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712 results for “Beetle diversity”
Fig. 2 in Species Diversity and Succession of Dung Beetles (Coleoptera: Geotrupidae and Scarabaeidae) Attracted to Horse Dung on Assateague Island
Fig. 2. Species accumulation curve for dung beetles sampled in three habitats (marsh, dune and forest) on Assateague Island.
Fig. 1. Maryland map indicating Assateague Island State and National Seashore. Assateague study location indicated with a in Species Diversity and Succession of Dung Beetles (Coleoptera: Geotrupidae and Scarabaeidae) Attracted to Horse Dung on Assateague Island
Fig. 1. Maryland map indicating Assateague Island State and National Seashore. Assateague study location indicated with a box in the inset; the two mainland horse farms are indicated with black squares: Holly Ridge Equestrian Center = HR; Autumn Grove Stables = AG.
Fig. 4 in Species Diversity and Succession of Dung Beetles (Coleoptera: Geotrupidae and Scarabaeidae) Attracted to Horse Dung on Assateague Island
Fig. 4. Rank abundance curves for species collected on Assateague during our diversity study and that in Pocomoke State Forest (Price et al. 2012).
Fig. 2 in Ground Beetle (Coleoptera: Carabidae) Diversity and Body-Size Variation in Four Land Use Types in a Mountainous Area Near Beijing, China
Fig. 2. Non-linear two-dimensional scaling of carabid samples based on Euclidean distance. a) All carabids in 2011, b) all carabids in 2012, c) large carabids in 2011, d) large carabids in 2012. WI = walnut-chrysanthemum intercropping system; WM = walnut monoculture system; F = temperate deciduous forest; M: alpine meadow.
Fig. 1 in Ground Beetle (Coleoptera: Carabidae) Diversity and Body-Size Variation in Four Land Use Types in a Mountainous Area Near Beijing, China
Fig. 1. Activity-abundance and species richness of Carabidae in four habitats in a mountainous area near Beijing, China in 2011 and 2012. a) Activity-abundance of all carabids (2011: F = 2.82, p = 0.08; 2012: F = 2.58, p = 0.10), b) Chao1 index for all carabids (2011: F = 0.96, p = 0.44; 2012: F = 6.32, p <0.01), c) Activity-abundance of large carabids (2011: F = 0.87, p = 0.50; 2012: F = 6.35, p <0.01), d) Chao1 index for large carabids (2011: F = 0.98, p = 0.04; 2012: F = 2.08, p = 0.16) WI = walnut-chrysanthemum intercropping system; WM = walnut monoculture system; F = temperate deciduous forest; M = alpine meadow. Bars within each year of each graph with the same letter above the standard error bar are not significantly different (p> 0.05).
Fig. 1 in Habitat Association Promotes Diversity of Histerid Beetles (Coleoptera: Histeridae) in Neotropical Ecosystems
Fig. 1. Serra de S~ ao José conservation unit limits (right) (44°9ʹ46.14ʹʹW, 21°5ʹ14.54ʹʹS) and its location in South America (left).
Fig. 5 in Habitat Association Promotes Diversity of Histerid Beetles (Coleoptera: Histeridae) in Neotropical Ecosystems
Fig. 5. Multidimensional scaling (MDS). A) Ordering of the samples collected in four habitat types, B) Ordering of the samples collected in the three bait types. Stress = 0.11.
Fig. 3 in Habitat Association Promotes Diversity of Histerid Beetles (Coleoptera: Histeridae) in Neotropical Ecosystems
Fig. 3. Rank-abundance of histerid beetle communities in four habitats in the Serra de S~ ao José, Minas Gerais, Brazil.
Fig. 2 in Habitat Association Promotes Diversity of Histerid Beetles (Coleoptera: Histeridae) in Neotropical Ecosystems
Fig. 2. Main habitats in the Serra de S~ ao José, Minas Gerais, Brazil. a) Mountain semideciduous forest, b) Cerrado, c) Rupestrian field, d) Introduced pasture.
FIGURE 6 in Distribution, Regionalization, and Diversity of the dung beetle genus Phanaeus MacLeay (Coleoptera: Scarabaeidae) using Species Distribution Models
FIGURE 6. Beta diversity (β) of Phanaeus within each dominion, segmented by its components (β + β ).
FIGURE 2 in Distribution, Regionalization, and Diversity of the dung beetle genus Phanaeus MacLeay (Coleoptera: Scarabaeidae) using Species Distribution Models
FIGURE 2. Mean environmental conditions (points) and standard deviation (lines) within each Phanaeus species distribution model sorted by mean altitudinal predicted occurrence.
FIGURE 5 in Distribution, Regionalization, and Diversity of the dung beetle genus Phanaeus MacLeay (Coleoptera: Scarabaeidae) using Species Distribution Models
FIGURE 5. Occurrence of Phanaeus species in the resulting regionalization, predicted richness and co-occurrence in each dominion. The circle size is the percentage of the predicted species' distribution in each dominion.
FIGURE 7 in Distribution, Regionalization, and Diversity of the dung beetle genus Phanaeus MacLeay (Coleoptera: Scarabaeidae) using Species Distribution Models
FIGURE 7. Pairwise comparison of Beta diversity of Phanaeus between dominions. The upper panel shows the relative size of β segmented by its components (β + β ). The lower panel shows the value of β . total repl rich total
FIGURE 3 in Distribution, Regionalization, and Diversity of the dung beetle genus Phanaeus MacLeay (Coleoptera: Scarabaeidae) using Species Distribution Models
FIGURE 3. Potential richness of Phanaeus species obtained by stacking each species Maxent's distribution model, (a) at 30 arc second or by a spatial query (b) at 1° hexagonal cells. This hexagonal grid was used for the regionalization and beta diversity analyses.
FIGURE 4 in Distribution, Regionalization, and Diversity of the dung beetle genus Phanaeus MacLeay (Coleoptera: Scarabaeidae) using Species Distribution Models
FIGURE 4. Regionalization of Phanaeus distribution: Mexican Transition Zone (North American, Mexican, and Mesoamerican dominions) and Neotropical region (Mesoamerican, Pacific, Brazilian and Chacoan dominions).This was obtained from a UPGMA cluster analysis to the result, to produce a dendrogram of the relationship between cells (a) that produced a regionalization (b).
FIGURE 42 in A contribution to cavernicolous beetle diversity of South China Karst: eight new genera and fourteen new species (Coleoptera: Carabidae: Trechini)
FIGURE 42. Gui Dong, the type locality of Graciliblemus gui n. sp. A. entrance; B. main passage; C. two individuals of G. gui n. sp.; D & F. mould and mushroom growing in cave; E. a cricket of the genus Tachycines.
FIGURE 40 in A contribution to cavernicolous beetle diversity of South China Karst: eight new genera and fourteen new species (Coleoptera: Carabidae: Trechini)
FIGURE 40. Weixiao Tiankeng, the type locality of Guizhaphaenops (s. str.) wanghaoi n. sp. A. environ of Weixiao Tiankeng, bird view; B. a descending caver; C. the main passage below the Tiankeng (photos courtesy of Ms. Rurui Ye).
FIGURE 39 in A contribution to cavernicolous beetle diversity of South China Karst: eight new genera and fourteen new species (Coleoptera: Carabidae: Trechini)
FIGURE 39. Guizhaphaenops (s. str.) wanghaoi n. sp. A. left elytron (white dots indicating the chaetotaxy); B. median lobe, lateral view; C. apical lobe, dorsal view.
FIGURE 41. Graciliblemus gui n in A contribution to cavernicolous beetle diversity of South China Karst: eight new genera and fourteen new species (Coleoptera: Carabidae: Trechini)
FIGURE 41. Graciliblemus gui n. sp. A. Habitus of male, holotype; B. left elytron (white dots indicating the chaetotaxy); C. median lobe, lateral view; D. apical lobe, dorsal view.
FIGURE 33 in A contribution to cavernicolous beetle diversity of South China Karst: eight new genera and fourteen new species (Coleoptera: Carabidae: Trechini)
FIGURE 33. Left elytra (white dots indicating the chaetotaxy) of Deuveaphaenops species (white dots indicating the chaetotaxy). A. D. (Furongius) huangheae n. sp.; B. D. (Furongius) gelaophilus Tian & Huang, 2017.
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