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712 results for “Beetle diversity”
FIG. 29. Morphotype 26, VMNH 49650. A, B. Part. C. Counterpart. D in Remarkable Diversity Of Beetles (Coleoptera) In The Late Triassic (Norian) "Solite Deposit" Of Virginia And North Carolina
FIG. 29. Morphotype 26, VMNH 49650. A, B. Part. C. Counterpart. D. Head of part. E. Dense microtrichia covering elytra. Scale bars: A–D: 1 mm; E: 0.5 mm.
FIG. 33. Morphotype 30, AMNH 04-70. A, B. Part. C. Counterpart. D in Remarkable Diversity Of Beetles (Coleoptera) In The Late Triassic (Norian) "Solite Deposit" Of Virginia And North Carolina
FIG. 33. Morphotype 30, AMNH 04-70. A, B. Part. C. Counterpart. D. Long setae on elytra of counterpart. Scale bars: A–C: 0.5 mm; D: 0.25 mm.
FIG. 36. Morphotype 33 in Remarkable Diversity Of Beetles (Coleoptera) In The Late Triassic (Norian) "Solite Deposit" Of Virginia And North Carolina
FIG. 36. Morphotype 33, YPM IP 035981. A, B. Habitus. C. Head with partial antenna. D. Right elytron showing forklike structure, possibly wing veins. E. Right hind leg showing distinct tibial spurs. Scale bars: A, B: 1 mm; C–E: 0.5 mm.
FIG. 3 in Remarkable Diversity Of Beetles (Coleoptera) In The Late Triassic (Norian) "Solite Deposit" Of Virginia And North Carolina
FIG. 3. Diversity of the articulated Solite beetles (above and opposite page). Specimens are drawn to the same scale. M# near each panel is the morphotype number; the largest, M61, is omitted. Scale bar: 1 mm.
FIG. 2 in Remarkable Diversity Of Beetles (Coleoptera) In The Late Triassic (Norian) "Solite Deposit" Of Virginia And North Carolina
FIG. 2. Comparison of specimen viewing methods. A. Solite specimen YPM IP 388741 (morphotype 46) under alcohol. Note that elytral striae are not visible. B. Same specimen dry and tilted showing slight relief of striae. Scale bars: 1 mm.
FIG. 4 in Remarkable Diversity Of Beetles (Coleoptera) In The Late Triassic (Norian) "Solite Deposit" Of Virginia And North Carolina
FIG. 4. Examples of elytral microsculpture and vestiture found in the Solite beetles. A. Smooth, morphotype 63. B. Striate, morphotype 90. C. Punctate, morphotype 76. D. Nodules, morphotype 70. E. Window punctures, morphotype 73. F. Setae, morphotype 31. Scale bars: A, D, F: 0.1 mm; B, C, E: 0.5 mm.
FIG. 1 in Remarkable Diversity Of Beetles (Coleoptera) In The Late Triassic (Norian) "Solite Deposit" Of Virginia And North Carolina
FIG. 1. Paleogeographic map showing the approximate locations of the major Triassic insect deposits preserving beetles. Modified from Carnian Map #45 of the PALEOMAP Project (Scotese, 2014).
Fig. 3 in Diversity patterns of carabid beetle (Coleoptera, Carabidae) asemblages in the pine forests of Northern Belarus
Fig. 3. NMDS-ordination diagram of the carabid beetle assemblages of pine forests: PCL – Pinetum cladoniosum, PP – Pinetum pleuroziosum, PC – Pinetum callunosum, PV – Pinetum vacciniosum, PM – Pinetum myrtillosum
Fig. 2 in Diversity patterns of carabid beetle (Coleoptera, Carabidae) asemblages in the pine forests of Northern Belarus
Fig. 2. Box-whisker plots with median, 25% and 75% percentiles (box) and minimum and maximum values (whiskers) for (A) changes of species richness and (B) abundance (log transformed) in carabid beetle assemblages of pine forests: (a) PCL – Pinetum cladoniosum, (b) PP – Pinetum pleuroziosum, (c) PC – Pinetum callunosum, (d) PV– Pinetum vacciniosum, (e) PM – Pinetum myrtillosum. Differences among forest types were tested using the ANOVA and Kruskal-Wallis test. Letters (a, b, c, d, e) indicate significant differences (Tukey's and Dunn's post-hoc tests; P<0.05)
Fig. 1 in Diversity patterns of carabid beetle (Coleoptera, Carabidae) asemblages in the pine forests of Northern Belarus
Fig. 1. Map showing the location of the pine forests of the different types (PCL – Pinetum cladoniosum, PC – Pinetum callunosum, PV – Pinetum vacciniosum, PP – Pinetum pleuroziosum, PM – Pinetum myrtillosum)
Figure 7 in Deep soil floatation in Chile reveals diverse and mainly nameless fauna of endogean beetles (Coleoptera)
Figure 7. Maximum Likelihood DNA barcode tree of 102 endogean rove beetles (Staphylinidae) of Chile. Subfamilies are colour coded. Terminal names consist of the specimen number, the most detailed current taxonomic identification (species, genus, tribe, or subfamily), sample number, length of the DNA barcode fragment [with the number of ambiguously read bases in angle brackets], BIN number [if applicable, also denoted on the tree with black dots], and GenBank accession number. Digits at internodes are rapid bootstrap values of 50 % and above.
Fig. 2. Correlations between diversity and abundance across collections. Each record represents a in Streetlights attract a broad array of beetle species
Fig. 2. Correlations between diversity and abundance across collections. Each record represents a night of collection in a given trap. Colors represent traps, with color code being the same as in Figs. 1, 3 and 4. Line represents the regression line between the two variables with intercept forced to 0.
Figure 4 in Spatiotemporal patterns of ground beetle diversity (Coleoptera: Carabidae) in a Ramsar wetland (Chott Tinsilt) of Algeria
Figure 4. Sample-based rarefaction (solid line) and extrapolation (dashed line) curves of species richness estimated for ground beetle communities living in the halophytic vegetation belts surrounding Chott Tinsilt in northeastern Algeria. White solid circles indicate reference samples. Light gray shaded areas represent lower and upper bounds of 95% confidence intervals for the S. Colored/shaded (est) areas indicate ±SDs.
Figure 3 in Spatiotemporal patterns of ground beetle diversity (Coleoptera: Carabidae) in a Ramsar wetland (Chott Tinsilt) of Algeria
Figure 3. Values of observed and estimated (Chao1) species richness with standard deviations (±SD) as vertical error bars, of ground beetle community sampled at Chott Tinsilt, northeastern Algeria.
Figure 1 in Spatiotemporal patterns of ground beetle diversity (Coleoptera: Carabidae) in a Ramsar wetland (Chott Tinsilt) of Algeria
Figure 1. Geographical location of Chott Tinsilt (northeastern Algeria), positioning of sampled stations (T1 and T2), and the layout of experimental design with pitfall traps at each station.
Figure 2 in Spatiotemporal patterns of ground beetle diversity (Coleoptera: Carabidae) in a Ramsar wetland (Chott Tinsilt) of Algeria
Figure 2. Total number of subfamilies, genera, and species of ground beetles (Coleoptera: Carabidae) for each station (T1 and T2), and for the entire wetland of Chott Tinsilt, northeastern Algeria.
Figure 1 in Seasonality and bait type driving the diversity of dung beetle (Scarabaeidae: Scarabaeinae) communities in urban remnants of the Atlantic Forest
Figure 1. Partial map of the state of Pernambuco, with emphasis on the remnants of the Atlantic Forest (Green) and the urban area (Pink) located on the outskirts of FURB Jaguarana in the municipality of Paulista and APA Aldeia-Beberibe in the municipality of Camaragibe, PE, Brazil.
Figure 3 in Seasonality and bait type driving the diversity of dung beetle (Scarabaeidae: Scarabaeinae) communities in urban remnants of the Atlantic Forest
Figure 3. Canonical Correspondence Analysis (CCA) with group formations related to separation and types of baits used in the collection of dung beetles at FURB Jaguarana (A) and APA Aldeia-Beberibe (B).
Figure 2 in Seasonality and bait type driving the diversity of dung beetle (Scarabaeidae: Scarabaeinae) communities in urban remnants of the Atlantic Forest
Figure 2. Differences between diversity index values (q0, q1, q2) for different types of baits (feces, carrion, millipedes) in the rainy and dry season at FURB Jaguarana (A) and APA Aldeia-Beberibe (B). Meaningfulness: <0.001'***'; <0.01'**'; <0.05'*'.
Supporting dataset to "Understanding ladybird beetle diversity in native and hu-man-modified landscapes in the San Cristóbal Island, Gala-pagos Archipelago, Ecuador"
<p>Supporting dataset to the paper Peñaherrera-Romero E, Guerrero-Campoverde A, Rueda-Rodríguez MP, Dávila-Játiva M, Die-Morejón D, Domínguez-Trujillo M, Guerrero-Molina T, Vélez-Darquea E, Cisneros-Heredia DF. (2024) Ladybird Beetle Diversity in Natural and Human-Modified Habitats in the San Cristóbal Island, Galapagos, Ecuador. <em>Insects</em> 15(9):725. <a href="https://doi.org/10.3390/insects15090725">https://doi.org/10.3390/insects15090725</a></p>
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