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1,492 results for “species delimitation”
FIGURE 13 in Species delimitations in the Atractus collaris complex (Serpentes: Dipsadidae)
FIGURE 13. DISTRIBUTION OF Atractus alphonsehogei. THE BLACK CIRCLE REPRESENTS THE TYPE-LOCALITY.
FIGURE 11 in Species delimitation in the Gehyra nana (Squamata: Gekkonidae) complex: cryptic and divergent morphological evolution in the Australian Monsoonal Tropics, with the description of four new species
FIGURE 11. Variation within Gehyra pseudopunctata sp. nov. (scale bar = 10 mm).
FIGURE 6 in Species delimitation in the Gehyra nana (Squamata: Gekkonidae) complex: cryptic and divergent morphological evolution in the Australian Monsoonal Tropics, with the description of four new species
FIGURE 6. Holotype of Gehyra nana (WAM R28214) from King Edward River, WA (scale bar = 10 mm).
FIGURE 16 in Species delimitation in the Gehyra nana (Squamata: Gekkonidae) complex: cryptic and divergent morphological evolution in the Australian Monsoonal Tropics, with the description of four new species
FIGURE 16. Variation within Gehyra pluraporosa sp. nov. (scale bar = 10 mm).
FIGURE 13 in Species delimitation in the Gehyra nana (Squamata: Gekkonidae) complex: cryptic and divergent morphological evolution in the Australian Monsoonal Tropics, with the description of four new species
FIGURE 13. Variation within Gehyra granulum sp. nov. (scale bar = 10 mm).
FIGURE 9 in Species delimitation in the Gehyra nana (Squamata: Gekkonidae) complex: cryptic and divergent morphological evolution in the Australian Monsoonal Tropics, with the description of four new species
FIGURE 9. Variation within Gehyra paranana sp. nov. (scale bar = 10 mm).
Figure 5 from: Rahelivololona EM, Fischer E, Janssens SB, Razafimandimbison SG (2018) Phylogeny, infrageneric classification and species delimitation in the Malagasy Impatiens (Balsaminaceae). PhytoKeys 110: 51-67. https://doi.org/10.3897/phytokeys.110.28216
Figure 5 Maximum likelihood tree based on the combined nuclear-plastid data. Bootstrap support values and Bayesian posterior probabilities are above and below nodes, respectively.
Figure 4 from: Rahelivololona EM, Fischer E, Janssens SB, Razafimandimbison SG (2018) Phylogeny, infrageneric classification and species delimitation in the Malagasy Impatiens (Balsaminaceae). PhytoKeys 110: 51-67. https://doi.org/10.3897/phytokeys.110.28216
Figure 4 A Sclerophyllous montane cloud forest of the Marojejy National park; 1500 m B Subalpine grassland, Marojejy at ca. 2100 m. Photo: E. Fischer.
Figure 3 from: Rahelivololona EM, Fischer E, Janssens SB, Razafimandimbison SG (2018) Phylogeny, infrageneric classification and species delimitation in the Malagasy Impatiens (Balsaminaceae). PhytoKeys 110: 51-67. https://doi.org/10.3897/phytokeys.110.28216
Figure 3 A, B Lowland rainforest of the Marojejy National park A ca. 400 m B ca. 490 m C Moist montane rainforest of the Marojejy National park at ca. 1100 m. Photo: E. Fischer.
Figure 2 from: Rahelivololona EM, Fischer E, Janssens SB, Razafimandimbison SG (2018) Phylogeny, infrageneric classification and species delimitation in the Malagasy Impatiens (Balsaminaceae). PhytoKeys 110: 51-67. https://doi.org/10.3897/phytokeys.110.28216
Figure 2 Representatives of Impatienssubgen.Trimorphopetalum. AImpatienslutzii, Montagne d'Ambre BI.galactica, Marojejy C, DI. "capuronii", Marojejy E, FI.furcata, Marojejy G, KI.navicula, Marojejy H, LI. "humillima", Marojejy II. "hammarbyoides", Marojejy MI.elatostemmoides, Marojejy NI.sp. nov.aff.elatostemmoides 3, Montagne d'Ambre. Photos: E. Fischer.
Figure 1 from: Rahelivololona EM, Fischer E, Janssens SB, Razafimandimbison SG (2018) Phylogeny, infrageneric classification and species delimitation in the Malagasy Impatiens (Balsaminaceae). PhytoKeys 110: 51-67. https://doi.org/10.3897/phytokeys.110.28216
Figure 1 Representatives of Impatienssubgen.Impatiens. A, BImpatiensbicaudata, Montagne d'Ambre CI.lyallii, Montagne d'Ambre D, EI.bisaccata, Montagne d'Ambre FI.max-huberi, Marojejy GI.nomenyae, Marojejy H, II.masoalensis, Marojejy KI.cf.manaharensis, Marojejy L, OI.marojejyensis, Marojejy MI.susan-nathansoniae, Marojejy NI.hendrikii, Marojejy. Photos: E. Fischer.
Supplementary material 1 from: Ottoni FP, Mattos JLO, Katz AM, Bragança PHN (2019) Phylogeny and species delimitation based on molecular approaches on the species of the Australoheros autrani group (Teleostei, Cichlidae), with biogeographic comments. Zoosystematics and Evolution 95(1): 49-64. https://doi.org/10.3897/zse.95.31658
: Data type: Adobe PDF file
Figure 4 from: Ottoni FP, Mattos JLO, Katz AM, Bragança PHN (2019) Phylogeny and species delimitation based on molecular approaches on the species of the Australoheros autrani group (Teleostei, Cichlidae), with biogeographic comments. Zoosystematics and Evolution 95(1): 49-64. https://doi.org/10.3897/zse.95.31658
Figure 4 Time-scaled phylogeny obtained from the Bayesian analysis in BEAST. Values above nodes are mean average ages of the nodes, followed below blue bars representing the 95% highest posterior densities intervals for estimated ages; numbers indicated by arrows are the posterior probability obtained from the Bayesian analysis in MrBayes followed by the node number, corresponding to the node numbers of the Figure 2 and Box 1. PP means posterior probability.
Figure 3 from: Ottoni FP, Mattos JLO, Katz AM, Bragança PHN (2019) Phylogeny and species delimitation based on molecular approaches on the species of the Australoheros autrani group (Teleostei, Cichlidae), with biogeographic comments. Zoosystematics and Evolution 95(1): 49-64. https://doi.org/10.3897/zse.95.31658
Figure 3 Species delimitation tree generated by the Bayesian Poisson Tree Processes (bPTP) model, using a fragment of the mitochondrial gene CYTB. Black lines indicate branching processes among species, red lines indicate branching processes within species. Species of the A.autrani species group delimited through bPTP are indicated with grey bars.
Figure 2 from: Ottoni FP, Mattos JLO, Katz AM, Bragança PHN (2019) Phylogeny and species delimitation based on molecular approaches on the species of the Australoheros autrani group (Teleostei, Cichlidae), with biogeographic comments. Zoosystematics and Evolution 95(1): 49-64. https://doi.org/10.3897/zse.95.31658
Figure 2 Phylogenetic haplotype tree based on Bayesian Inference (BI). Numbers above branches are posterior probability values, and below branches are numbered nodes which represent the combination of nucleotide substitution which define the species (in CBB) or clades. The nucleotide substitutions (CBB) can be checked in box1. Posterior probability value supporting the Australoherosautrani group is indicated in blue, as well as, the three clades herein proposed within this species group are indicated in green. Species of the in-group delimited though the tree based method (WP) are indicated with red bars, as well as, the species of the in-group delimited by nucleotide substitution method (CBB) have their nodes marked in red.
Figure 1 from: Ottoni FP, Mattos JLO, Katz AM, Bragança PHN (2019) Phylogeny and species delimitation based on molecular approaches on the species of the Australoheros autrani group (Teleostei, Cichlidae), with biogeographic comments. Zoosystematics and Evolution 95(1): 49-64. https://doi.org/10.3897/zse.95.31658
Figure 1 Map of the samples obtained for the present work. Circles = Australoherosautrani species group; Red circles = Southern Mata Atlântica clade; Yellow circles = Upper/middle Paraíba do Sul river basin and adjacent drainages clade; Green circles – Northern Mata Atlântica clade; and Square = A. sp. Timbé do Sul. Localities: A.autrani = 1 and 18, A.barbosae = 2, 3, 10, 11 and 19, A.ipatinguensis = 4, A.macacuensis = 5, A.macaensis = 6, A.muriae = 9, A.perdi = 12, A.ribeirae = 14, A.robustus = 7, 8, 15, 16 and 20, A.sanguineus = 17, A.cf.capixaba = 13, and A. sp. Timbé do Sul = 21.
FIGURE 8 in Chameleonfishes in Bangladesh: hipshot taxonomy, sibling species, elusive species, and limits of species delimitation (Teleostei: Badidae)
FIGURE 8. Collecting site of Badis chittagongis on Maheshkhali Island, 7 km north of boat landing.
Supplementary material 5 from: Urgiles VL, Székely P, Székely D, Christodoulides N, Sanchez-Nivicela JC, Savage AE (2019) Genetic delimitation of Pristimantis orestes (Lynch 1979) and P. saturninoi Brito et al., 2017 and the description of two new terrestrial frogs from the Pristimantis orestes species group (Anura, Strabomantidae). ZooKeys 864: 111-146. https://doi.org/10.3897/zookeys.864.35102
: Data type: statistical data
Supplementary material 4 from: Urgiles VL, Székely P, Székely D, Christodoulides N, Sanchez-Nivicela JC, Savage AE (2019) Genetic delimitation of Pristimantis orestes (Lynch 1979) and P. saturninoi Brito et al., 2017 and the description of two new terrestrial frogs from the Pristimantis orestes species group (Anura, Strabomantidae). ZooKeys 864: 111-146. https://doi.org/10.3897/zookeys.864.35102
: Data type: molecular data
Figure 13 from: Urgiles VL, Székely P, Székely D, Christodoulides N, Sanchez-Nivicela JC, Savage AE (2019) Genetic delimitation of Pristimantis orestes (Lynch 1979) and P. saturninoi Brito et al., 2017 and the description of two new terrestrial frogs from the Pristimantis orestes species group (Anura, Strabomantidae). ZooKeys 864: 111-146. https://doi.org/10.3897/zookeys.864.35102
Figure 13 Morphological variation of Pristimantisquintanai sp. nov. in live. A MZUA.AN.1900, profile and dorsal view B MZUA.AN.1880, profile and ventral view C MZUA.AN.2705, profile view.
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Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
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.