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2,315 results for βDinosaursβ
Dinosaur Statue - Haddonfield, NJ
In October 2003, a statue was erected in downtown Haddonfield commemorating the World's First Dinosaur Skeleton Discovery in October, 1858. The Hadrosaurus foulkii was the first nearly complete dinosaur skeleton found, and the first to be mounted for public display (partial skeletons and fossils were discovered earlier in England, where the term "dinosaur" was coined in the 1820s). The Haddonfield find sparked the start of the field of dinosaur paleontology, and can probably be blamed for the profusion of life-size dinosaur statues across America. https://www.roadsideamerica.com/story/11155 π [39.89700, -75.03450](https://scaniver.se/L39.89700,-75.03450) Source: Objaverse 1.0 / Sketchfab
Dinosaur Brontosaurus (low poly)
Low poly Dinosaur (Brontosaurus) ideal for prop in animation. Source: Objaverse 1.0 / Sketchfab
Figure 12 in How has our knowledge of dinosaur diversity through geologic time changed through research history?
Figure 12 Subsampled sauropodomorph diversity at (A) global and (BβF) regional levels (Europe, Africa, Asia, North America, and South America, respectively) based on our published knowledge in 1991 and 2015. Abbreviations as Fig. 4.
Figure 7 in How has our knowledge of dinosaur diversity through geologic time changed through research history?
Figure 7 Good's u estimates for ornithischians at (A) global and (BβF) regional levels (Europe, Africa, Asia, North America, and South America, respectively) based on our published knowledge in 1991 and 2015. Abbreviations as Fig. 4. Full-size DOI: 10.7717/peerj.4417/fig-7
Figure 10 in How has our knowledge of dinosaur diversity through geologic time changed through research history?
Figure 10 Good's u estimates for theropods at (A) global and (BβF) regional levels (Europe, Africa, Asia, North America, and South America, respectively) based on our published knowledge in 1991 and 2015. Abbreviations as Fig. 4. Full-size DOI: 10.7717/peerj.4417/fig-10
Figure 13 in How has our knowledge of dinosaur diversity through geologic time changed through research history?
Figure 13 Good's u estimates for sauropodomorphs at a (A) global and (BβF) regional levels (Europe, Africa, Asia, North America, and South America, respectively) based on our published knowledge in 1991 and 2015. Abbreviations as Fig. 4. Full-size DOI: 10.7717/peerj.4417/fig-13
Figure 6 in How has our knowledge of dinosaur diversity through geologic time changed through research history?
Figure 6 Subsampled ornithischian diversity at (A) global and (BβF) regional levels (Europe, Africa, Asia, North America, and South America, respectively) based on our published knowledge in 1991 and 2015. Abbreviations as Fig. 4. Full-size DOI: 10.7717/peerj.4417/fig-6
Figure 7 in How has our knowledge of dinosaur diversity through geologic time changed through research history?
Figure 7 Good's u estimates for ornithischians at (A) global and (BβF) regional levels (Europe, Africa, Asia, North America, and South America, respectively) based on our published knowledge in 1991 and 2015. Abbreviations as Fig. 4.
Figure 11 in How has our knowledge of dinosaur diversity through geologic time changed through research history?
Figure 11 Raw sauropodomorph diversity at (A) global and (BβF) regional levels (Europe, Africa, Asia, North America, and South America, respectively) based on our published knowledge in 1991 and 2015. Abbreviations as Fig. 4. Full-size DOI: 10.7717/peerj.4417/fig-11
Figure 8 in How has our knowledge of dinosaur diversity through geologic time changed through research history?
Figure 8 Raw theropod diversity at (A) global and (BβF) regional levels (Europe, Africa, Asia, North America, and South America, respectively) based on our published knowledge in 1991 and 2015. Abbreviations as Fig. 4. Full-size DOI: 10.7717/peerj.4417/fig-8
Figure 4 in How has our knowledge of dinosaur diversity through geologic time changed through research history?
Figure 4 Total dinosaur 'global' diversity patterns for (A) raw and (B) subsampled data. The vertical red lines represent major interval boundaries. Time stage abbreviations (in chronological order). N, Norian; R, Rhaetian, He, Hettangian; S, Sinemurian; P, Pliensbachian; T, Toarcian; A, Aalenian; Bj, Bajocian; B, Bathonian; C, Callovian; O, Oxfordian; K, Kimmeridgian; Ti, Tithonian; Be, Berriasian; V, Valanginian; Ha, Hauterivian; Ba, Barremian; Ap, Aptian; Al, Albian; Ce, Cenomanian; Tu, Turonian; Co, Coniacian; Sa, Santonian; Cam, Campanian; M, Maastrichtian. Vertical dashed red lines indicate boundaries between different periods (Triassic/Jurassic, Jurassic/Cretaceous, and Cretaceous/Paleogene). Full-size DOI: 10.7717/peerj.4417/fig-4
Figure 2 in How has our knowledge of dinosaur diversity through geologic time changed through research history?
Figure 2 Frequency (A) and cumulative frequency (B) of newly published dinosaur genera through publication time. Full-size DOI: 10.7717/peerj.4417/fig-2
Figure 1 in How has our knowledge of dinosaur diversity through geologic time changed through research history?
Figure 1 Frequency (A) and cumulative frequency (B) of newly published dinosaur occurrences through publication time. Please note that all raw figure files (PDF) and the R code for generating these are available in Supplemental Information 10. Full-size DOI: 10.7717/peerj.4417/fig-1
Figure 9 in How has our knowledge of dinosaur diversity through geologic time changed through research history?
Figure 9 Subsampled theropod diversity at (A) global and (BβF) regional levels (Europe, Africa, Asia, North America, and South America, respectively) based on our published knowledge in 1991 and 2015. Abbreviations as Fig. 4. Full-size DOI: 10.7717/peerj.4417/fig-9
Figure 12 in How has our knowledge of dinosaur diversity through geologic time changed through research history?
Figure 12 Subsampled sauropodomorph diversity at (A) global and (BβF) regional levels (Europe, Africa, Asia, North America, and South America, respectively) based on our published knowledge in 1991 and 2015. Abbreviations as Fig. 4. Full-size DOI: 10.7717/peerj.4417/fig-12
Figure 5 in How has our knowledge of dinosaur diversity through geologic time changed through research history?
Figure 5 Raw ornithischian diversity at (A) global and (BβF) regional levels (Europe, Africa, Asia, North America, and South America, respectively) based on our published knowledge in 1991 and 2015. Abbreviations as Fig. 4. Full-size DOI: 10.7717/peerj.4417/fig-5
Data from: Chemical preservation of tail feathers from Anchiornis huxleyi, a theropod dinosaur from the Tiaojishan Formation (Upper Jurassic, China)
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Data from: Phylogenetic eigenvectors and non-stationarity in the evolution of theropod dinosaur skulls
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Data from: An unusual new neosauropod dinosaur from the lower Cretaceous Hastings Beds Group of East Sussex, England
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Data from: Basal dinosauriform and theropod dinosaurs from the middle-late Norian (Late Triassic) of Poland: implications for Triassic dinosaur evolution and distribution
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