Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
245
datasets available to search
ShareScore release 0.9.0
Dataset results
245 results for “Evolutionary Trends”
FIGURE 6 in The tribe Dysoniini part VI: Phylogeny, biogeography and evolutionary trends of the lichen katydid genera (Orthoptera: Tettigoniidae: Phaneropterinae). Eleventh contribution to the suprageneric organization of Neotropical phaneropterines
FIGURE 6. Camouflage—mimicry characters used for the phylogeny: A. Lichenomorphic Lichenomorphus carlosmendesi (Piza, 1950) (Photo: E. Branco). B. Phyllodomorphic mimicry, Aegimia maculifolia Dias, Rafael & Naskrecki, 2012 (Photo: P. Naskrecki). C. Lichenodraculus matti nymph, on shrubby lichens. D. Vespamorphic, Quiva (Quiva) sharovi Gorochov, 2013 (Photo: A. Anker).
FIGURE 7 in The tribe Dysoniini part VI: Phylogeny, biogeography and evolutionary trends of the lichen katydid genera (Orthoptera: Tettigoniidae: Phaneropterinae). Eleventh contribution to the suprageneric organization of Neotropical phaneropterines
FIGURE 7. Accumulation of Dysoniini species. The principal peaks of the curve correspond to the publications by Brunner von Wattenwyl, 1878; Rehn, 1950; Piza (1950–1982); Cadena-Castañeda & Gorochov (2012–2013) and Cadena-Castañeda (2011–2022).
FIGURE 5 in The tribe Dysoniini part VI: Phylogeny, biogeography and evolutionary trends of the lichen katydid genera (Orthoptera: Tettigoniidae: Phaneropterinae). Eleventh contribution to the suprageneric organization of Neotropical phaneropterines
FIGURE 5. Characters used for the phylogeny (mainly abdomen and terminalia): A, B. Abdominal tergites: A. Anaphidna hernandezi (Cadena-Castañeda, 2012). B. Apolinaria hygracantha (Karsch, 1896). C, D. Male subgenital plate: C. Dissonulichen simplicipes simplicipes (Brunner von Wattenwyl, 1878). E–J. Male cerci: E. Anaulacomera alexanderi Cadena-Castañeda, 2012. F. Lichenomorphus montealegrezi Cadena-Castañeda, 2011. G. Anaphidna lankesteri (Rehn, 1918). H. Dysonia holgeri holgeri Cadena-Castañeda, 2011. I. Yungasacris multa Cadena-Castañeda & Gorochov, 2013. K, L. Ovipositor. K. D. simplicipes simplicipes (Brunner von Wattenwyl, 1878).L. A. hygracantha (Karsch, 1896).
FIGURE 1 in The tribe Dysoniini part VI: Phylogeny, biogeography and evolutionary trends of the lichen katydid genera (Orthoptera: Tettigoniidae: Phaneropterinae). Eleventh contribution to the suprageneric organization of Neotropical phaneropterines
FIGURE 1. Artistic plate by Westwood (1844), above: Phaneroptera alipes (=Dysonia alipes) female [Lichenomorphus sp.] and male, below: Phaneroptera hystrix (=Markia hystrix). Arcana Entomologica 2(18):87–88, pl. 70, Pl. LXX.
FIGURE 2 in The tribe Dysoniini part VI: Phylogeny, biogeography and evolutionary trends of the lichen katydid genera (Orthoptera: Tettigoniidae: Phaneropterinae). Eleventh contribution to the suprageneric organization of Neotropical phaneropterines
FIGURE 2. Characters used for the phylogeny (mainly head and pronotum): A, B. Habitus: Dysonia holgeri holgeri Cadena-Castañeda, 2011, male and female respectively. C, D. Head and pronotum in lateral view: C. Anaulacomera alexanderi Cadena-Castañeda, 2012. D. Anaphidna gracielae (Cadena-Castañeda, 2012). E–M. Head in frontal and lateral view: E, J. Markia hystrix (Westwood, 1844). F, L. Dissonulichen simplicipes simplicipes (Brunner von Wattenwyl, 1878). G. Quiva (Paraquiva) angieae Cadena-Castañeda, 2013. H. Aegimia maculifolia Dias, Rafael & Naskrecki, 2012. I. Hammatofera nodicornis (Burmeister, 1838). N. Paraphidnia gallina Giglio-Tos, 1898.
FIGURE 3 in The tribe Dysoniini part VI: Phylogeny, biogeography and evolutionary trends of the lichen katydid genera (Orthoptera: Tettigoniidae: Phaneropterinae). Eleventh contribution to the suprageneric organization of Neotropical phaneropterines
FIGURE 3. Characters used for the phylogeny (mainly head and thorax): A, B. Supra and infraocular evaginations: A. Paraphidnia gallina Giglio-Tos, 1898. B. Lichenomorphus montealegrezi Cadena-Castañeda, 2011. C–H. Head and pronotum: C. Dissonulichen simplicipes simplicipes (Brunner von Wattenwyl, 1878). D. Dysonia alipes (Westwood, 1844). E. Lichenodentix dentatithorax (Piza, 1951). F. Apolinaria hygracantha (Karsch, 1896). G. Markia hystrix (Westwood, 1844). H. Lichenodraculus matti Braun, 2011. I, J. Sternum: I. L. montealegrezi J. Machimoides sofiae Cadena-Castañeda, 2013. K. Denticles of the crest: Anaphidna gracielae (Cadena-Castañeda, 2012).
FIGURE 4 in The tribe Dysoniini part VI: Phylogeny, biogeography and evolutionary trends of the lichen katydid genera (Orthoptera: Tettigoniidae: Phaneropterinae). Eleventh contribution to the suprageneric organization of Neotropical phaneropterines
FIGURE 4. Characters used for the phylogeny (habitus): A. Anaphidna gracielae (Cadena-Castañeda, 2012). B. Lichenomorphus montealegrezi Cadena-Castañeda, 2011. C. Markia hystrix (Westwood, 1844). D. Dissonulichen simplicipes simplicipes (Brunner von Wattenwyl, 1878). E. Dysonia alipes (Westwood, 1844).
Map 11 in The tribe Dysoniini part VI: Phylogeny, biogeography and evolutionary trends of the lichen katydid genera (Orthoptera: Tettigoniidae: Phaneropterinae). Eleventh contribution to the suprageneric organization of Neotropical phaneropterines
Map 11. Distribution map of Dissonulichen (Dissonulichen) simplicipes simplicipes and D. (D.) simplicipes meridionalis in Colombia and Ecuador.
Data from: Organic-walled microfossils from the Kistedalen Formation, Norway: acritarch chronostratigraphy of the Baltic Miaolingian and evolutionary trends of placoid acritarchs
<p>New acritarch data from the Kistedalen Formation based on two sections with continuous exposure allow to establish the most detailed Miaolingian acritarch biozonation in Baltica to date. Six interval zones previously established in Gondwana, the <em>Eliasum llaniscum, Cristallinium cambriense, Adara alea, Timofeevia lancarae, Cristallinium dubium</em> and <em>Vulcanisphaera turbata</em> zones, are identified, and their correlations within the Acado-Baltic Province examined. The diagnoses of <em>Retisphaeridium, Cristallinium, Retisphaeridium dichamerum, Retisphaeridium lechistanium, Cristallinium dubium</em> and <em>Cristallinium cambriense </em>are emended and the new species <em>Retisphaeridium rugulatum</em> sp. nov. and <em>Retisphaeridium minimum</em> sp. nov. are described. The diagnosis of R<em>etisphaeridium ovillense </em>(Cramer & Díez) Vanguestaine is emended and the species assigned to <em>Dictyotidium ovillense</em> comb. nov. The main evolutionary changes of the placoid acritarchs during the Miaolingian are analysed. Comparison with previous acritarch data from the Kistedalen Formation suggest that different extraction methodologies may result in significant bias in the recovered fossil record.</p>
FIGURE 9. Kalanchoe tomentosa, a tetraploid with 2n in A review of the cytotaxonomy of Kalanchoe (Crassulaceae subfam. Kalanchooideae) with reference to evolutionary trends in the genus
FIGURE 9. Kalanchoe tomentosa, a tetraploid with 2n = 68, is included in K. [subg. Kalanchoe] sect. Stellatopilosae. Photograph: Gideon F. Smith.
FIGURE 7. With n in A review of the cytotaxonomy of Kalanchoe (Crassulaceae subfam. Kalanchooideae) with reference to evolutionary trends in the genus
FIGURE 7. With n = ca. 51 Kalanchoe crenata, a widely distributed African species, is a hexaploid. Photograph: Gideon F. Smith.
FIGURE 8 in A review of the cytotaxonomy of Kalanchoe (Crassulaceae subfam. Kalanchooideae) with reference to evolutionary trends in the genus
FIGURE 8. Kalanchoe tubiflora, one of the most invasive of the Malagasy kalanchoes, is a tetraploid with 2n = 68. Its leaves are tricussately arranged, rather than decussately. Photograph: Gideon F. Smith.
FIGURE 5 in A review of the cytotaxonomy of Kalanchoe (Crassulaceae subfam. Kalanchooideae) with reference to evolutionary trends in the genus
FIGURE 5. Prof. Flávio Resende (right) and Prof. Fernando Catarino (left) at an exhibition of the students of the Faculty of Sciences of the University of Lisbon, Portugal. Photographer unknown. Photograph supplied courtesy of Prof. Fernando Catarino and reproduced with his permission.
FIGURE 3 in A review of the cytotaxonomy of Kalanchoe (Crassulaceae subfam. Kalanchooideae) with reference to evolutionary trends in the genus
FIGURE 3. While based at Cornell University, Ithaca, U.S.A., Dr Charles H. ['Chas'] Uhl (28 May 1918, Schenectady, New York–29 August 2010, Jefferson, Georgia, U.S.A.) was a pioneering researcher on the cytology and cytogenetics of the family Crassulaceae, including on Kalanchoe. Photograph taken in the early-1990s at the then home of Uhl's daughter, Mary, in Edinburgh, Great Britain, by Ray Stephenson. Reproduced with permission and © of Ray Stephenson.
FIGURE 6 in A review of the cytotaxonomy of Kalanchoe (Crassulaceae subfam. Kalanchooideae) with reference to evolutionary trends in the genus
FIGURE 6. Kalanchoe pinnata, which is widely naturalised in mild-climate parts of the world, appears to be an aneuploid with three additional chromosomes. Photograph: Gideon F. Smith.
FIGURE 1 in A review of the cytotaxonomy of Kalanchoe (Crassulaceae subfam. Kalanchooideae) with reference to evolutionary trends in the genus
FIGURE 1. Cultivars and selections that contain genetic material of Kalanchoe blossfeldiana, such as K. 'Else-Flower' depicted here, remain exceedingly popular as horticultural material for, especially, the indoor plant market. Photograph: Gideon F. Smith.
FIGURE 4 in A review of the cytotaxonomy of Kalanchoe (Crassulaceae subfam. Kalanchooideae) with reference to evolutionary trends in the genus
FIGURE 4. In the 1980s, Dr Edith Maria Raadts (3 December 1914, Rees am Rhein, Germany–3 January 2004, Agnesheim in Rees, Germany) published extensively on the cytology of Kalanchoe, especially of the East African species, while she was based at the Botanischer Garten und Botanisches Museum (BGBM) Berlin. Photographer unknown. Reproduced with the permission of the Botanischer Garten und Botanisches Museum Berlin, Freie Universität Berlin, Germany.
FIGURE 2 in A review of the cytotaxonomy of Kalanchoe (Crassulaceae subfam. Kalanchooideae) with reference to evolutionary trends in the genus
FIGURE 2. Material of Kalanchoe with generally fairly narrow leaves and variously incised leaf margins is sold under various monikers such as K. 'Katapifa', K. 'Scorpion' and K. 'Tarantula'. Material illustrated here has double flowers and is the product of complex breeding programmes that likely included K. blossfeldiana. Photograph: Gideon F. Smith.
Figs 142–153 in Leafhoppers of the genus Macropsis Lewis, 1836 (Homoptera: Auchenorrhyncha: Cicadellidae: Macropsinae) on Sakhalin - different evolutionary trends in different species
Figs 142–153. Oscillograms of male calling signals: 142–147 — Macropsis costalis; 148–149 — M. remota; 150–153 — M. flavida; 142–144, 148–149 — males from Sakhalin; 145–147, 150–153 — males from the mainland. Faster oscillograms of the parts of signals indicated as "143–144", "146–147", "149", "151", and "153" are given under the same numbers. Рис. 142–153. Oscillograms of male calling signals: 142–147 — Macropsis costalis; 148–149 — M. remota; 150–153 — M. flavida; 142–144, 148–149 — самцы с Сахалина; 145–147 и 150–153 — самцы с материка. Фрагменты сигналов, обоЗначенные цифрами "143–144", "146–147", "149", "151" и "153" представлены на осциллограммах под такими же номерами.
Figs 29–53 in Leafhoppers of the genus Macropsis Lewis, 1836 (Homoptera: Auchenorrhyncha: Cicadellidae: Macropsinae) on Sakhalin - different evolutionary trends in different species
Figs 29–53. Macropsis spp: 29–31 — M. remota; 32–38 — M. flavida; 39–47 — M. hinganensis (39–44 — specimens from Sakhalin, 45–47 — specimens from the mainland); 48–53 — M. fuscula (48 — specimen from Sakhalin, 49–50 — specimens from Kunashir, 51 — specimen from Khabarovsk Krai, 52 — specimen from Southern Kazakhstan, 53 — specimen from Moscow Oblast). Рис. 29–53. Macropsis spp: 29–31 — M. remota; 32–38 — M. flavida; 39–47 — M. hinganensis (39–44 — ЭкЗемплЯры с Сахалина, 45–47 — ЭкЗемплЯры с материка); 48–53 — M. fuscula (48 — ЭкЗемплЯр с Сахалина, 49–50 — ЭкЗемплЯры с КунаШира, 51 — ЭкЗемплЯр иЗ Хабаровского краЯ, 52 — ЭкЗемплЯр иЗ Южного КаЗахстана, 53 — ЭкЗемплЯр иЗ Московской обл.).
ScienceDex guides
Understand access before you commit
These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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.