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841 results for “fruit flies”
Figure 1 in Trapping Pestiferous Fruit Flies (Diptera: Tephritidae): Additional Studies on the Performance of Solid Bactrocera Male Lures and Separate Insecticidal Strips Relative to Standard Liquid Lures
Figure 1. (A) CL plug contained in two face-to-face perforated baskets along with Plato strip (red object). (B) ME wafer with plastic basket holding DDVP strip affixed. Photos show the lures and DDVP strips only, and when deployed in the field, these were housed in Jackson traps.
Figure 1 in Host Plant Records for Fruit Flies (Diptera: Tephritidae: Dacini) in the Pacific Islands
Figure 1. Map of the Pacific Island countries and territories, with area covered by this publication enclosed within the dotted line (courtesy from the Secretariat of the Pacific Community).
Figure 3 in Trapping Pestiferous Fruit Flies (Diptera: Tephritidae): Additional Studies on the Performance of Solid Bactrocera Male Lures and Separate Insecticidal Strips Relative to Standard Liquid Lures
Figure 3. Captures of Bactrocera dorsalis males in traps baited with toxicants of variable age. Data for DDVP strips weathered in Arizona and Florida are given in top and bottom plots, respectively. While toxicant age varied among treatments, the lure was fresh (no weathering) in all treatments. All traps were baited with fresh liquid ME, except the Fresh DDVP treatment which employed a fresh ME wafer. Height of bar represents mean number of males captured per trap (n = 15 traps per treatment) in a 24-h period; error bars are + 1 SE. Significant variation existed among treatments for Arizona (F = 3.7, P = 0.02) but not for Florida (H = 1.8, P = 0.61); bars sharing a letter did not differ significantly (P> 0.05).
Figure 2 in Trapping Pestiferous Fruit Flies (Diptera: Tephritidae): Additional Studies on the Performance of Solid Bactrocera Male Lures and Separate Insecticidal Strips Relative to Standard Liquid Lures
Figure 2. Captures of Bactrocera dorsalis males in traps baited with ME lures of variable age. Data for wafers weathered in Arizona and Florida are given in top and bottom plots, respectively. While lure age varied among treatments, the toxicant was fresh (no weathering) in all treatments. Liquid was applied to a cotton wick; in all other cases ME was presented in a polymeric wafer. Height of bar represents mean number of males captured per trap (n = 15 traps per treatment) in a 24-h period; error bars are + 1 SE. Significant variation existed among treatments for both Arizona (F = 10.5, P <0.001) and Florida (F = 11.0, P <0.001); bars sharing a letter did not differ significantly (P> 0.05).
Figure 2a–f in Abundance and Seasonal Occurrence of Pest Fruit Flies (Diptera: Tephritidae) in Residential and Rural Areas of Oahu (Hawaiian Islands)
Figure 2a–f. Overall mean (±SE) monthly captures of male B. cucurbitae in cue-lure traps (a), female B. cucurbitae in protein traps (b), male B. dorsalis in methyl eugenol traps (c), female B. dorsalis in protein traps (d), male C. capitata in trimedlure traps (e), and female C. capitata in protein traps, based on all trapping sites maintained on Oahu between April 2009 and December 2013.
Figure 9a–c in Abundance and Seasonal Occurrence of Pest Fruit Flies (Diptera: Tephritidae) in Residential and Rural Areas of Oahu (Hawaiian Islands)
Figure 9a–c. Correlation between mean monthly captures of female flies in protein traps and males in male lure traps for B. cucurbitae (a), B. dorsalis (b), and C. capitata (c).
Figure 6a–b in Abundance and Seasonal Occurrence of Pest Fruit Flies (Diptera: Tephritidae) in Residential and Rural Areas of Oahu (Hawaiian Islands)
Figure 6a–b. Mean captures of female B. dorsalis per trap per week in torula yeast traps at different sites (a), in different habitats (a, insert graph), and as monthly means throughout the trapping periods in different habitats (b). Values with the same letter in insert graph are not significantly different at the 0.05 level (Tukey's test, post ANOVA). F = 447.43; df = 5,27536; P <0.001; r2 = 7.51%; n = 2514 (gardens), 1807 (NW Oahu), 13230 (residential), 1886 (rural), 5630 (urban), 2475 (Waialua).
Figure 4 in Trapping Pestiferous Fruit Flies (Diptera: Tephritidae): Additional Studies on the Performance of Solid Bactrocera Male Lures and Separate Insecticidal Strips Relative to Standard Liquid Lures
Figure 4. Captures of Bactrocera cucurbitae males in traps baited with CL lures of variable age. Data for CL plugs weathered in Arizona and Florida are given in top and bottom plots, respectively. While lure age varied among treatments, the toxicant was fresh (no weathering) in all treatments. Liquid was applied to a cotton wick; in all other cases CL was presented in a polymeric plug. Height of bar represents mean number of males captured per trap (n = 15 traps per treatment) in a 24-h period; error bars are + 1 SE. No significant variation existed among treatments for either Arizona (F = 0.5, P = 0.65) or Florida (F = 1.9, P = 0.15). Bars sharing a letter did not differ significantly (P> 0.05).
Figure 5a–b in Abundance and Seasonal Occurrence of Pest Fruit Flies (Diptera: Tephritidae) in Residential and Rural Areas of Oahu (Hawaiian Islands)
Figure 5a–b. Mean captures of male B. dorsalis per trap per week in methyl eugenol traps at different sites (a), in different habitats (a, insert graph), and as monthly means throughout the trapping periods in different habitats (b). Values with the same letter in insert graph are not significantly different at the 0.05 level (Tukey's test, post ANOVA). F = 1459.54; df = 5,18128; P <0.001; r2 = 28.70%; n = 2514 (gardens), 1807 (NW Oahu), 8879 (residential), 1720 (rural), 739 (urban), 2475 (Waialua).
Figure 16 in Unusual Dark Forms of the Solanum Fruit Fly Bactrocera latifrons (Hendel) in Hawaii (Tephritidae: Dacini)
Figure 16. Lateral views showing the difference in the width of the mesopleural stripe. A. Bactrocera latifrons ex USDA fruit fly lab, Honolulu, Hawaii. B. Holotype of B. citima, Chiangdao, Chiangmai prov., Thailand.
Figures 1–15 in Unusual Dark Forms of the Solanum Fruit Fly Bactrocera latifrons (Hendel) in Hawaii (Tephritidae: Dacini)
Figures 1–15. Lateral, dorsal views and abdomen close-ups of five specimens of Hawaiian Bactrocera latifrons with varying degrees of dark markings on the abdomen and the scutum and legs. 1–3: female collected on Oahu, Kahuku, Fukuyama farm, leg. S. Graham (no date on labels), with typical 'textbook' orange-brown abdomen and absence of dark markings. 4–6: UHIM2015.04242 male collected on Maui, Kula, Howard Harada coffee, 26.vii–4.viii-06. leg. L. Leblanc. 7–9: female collected on Oahu, 2017, leg. S. Graham. 10–12: UHIM2015.04243 collected on Maui, Kula, Flora Umeno's coffee plot, 16–23.vi.06, leg. L. Leblanc. 13–15: UHIM2016.25466 female collected on Oahu, Ala Wai, garden, 5.ii.90 ex wild tomatoes, leg. M. M. Ramadan.
Figure 17 in Unusual Dark Forms of the Solanum Fruit Fly Bactrocera latifrons (Hendel) in Hawaii (Tephritidae: Dacini)
Figure 17. Dorsal view drawing of the aculeus (piercer) of the ovipositor, which is needle shaped (above) in Bactrocera citima and trifurcate (below) in B. latifrons and B. parvula.
Figures 32 in Host Plant Records for Fruit Flies (Diptera: Tephritidae: Dacini) in the Pacific Islands
Figures 32 to 37. B. strigifinis (32), B. triangularis (33), B. chorista (34), B. cucurbitae (35), Dacus axanus (36), D. solomonensis (37). All photos by Steve Wilson, Queensland Museum.
Figures 20 in Host Plant Records for Fruit Flies (Diptera: Tephritidae: Dacini) in the Pacific Islands
Figures 20 to 25. B. passiflorae (20), B. psidii (21), B. tinomiscii (22), B. trilineola (23), B. trivialis (24), and B. tryoni (25). All photos by Steve Wilson, Queensland Museum.
Figures 14 in Host Plant Records for Fruit Flies (Diptera: Tephritidae: Dacini) in the Pacific Islands
Figures 14 to 19. Bactrocera melanotus (14), B. moluccensis (15), B. musae (16), B. obliqua (17), B. papayae (18), B. paramusae (19). Photos by Steve Wilson, Queensland Museum, except for B. melanotus (Gerald McCormak).
Figures 8 in Host Plant Records for Fruit Flies (Diptera: Tephritidae: Dacini) in the Pacific Islands
Figures 8 to 13. B. dapsiles (8), B. enochra (9), B. facialis (10), B. frauenfeldi (11), B. kirki (12), and B. lineata (13). All photos by Steve Wilson, Queensland Museum.
Comparative genomics of sex-determination-related genes reveals shared evolutionary patterns between bivalves and mammals, but not fruit flies
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Data from: Multivariate classification of multichannel long-term electrophysiology data identifies different sleep stages in fruit flies, Part 7 of 16
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Data from: Multivariate classification of multichannel long-term electrophysiology data identifies different sleep stages in fruit flies, Part 5 of 16
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Data from: Multivariate classification of multichannel long-term electrophysiology data identifies different sleep stages in fruit flies, Part 10 of 16
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International Brain Laboratory public data
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