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2,775 results for “G×E”
Figure 2 from: Papastefanou G, Panayiotou E, Mylonas M, Simaiakis SM (2015) Centipede assemblages along an urbanization gradient in the city of Heraklion, Crete (Greece). In: Tuf IH, Tajovský K (Eds) Proceedings of the 16th International Congress of Myriapodology, Olomouc, Czech Republic. ZooKeys 510: 163-179. https://doi.org/10.3897/zookeys.510.8414
Figure 2 - Total and average abundance of centipedes as well as total species richness along the urban-rural gradient. White columns show total abundance, grey columns show average abundance with bars with standard deviation, dark line shows species richness.
Figure 1 from: Papastefanou G, Panayiotou E, Mylonas M, Simaiakis SM (2015) Centipede assemblages along an urbanization gradient in the city of Heraklion, Crete (Greece). In: Tuf IH, Tajovský K (Eds) Proceedings of the 16th International Congress of Myriapodology, Olomouc, Czech Republic. ZooKeys 510: 163-179. https://doi.org/10.3897/zookeys.510.8414
Figure 1 - Map of the study area and sampling sites in and near Heraklion city. U urban sites (U1 athletic centre, roads, parking area, buildings and gardening activities U2 roads, parking area, dense buildings and gardening activities U3 Heraklion port, roads, numerous buildings and gardening activities) S suburban sites (S1 hotels, roads, sandy substrate S2 hotels, electricity power factory, roads S3 industrial area, roads, numerous buildings) R rural sites (R1–R3 roads and little grazing).
Figure 5 from: Papastefanou G, Panayiotou E, Mylonas M, Simaiakis SM (2015) Centipede assemblages along an urbanization gradient in the city of Heraklion, Crete (Greece). In: Tuf IH, Tajovský K (Eds) Proceedings of the 16th International Congress of Myriapodology, Olomouc, Czech Republic. ZooKeys 510: 163-179. https://doi.org/10.3897/zookeys.510.8414
Figure 5 - Simple linear regression between temporal beta diversity (βt) and the proportion of cumulative α represented by average α diversity (α%). Model: (βt) = 101.65 – 1.34(α%), r² = 0.47, p = 0.04. U: urban sites, S: suburban sites, R: rural sites.
Figure 5 from: Lee G-E, Han T, Jeong J, Kim S-H, Park IG, Park H (2015) Molecular phylogeny of the genus Dicronocephalus (Coleoptera, Scarabaeidae, Cetoniinae) based on mtCOI and 16S rRNA genes. ZooKeys 501: 63-87. https://doi.org/10.3897/zookeys.501.8658
Figure 5 - Anterior edge of clypeus of Dicronocephalus. A Dicronocephalus adamsi adamsi B Dicronocephalus adamsi drumonti C Dicranocephalus yui yui D Dicronocephalus dabryi E Dicronocephalus uenoi katoi F Dicronocephalus wallichii bowringi G Dicronocephalus wallichii wallichii H Dicronocephalus wallichii bourgoini.
Figure 4 from: Lee G-E, Han T, Jeong J, Kim S-H, Park IG, Park H (2015) Molecular phylogeny of the genus Dicronocephalus (Coleoptera, Scarabaeidae, Cetoniinae) based on mtCOI and 16S rRNA genes. ZooKeys 501: 63-87. https://doi.org/10.3897/zookeys.501.8658
Figure 4 - Phylogenetic relationships among Dicronocephalus species reconstructed with Bayesian inference using COI and 16S rRNA sequences. Numbers above branches indicate ML bootstrap values and Bayesian posterior probabilities. Numbers below branches are bootstrap, symmetric resampling, and jacknife support from parsimony searches, respectively. Scale bar represents 10% nucleotide mutation rate.
Figure 1 from: Lee G-E, Han T, Jeong J, Kim S-H, Park IG, Park H (2015) Molecular phylogeny of the genus Dicronocephalus (Coleoptera, Scarabaeidae, Cetoniinae) based on mtCOI and 16S rRNA genes. ZooKeys 501: 63-87. https://doi.org/10.3897/zookeys.501.8658
Figure 1 - The male habitus of species and subspecies of Dicoronocephalus. A Dicronocephalus adamsi adamsi B Dicronocephalus adamsi drumonti C Dicranocephalus yui yui D Dicronocephalus dabryi E Dicronocephalus uenoi katoi F Dicronocephalus wallichii bowringi G Dicronocephalus wallichii wallichii H Dicronocephalus wallichii bourgoini.
Figure 8 from: Lee G-E, Han T, Jeong J, Kim S-H, Park IG, Park H (2015) Molecular phylogeny of the genus Dicronocephalus (Coleoptera, Scarabaeidae, Cetoniinae) based on mtCOI and 16S rRNA genes. ZooKeys 501: 63-87. https://doi.org/10.3897/zookeys.501.8658
Figure 8 - Metasternal process (in the circle) and aedeagi of Dicronocephalus adamsi drumonti and Dicronocephalus adamsi adamsi. A, B, C, D Dicronocephalus adamsi drumonti (Tibet) E, F, G, H Dicronocephalus adamsi drumonti (Sichuan) I, J, K, L Dicronocephalus adamsi adamsi (South Korea) M, N, O, P Dicronocephalus adamsi adamsi (North Korea) Q, R, S, T Dicronocephalus adamsi adamsi (Dandong, China).
Figure 3 from: Lee G-E, Han T, Jeong J, Kim S-H, Park IG, Park H (2015) Molecular phylogeny of the genus Dicronocephalus (Coleoptera, Scarabaeidae, Cetoniinae) based on mtCOI and 16S rRNA genes. ZooKeys 501: 63-87. https://doi.org/10.3897/zookeys.501.8658
Figure 3 - Phylogenetic relationships among Dicronocephalus species reconstructed with Bayesian inference using 16S rRNA sequences. Numbers above branches indicate ML bootstrap values and Bayesian posterior probabilities. Numbers below branches are bootstrap, symmetric resampling, and jacknife support from parsimony searches, respectively. Scale bar represents 10% nucleotide mutation rate.
Figure 2 from: Lee G-E, Han T, Jeong J, Kim S-H, Park IG, Park H (2015) Molecular phylogeny of the genus Dicronocephalus (Coleoptera, Scarabaeidae, Cetoniinae) based on mtCOI and 16S rRNA genes. ZooKeys 501: 63-87. https://doi.org/10.3897/zookeys.501.8658
Figure 2 - Phylogenetic relationships among Dicronocephalus species reconstructed with Bayesian inference using COI sequences. Numbers above branches indicate ML bootstrap values and Bayesian posterior probabilities. Numbers below branches are bootstrap, symmetric resampling, and jacknife support from parsimony searches, respectively. Scale bar represents 10% nucleotide mutation rate.
Figure 7 from: Lee G-E, Han T, Jeong J, Kim S-H, Park IG, Park H (2015) Molecular phylogeny of the genus Dicronocephalus (Coleoptera, Scarabaeidae, Cetoniinae) based on mtCOI and 16S rRNA genes. ZooKeys 501: 63-87. https://doi.org/10.3897/zookeys.501.8658
Figure 7 - Umbone (in the circle) of shoulder of Dicronocephalus. A Dicronocephalus adamsi adamsi B Dicronocephalus adamsi drumonti C Dicranocephalus yui yui D Dicronocephalus dabryi E Dicronocephalus uenoi katoi F Dicronocephalus wallichii bowringi G Dicronocephalus wallichii wallichii H Dicronocephalus wallichii bourgoini.
Figure 6 from: Lee G-E, Han T, Jeong J, Kim S-H, Park IG, Park H (2015) Molecular phylogeny of the genus Dicronocephalus (Coleoptera, Scarabaeidae, Cetoniinae) based on mtCOI and 16S rRNA genes. ZooKeys 501: 63-87. https://doi.org/10.3897/zookeys.501.8658
Figure 6 - Apicosutural angle of Dicronocephalus. A Dicronocephalus adamsi adamsi B Dicronocephalus adamsi drumonti C Dicranocephalus yui yui D Dicronocephalus dabryi E Dicronocephalus uenoi katoi F Dicronocephalus wallichii bowringi G Dicronocephalus wallichii wallichii H Dicronocephalus wallichii bourgoini.
Figure 2 from: Mietchen D, Hagedorn G, Willighagen E, Rico M, Gómez-Pérez A, Aibar E, Rafes K, Germain C, Dunning A, Pintscher L, Kinzler D (2015) Enabling Open Science: Wikidata for Research (Wiki4R). Research Ideas and Outcomes 1: e7573. https://doi.org/10.3897/rio.1.e7573
Figure 2 - Prototype of the platform at the Center for Data Science of Paris-Saclay, where Wikidata identifiers are already used to link public data and public research data.
Figure 1 from: Mietchen D, Hagedorn G, Willighagen E, Rico M, Gómez-Pérez A, Aibar E, Rafes K, Germain C, Dunning A, Pintscher L, Kinzler D (2015) Enabling Open Science: Wikidata for Research (Wiki4R). Research Ideas and Outcomes 1: e7573. https://doi.org/10.3897/rio.1.e7573
Figure 1 - Outline of envisioned platform where Wikidata content can be used within an institutional firewall.
Figure 10 from: McOuat G (2016) Naming and Necessity: Sherborn's Context in the 19th Century. In: Michel E (Ed.) Anchoring Biodiversity Information: From Sherborn to the 21st century and beyond. ZooKeys 550: 57–69. https://doi.org/10.3897/zookeys.550.7399
Figure 10 - An iconographic picture of Sherborn in later years – staged, but revealing and taken at about the time of the final quote.
Figure 6 from: Westberg M, Timdal E, Asplund J, Bendiksby M, Haugan R, Jonsson F, Larsson P, Odelvik G, Wedin M, Millanes A (2015) New records of lichenized and lichenicolous fungi in Scandinavia. MycoKeys 11: 33-61. https://doi.org/10.3897/mycokeys.11.6670
Figure 6 - Lecidea degeliana. a With the host, Acarospora sp., still visible (S F265204) b Independent thallus (S F265201). Scale: 1 mm.
Figure 12 from: Westberg M, Timdal E, Asplund J, Bendiksby M, Haugan R, Jonsson F, Larsson P, Odelvik G, Wedin M, Millanes A (2015) New records of lichenized and lichenicolous fungi in Scandinavia. MycoKeys 11: 33-61. https://doi.org/10.3897/mycokeys.11.6670
Figure 12 - Sarcogyne hypophaeoides. a Apothecia (S F123697) b Apothecia (Kocourkova & Hafellner 46366 (GZU)) c Section of an apothecium showing a carbonized margin and a brownish black hypothecium (S F265197). Scale: 1 mm (a–b); 100 µm (c).
Figure 11 from: Westberg M, Timdal E, Asplund J, Bendiksby M, Haugan R, Jonsson F, Larsson P, Odelvik G, Wedin M, Millanes A (2015) New records of lichenized and lichenicolous fungi in Scandinavia. MycoKeys 11: 33-61. https://doi.org/10.3897/mycokeys.11.6670
Figure 11 - Sarcogyne algoviae. a Apothecia (S F122537) b Apothecia (S L2741, holotype) c Section of an apothecium showing a strongly carbonized margin and a colourless hypothecium (S F122537). Scale: 1 mm (a–b); 100 µm (c).
Figure 15 from: Westberg M, Timdal E, Asplund J, Bendiksby M, Haugan R, Jonsson F, Larsson P, Odelvik G, Wedin M, Millanes A (2015) New records of lichenized and lichenicolous fungi in Scandinavia. MycoKeys 11: 33-61. https://doi.org/10.3897/mycokeys.11.6670
Figure 15 - Tremella wirthii. a Basidiomata on the thallus of Protoparmelia oleagina (S F262967) b Basidium with one longitudinal septum (S F262963) c Basidium with one oblique septum (S F262963) d Basidium with one transeverse septum (S F262963) e Catenulate conidia (S F262963). Scale: 0.5 mm (a); 10 mm (b–e).
Figure 14 from: Westberg M, Timdal E, Asplund J, Bendiksby M, Haugan R, Jonsson F, Larsson P, Odelvik G, Wedin M, Millanes A (2015) New records of lichenized and lichenicolous fungi in Scandinavia. MycoKeys 11: 33-61. https://doi.org/10.3897/mycokeys.11.6670
Figure 14 - Tremella lobariacearum. Galls induced by Tremella lobariacearum on Lobaria pulmonaria (S F263902). Scale: 1 mm.
Figure 2 from: Söderström L, Hagborg A, von Konrat M, Bartholomew-Began S, Bell D, Briscoe L, Brown E, Cargill DC, Costa DP, Crandall-Stotler BJ, Cooper ED, Dauphin G, Engel JJ, Feldberg K, Glenny D, Gradstein SR, He X, Heinrichs J, Hentschel J, Ilkiu-Borges AL, Katagiri T, Konstantinova NA, Larraín J, Long DG, Nebel M, Pócs T, Felisa Puche F, Reiner-Drehwald E, Renner MAM, Sass-Gyarmati A, Schäfer-Verwimp A, Moragues JGS, Stotler RE, Sukkharak P, Thiers BM, Uribe J, Váňa J, Villarreal JC, Wigginton M, Zhang L, Zhu R-L (2016) World checklist of hornworts and liverworts. PhytoKeys 59: 1-821. https://doi.org/10.3897/phytokeys.59.6261
Figure 2 - Number of novel liverwort species, excluding new combinations, which have been described over the last 250 years, with an inset of the number described from 2001–2012.
ScienceDex guides
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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.