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2,775 results for “G×E”
Figure 3 from: da Costa e Silva G, Roxo F, Britzke R, Oliveira C (2014) New species of the Pseudancistrus barbatus group (Siluriformes, Loricariidae) with comments on its biogeography and dispersal routes. ZooKeys 406: 1-23. https://doi.org/10.3897/zookeys.406.7011
Figure 3 - Pseudancistrus zawadzkii, live specimen, LBP 15045, paratype, female, 128.7 mm SL, Tapajós river, Pará State, Brazil.
Figure 1 from: da Costa e Silva G, Roxo F, Britzke R, Oliveira C (2014) New species of the Pseudancistrus barbatus group (Siluriformes, Loricariidae) with comments on its biogeography and dispersal routes. ZooKeys 406: 1-23. https://doi.org/10.3897/zookeys.406.7011
Figure 1 - Pseudancistrus zawadzkii, MZUSP 115056, holotype, male, 116.4 mm SL; Pará State, Tapajós river basin, Brazil.
Figure 2 from: Andreone F, Bartolozzi L, Boano G, Boero F, Bologna M, Bon M, Bressi N, Capula M, Casale A, Casiraghi M, Chiozzi G, Delfino M, Doria G, Durante A, Ferrari M, Gippoliti S, Lanzinger M, Latella L, Maio N, Marangoni C, Mazzotti S, Minelli A, Muscio G, Nicolosi P, Pievani T, Razzetti E, Sabella G, Valle M, Vomero V, Zilli A (2014) Italian natural history museums on the verge of collapse? ZooKeys 456: 139-146. https://doi.org/10.3897/zookeys.456.8862
Figure 2 - A technician caring at the entomological collection at the Museo Civico di Storia Naturale di Verona (photograph by L. Latella).
Figure 1 from: Andreone F, Bartolozzi L, Boano G, Boero F, Bologna M, Bon M, Bressi N, Capula M, Casale A, Casiraghi M, Chiozzi G, Delfino M, Doria G, Durante A, Ferrari M, Gippoliti S, Lanzinger M, Latella L, Maio N, Marangoni C, Mazzotti S, Minelli A, Muscio G, Nicolosi P, Pievani T, Razzetti E, Sabella G, Valle M, Vomero V, Zilli A (2014) Italian natural history museums on the verge of collapse? ZooKeys 456: 139-146. https://doi.org/10.3897/zookeys.456.8862
Figure 1 - The herpetological gallery at the Museo di Storia Naturale, University of Florence (photograph by S. Bambi).
Figure 6 from: Montesanto G (2015) A fast GNU method to draw accurate scientific illustrations for taxonomy. In: Taiti S, Hornung E, Štrus J, Bouchon D (Eds) Trends in Terrestrial Isopod Biology. ZooKeys 515: 191–206. https://doi.org/10.3897/zookeys.515.9459
Figure 6 - GNU Image Manipulation Program. A Portion of the "Export Image" window, showing the "Select File Type" menu with the settings for a TIFF image B "Export Image as TIFF" window, with the settings for LZW compression.
Figure 2 from: Montesanto G (2015) A fast GNU method to draw accurate scientific illustrations for taxonomy. In: Taiti S, Hornung E, Štrus J, Bouchon D (Eds) Trends in Terrestrial Isopod Biology. ZooKeys 515: 191–206. https://doi.org/10.3897/zookeys.515.9459
Figure 2 - GNU Image Manipulation Program. A Preferences window, with the "Window Management" settings B "Import from PDF" window appears after a PDF file has been opened with the File > Open command of menu C New Layer window with the Layer Fill Type option set on "White" D Tool Options window of Brush Tool with the brush No. 2. Hardness 075, used in the present drawing method E Tool Options window (Brush Tool) with the brush size set on 5 pixels (5.00).
Figure 5 from: Montesanto G (2015) A fast GNU method to draw accurate scientific illustrations for taxonomy. In: Taiti S, Hornung E, Štrus J, Bouchon D (Eds) Trends in Terrestrial Isopod Biology. ZooKeys 515: 191–206. https://doi.org/10.3897/zookeys.515.9459
Figure 5 - GNU Image Manipulation Program. A "Create a New Image" window with settings for a blank page in international A4 format B Layers window after a trace was pasted into a new image, the "Floating Selection" layer is showed C "Pasted Layer" on the same window after the "Floating Selection" was transformed in a new layer D Portion of the Toolbox window showing the tool icons (explanation in the text).
Figure 1 from: Montesanto G (2015) A fast GNU method to draw accurate scientific illustrations for taxonomy. In: Taiti S, Hornung E, Štrus J, Bouchon D (Eds) Trends in Terrestrial Isopod Biology. ZooKeys 515: 191–206. https://doi.org/10.3897/zookeys.515.9459
Figure 1 - GNU Image Manipulation Program (GIMP, ver. 2.8.14) on a Mac OS. A Image window B Toolbox window C Tool Options window D Layers window E Foreground (black) and Background colours (white).
Figure 4 from: Montesanto G (2015) A fast GNU method to draw accurate scientific illustrations for taxonomy. In: Taiti S, Hornung E, Štrus J, Bouchon D (Eds) Trends in Terrestrial Isopod Biology. ZooKeys 515: 191–206. https://doi.org/10.3897/zookeys.515.9459
Figure 4 - GNU Image Manipulation Program. A Toolbox window: Path Tool is marked with a black square B Tool Options window of Path Tool C Stroke Path windows with the settings for a "Medium dashed" line (3 px) D Portion of the Image window showing the result (at 400% zoom level) of the "Stroke Path" button.
Figure 3 from: Montesanto G (2015) A fast GNU method to draw accurate scientific illustrations for taxonomy. In: Taiti S, Hornung E, Štrus J, Bouchon D (Eds) Trends in Terrestrial Isopod Biology. ZooKeys 515: 191–206. https://doi.org/10.3897/zookeys.515.9459
Figure 3 - How to draw lines with GNU Image Manipulation Program. A Left hand position: with Shift key pressed to draw little segments, space bar to move the screen visual along the drawing B Portion of the Image window (at 800% zoom level) showing the drawing guide-line C Right hand position with a common mouse.
Figure 7 from: Montesanto G (2015) A fast GNU method to draw accurate scientific illustrations for taxonomy. In: Taiti S, Hornung E, Štrus J, Bouchon D (Eds) Trends in Terrestrial Isopod Biology. ZooKeys 515: 191–206. https://doi.org/10.3897/zookeys.515.9459
Figure 7 - Examples of line drawings of terrestrial isopods anatomical parts. Magnifications in the black circles indicate the brush size (see also the "How to draw" section). A Antenna B Antennula C Cephalon (front view) D Pereopod 1 E Exopod of pleopod 4 F Uropod; dl, dotted lines (Commands: Paths Tool > Stroke Path in the Tool Options > Line style, Dash preset: Dense dots).
Figure 11 from: Hendrich L, Apenborn R, Burmeister E-G, Balke M (2015) A new species of Agaporomorphus Zimmermann, 1921 from Peru (Coleoptera, Dytiscidae, Copelatinae). ZooKeys 512: 63-76. https://doi.org/10.3897/zookeys.512.9505
Figure 11 - Biological Field Station Panguana, Huànuco province of central Peru: Aguajal forest pond, habitat of Agaporomorphus julianeae sp. n.
Figure 10 from: Hendrich L, Apenborn R, Burmeister E-G, Balke M (2015) A new species of Agaporomorphus Zimmermann, 1921 from Peru (Coleoptera, Dytiscidae, Copelatinae). ZooKeys 512: 63-76. https://doi.org/10.3897/zookeys.512.9505
Figure 10 - Records of Agaporomorphus species in Peru. Agaporomorphus julianeae sp. n. and Agaporomorphus tambopatensis (Panguana, red dot); Agaporomorphus grandisinuatus, Agaporomorphus knischi, Agaporomorphus silvaticus and Agaporomorphus tambopatensis (Posadas Amazonas, black square).
Figures 2-5 from: Hendrich L, Apenborn R, Burmeister E-G, Balke M (2015) A new species of Agaporomorphus Zimmermann, 1921 from Peru (Coleoptera, Dytiscidae, Copelatinae). ZooKeys 512: 63-76. https://doi.org/10.3897/zookeys.512.9505
Figures 2-5 - Aedeagus of Agaporomorphus julianeae sp. n., 2–3 median lobe in lateral view, right and left side; Agaporomorphus knischi 4–5 median lobe in lateral view, right and left side. Scale bar = 0.4 mm.
Figures 15-18 from: Hendrich L, Apenborn R, Burmeister E-G, Balke M (2015) A new species of Agaporomorphus Zimmermann, 1921 from Peru (Coleoptera, Dytiscidae, Copelatinae). ZooKeys 512: 63-76. https://doi.org/10.3897/zookeys.512.9505
Figures 15-18 - Habitus of Agaporomorphus knischi, male, paralectotype (15); Agaporomorphus mecolobus, male (16); Agaporomorphus pereirai, male, paratype (17) and Agaporomorphus tambopatensis, male (18). Scale = 1 mm.
Figures 12-14 from: Hendrich L, Apenborn R, Burmeister E-G, Balke M (2015) A new species of Agaporomorphus Zimmermann, 1921 from Peru (Coleoptera, Dytiscidae, Copelatinae). ZooKeys 512: 63-76. https://doi.org/10.3897/zookeys.512.9505
Figures 12-14 - Biological Field Station Panguana, Huànuco province of central Peru: Estanque forest pond (12, 13), Shallow puddles and accumulations of fallen wet leaves at the edge of Aguajal (14), habitat of Agaporomorphus julianeae sp. n. and Agaporomorphus tambopatensis, and Hydrodytes opalinus.
Figures 6-9 from: Hendrich L, Apenborn R, Burmeister E-G, Balke M (2015) A new species of Agaporomorphus Zimmermann, 1921 from Peru (Coleoptera, Dytiscidae, Copelatinae). ZooKeys 512: 63-76. https://doi.org/10.3897/zookeys.512.9505
Figures 6-9 - Right male antennae of Agaporomorphus julianeae sp. n. (6) and Agaporomorphus knischi (7); right metatrochanter and metafemur, anterior aspect of Agaporomorphus julianeae sp. n. (8) and Agaporomorphus knischi (9). Scale bars = 0.5 mm.
Figure 4 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 4 - NMDS two-dimensional ordination plot based on the Bray-Curtis dissimilarity matrix of the nine sites along the urbanization gradient.
Figure 6 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 6 - Total and average abundance of all four generalist species as well as average abundance of each generalist species along the urban-rural gradient, Eupolybothrus litoralis (♦), Lithobius nigripalpis (▲), Scolopendra cretica (■), Scutigera coleoptrata (●). White columns show total abundance, grey columns show average abundance with bars with standard deviation.
Figure 3 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 3 - Species accumulation curves (recorded as a function of sampling effort) of the rate at which new species are found within each site along the urbanization gradient.
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.