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151 results for “Nest site”
Figure 11 in Leaf and site selection for nest construction and oviposition in Aysha piassaguera Brescovit, 1992 (Araneae: Anyphaenidae)
Figure 11. Logistic regression showing the effect of leaf thickness on the presence (1) or absence (0) of Aysha piassaguera nests. N0 = 36; N1 = 18.
Figure 3 in Leaf and site selection for nest construction and oviposition in Aysha piassaguera Brescovit, 1992 (Araneae: Anyphaenidae)
Figure 3. Device used to measure the folding strength of leaves. (a) Wooden support. (b) U-shaped frame device. (c) Sewing thread. (d) Pulley. (e) Plastic bag containing flour. (f) Test leaf. (g) Weight to hold the leaf. (h) Hooks to hold the bag and tip of the leaf. (i) Table.
Figure 2 in Leaf and site selection for nest construction and oviposition in Aysha piassaguera Brescovit, 1992 (Araneae: Anyphaenidae)
Figure 2. Graphic scheme of the plots delimited in the field and the subdivision made for the correct registration of the nests of Aysha paissaguera.
Figure 4 in Leaf and site selection for nest construction and oviposition in Aysha piassaguera Brescovit, 1992 (Araneae: Anyphaenidae)
Figure 4. Average proportion of branches with Aysha piassaguera nests at each vegetation height. Error bars represent ± 1 standard error. NBase = 1828; NCrown = 817.
Figure 1 in Leaf and site selection for nest construction and oviposition in Aysha piassaguera Brescovit, 1992 (Araneae: Anyphaenidae)
Figure 1. Aysha piassaguera nest on a Crocosmia crocosmiiflora (Iridaceae) leaf, with a distinct pyramidlike format.
Figure 13 in Leaf and site selection for nest construction and oviposition in Aysha piassaguera Brescovit, 1992 (Araneae: Anyphaenidae)
Figure 13. Logistic regression showing the effect of the leaf mass per area (LMA) of the leaves on the presence (1) or absence (0) of Aysha piassaguera nests. N0 = 36; N1 = 18.
Figure 9 in Leaf and site selection for nest construction and oviposition in Aysha piassaguera Brescovit, 1992 (Araneae: Anyphaenidae)
Figure 9. Frequency of available branches and branches with Aysha piassaguera nests in Iridaceae and Gramineae. Nbranches with nests = 141; Navailable branches = 857.
Figure 8 in Leaf and site selection for nest construction and oviposition in Aysha piassaguera Brescovit, 1992 (Araneae: Anyphaenidae)
Figure 8. Frequency of available branches and branches with Aysha piassaguera nests in monocotyledons and eudicotyledons. Nbranches with nests = 153; Navailable branches = 1828.
Figure 7 in Leaf and site selection for nest construction and oviposition in Aysha piassaguera Brescovit, 1992 (Araneae: Anyphaenidae)
Figure 7. Average proportions of branches with Aysha piassaguera nests in each family of monocotyledons at the lower vegetation of the forest edge. Error bars represent ± 1 standard error. NIridaceae = 502; NGramineae = 355.
Figure 6 in Leaf and site selection for nest construction and oviposition in Aysha piassaguera Brescovit, 1992 (Araneae: Anyphaenidae)
Figure 6. Average proportions of branches with Aysha piassaguera nests in each group of plants at the base (lower vegetation) of the forest edge. Error bars represent ± 1 standard error. NMonocotyledons = 857; NEudicoctyledons = 971.
Figure 5 in Leaf and site selection for nest construction and oviposition in Aysha piassaguera Brescovit, 1992 (Araneae: Anyphaenidae)
Figure 5. Frequency of available branches and branches with Aysha piassaguera nests at both substrate heights. Nbranches with nests = 162; Navailable branches = 2645.
Supplementary material 1 from: Michlewicz M, Tryjanowski P (2017) Anthropogenic waste products as preferred nest sites for Myrmica rubra (L.) (Hymenoptera, Formicidae). Journal of Hymenoptera Research 57: 103-114. https://doi.org/10.3897/jhr.57.12491
Study sites : Explanation note: General description of study localities, including the dates of investigation.
Supplementary material 2 from: Boff S, Alves-dos-Santos I (2018) Cavities in bromeliad stolons used as nest sites by Euglossa cordata (Hymenoptera, Euglossini). Journal of Hymenoptera Research 62: 33-44. https://doi.org/10.3897/jhr.62.22834
Figure S2. Details of Euglossa cordata nests : Explanation note: Nests were found inside stolons of bromeliads (Aechmea distichantha) on Ilha da Vitória, in Brazil.
Supplementary material 1 from: Boff S, Alves-dos-Santos I (2018) Cavities in bromeliad stolons used as nest sites by Euglossa cordata (Hymenoptera, Euglossini). Journal of Hymenoptera Research 62: 33-44. https://doi.org/10.3897/jhr.62.22834
Figure S1. Stolon of living bromeliads : Explanation note: The internal moist tissues of stolons from living plants.
Figure 2 in Nest survival of black-backed water tyrant Fluvicola albiventer in relation to nest morphometry and nest site features
Figure 2. Nest site, nest, eggs and chicks of the black-backed water tyrant Fluvicola albiventer during three breeding seasons (2016–2019) in a wetland of Argentina. (a) A nesting site near the water, (b) a nest in Solanum glaucophyllum, (c) eggs found in October 2018, (d) 5-day-old chicks found in January 2018, and (e) 9-day-old chick found in November 2016.
Figure 1 in Nest survival of black-backed water tyrant Fluvicola albiventer in relation to nest morphometry and nest site features
Figure 1. Monthly temporal distribution of black-backed water tyrant Fluvicola albiventer nests in a wetland of central Argentina (2016–2019 breeding seasons).
FIG. 4 in Nest-Site Fidelity and Sex-Biased Dispersal Affect Spatial Genetic Structure of Eastern Box Turtles (Terrapene carolina carolina) at Their Northern Range Edge
FIG. 4. Analysis of global structure along the river corridor from the first principal component of the sPCA represented by (A) interpolation of lagged principal scores showing genetic clines and (B) colors indicating individual scores. Coordinates have been deliberately omitted to deter poachers.
FIG. 3 in Nest-Site Fidelity and Sex-Biased Dispersal Affect Spatial Genetic Structure of Eastern Box Turtles (Terrapene carolina carolina) at Their Northern Range Edge
FIG. 3. Bubble plot showing the results of two-dimensional local spatial autocorrelation analysis for all Eastern Box Turtles (n ¼ 165) sampled in northwestern Michigan. Circles represent individuals and the size of the circle is proportional to the P-values from permutation testing, with large circles representing individuals that are significantly more related to their five nearest neighbors than expected (P, 0.05) based on a random distribution of genotypes. Figure shows the distribution of five genetic ''hotspots'' in relation to known nesting sites (NS) across the study area. Some distantly sampled individuals are omitted for figure clarity.
FIG. 2 in Nest-Site Fidelity and Sex-Biased Dispersal Affect Spatial Genetic Structure of Eastern Box Turtles (Terrapene carolina carolina) at Their Northern Range Edge
FIG. 2. Spatial genetic autocorrelograms of genetic correlation coefficients (r) as a function of distance for Eastern Box Turtles in northwestern Michigan. Plots represent (A) all individuals (n ¼ 165), (B) females only (n ¼ 104), and (C) males only (n ¼ 51). Dashed lines are permuted 95% confidence intervals across all data, and error bars are bootstrapped 95% confidence intervals within each distance class. Tables below graphs represent data for each distance class including the number of pairwise comparisons (n), the correlation coefficients (r), and the P-values (p) associated with bootstrap tests of significance for positive spatial genetic autocorrelation.
FIG. 1 in Nest-Site Fidelity and Sex-Biased Dispersal Affect Spatial Genetic Structure of Eastern Box Turtles (Terrapene carolina carolina) at Their Northern Range Edge
FIG. 1. Scatterplot showing the matrix of pairwise genetic distances and matrix of pairwise geographic distances for box turtles sampled along the river corridor. Warmer colors within the kernel density indicate higher densities of points. The line (slope ¼ 1.074727e–05; R2 ¼ 0.002992) shows the correlation trend.
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