301 (1982).
Google Scholar
Currey, J. D. & Alexander, R. M. The thickness of the walls of tubular bones. J. Zool. 206, 453–468 (1985).
Google Scholar
Habib, M. Constraining the air giants: Limits on size in flying animals as an example of constraint-based biomechanical theories of form. Biol. Theory 8, 245–252 (2013).
Google Scholar
Vidovic, S. U. & Martill, D. M. Pterodactylus scolopaciceps Meyer, 1860 (Pterosauria, Pterodactyloidea) from the Upper Jurassic of Bavaria, Germany: The problem of cryptic pterosaur taxa in early ontogeny. PLoS ONE 9, e110646. https://doi.org/10.1371/journal.pone.0110646 (2014).
Google Scholar
Grigg, G. & Kirshner, D. Biology and Evolution of Crocodylians (CSIRO Publishing, 2015).
Alerstam, T., Rosén, M., Bäckman, J., Ericson, P. G. & Hellgren, O. Flight speeds among bird species: Allometric and phylogenetic effects. PLoS Biol. 5, e197. https://doi.org/10.1371/journal.pbio.0050197 (2007).
Google Scholar
Dial, K. P. & Jackson, B. E. When hatchlings outperform adults: locomotor development in Australian brush turkeys (Alectura lathami, Galliformes). Proc. R. Soc. B 278, 1610–1616 (2010).
Google Scholar
Rayner, J. M. Form and function in avian flight. Curr. Ornithol. 5, 1–66 (1988).
Marden, J. H. From damselflies to pterosaurs: How burst and sustainable flight performance scale with size. Am. J. Physiol. Reg. I 266, R1077–R1084 (1994).
Google Scholar
Tobalske, B. W., Altshuler, D. L. & Powers, D. R. Take-off mechanics in hummingbirds (Trochilidae). J. Exp. Biol. 207, 1345–1352 (2004).
Google Scholar
Unwin, D. M. & Deeming, D. C. Pterosaur eggshell structure and its implications for pterosaur reproductive biology. Zitteliana B28, 199–207 (2008).
Unwin, D. M. & Martill, D. M. Pterosaurs of the Crato formation. In The Crato Fossil Beds of Brazil: Window into an Ancient World (eds Martill, D. M. et al.) 475–524 (Cambridge University Press, 2007).
Lü, J. et al. An egg-adult association, gender, and reproduction in pterosaurs. Science 331, 321–324 (2011).
Google Scholar
Naish, D. & Witton, M. P. Neck biomechanics indicate that giant Transylvanian azhdarchid pterosaurs were short-necked arch predators. PeerJ 5, e2908. https://doi.org/10.7717/peerj.2908 (2017).
Google Scholar
Wellnhofer, P. The Illustrated Encyclopedia of Pterosaurs (Crescent Books, 1991).
Witton, M. P. & Naish, D. A reappraisal of azhdarchid pterosaur functional morphology and paleoecology. PLoS ONE 3, e2271. https://doi.org/10.1371/journal.pone.0002271 (2008).
Google Scholar
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