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Fig. 2 in Captures of oriental fruit flies and melon flies (Diptera: Tephritidae) in traps baited with torula yeast borax solution or 2- or 3-component synthetic food cones in Hawaii
Fig. 2. Captures of wild Zeugodacus cucurbitae in traps baited with torula yeast borax solution, 2-component cones, or 3-component cones. Symbols represent means (± 1 SE); N = 10 traps per treatment per weathering interval.
Fig. 4 in Food attractants for mass trapping of fruit flies (Diptera: Tephritidae) and its selectivity for beneficial arthropods
Fig. 4. Proportion of tephritids (dark grey), beneficial arthropods (white), and other non-target insects (light grey) captured by the different treatments in the 2017 and 2018 seasons.
Fig. 3 in Food attractants for mass trapping of fruit flies (Diptera: Tephritidae) and its selectivity for beneficial arthropods
Fig. 3. Proportion of gravid (dark grey) and non-gravid (light grey) females of Ceratitis capitata lured to the different treatments on pre- and post-harvest period during the 2018 season (NS = no significant differences, * = P ≤ 0.05). (A–B) Dixieland peach; (C–D) Fuji Kiku apple; (E–F) Satsuma mandarin. Treatments with no captures are not presented.
Fig. 1 in Pathogenicity and virulence of Purpureocillium lilacinum (Hypocreales: Ophiocordycipitaceae) on Mexican fruit fly adults
Fig. 1. Daily survival (lx) of Anastrepha ludens adults infected by 2 Purpureocillium lilacinum strains (CFFSUR-A53 and CFFSUR-A60) and their non-infected control.
Fig. 1 in Presence of Drosophilidae (Diptera: Ephydroidea) flies associated with fig fruits in Morelos, Mexico
Fig. 1. Drosophilidae associated with fig fruits. Zaprionus indianus, (A) female and (B) male; Drosophila suzukii (C) female and (D) male; Drosophila melanogaster (E) female and (F) male.
Fig 2 in Presence of Drosophilidae (Diptera: Ephydroidea) flies associated with fig fruits in Morelos, Mexico
Fig 2. Zaprionus indianus on fig fruits. (A) Oviposition of Zaprionus indianus; (B) fig fruits susceptible to Z. indianus; (C) Z. indianus (lef) and Drosophila melanogaster (right) eggs. The arrow in Fig 2A points to eggs at the entrance of the ostiole.
Fig. 2 in Pathogenicity and virulence of Purpureocillium lilacinum (Hypocreales: Ophiocordycipitaceae) on Mexican fruit fly adults
Fig. 2. Mean number of eggs laid per d (net fecundity lxmx) by Anastrepha ludens females infected by 2 strains of Purpureocillium lilacinum (CFFSUR-A53 and CFFSUR-A60) and their non-infected control.
Fig. 2 in Food attractants for mass trapping of fruit flies (Diptera: Tephritidae) and its selectivity for beneficial arthropods
Fig. 2. Proportion of gravid (dark grey) and non-gravid (light grey) females of Ceratitis capitata lured to the different treatments on pre- and post-harvest period during the 2017 season (NS = no significant differences, * = P ≤ 0.05). (A–B) Dixieland peach; (C–D) Fuji Kiku apple; (E–F) Satsuma mandarin. Treatments with no captures are not presented.
Fig. 1 in Food attractants for mass trapping of fruit flies (Diptera: Tephritidae) and its selectivity for beneficial arthropods
Fig. 1. Cumulative Ceratitis capitata captures expressed as females per trap per d index for the pre-harvest (light gray) and post-harvest (dark gray) periods are shown, for the 3 field trials and the 2 seasons of evaluation. Different letters indicate significant differences between treatments in the cumulative captures of females for the total trial period.
Fig. 1 in Capture of melon flies and oriental fruit flies (Diptera: Tephritidae) in traps baited with torula yeast-borax or CeraTrap in Hawaii
Fig. 1. Numbers of female and male Z. cucurbitae captured in Multilure traps baited with torula yeast-borax pellets (TYB) or CeraTrap (CT) over the 6-wk sampling period. Symbols represent averages of 15 traps per bait type; whiskers represent + 1 SE.
Fig. 1 in Spread of two invasive flies (Diptera: Drosophilidae) infesting commercial fruits in southeastern Brazil
Fig. 1. Brazilian states previously invaded by Drosophila suzukii and its new dispersion area in Espírito Santo State, Brazil.
Fig. 1 in Distant-dependent capture probabilities of Mediterranean and oriental fruit flies (Diptera: Tephritidae) in a food-based trap in a Hawaiian mango orchard
Fig. 1. Number of captures (A) and percentage of captures (B: captures divided by released) for Bactrocera dorsalis released from 5, 10, or 20 m from a centrally located trap baited with torula yeast borax solution. For a given replicate, 200 individuals of each sex were released. Symbols represent means with standard error (N = 7 replicates in all cases). Within each sex, numbers of captures differed significantly between distances marked with different upper case letters. Within a distance, numbers of captures differed significantly between the sexes if marked with different lower case letters.
Fig 2 in Relationship between field captures of Mediterranean fruit flies (Diptera: Tephritidae) and the residual amount and release rate of trimedlure from polymeric plugs
Fig 2. Captures of male medflies, Ceratitis capitata, in traps baited with fresh liquid trimedlure or weathered trimedlure plugs over the 12-wk study period in Florida in 2020 (top; means ± SE, N = 12 per treatment) and trimedlure content (means ± SD) and release rate from plugs over the study period (bottom, N = 5 per parameter).
Fig. 1 in Relationship between field captures of Mediterranean fruit flies (Diptera: Tephritidae) and the residual amount and release rate of trimedlure from polymeric plugs
Fig. 1. Captures of male medflies, Ceratitis capitata, in traps baited with fresh liquid trimedlure or weathered trimedlure plugs over the 10-wk study period in Hawaii in 2018 (top; means ± SE, N = 12 per treatment) and trimedlure content (means ± SD) and release rate from plugs over the study period (bottom, N = 5 per parameter).
Fig. 2 in Survey of Florida olive groves during olive fruit development: monitoring for stink bugs and olive fruit flies
Fig. 2. Comparison of type of stink bug on total monthly collection (mean ± SE) from 2017 and 2018 of (A) Hemiptera, and (B) Euschistus quadrator Rolston. Lures consisted of either a consperse stink bug lure or a combination of green stink bug and brown marmorated stink bug lures. Statistical comparisons were made with a paired t-test (P ≤ 0.05); means with different letters are significantly different.
Fig. 1 in Survey of Florida olive groves during olive fruit development: monitoring for stink bugs and olive fruit flies
Fig. 1. Diagram of (A) trap locations in Florida olive groves, and (B) spatial identifiers used to characterize the locations for analysis. The large rectangle represents a 4-ha area surveyed; each white box represents a 1-ha subplot. Each circle represents a sampling location where 1 baited olive fruit fly trap and 2 dual funnel stink bug traps, 1 baited for the brown marmorated stink bug and 1 baited for the consperse stink bug were placed during each sampling visit. Spatial identifiers for sampling sites included: COR = corner site, CEN = center site, ER = edge of the grove site and bordered by olive trees on 3 sides of the tree, END = site located at the end of a row, but not a corner. Image from Google Maps.
Fig. 2 in Field capture of male oriental fruit flies (Diptera: Tephritidae) in traps baited with solid dispensers containing varying amounts of methyl eugenol
Fig. 2. Captures of Bactrocera dorsalis males on Oahu, Hawaii, USA, in Jackson traps baited with fresh liquid methyl eugenol or weathered, polymeric plugs containing 3, 6, or 10 g of methyl eugenol, where accompanying dichlorvos squares were either weathered (A, Experiment 2) or replaced prior to each trapping period (B, Experiment 3). Symbols represent means ± 1 SE; n = 12 in all cases. For a given trapping interval, means marked with different letters differed significantly (P <0.05, Tukey test).
Fig. 1 in Field capture of male oriental fruit flies (Diptera: Tephritidae) in traps baited with solid dispensers containing varying amounts of methyl eugenol
Fig. 1. Captures of Bactrocera dorsalis males on the Big Island, Hawaii, USA (Experiment 1) in Jackson traps baited with fresh liquid methyl eugenol or weathered, polymeric plugs containing 3, 6, or 10 g of methyl eugenol. Symbols represent means ± 1 SE; n = 12 in all cases.
Fig. 2 in Pupal size distribution and sexual dimorphism in wild and laboratory populations of two species of Anastrepha (Diptera: Tephritidae) fruit flies
Fig. 2. Canonical analysis for pupae size parameters of males and females of laboratory and wild populations in Anastrepha ludens. The canonical analysis is represented on the first canonical axis (can 1), where the boxplots indicate the populations (laboratory and wild) and sexes (males and females) (lef). The variables of pupae size: length (mm), width (mm), and weight (mg) are indicated by vectors (right).
Fig. 1 in Pupal size distribution and sexual dimorphism in wild and laboratory populations of two species of Anastrepha (Diptera: Tephritidae) fruit flies
Fig. 1. Size distribution of laboratory and wild Anastrepha ludens and Anastrepha obliqua male and female pupae. The proportion of male and female pupae is shown in 10 pupal size classes (pupal diam mm) on the x-axis.
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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.