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59 results for “light trap”
Increasing catches of adult moth pests (Lepidoptera: Tortricidae) in pome fruit with low-intensity LED lights added to sex pheromone / kairomone lure-baited traps.
<p>Raw data of field studies trapping different tortricid pest species with pheromone/kairomone lures and LED lights added to the traps.</p>
Household-level CDC Light Trap data for three communities in Kasungu, May - August 2021
<p>Each row in the dataset corresponds to data collected for a single household over one night. Variables are:</p> <p>community: community code i.e. ML = Malangano, CK = Chinkhombwe, CP = Chiponde</p> <p>community_name: Full name of community</p> <p>houseid: ID number (1-31) within a community</p> <p>uniqueid: Combination of community code and house ID, using a leading zero for houses 1-9</p> <p>collect: Date on which CDC Light Trap was collected after being in a house for 1 night</p> <p>month: Month in which CDC Light Trap data was collected</p> <p>trapnight: Whether this was the first or second collection of the two consecutive collections each month</p> <p>nmos: Total number of mosquitoes found in the trap</p> <p>nanophf: Total number of female <em>Anopheles</em> in trap</p> <p>nanophm: Total number of female <em>Anopheles</em> in trap</p> <p>nculexf: Total number of female culicines in trap</p> <p>nculexm: Total number of male culicines in trap</p>
Light and malaise traps tell different stories about the spatial variations in arthropod biomass and method-specific insect abundance
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Using light traps to assess larval fish and octopus paralarvae diversity and ontogenetic structure around Santa Catalina Island, CA
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Quantitative data from six years (2013-2018) of light trap sampling of macromoths (Lepidoptera) in Mt. Hallasan National Park, South Korea
This paper presents the results of long-term monitoring of macromoth communities in Mt. Hallasan National Park, South Korea. This mountain shows an altitudinal gradient of vegetation from evergreen deciduous to boreal trees, harbouring more than 550 species of vascular plants. The goal of this project was to investigate the changes in moth assemblages along the altitudinal gradient in this mountain ecosystem. We monitored macromoth communities at 11 sites in Mt. Hallasan National Park from 2013 to 2018, during which time moths were collected once a month from May to October, using an ultraviolet bucket trap. The generated dataset, which represented 587 species and 13,249 individuals from 14 families, can be adopted to establish a baseline for development of a network-orientated database to assess temporal and spatial changes of moths in temperate and tropical forests. This is the first long-term sampling-event dataset on macromoth assemblages in changing vegetation from evergreen deciduous to boreal tree zones, conducted in Mt. Hallasan National Park, the national park at the highest elevation and located on the largest volcanic island in South Korea. The aim of this study was to provide a description and a link to published data in the format of a peer-reviewed journal and to provide recognition of the effort in a scholarly article (based on data paper definition published at https://www.gbif.org/en/data-papers).
Data from: Low-cost automated flight intercept trap for the temporal sub-sampling of flying insects attracted to artificial light at night
<p>Sampling methods are selected depending on the targeted species or the spatial and temporal requirements of the study. However, most methods for passive sampling of flying insects have poor temporal resolution because it is time consuming, costly and/or logistically difficult. Effective sampling of flying insects attracted to artificial light at night (ALAN) requires sampling at user-defined time points (nighttime only) across well-replicated sites resulting in major time and labor-intensive survey effort or expensive automated technologies. Described here is a low-cost automated intercept trap that requires no specialist equipment or skills to construct and operate, making it a viable option for studies that require temporal sub-sampling across multiple sites. The trap can be used to address a wide range of other ecological questions that require a greater temporal and spatial scale than is feasible with previous trap technology.</p>
Supplementary material 1 from: Murphy CA, Gerth W, Neal T, Arismendi I (2022) A low-cost, durable, submersible light trap and customisable LED design for pelagic deployment and capture of fish parasite Salmincola sp. copepodids. NeoBiota 73: 1-17. https://doi.org/10.3897/neobiota.73.76515
Supplementary material for a low-cost, durable, submersible light trap and customizable LED design for pelagic deployment and capture of fish parasite Salmincola sp. copepodids
FIGURE 81 Light trap setting aside a in Revision of the Oriental species of Calleida Latreille (sensu lato). Part 1: Introduction, groups of species, and species of six species groups (Coleoptera: Carabidae: Lebiini)
FIGURE 81 Light trap setting aside a path in Trusmadi Forest Reserve, Sabah, Borneo. The holotype and other three paratypes of C. borneensis were collected in the light trap.
FIGURES 1–2. Light traps. 1 in Two new species of Opeatocerata Melander (Diptera, Empididae, Empidinae) from the Brazilian Amazon Basin
FIGURES 1–2. Light traps. 1, "Mobile" light trap placed on a pick-up truck. 2, Suspendable light trap placed in canopy, 35 m above ground level.
Fig. 2 in A Solar-Powered UV Light Trap for Long-Term Monitoring of Insects in Remote Habitats
Fig. 2. The solar-powered UV light trap in A) stabilized-vegetated sands, B) open sand dunes, and C) agricultural crop margin. Note that in addition to the components in Fig. 1, 6–8 ft (1.8–2.4 m) pieces of steel rebar and wire are used to position the solar panel.
Fig. 1 in A Solar-Powered UV Light Trap for Long-Term Monitoring of Insects in Remote Habitats
Fig. 1. Exploded view of solar-powered UV light trap, with component labels corresponding to the items in Table 1. The light trap components battery (n), ballast box (a), photoelectric switch (g), and battery clamps (l) were put inside a second bucket to protect them from corrosion and overheating.
Fig. 5 in On the Phototactic Response of RwandanDiaphanesMotschulsky (Coleoptera: Lampyridae) to a Trap with a 630Nm Red Light
Fig. 5. Peak wavelength emission of red light trap. Blue line refers to the red LED light on its own, and the black line refers to the red LED light when placed under the plastic cup. Notice that under the cup only the intensity changes, not the peak wavelength.
Quantitative data from six years (2013-2018) of light trap sampling of macromoths (Lepidoptera) in Mt. Hallasan National Park, South Korea
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Data from: Low-cost automated flight intercept trap for the temporal sub-sampling of flying insects attracted to artificial light at night
Open the record for dataset details and reuse information.
Dataset of the publication entitled 'Light-Powered Self-Adaptive Mesostructured Microrobots for Simultaneous Microplastics Trapping and Fragmentation via in situ Surface Morphing'
<p>dataset of the publication entitled 'Light-Powered Self-Adaptive Mesostructured Microrobots for Simultaneous Microplastics Trapping and Fragmentation via in situ Surface Morphing'</p>
Fig. 2 in Halyomorpha halys (Hemiptera: Pentatomidae) response to pyramid traps baited with attractive light and pheromonal stimuli
Fig. 2. Mean capture rates of Halyomorpha halys in black pyramid traps with fluorescent blue lights placed next to structures with competing light sources or next to wood line without competing lights, during early season (A), mid-season (B), and late season (C).
Figure 4. The 95 in Effects of agroecosystems on insect and insectivorous bat activity: a preliminary finding based on light trap and mist net captures
Figure 4. The 95% family-wise confidence level for multiple comparisons test based on insect orders (top left: Lepidoptera; top right: Diptera) and insectivorous bat species (bottom left: H. aff. ruber, bottom right: H. jonesi) analyses. FM - Full moon; FQM - first quarter moon; LQM - last quarter moon; NM - new moon.
Figs. 1–2 in On the Phototactic Response of RwandanDiaphanesMotschulsky (Coleoptera: Lampyridae) to a Trap with a 630Nm Red Light
Figs. 1–2. Diaphanes sp. 1) Dorsal habitus; 2) Ventral habitus.
Figs. 3–4. Red light trap. 3 in On the Phototactic Response of RwandanDiaphanesMotschulsky (Coleoptera: Lampyridae) to a Trap with a 630Nm Red Light
Figs. 3–4. Red light trap. 3) Simplified illustration; 4) Actual trap.
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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.
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DANDI Archive for NWB datasets
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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.