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67 results for “phenetics”
FIGURE 17 in Stolonochloa, a new Australian genus segregated from Panicum (Poaceae: Panicoideae: Paniceae: Boivinellinae) based on phenetic analysis of morphological data
FIGURE 17. Scanning electron micrograph of margin of the upper lemma of Entolasia, Panicum s.s. and Stolonochloa. a. S. lachnophylla from Forster PIF42156 (BRI). b. S. pygmaea from Bean 31074 (BRI). c. E. stricta from Thompson MOR756 (BRI). d. P. effusum from Thompson EJT916 (BRI). Images: E.J. Thompson; captured at x1000. Scale bar: 100 µm. Abbreviations: FM margin flat on the palea, tapering from thickened indurated body to membranous near edge; IM margin inrolled, thickened and indurated throughout; UL upper lemma; mah simple macrohair; UP upper palea; cp compound papillae, sp simple papillae
FIGURE 6 in Phenetic analysis of the complex Senna fabrisii-S. trichosepala (Leguminosae, Caesalpiniodeae, Aphyllae) based on morphological characters and seed protein electrophoretic profiles
FIGURE 6. Dendrogram obtained from cluster analysis of the S. fabrisii–S. trichosepala complex using UPGMA based on soluble protein profile. Names of each OTU correspond to those recorded on herbarium sheets (abbreviated as SF (S. fabrisii) and ST (S. trichosepala) and the localities of occurrence of each taxon. The number attached with the abbreviations corresponds to the sample order.
FIGURE 2 in Phenetic analysis of the complex Senna fabrisii-S. trichosepala (Leguminosae, Caesalpiniodeae, Aphyllae) based on morphological characters and seed protein electrophoretic profiles
FIGURE 2. Principal component analysis (PCA) scatter plots of the first two components. The morphological characters used in this analysis are listed in Table 1.
FIGURE 4 in Phenetic analysis of the complex Senna fabrisii-S. trichosepala (Leguminosae, Caesalpiniodeae, Aphyllae) based on morphological characters and seed protein electrophoretic profiles
FIGURE 4. Dendrogram obtained from cluster analysis of the S. fabrisi– S. trichosepala complex using UPGMA based on morphological characters. (abbreviated as SF in blue (S. fabrisii) and ST in red (S. trichosepala).
FIGURE 1 in Phenetic analysis of the complex Senna fabrisii-S. trichosepala (Leguminosae, Caesalpiniodeae, Aphyllae) based on morphological characters and seed protein electrophoretic profiles
FIGURE 1. Box plots representing the variability of the quantitative characters in S. fabrisii–S. trichosepala complex. Points represent outliers.
FIG. 2 in Cladistic, phenetic and biogeographical analysis of the ¯ightless dung beetle genus, Gyronotus van Lansberge (Scarabaeidae: Scarabaeinae), in threatened eastern Afrotropical forests
FIG. 2. Geographical distribution of Gyronotus pumilus and G. carinatus relative to altitude and the subtropical, coastal, climate type II (I)a after Walter and Lieth (1964).
FIG. 3 in Cladistic, phenetic and biogeographical analysis of the ¯ightless dung beetle genus, Gyronotus van Lansberge (Scarabaeidae: Scarabaeinae), in threatened eastern Afrotropical forests
FIG. 3. Centre-rooted distance dendrograms and centre-rooted, consensus parsimony cladograms for inter-relationships between Gyronotus species. (A, B) Cladistic matrix derived from double-standardized raw morphometric measurements by divergence coding (Thorpe, 1984). (A) Distance dendrogram based on 27 characters. (B) Parsimony cladogram based on 11 informative characters, tree length 528, C.I. 50.893. (C, D) Cladistic matrix derived from double-standardized log 10
Ludt et al. 2020, Fig. S1: Phenetic tree of sequence similarity constructed using a maximum likelihood approach for mtDNA COI sequences from the EAD survey of the bony-fish species of the Arabian Gulf
<p>Ludt et al. 2020, Fig. S1: Phenetic tree of sequence similarity constructed using a maximum likelihood approach for mtDNA COI sequences from the EAD survey of the bony-fish species of the Arabian Gulf.</p> <p>Ludt, W.B., Jabado, R.W., Al Hameli, S.M., Freeman, L., Teruyama, G., Chakrabarty, P. & Al Dhaheri, S.S. (2020) Establishing a reference collection and DNA barcoding the coastal fishes of the United Arab Emirates. <em>Journal of the Ocean Science Foundation</em>, 35, 54–64.</p>
FIGURE 27 in Stolonochloa, a new Australian genus segregated from Panicum (Poaceae: Panicoideae: Paniceae: Boivinellinae) based on phenetic analysis of morphological data
FIGURE 27. Map of the distribution of the species of Stolonochloa.
FIGURE 5 in Phenetic analysis of the complex Senna fabrisii-S. trichosepala (Leguminosae, Caesalpiniodeae, Aphyllae) based on morphological characters and seed protein electrophoretic profiles
FIGURE 5. Gel showingthe SDS-PAGE seed protein profiles.
FIGURE 7 in Phenetic analysis of the complex Senna fabrisii-S. trichosepala (Leguminosae, Caesalpiniodeae, Aphyllae) based on morphological characters and seed protein electrophoretic profiles
FIGURE 7. Distribution map of S. fabrisii and S. trichosepala.
FIGURE 3 in Phenetic analysis of the complex Senna fabrisii-S. trichosepala (Leguminosae, Caesalpiniodeae, Aphyllae) based on morphological characters and seed protein electrophoretic profiles
FIGURE 3. Scatter plots of the first and third components.
Figure 4 in The Arcoidea (Mollusca: Bivalvia): a review of the current phenetic-based systematics
Figure 4. Diversity of form in the Noetiidae and typical genera arranged in the two subfamilies Noetiinae and Striarcinae.
Figure 7 from: Bruhl J, Stimpson M, Weston P, Telford I (2012) First instalment in resolution of the Banksia spinulosa complex (Proteaceae): B. neoanglica, a new species supported by phenetic analysis, ecology and geography. PhytoKeys 14: 57-80. https://doi.org/10.3897/phytokeys.14.3415
Figure 7 - Distribution of Banksia neoanglica(solid black circles). Towns and cities indicated by open circles.
Figure 6 from: Bruhl J, Stimpson M, Weston P, Telford I (2012) First instalment in resolution of the Banksia spinulosa complex (Proteaceae): B. neoanglica, a new species supported by phenetic analysis, ecology and geography. PhytoKeys 14: 57-80. https://doi.org/10.3897/phytokeys.14.3415
Figure 6 - Banksia neoanglica at neotype locality. A Habitat B Conflorescences on shrub C Conflorescence from the neotype collection(M.L. Stimpson 180, J.J. Bruhl & I.R. Telford) showing basipetal development; upper flowers with pollen on pollen presentors D Conflorescence and infructescence with black styles at preanthesis. E–G Apex of conflorescences at successive stages of development exhibiting variation in perianth and style colour. Scale bars = 1 cm.
Figure 5 from: Bruhl J, Stimpson M, Weston P, Telford I (2012) First instalment in resolution of the Banksia spinulosa complex (Proteaceae): B. neoanglica, a new species supported by phenetic analysis, ecology and geography. PhytoKeys 14: 57-80. https://doi.org/10.3897/phytokeys.14.3415
Figure 5 - Photograph of the neotype of Banksia spinulosa var. neoanglica A.S.George (M.L. Stimpson 180, J.J. Bruhl & I.R. Telford, NE 98613).
Figure 4 from: Bruhl J, Stimpson M, Weston P, Telford I (2012) First instalment in resolution of the Banksia spinulosa complex (Proteaceae): B. neoanglica, a new species supported by phenetic analysis, ecology and geography. PhytoKeys 14: 57-80. https://doi.org/10.3897/phytokeys.14.3415
Figure 4 - Involucral bracts on young conflorescences in the Banksia spinulosa complex. A Banksia cunninghamii sensu stricto (M.L. Stimpson 122) B Banksia spinulosa sensu stricto (M.L. Stimpson 125) C Banksia neoanglica (M.L. Stimpson 81) D Banksia collina sensu lato (M.L. Stimpson 25A). Scale bar = 2.5 mm.
Figure 3 from: Bruhl J, Stimpson M, Weston P, Telford I (2012) First instalment in resolution of the Banksia spinulosa complex (Proteaceae): B. neoanglica, a new species supported by phenetic analysis, ecology and geography. PhytoKeys 14: 57-80. https://doi.org/10.3897/phytokeys.14.3415
Figure 3 - Common bractson young conflorescences in the Banksia spinulosa species complex: A Banksia neoanglica (BanksiaL. Stimpson 98) B Banksia cunninghamii sensu stricto (M.L. Stimpson 122) C Banksia collina sensu lato (M.L. Stimpson 25A) D Banksia spinulosa sensu stricto. (M.L. Stimpson 120). Scale bar = 1 mm.
Figure 2 from: Bruhl J, Stimpson M, Weston P, Telford I (2012) First instalment in resolution of the Banksia spinulosa complex (Proteaceae): B. neoanglica, a new species supported by phenetic analysis, ecology and geography. PhytoKeys 14: 57-80. https://doi.org/10.3897/phytokeys.14.3415
Figure 2 - Flexible UPGMA phenogram of OTUs in the Banksia spinulosa complex. Major groups from top to bottom: Banksia cunninghamii subsp. cunninghamii, Banksia cunninghamii subsp. A, B. spinulosa var. collina sens. lat., Banksia spinulosa var. spinulosa, Banksia spinulosa from Morisset, Bouddi and Calga. See Table 2 for characters and Appendix 1 for data.
Figure 1 from: Bruhl J, Stimpson M, Weston P, Telford I (2012) First instalment in resolution of the Banksia spinulosa complex (Proteaceae): B. neoanglica, a new species supported by phenetic analysis, ecology and geography. PhytoKeys 14: 57-80. https://doi.org/10.3897/phytokeys.14.3415
Figure 1 - 3D ordination from semi-strong multidimensional scaling of the Banksia spinulosa complex. From to leftto right, Banksia spinulosa var. collina sens. lat., Banksia spinulosa from Morisset, Bouddi and Calga, Banksia spinulosa var. spinulosa, Banksia cunninghamii subsp. cunninghamii, Banksia cunninghamii subsp. A. Ordination stress = 0.795. Size and colour of OTUs represents perspective. Ordination orientated to highlight separation of groups of OTUs. See Table 2 for characters and Appendix 1 for data.
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.