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Data from: Internal cranial anatomy of Early Triassic species of ?Saurichthys (Actinopterygii: ?Saurichthyiformes): implic
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关键词:
Recent;Triassic;Saurichthys sp;Acipenser brevirostrum;Saurichthys nepalensis;PLY;Saurichthys Greenland
DOI:
doi:10.5061/dryad.42qj362
摘要:
ny crown actinopterygians, such as the Paleozoic-early Mesozoic deep-bodied forms, which are largely caused by lack of endoskeletal data.
Data from: Phylogenetic stability, tree shape, and character compatibility: a case study using early tetrapods
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关键词:
Paleozoic;Diversification shifts;tetrapods;Mesozoic;tree balance;Character compatibility;Tree distance;Terrestrialization
DOI:
doi:10.5061/dryad.sh8b4
摘要:
ults indicate that the impact of temporal constraints on tree shape is minimal and highlights the stability through time of the reference tetrapod
Data from: A re?interpretation of the ambulacral system of Eumorphocystis (Blastozoa, Echinodermata) and its bearing on the evolution of ea
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关键词:
Paleozoic;homology;echinoderm;phylogeny;crinoid;blastozoan
DOI:
doi:10.5061/dryad.q666v01
摘要:
can also be found in blastozoans. Previous reports have considered these arm structures to be restricted to crinoids; these combined features hav
Data from: Multiple global radiations in tadpole shrimps challenge the concept of ‘living fossils’
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关键词:
bayesian analysis;divergence time;Paleozoic;Mesozoic;'living fossil';Biogeography;Notostraca;Triops;diversification;Lepidurus;fossil;Cenozoic
DOI:
doi:10.5061/dryad.77bt2
摘要:
‘Living fossils’, a phrase first coined by Darwin, are defined as species with limited recent diversification and high morphological stasis ove
Data from: The fossil Osmundales (Royal Ferns)—a phylogenetic network analysis, revised taxonomy, and evolutionary classification of anatomical
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关键词:
Mesozoic;Plenasium vachelii;Millerocaulis guptai;Millerocaulis amarjolensis;Grammatocaulis donponii;Millerocaulis livingstonensis;Osmundoideae;Plenasium arnoldii;Millerocaulis richmondii;Itopsidema vancleavei;Thamnopteris diploxylon;Grammatopteris freitasii;Claytosmunda plumites;Thamnopteris kazanensis;Osmundacaulis whittlesii;Claytosmunda wangii;Osmundacaulis griggsii;Tiania yunnanense;Osmundacaulis skidegatensis;Millerocaulis dunlopii;Todea barbara;Millerocaulis websteri;Millerocaulis indicus;Thamnopteris gwynne-vaughani;Donwelliacaulis chlouberii;Claytosmunda nathorstii;Claytosmunda johnstonii;Evolutionary classification;Osmundastrum cinnamomeum;Jurassic;Thamnopteris javorskii;Osmundacaulis atherstonei;Millerocaulis tuhajkulensis;Plenasium dakotense;Phanerozoic;Millerocaulis hebeiensis;Osmundacaulis tehuelchensis;Neogene;Millerocaulis stipabonettiorum;Thamnopteroideae;Grammatopteris baldaufii;taxonomy;Palaeogene;Guairea millerii;Osmunda japonica;Plenasium dowkeri;Osmundacaulis richmondii;Plenasium banksiifolium;Shuichengella primitiva;Millerocaulis zamunerae;Palaeontology;Osmunda iliaensis;Thamnopteris schlechtendalii;Claytosmunda tekelili;Osmundacaulis janiae;Thamnopteris gracilis;Millerocaulis santaecrucis;Osmunda regalis;Plenasium banksiifolia;Thamnopteris uralica;Millerocaulis aucklandicus;Osmundacaulis tidwellii;Guairea braziliensis;Zhongmingella plenasioides;Millerocaulis estipularis;Millerocaulis kolbei;Plenasium nebraskense;Osmundacaulis hoskingii;Claytosmunda wehrii;Osmunda javanica;Plenasium bromeliifolia;Osmundaceae;Plenasium bransonii;Thamnopteris kidstonii;Bathypteris rhomboidea;Osmundacaulis tasmanensis;palaeobotany;Claytosmunda claytoniana;Millerocaulis indentatus;Todeinae;Claytosmunda embreei;Osmundacaulis bamfordae;Todea tidwellii;Filicopsida;Permian;Osmundinae;Leptopteris hymenophylloides;Osmundastrum pulchellum;Thamnopteris splendida;phylogeny;Millerocaulis macromedullosus;systematics;Triassic;Leptopteris fraseri;Osmunda pluma;Osmundacaulis lemonii;Plenasium crossii;Osmundeae;Osmundacaulis jonesii;Cenozoic;Millerocaulis patagonicus;Millerocaulis sahnii;Osmundales;Millerocaulis rajmahalensis;Plenasium chandleri;Millerocaulis gibbianus;Plenasium bromeliifolium;Claytosmunda kidstoni;Millerocaulis preosmundus;Itopsidemoideae;Millerocaulis sinicus;Osmunda lancea;Shuichengelloideae;anatomy;Osmundacaulis nerii;Palaeosmunda williamsii;Osmundacaulis natalensis;Guaireaceae;Palaeozoic;Osmundacaulis andrewii;Millerocaulis limewoodensis;Guairea carnierii;Millerocaulis swanensis;Osmundites aucklandicus;Millerocaulis australis;Millerocaulis juandahensis;Anomorrhoea fischeri;Leptopteris wilkesiana;Plenasium moorei;Guaireoideae;Rastropteris pinquanensis;Claytosmunda beardmorensis;Todea papuana;Millerocaulis chubutensis;Leptopteris superba;Network analysis;Millerocaulis woolfei;Palaeosmunda playfordii;Lunea jonesii;Osmundacaulis pruchnickii;Chasmatopteris principalis;Millerocaulis lutziae;Millerocaulis spinksii;Cretaceous;Millerocaulis broganii;Osmunda oregonensis;Claytosmunda liaoningensis;Plenasium burgii;Osmundastrum precinnamomeum;Leptosporangiatae;Claytosmunda chengii;Osmunda shimokawaensis;Millerocaulis wadei;Millerocaulis herbstii;Osmundacaulis zululandensis;Millerocaulis donponii;Millerocaulis wrightii;Grammatopteris rigollotii
DOI:
doi:10.5061/dryad.270gs
摘要:
The Osmundales (Royal Fern order) originated in the late Paleozoic and is the most ancient surviving lineage of leptosporangiate ferns. In contrast
Data from: The first half of tetrapod evolution, sampling proxies, and fossil record quality
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关键词:
Paleozoic;Jurassic;Mesozoic;Amniota;Devonian;Triassic;Permian;Carboniferous;diversification;Tetrapoda
DOI:
doi:10.5061/dryad.44b50
摘要:
e is limited evidence for covariation between the tetrapod palaeodiversity time series and other putative sampling metrics, such as specimen completeness, numb
Data from: Contemporaneous radiations of fungi and plants linked to symbiosis
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关键词:
DOI:
doi:10.5061/dryad.7bn4001
摘要:
occurred ca. 480?Ma. This was followed by the origin of extant lichens. Saprotrophic mushrooms diversified in the Late Paleozoic as forests of seed plants
Data from: Effects of mass extinction and recovery dynamics on long-term evolutionary trends: a morphological study of Strophomenida (Brachiopoda) ac
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DOI:
doi:10.5061/dryad.4bp82rc
摘要:
ly alter Paleozoic marine assemblages. We focus on the brachiopod order Strophomenida, whose evolutionary relationships have been recently revised
Data from: The impact of geographic range, sampling, ecology, and time on extinction risk in the volatile clade Graptoloida
负责人:
关键词:
Macroevolution;Lower Paleozoic;extinction;Graptolite;Graptoloida;geographic range
DOI:
doi:10.5061/dryad.5pv83
摘要:
Although extinction risk has been found to have a consistent negative relationship with geographic range across wide temporal and taxonomic scale

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