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Figure 1 in New records of two-winged flies (Diptera: Brachycera) in social wasp colonies (Hymenoptera: Vespidae) from the Atlantic Forest biome in the state of Minas Gerais, Brazil
Figure 1. Specimens of two-winged flies (Brachycera) recorded in social wasp colonies (Polistinae). A-B. Megaselia scalaris. C-D. Sargus fasciatus. E-F. Acrosticta apicalis. G-H. Pseudogaurax aff. longilineatus. / Ejemplares de moscas de dos alas (Brachycera) registrados en colonias de avispas sociales (Polistinae). A-B. Megaselia scalaris. C-D. Sargus fasciatus. E-F. Acrosticta apicalis. G-H. Pseudogaurax aff. longilineatus.
Figure 4 in The effects of larval diet restriction on developmental time, preadult survival, and wing length in Drosophila melanogaster
Figure 4. Mean wing length (mm) of females and males developed on different diets. The error bars represent standard error of the mean.
Figure 3 in The effects of larval diet restriction on developmental time, preadult survival, and wing length in Drosophila melanogaster
Figure 3. Larva-to-pupa, larva-to-adult, and pupa-to-adult viability (number of adults as a proportion of the number of larvae transferred) as a percentage of different diets. The error bars represent standard errors of means.
Fig. 2 in Sexual dimorphism and population differentiation in the Chilean Neotropical moth Macaria mirthae (Lepidoptera, Geometridae): a wing geometric morphometric example
Fig. 2. Benítez et al. (2015), representation of the 13 morphological landmarks identified in the forewings of Macaria mirthae.
Fig. 3 in Sexual dimorphism and population differentiation in the Chilean Neotropical moth Macaria mirthae (Lepidoptera, Geometridae): a wing geometric morphometric example
Fig. 3. PCA analysis of the sexual shape dimorphism of Macaria mirthae: the figure shows the first two orthogonal PC components' axes that represent the shape space dimensions, also a decomposition of shape variation between sexes. *Each point represents a different shape.
Fig. 5 in Sexual dimorphism and population differentiation in the Chilean Neotropical moth Macaria mirthae (Lepidoptera, Geometridae): a wing geometric morphometric example
Fig. 5. Multivariate regression of the wing shape on the wing centroid size of Macaria mirthae. Grey points represent female wings and black points represent male wings.
Fig. 1 in Sexual dimorphism and population differentiation in the Chilean Neotropical moth Macaria mirthae (Lepidoptera, Geometridae): a wing geometric morphometric example
Fig. 1. Graphical scheme of the location of the two Valleys in Atacama Desert in the north of Chile.
Figure. Measurement data plotted for all nestlings as a function of age for the black stork: a) wing length (WL), b) head length (HL), c) bill length (BL), and d) tarsus length. in Age estimation of black stork (Ciconia nigra) nestlings from wing, bill, head, and tarsus lengths at the time of ringing
Figure. Measurement data plotted for all nestlings as a function of age for the black stork: a) wing length (WL), b) head length (HL), c) bill length (BL), and d) tarsus length.
Fig. 2. Adult spotted wing drosophila emergence from berries 2 in Efficacy of entomopathogenic fungal products for biological control of spotted wing drosophila (Diptera: Drosophilidae) under laboratory conditions
Fig. 2. Adult spotted wing drosophila emergence from berries 2 wk afer re- moval from the arenas. Bars with the same letter are not significantly different from each other (P> 0.05). Error bars represent standard error of the mean.
Fig. 1 in Efficacy of entomopathogenic fungal products for biological control of spotted wing drosophila (Diptera: Drosophilidae) under laboratory conditions
Fig. 1. Percent mortality of spotted wing drosophila afer 24, 48, 72, and 168 h in each treatment (Untrt = deionized water treated control, BotL = BotaniGard low rate, BotH = BotaniGard high rate, PFRL = PFR 97 low rate, and PFRH = PFR 97 high rate). Bars with the same letter are not significantly different from each other (P> 0.05). N. S. = no significant differences (P> 0.05). Error bars represent standard error of the mean.
Fig. 2 in Paoliida, a Putative Stem-Group of Winged Insects: Morphology of New Taxa from the Upper Carboniferous of Poland
Fig. 2. Line drawings of paoliid insect Zdenekia silesiensis sp. nov., Załęże beds, Mudstone series (Langsettian, Upper Carboniferous), SosnowiecKlimontów, Upper Silesian Coal Basin, Poland (after Kukalová−Peck 1991). A. Fore wing holotype specimen MP ISEA I−F/MP/1488/2ab/08. B. Fore wing paratype specimen MP ISEA I−F/MP/1540/25/09. C. Hind wing specimen MP ISEA I−F/MP/1488/3/08.Vein symbols are abbreviated as follows: ScP, Subcosta posterior; RA/RP, Radius anterior/posterior; MP, Media posterior; CuA/CuP, Cubitus anterior/posterior; AA/AP, Analis anterior/posterior.
Fig. 1. A in Paoliida, a Putative Stem-Group of Winged Insects: Morphology of New Taxa from the Upper Carboniferous of Poland
Fig. 1. A. Geographical situation and geological map of the Upper Silesian Coal Basin with position of insect localities: Horní Suchá (Czech Republic) and Sosnowiec (Poland) indicated by white asterisks (modified after Jureczka et al. 1995). B. Lithostratigraphic division of Pennsylvanian strata of Czech and Polish parts of the Upper Silesian Coal Basin after Dopita et al. (1997) with corresponding stratigraphical levels of both localities indicated by white asterisks. Abbreviations: Bolsov., Bolsovian; Duckman., Duckmantian.
Figure 2. Photographs a in First records of Narcissus Flycatcher (Ficedula narcissina) and Chestnut-winged Cuckoo (Clamator coromandus) for the Mariana Islands
Figure 2. Photographs a) and b) of adult male Narcissus Flycatcher (Ficedula narcissina), c) adult Chestnut-winged cuckoo (Clamator coromandus) on Guam, Mariana Islands. Photographs a) and c) by RCL, b) by JWS.
Figure 1 in First records of Narcissus Flycatcher (Ficedula narcissina) and Chestnut-winged Cuckoo (Clamator coromandus) for the Mariana Islands
Figure 1. Map showing the locations of the new records of Narcissus Flycatcher and Chestnutwinged Cuckoo on Guam, Mariana Islands. Inset, top left: location of the Mariana Islands within the Western Pacific. Left: Location of Guam within the southern Mariana Islands and box showing the general location of the sightings. Right: Satellite image (2018) of northern Guam (Map data: Google, CNES/Airbus, NOAA) showing the specific locations of the sightings (marked by asterisks).
Fig. 1 in Epidemiology of a major honey bee pathogen, deformed wing virus: potential worldwide replacement of genotype A by genotype B
Fig. 1. Relative proportion of DWV genotype A and B reads in publicly available NCBI transcriptome datasets of honey bees, V. destructor mites and bumble bees.
Fig. 2 in Epidemiology of a major honey bee pathogen, deformed wing virus: potential worldwide replacement of genotype A by genotype B
Fig. 2. First published records of DWV genotype B in Varroa destructor (closed box) or in Apis mellifera (red boxes: pre-2010; open boxes: 2010 onwards) from a country or geographic region; citations are in Table 3. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 4 in Epidemiology of a major honey bee pathogen, deformed wing virus: potential worldwide replacement of genotype A by genotype B
Fig. 4. Temporal change in the proportion of DWV-A to DWV-B across our own datasets (a) (prevalence in Fig. 3); in published datasets (b) (UK data in Kevill et al. (2021); continental USA data in Ryabov et al. (2017); and Hawaii data in Grindrod et al. (2021)); and (c) in NCBI NGS honey bee datasets of Fig. 1 presented by geographic origin.
Fig. 3 in Epidemiology of a major honey bee pathogen, deformed wing virus: potential worldwide replacement of genotype A by genotype B
Fig. 3. Temporal change in the prevalence of DWV-A and DWV-B in honey bees in three original datasets separated by 5–6 years from the same sampling localities in the UK (individual honey bees collected at flowers), Germany (pooled honey bees from collapsing colonies) and Italy (NGS reads from pooled or individual honey bees); Germany 2019 samples were summed 2019–2020; Italy 2011 samples were summed 2009–2013 and Italy 2019 samples were summed 2018–2020.
Fig. 10 in Wing geometric morphometrics to distinguish and identify Haematobosca flies (Diptera: Muscidae) from Thailand
Fig. 10. Hierarchical agglomerative clustering tree based on shape similarities of test specimens (male as yellow and female as gray) and reference data of Haematobosca sanguinolenta and H. aberrans. Euclidean distances were used for the construction of the tree. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 2 in Wing geometric morphometrics to distinguish and identify Haematobosca flies (Diptera: Muscidae) from Thailand
Fig. 2. The topographic map of the Haematobosca fly collection sites in Thailand: Chiang Mai (1), Kanchanaburi (2), and Nakhon Ratchasima (3) (A). The Nzi trap used for fly collection was placed near animal hosts at each collection site (B, C). This map was prepared from the United States Geological Survey (USGS) National Map Viewer available at http://viewer.nationalmap.gov/viewer/, accessed on February 10, 2023.
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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.