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91 results for “Baited trap”
Fig. 1 in Yearly and seasonal changes in species composition of hornets (Hymenoptera: Vespidae) caught with bait traps on the Sea of Japan coast
Fig. 1. Yearly changes in the species composition of hornets in Sakata Park (A) and campus of Niigata University (B).
Figure 2 in Field Capture of Male Melon Flies, Bactrocera cucurbitae (Coquillett), in Jackson Traps Baited with Cue-Lure Versus Raspberry Ketone Formate in Hawaii
Figure 2. Number of B. cucurbitae males captured in Jackson traps baited with cue-lure (CL) liquid (●) versus raspberry ketone formate (RKF) liquid (○) at four study sites on Oahu, Hawaii. At each site, 15 traps of each treatment were operated 1 day per week over 6 consecutive weeks. Symbols represent means (+ 1 SE, n = 15).
Figure 1 in Field Capture of Male Melon Flies, Bactrocera cucurbitae (Coquillett), in Jackson Traps Baited with Cue-Lure Versus Raspberry Ketone Formate in Hawaii
Figure 1. Number of B. cucurbitae males captured in Jackson traps baited with cue-lure (CL) liquid (●) versus raspberry ketone formate (RKF) plugs (○) at four study sites on Oahu, Hawaii. At each site, 15 traps of each treatment were operated 1 day per week over 6 consecutive weeks. Symbols represent means (+ 1 SE, n = 15).
Fig. 2 in Effect of the height and distribution pattern of pheromone-baited traps on the capture of Scyphophorus acupunctatus (Coleoptera: Dryophthoridae) on blue agave (Asparagales: Asparagaceae)
Fig. 2. Mean (+ SE) numbers and sex ratios of Scyphophorus acupunctatus weevils captured per trap with various distribution pattern of traps in the field. Treatments with similar letters are not significantly different (Tukey's test, a = 0.05).
Fig. 1 in Effect of the height and distribution pattern of pheromone-baited traps on the capture of Scyphophorus acupunctatus (Coleoptera: Dryophthoridae) on blue agave (Asparagales: Asparagaceae)
Fig. 1. Distribution and arrangement of traps in the experiment of distribution pattern of traps, using 4 treatments: 1) traps placed in a triangle pattern with an inter-trap distance of 100 m; 2) traps placed a square with an inter-trap distance of 100 m; 3) traps placed in a triangle with an inter-trap distance of 200 m; and 4) traps placed in a square with an inter-trap distance of 200 m.
Fig. 1 in Halyomorpha halys (Hemiptera: Pentatomidae) response to pyramid traps baited with attractive light and pheromonal stimuli
Fig. 1. Standard black pyramid trap with PHER lure (A) and modified pyramid trap with narrow blue fluorescent light (B).
Fig. 1. Stink bug pheromone–baited trap with a in Stink bugs (Hemiptera: Pentatomidae) in pheromonebaited traps near crop field edges in Georgia, USA
Fig. 1. Stink bug pheromone–baited trap with a pyramid base (A) and a bamboo pole base (B) in peanut row. Distance between each trap treatment was 9 m.
Fig. 1 in Mixing male lures results in an effective multispecies bait for trapping Bactrocera (Diptera: Tephritidae) fruit flies
Fig. 1. Numbers of Bactrocera dorsalis male flies captured in traps baited with methyl eugenol (ME) alone or a mixture of ME and raspberry ketone (RK, a natural analogue of cue lure). Comparisons involved 3 mixtures in ME:RK ratios (wt:wt) of 95:5, 90:10, and 85:15. Symbols represent means (± SE) of 15 traps per lure type at 2 wk intervals over an 8 wk sampling period.
Fig. 1 in Food attractants to increase pheromone-baited trap performance for Scyphophorus acupunctatus (Coleoptera: Dryophthoridae) in mezcal maguey
Fig. 1. Mean number of Scyphophorus acupunctatus weevils captured per trap biweekly, with various food attractants. Means were calculated from data of 5 biweekly samples. Treatments with similar letters are not significantly different (Tukey, α = 0.05). Error bars indicate SE.
Fig. 1 in Evaluation of mass trapping and bait stations to control Anastrepha (Diptera: Tephritidae) fruit flies in mango orchards of Chiapas, Mexico
Fig. 1. Devices used as treatments during field evaluations: a) 600 mL polyethylene terephthalate (PET) bottle with three 1 × 1 cm holes in the upper third, baited with 50 mL of hydrolyzed protein; b) 600 mL PET bottle with two 3 × 3 cm windows in the upper middle, baited with 150 mL of GF-120 Naturalyte (80 ppm); c) MS® is a commercial bait station consisting of a 2-piece, bottle-shaped device, with a transparent upper piece with three 3 × 3 cm windows in the middle part and a yellow bottom, baited with Atrayente® (mix of 30% hydrolyzed protein, 10% propylene glycol, 5% malathion, and adjuvants; d) MS2® is the same MS® device as in 'c' but with the upper piece containing three 1-cm-diameter holes in the middle part, baited with 250 mL of Cera Trap®; e) wax matrix bait station is a waxed green box with slots baited with BioLure® synthetic attractant (ammonium acetate and putrescine); f) INIFAP trap is a 2 L, 14-cm-diameter, and 14 cm high cylindrical container, with three 1-cm-diameter holes at mid-height, baited with 250 mL of Cera Trap®.
Fig. 4 in Evaluation of mass trapping and bait stations to control Anastrepha (Diptera: Tephritidae) fruit flies in mango orchards of Chiapas, Mexico
Fig. 4. Recapture of sterile Anastrepha ludens and Anastrepha obliqua in Multilure® traps in different treatments. For each species, trap capture percentages topped by the same letter are not significantly different (α = 0.05).
Fig. 2 in Evaluation of mass trapping and bait stations to control Anastrepha (Diptera: Tephritidae) fruit flies in mango orchards of Chiapas, Mexico
Fig. 2. Recapture percentages of sterile Anastrepha ludens (top) and sterile Anastrepha obliqua (bottom) in Multilure® traps located in plots with PET bottle mass trapping devices, ground-sprayed with GF-120 Naturalyte, or untreated (control) in a mango orchard. For each season, trap capture percentages topped by the same letter are not significantly different (α = 0.05).
Fig. 5 in Evaluation of mass trapping and bait stations to control Anastrepha (Diptera: Tephritidae) fruit flies in mango orchards of Chiapas, Mexico
Fig. 5. Recapture percentages of sterile and wild Anastrepha ludens and Anastrepha obliqua in 2 types of mass trapping devices. For each species and strain, trap capture percentages topped by the same letter are not significantly different (α = 0.05).
Fig. 3 in Evaluation of mass trapping and bait stations to control Anastrepha (Diptera: Tephritidae) fruit flies in mango orchards of Chiapas, Mexico
Fig. 3. Recapture percentages of sterile Anastrepha ludens and Anastrepha obliqua flies in Multilure® traps in plots with different bait station devices. For each species, trap capture percentages topped by the same letter are not significantly different (α = 0.05).
Fig. 1 in Capture of Zeugodacus cucurbitae (Diptera: Tephritidae) in traps baited with torula yeast solution versus cucumber volatile plugs
Fig. 1. Captures of melon flies, Zeugodacus cucurbitae, in Multilure traps bait- ed with torula yeast borax solution or cucumber volatile plugs at low-capture sites (B, C, and E). Data were pooled among sites and over sampling weeks as described in the text. Bar heights represent means (± 1 SE) of 270 values (3 sites × 15 traps per trap type × 6 wk).
Fig. 2 in Capture of Zeugodacus cucurbitae (Diptera: Tephritidae) in traps baited with torula yeast solution versus cucumber volatile plugs
Fig. 2. Captures of melon flies, Zeugodacus cucurbitae, in Multilure traps bait- ed with torula yeast borax solution or cucumber volatile plugs over an 8 wk period at the intermediate-capture site (A). Points represent means (± 1 SE) of 15 traps per lure type.
Fig. 3 in Capture of Zeugodacus cucurbitae (Diptera: Tephritidae) in traps baited with torula yeast solution versus cucumber volatile plugs
Fig. 3. Captures of melon flies, Zeugodacus cucurbitae, in Multilure traps baited with torula yeast borax solution or cucumber volatile plugs over a 6 wk period at the high-capture site (D). Points represent means (± 1 SE) of 10 traps per lure type.
Figure 4 in Capture of Mediterranean Fruit Flies and Melon Flies (Diptera: Tephritidae) in Food-Baited Traps in Hawaii
Figure 4. Numbers of female and male C. cucurbitae captured in Multilure traps baited with torula yeast/borax pellets (TY) or Ceratrap (CT) over the 6-week sampling period in January–February 2015. Bar heights represent averages of 15 traps per bait type; whiskers represent + 1 SE.
Fig. 1 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. 1. Captures of wild Bactrocera dorsalis in traps baited with torula yeast borax solution, 2-component cones, or 3-component cones. Symbols represent means (± 1 SE); N = 12 traps per treatment per weathering interval.
Fig. 3 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. 3. Captures of release Bactrocera dorsalis (top) and Zeugodacus cucurbitae (bottom) in traps baited with torula yeast borax solution (TYB), 2-component cones (2C), or 3-component cones (3C). Bar heights represent means (± 1 SE); N = 48 traps per treatment (8 traps per replicate × 6 replicates).
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International Brain Laboratory public data
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OpenNeuro
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