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1,138 results for “cryptic diversity”
Data from: Cryptic lineage diversity, body size divergence and sympatry in a species complex of Australian lizards (Gehyra)
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Supplementary material 3 from: Lim BK, Loureiro LO, Garbino GST (2020) Cryptic diversity and range extension in the big-eyed bat genus Chiroderma (Chiroptera, Phyllostomidae). ZooKeys 918: 41-63. https://doi.org/10.3897/zookeys.918.48786
: Data type: phylogenetic dendrogram
Supplementary material 2 from: Lim BK, Loureiro LO, Garbino GST (2020) Cryptic diversity and range extension in the big-eyed bat genus Chiroderma (Chiroptera, Phyllostomidae). ZooKeys 918: 41-63. https://doi.org/10.3897/zookeys.918.48786
: Data type: phylogenetic dendrogram
Supplementary material 4 from: Lim BK, Loureiro LO, Garbino GST (2020) Cryptic diversity and range extension in the big-eyed bat genus Chiroderma (Chiroptera, Phyllostomidae). ZooKeys 918: 41-63. https://doi.org/10.3897/zookeys.918.48786
: Data type: phylogenetic dendrogram
Figure 8 from: Lim BK, Loureiro LO, Garbino GST (2020) Cryptic diversity and range extension in the big-eyed bat genus Chiroderma (Chiroptera, Phyllostomidae). ZooKeys 918: 41-63. https://doi.org/10.3897/zookeys.918.48786
Figure 8 Dorsal, ventral, and lateral views of the skull of the holotype of Chiroderma gorgasi (USNM 309903).
Figure 6 from: Lim BK, Loureiro LO, Garbino GST (2020) Cryptic diversity and range extension in the big-eyed bat genus Chiroderma (Chiroptera, Phyllostomidae). ZooKeys 918: 41-63. https://doi.org/10.3897/zookeys.918.48786
Figure 6 Geographic distribution of Chiroderma gorgasi (▲) and C. trinitatum (●) localities analyzed in our study (See Appendix 3) (gray circle) Represents marginal localities reported for C. trinitatum and (gray triangle) C. gorgasi reported by previous papers (Handley 1967; Pine et al. 1970; Ojasti and Linares 1971; Gardner 1976; Albuja 1989; Timm and LaVal 1998; Lim and Engstrom 2001; Genoways et al. 1981; Webster and Fugler 1984; Anderson 1997; Ochoa et al. 1988; Simmons and Voss 1998; Gardner 2008).
Figure 2 from: Lim BK, Loureiro LO, Garbino GST (2020) Cryptic diversity and range extension in the big-eyed bat genus Chiroderma (Chiroptera, Phyllostomidae). ZooKeys 918: 41-63. https://doi.org/10.3897/zookeys.918.48786
Figure 2 Collecting locality of the first record of the big-eyed bat Chiroderma improvisum from Nevis caught in a harp trap on April 28, 2016. The habitat is a dry ravine within forest that is bisected by a road in the residential area of Barnes Ghaut.
Figure 4 from: Lim BK, Loureiro LO, Garbino GST (2020) Cryptic diversity and range extension in the big-eyed bat genus Chiroderma (Chiroptera, Phyllostomidae). ZooKeys 918: 41-63. https://doi.org/10.3897/zookeys.918.48786
Figure 4 Principal Component Analysis (PCA) carried out using the correlation matrix of ten measurements for six taxa of the big-eyed bat Chiroderma. C. trinitatum gorgasi (■) C. trinitatum trinitatum (□), C. salvini (×), C. villosum (+), C. doriae (●), and C. improvisum (◊).
Supplementary material 1 from: Lim BK, Loureiro LO, Garbino GST (2020) Cryptic diversity and range extension in the big-eyed bat genus Chiroderma (Chiroptera, Phyllostomidae). ZooKeys 918: 41-63. https://doi.org/10.3897/zookeys.918.48786
: Data type: phylogenetic dendrogram
Figure 3 from: Lim BK, Loureiro LO, Garbino GST (2020) Cryptic diversity and range extension in the big-eyed bat genus Chiroderma (Chiroptera, Phyllostomidae). ZooKeys 918: 41-63. https://doi.org/10.3897/zookeys.918.48786
Figure 3 Maximum likelihood tree of cytochrome c oxidase subunit 1 gene for big-eyed bats Chiroderma and general localities of molecular sampling sites. Bootstrap percentages show support at each node.
Figure 5 from: Lim BK, Loureiro LO, Garbino GST (2020) Cryptic diversity and range extension in the big-eyed bat genus Chiroderma (Chiroptera, Phyllostomidae). ZooKeys 918: 41-63. https://doi.org/10.3897/zookeys.918.48786
Figure 5 Lateral view of the second lower premolar on the right mandible of AChiroderma gorgasi and BC. trinitatum. The arrow points to the accessory cusp that is absent in C. gorgasi and present in C. trinitatum. But note the variation in cusp formation in C. trinitatum.
FIGURE 7 in Accessing cryptic diversity in Neotropical rattlesnakes (Serpentes: Viperidae: Crotalus) with the description of two new species
FIGURE 7. Dorsal and lateral view of the head of the holotype of Crotalus ehecatl (ECO-CH-H 3778).
Fig. 6 in Morphometry and DNA barcoding reveal cryptic diversity in the genus Enteromius (Cypriniformes: Cyprinidae) from the Congo basin, Africa - Corrigendum
Fig. 6. Scatterplot of PC2 against PC1 for a PCA on 8 meristics (n = 60) of E. cf. miolepis (Boulenger, 1902) specimens from the Congo basin (excluding types): 'Kisangani region' 1 (◊), Ituri 1 (♦), Itimbiri (∆), Léfini (▲), Epulu 1 (○), Inkisi (●), Luapula 1 (□), Luki 1 (■), Luapula 2 (), Luapula 3 (▼), Ituri 2 (+), and Luki 2 (). Specimens from Luapula 1 and Luapula 2 can be separated from each other based on a PCA on the log-transformed measurements; specimens of Luki 2 fall separated when barbel lengths are included; specimens from 'Kisangani region' 1 and Itimbiri can be distinguished based on colour pattern.
Appendix 1 in Morphometry and DNA barcoding reveal cryptic diversity in the genus Enteromius (Cypriniformes: Cyprinidae) from the Congo basin, Africa
Appendix 1. List of the morphologically examined specimens. A. Non-type specimens. B. Type specimens.
Fig. 1 in Morphometry and DNA barcoding reveal cryptic diversity in the genus Enteromius (Cypriniformes: Cyprinidae) from the Congo basin, Africa
Fig. 1. Schematic representation of the four 'a priori' Enteromius groups with their characteristic morphological features (dorsal spine morphology and melanin pattern). A. E. cf. miolepis (Boulenger, 1902) (38.1–111.0 mm). B. E. cf. pellegrini (Poll, 1939) (40.7–81.3 mm). C. E. cf. brazzai (Pellegrin, 1901) (44.8–82.8 mm). D. E. cf. atromaculatus (Nichols & Griscom, 1917) (28.3–55.8 mm). Drawings modified from Bamba et al. (2011).
Fig. 5 in Morphometry and DNA barcoding reveal cryptic diversity in the genus Enteromius (Cypriniformes: Cyprinidae) from the Congo basin, Africa
Fig. 5. Scatterplot of PC2 against PC1 for a PCA on 10 meristics (n = 36) of E. cf. miolepis specimens from the Lower Congo: Inkisi (◊), Luki 1 (♦) and Luki 2 (∆). Also shown are the type specimens examined of: E. miolepis (Boulenger, 1902) (○), E. holotaenia (Boulenger, 1904) (●), E. eutaenia (Boulenger, 1904) (□) and E. kerstenii (Peters, 1868) (■).
Fig. 6 in Morphometry and DNA barcoding reveal cryptic diversity in the genus Enteromius (Cypriniformes: Cyprinidae) from the Congo basin, Africa
Fig. 6. Scatterplot of PC2 against PC1 for a PCA on 8 meristics (n = 60) of E. cf. miolepis (Boulenger, 1902) specimens from the Congo basin (excluding types): 'Kisangani region' 1 (◊), Ituri 1 (♦), Itimbiri (∆), Léfini (▲), Epulu 1 (○), Inkisi (●), Luapula 1 (□), Luki 1 (■), Luapula 2 (), Luapula 3 (▼), Ituri 2 (+), and Luki 2 (). Specimens from Luapula 1 and Luapula 2 can be separated from each other based on a PCA on the log-transformed measurements; specimens of Luki 2 fall separated when barbel lengths are included; specimens from Kisangani region' 1 and Itimbiri can be distinguished based on colour pattern.
Fig. 3 in Morphometry and DNA barcoding reveal cryptic diversity in the genus Enteromius (Cypriniformes: Cyprinidae) from the Congo basin, Africa
Fig. 3. Scatterplot of PC2 against PC1 for a PCA on 17 log-transformed measurements (n = 177) of Enteromius Cope, 1867: E. cf. miolepis (Boulenger, 1902) (◊), E. cf. brazzai (Pellegrin, 1901) (♦), E. cf. pellegrini (Poll, 1939) (∆), and E. cf. atromaculatus (Nichols & Griscom, 1917) (▲). Also shown are the type specimens examined of: E. miolepis (Boulenger, 1902) (○), E. holotaenia (Boulenger, 1904) (●), E. eutaenia (Boulenger, 1904) (□), E. kerstenii (Peters, 1868) (■), E. brazzai (Pellegrin, 1901) (), E. tshopoensis (De Vos, 1991) (▼), E. pellegrini (Poll, 1939) (+), and E. atromaculatus (Nichols & Griscom, 1917) ().
Supplementary material 2 from: Jażdżewska AM, Rewicz T, Mamos T, Wattier R, Bącela-Spychalska K, Grabowski M (2020) Cryptic diversity and mtDNA phylogeography of the invasive demon shrimp, Dikerogammarus haemobaphes (Eichwald, 1841), in Europe. NeoBiota 57: 53-86. https://doi.org/10.3897/neobiota.57.46699
Table S2
Supplementary material 1 from: Jażdżewska AM, Rewicz T, Mamos T, Wattier R, Bącela-Spychalska K, Grabowski M (2020) Cryptic diversity and mtDNA phylogeography of the invasive demon shrimp, Dikerogammarus haemobaphes (Eichwald, 1841), in Europe. NeoBiota 57: 53-86. https://doi.org/10.3897/neobiota.57.46699
Table S1
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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