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768 results for “sympatric species”
Supplementary material 5 from: Boroni NL, Lobo LS, Romano PSR, Lessa G (2017) Taxonomic identification using geometric morphometric approach and limited data: an example using the upper molars of two sympatric species of Calomys (Cricetidae: Rodentia). Zoologia 34: 1-11. https://doi.org/10.3897/zoologia.34.e19864
Tests for normality, hornoscedasticity and homogeneity : Data type: statistical data
Supplementary material 4 from: Boroni NL, Lobo LS, Romano PSR, Lessa G (2017) Taxonomic identification using geometric morphometric approach and limited data: an example using the upper molars of two sympatric species of Calomys (Cricetidae: Rodentia). Zoologia 34: 1-11. https://doi.org/10.3897/zoologia.34.e19864
Protocol for testing error in the digitalization : Data type: statistical data
Supplementary material 3 from: Boroni NL, Lobo LS, Romano PSR, Lessa G (2017) Taxonomic identification using geometric morphometric approach and limited data: an example using the upper molars of two sympatric species of Calomys (Cricetidae: Rodentia). Zoologia 34: 1-11. https://doi.org/10.3897/zoologia.34.e19864
Specimens of the wear category class 2 : Data type: species data
Supplementary material 2 from: Boroni NL, Lobo LS, Romano PSR, Lessa G (2017) Taxonomic identification using geometric morphometric approach and limited data: an example using the upper molars of two sympatric species of Calomys (Cricetidae: Rodentia). Zoologia 34: 1-11. https://doi.org/10.3897/zoologia.34.e19864
Wear categories : Data type: measurement
Supplementary material 1 from: Boroni NL, Lobo LS, Romano PSR, Lessa G (2017) Taxonomic identification using geometric morphometric approach and limited data: an example using the upper molars of two sympatric species of Calomys (Cricetidae: Rodentia). Zoologia 34: 1-11. https://doi.org/10.3897/zoologia.34.e19864
Alisphenoid strut : Data type: multimedia
Figure 3 from: Boroni NL, Lobo LS, Romano PSR, Lessa G (2017) Taxonomic identification using geometric morphometric approach and limited data: an example using the upper molars of two sympatric species of Calomys (Cricetidae: Rodentia). Zoologia 34: 1-11. https://doi.org/10.3897/zoologia.34.e19864
Figure 3 - PCA showing the individual projections of Calomys sp., C. expulsus and C. tener in the two major axis (PC1 28.7%, PC2 12.3% of the variance). The wireframes illustrate shape differences between most different specimens: CE 09, CT 05, CT 02, and SP 11. Black circles: C. expulsus; Gray triangle: C. tener; Black square: Calomys sp. identified as C. expulsus; Gray square: Calomys sp. identified as C. tener; Gray triangle with black edge: specimen CT 02; Stars: mean shape for each species.
Figure 7 from: Boroni NL, Lobo LS, Romano PSR, Lessa G (2017) Taxonomic identification using geometric morphometric approach and limited data: an example using the upper molars of two sympatric species of Calomys (Cricetidae: Rodentia). Zoologia 34: 1-11. https://doi.org/10.3897/zoologia.34.e19864
Figure 7 - Pooled regression within the two species, between shape (dependent variable) and centroid size (independent variable). Black circles: C. expulsus; Gray triangle: C. tener; Black square: Calomys sp. identified as C. expulsus; Gray square: Calomys sp. identified as C. tener.
Figures 4-6 from: Boroni NL, Lobo LS, Romano PSR, Lessa G (2017) Taxonomic identification using geometric morphometric approach and limited data: an example using the upper molars of two sympatric species of Calomys (Cricetidae: Rodentia). Zoologia 34: 1-11. https://doi.org/10.3897/zoologia.34.e19864
Figures 4-6 Shape differences wireframes in PC1. Gray solid lines indicate C. tener (positive PC1 values) and black dotted lines indicate C. expulsus (negative PC1 values), see Fig. 3 for individual projections. (4) Differences between the mean shapes of C. tener and C. expulsus; (5) differences between the disparate shape of C. tener represented by CT 05 and C. expulsus represented by CE 09; (6) shape differences wireframes in PC2. Gray solid lines indicate the mean of shape of PC2 value and black dotted lines indicate specimen CT 02 (C. tener outlier).
Figure 1. A in Pollination and breeding system in two sympatric Fuchsia (Onagraceae) species at the Parque Nacional do Itatiaia (Brazil): Hummingbirds, insects and facultative self-pollination
Figure 1. A. Flowers of Fuchsia regia in female (left) and male phases (right). B. Flowers of F. campos-portoi. C. Possible hybrid (F. regia x F. campos-portoi) photographed in 2009, near the IBAMA base ao the Itatiaia National Park.
Figure 1 in Use of time-at-temperature data to describe dive behavior in five species of sympatric deep-diving toothed whales
Figure 1. (a) Plot of temperature as a function of depth across all types of profiles within the study area. Temperature profile types included coarse-resolution profiles of depth and temperature (PDT, 2011–2014) recovered from SPLASH tag deployments on four species of cetaceans, as well as moderate- to high-resolution sampling from neutrally buoyant Argo profiling floats (PFL, 2004–2013) and conductivity temperature depth instruments (CTD, 1990–2013) from the World Ocean Database (WOD). Modified box plots have been overlaid on these profiles showing the central tendency (median) and depth variation of the even numbered isotherms between 4°C and 24°C. (b) Map showing sampling locations of these three types of temperature profile data that were employed in statistical descriptions of thermal structure in the NW Bahamas. The study area boundary and major geographic and oceanographic features are also labeled. The line features used to calculate the distance proxies across the Providence Channels (dchan) and distance from the Florida Strait (dflst) are highlighted in bold.
Figure 5 from: Kasparek M (2018) Taxonomic revision proves Trachusa pubescens (Morawitz, 1872) sensu lato to be a complex of allopatric and sympatric species in South-Eastern Europe and Western Asia (Hymenoptera, Apoidea, Anthidiini). ZooKeys 764: 111-144. https://doi.org/10.3897/zookeys.764.24581
Figure 5 Mandible width (left) and index clypeus length / mandible width in males of the five species of the Trachusa pubescens complex. Abbreviations: bal = T. balcanica sp. n.; hak = T. hakkariensis sp. n.; max = T. maxima; pub = T. pubescens; ver = T. verhoeffi.
Figure 9 from: Kasparek M (2018) Taxonomic revision proves Trachusa pubescens (Morawitz, 1872) sensu lato to be a complex of allopatric and sympatric species in South-Eastern Europe and Western Asia (Hymenoptera, Apoidea, Anthidiini). ZooKeys 764: 111-144. https://doi.org/10.3897/zookeys.764.24581
Figure 9 Male genitalia of the five species of the Trachusa pubescens complex. A Trachusa balcanica sp. n. (FYR of Macedonia) B–C T. pubescens (two different specimens from Greece) D T. maxima (Armenia) E T. verhoeffi (SW Turkey) F T. verhoeffi (Israel).
Figure 2 from: Kasparek M (2018) Taxonomic revision proves Trachusa pubescens (Morawitz, 1872) sensu lato to be a complex of allopatric and sympatric species in South-Eastern Europe and Western Asia (Hymenoptera, Apoidea, Anthidiini). ZooKeys 764: 111-144. https://doi.org/10.3897/zookeys.764.24581
Figure 2 Principal Component Analysis (PCA) of 26 morphometric variables of males of Trachusa pubescens s. l. (N = 132). Individuals subsequently assigned to T. balcanica sp. n. and T. maxima are shown here in a different colour. All other OUs are shown here in the same colour. One specimen from central Iran is significantly different from all other specimens of the group. The confidence ellipses show a confidence interval of 80%.
Figure 15 from: Kasparek M (2018) Taxonomic revision proves Trachusa pubescens (Morawitz, 1872) sensu lato to be a complex of allopatric and sympatric species in South-Eastern Europe and Western Asia (Hymenoptera, Apoidea, Anthidiini). ZooKeys 764: 111-144. https://doi.org/10.3897/zookeys.764.24581
Figure 15 The two apical terga (T6–T7) of males of the five species of the Trachusa pubescens complex.
Figure 11 from: Kasparek M (2018) Taxonomic revision proves Trachusa pubescens (Morawitz, 1872) sensu lato to be a complex of allopatric and sympatric species in South-Eastern Europe and Western Asia (Hymenoptera, Apoidea, Anthidiini). ZooKeys 764: 111-144. https://doi.org/10.3897/zookeys.764.24581
Figure 11 Males of the five species of the Trachusa pubescens complex in dorsal view: A T. balcanica sp. n. B T. hakkariensis sp. n. C T. maxima D T. pubescens E T. verhoeffi.
Figure 17 from: Kasparek M (2018) Taxonomic revision proves Trachusa pubescens (Morawitz, 1872) sensu lato to be a complex of allopatric and sympatric species in South-Eastern Europe and Western Asia (Hymenoptera, Apoidea, Anthidiini). ZooKeys 764: 111-144. https://doi.org/10.3897/zookeys.764.24581
Figure 17 Distribution of the species of the Trachusa pubescens complex. The red circle shows the locus typicus of T. pubescens s. str. A locality of T. pubescens s. str. in Turkmenistan is not shown as it is beyond the limits of the map.
Figure 10 from: Kasparek M (2018) Taxonomic revision proves Trachusa pubescens (Morawitz, 1872) sensu lato to be a complex of allopatric and sympatric species in South-Eastern Europe and Western Asia (Hymenoptera, Apoidea, Anthidiini). ZooKeys 764: 111-144. https://doi.org/10.3897/zookeys.764.24581
Figure 10 Apices of the penis valves in the Trachusa pubescens complex. Hook-shaped apices (left) are found in Trachusa balcanica sp. n., T. maxima, T. hakkariensis sp. n., and T. verhoeffi. The apices of the penis valves are straight only in T. pubescens (right).
Figure 1 from: Kasparek M (2018) Taxonomic revision proves Trachusa pubescens (Morawitz, 1872) sensu lato to be a complex of allopatric and sympatric species in South-Eastern Europe and Western Asia (Hymenoptera, Apoidea, Anthidiini). ZooKeys 764: 111-144. https://doi.org/10.3897/zookeys.764.24581
Figure 1 Measurements taken for the morphometric analysis. Note that the measurements were taken from positions in which both points of reference become equidistant from the lens of the microscope. This is not necessarily the perspective shown in the drawing.
Figure 4 from: Kasparek M (2018) Taxonomic revision proves Trachusa pubescens (Morawitz, 1872) sensu lato to be a complex of allopatric and sympatric species in South-Eastern Europe and Western Asia (Hymenoptera, Apoidea, Anthidiini). ZooKeys 764: 111-144. https://doi.org/10.3897/zookeys.764.24581
Figure 4 Results of a Discriminant Analysis of the Operational Units (OU) assigned to Trachusa pubescens s. str. based on 26 morphometric characters of the male.
Figure 16 from: Kasparek M (2018) Taxonomic revision proves Trachusa pubescens (Morawitz, 1872) sensu lato to be a complex of allopatric and sympatric species in South-Eastern Europe and Western Asia (Hymenoptera, Apoidea, Anthidiini). ZooKeys 764: 111-144. https://doi.org/10.3897/zookeys.764.24581
Figure 16 Discriminant Analysis (DA) of the 26 morphometric characters of males of Trachusa balcanica sp. n., T. hakkariensis sp. n., and T. maxima. Members of these OUs are characterised by an emarginate clypeus and subacute lateral projections of T6. Trachusa maxima is subdivided into the Armenian OU (including one specimen from central Iran) and the Anatolian OU.
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International Brain Laboratory public data
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OpenNeuro
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