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Fig. 7 in Proliferation of the invasive termite Coptotermes gestroi (Isoptera: Rhinotermitidae) on Grand Cayman and overall termite diversity on the Cayman Islands
Fig. 7. Plot for the Single Linkage clustering method for distances to the nearest marine dockage of Coptotermes gestroi over Grand Cayman Island.
Fig. 6 in Proliferation of the invasive termite Coptotermes gestroi (Isoptera: Rhinotermitidae) on Grand Cayman and overall termite diversity on the Cayman Islands
Fig. 6. Plot for the Single Linkage clustering method for Coptotermes gestroi over Grand Cayman Island.
Fig. 8 in Proliferation of the invasive termite Coptotermes gestroi (Isoptera: Rhinotermitidae) on Grand Cayman and overall termite diversity on the Cayman Islands
Fig. 8. Distribution of mean nearest neighbor distance obtained from Monte- Carlo simulation with 102 randomized points placed in built areas within suitable habitats.
Fig. 2 in Establishment and spread of two invasive subterranean termite species (Coptotermes formosanus and C. gestroi; Isoptera: Rhinotermitidae) in metropolitan southeastern Florida (1990-2015)
Fig. 2. Distribution of Coptotermes formosanus and Coptotermes gestroi in metropolitan southeastern Florida 2000–2015.
Fig. 5 in Proliferation of the invasive termite Coptotermes gestroi (Isoptera: Rhinotermitidae) on Grand Cayman and overall termite diversity on the Cayman Islands
Fig. 5. Termite sampling localities from UF Termite Collection (for purposes of space, the geographic positions of Little Cayman and Cayman Brac are not related to that of Grand Cayman).
Fig. 9 in Proliferation of the invasive termite Coptotermes gestroi (Isoptera: Rhinotermitidae) on Grand Cayman and overall termite diversity on the Cayman Islands
Fig. 9. Areas predicted as infested by the simulation model for Coptotermes gestroi over Grand Cayman Island. Sampled termite locations in 2014 are mapped (points). Yellow, orange, and red cells indicate the>0%, ≥50%, and 100% occupancy envelopes, respectively.
Fig. 10 in Proliferation of the invasive termite Coptotermes gestroi (Isoptera: Rhinotermitidae) on Grand Cayman and overall termite diversity on the Cayman Islands
Fig. 10. Caribbean basin survey localities for all termites (blue dots) and for Microcerotermes species only (orange dots) (Source: UF Termite Collection).
Fig. 2. Hierarchical cluster analysis with 2 in Proliferation of the invasive termite Coptotermes gestroi (Isoptera: Rhinotermitidae) on Grand Cayman and overall termite diversity on the Cayman Islands
Fig. 2. Hierarchical cluster analysis with 2 (a), 3 (b), 4 (c), and 5 (d) clusters for Coptotermes gestroi over Grand Cayman Island.
Fig. 4 in Proliferation of the invasive termite Coptotermes gestroi (Isoptera: Rhinotermitidae) on Grand Cayman and overall termite diversity on the Cayman Islands
Fig. 4. Vector-type layers used to obtain a surface of unsuitable habitat for Coptotermes gestroi on Grand Cayman Island.
Fig. 3. Collection localities for Coptotermes gestroi over Grand Cayman Island and 102 in Proliferation of the invasive termite Coptotermes gestroi (Isoptera: Rhinotermitidae) on Grand Cayman and overall termite diversity on the Cayman Islands
Fig. 3. Collection localities for Coptotermes gestroi over Grand Cayman Island and 102 random points.
Fig. 1 in Proliferation of the invasive termite Coptotermes gestroi (Isoptera: Rhinotermitidae) on Grand Cayman and overall termite diversity on the Cayman Islands
Fig. 1. Coptotermes gestroi localities in the greater Caribbean Basin (Source: UF Termite Collection).
Data for: Mutualistic Acacia Ants exhibit reduced aggression and more frequent off-tree movements near termite mounds
<p>These are the raw data used in the paper "Mutualistic Acacia Ants exhibit reduced aggression and more frequent off-tree movements near termite mounds". Please see the README file for a more detailed description of the two CSV files. </p>
Fig. 2 in Sharing of termites (Blattodea: Isoptera) between sugarcane matrices and Atlantic Forest fragments in Northeast Brazil
Fig. 2. Species richness (A) and number of termite encounters (B) per food group of two Atlantic Forest fragments and adjacent sugarcane fields of two plantations in Northeast Brazil.Us., Usina; AF, Atlantic Forest; S, sugarcane field; I, feeding group I; II, feeding group II; III, feeding group III; IV, feeding group IV (Donovan et al., 2001).
Fig. 1 in Sharing of termites (Blattodea: Isoptera) between sugarcane matrices and Atlantic Forest fragments in Northeast Brazil
Fig. 1. Non-metric multidimensional scaling for termite assemblages of two Atlantic Forest fragments and adjacent sugarcane plantations. Usina são João (A) and Usina São José (B). •, Atlantic Forest. Δ, sugarcane field.
Fig. 3 in Use of baits for the evaluation of underground termites (Blattodea: Rhinotermitidae) in different habitats of the southern Amazon region
Fig. 3. Queen of Heterotermes tenuis (center circle) in early stage of egg production (circle on lef), and colony formation inside the cardboard bait in southern Amazonia.
Fig. 2 in Use of baits for the evaluation of underground termites (Blattodea: Rhinotermitidae) in different habitats of the southern Amazon region
Fig. 2. Predominant termites in this study in southern Amazonia: (A) Nasutitermes sp. soldier; (B) Heterotermes tenuis soldier.
Fig. 1 in Use of baits for the evaluation of underground termites (Blattodea: Rhinotermitidae) in different habitats of the southern Amazon region
Fig. 1. Spatial arrangement of Termitrap® baits within plots for subterranean termite survey in different environments in southern Amazonia.
Fig. 2 in Influence of altitude and seasonality in the termite species richness and nests density in a hill environment of the Brazilian Caatinga
Fig. 2. NMDS of species composition in foot and top of a hill environment in a dry forest, ParaÍba, Brazil (dimensions = 2).
Fig. 1 in Influence of altitude and seasonality in the termite species richness and nests density in a hill environment of the Brazilian Caatinga
Fig. 1. Rarefaction curves of the richness of termites and number of encounters in a hill environment of a dry forest, ParaÍba, Brazil. a) dry and b) wet seasons.
Fig. 2 in A termite from the Late Oligocene of northern Ethiopia
Fig. 2. Reconstruction of forewing venation of termite Chilgatermes diamatensis gen. et sp. nov. (CH 52−70) from Chilga Woreda, Ethiopia, Early Chattian (Oligocene), membrane reticulations omitted. Drawing by Ismael A. Hinojosa−Díaz. Abbreviations: CuA, anterior cubital vein; M, medial vein; R, radial vein; Rs, radial sector vein.
ScienceDex guides
Understand access before you commit
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.