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5,864 results for “species diversity”
Figure 1 in Land snail diversity in the monsoon tropics of Northern Australia: revision of the genus Exiligada Iredale, 1939 (Mollusca: Pulmonata: Camaenidae), with description of 13 new species
Figure 1. Bayesian consensus phylogram for Exiligada based on the combined COI and 16S sequence data set (out–group pruned from tree). Nodal support is indicated by mapping Bayesian posterior probabilities and ML bootstrap values (in bold) onto branches. Terminal tips are labelled with voucher numbers of analysed samples.
Figure 12 in Land snail diversity in the monsoon tropics of Northern Australia: revision of the genus Exiligada Iredale, 1939 (Mollusca: Pulmonata: Camaenidae), with description of 13 new species
Figure 12. SEM micrographs of Exiligada shells. A-C, E. gregoriana sp. nov. (paratype AM C.462768). A, Apical view showing protoconch and first whorl. B, Close-up from above of sculpture across entire shell. C, Microsculpture on teleoconch whorl. D-F, E. limbunya sp. nov. (holotype C.475866). D, Apical view showing protoconch and first whorl. E, Close-up from above of sculpture across entire shell. F, Microsculpture on teleoconch whorl. Scale bars: A-B, D-E = 1 mm, C, F = 0.5 mm.
Figure 15 in Land snail diversity in the monsoon tropics of Northern Australia: revision of the genus Exiligada Iredale, 1939 (Mollusca: Pulmonata: Camaenidae), with description of 13 new species
Figure 15. Penial anatomy of E. longicauda sp. nov. (holotype WAM S83169). A. Detail of apical portion of inner penial wall. B. Detail of basal portion of inner penial wall. Scale bars: 5 mm; A, B = 1 mm.
Figure 14 in Land snail diversity in the monsoon tropics of Northern Australia: revision of the genus Exiligada Iredale, 1939 (Mollusca: Pulmonata: Camaenidae), with description of 13 new species
Figure 14. SEM micrographs of Exiligada shells. A-C, E. longicauda sp. nov. (paratype WAM S 49228). A, Apical view showing protoconch and first whorl. B, Close-up from above of sculpture across entire shell. C, Microsculpture on teleoconch whorl. D-F, E. monochroma sp. nov. (paratype AM C.462772). D, Apical view showing protoconch and first whorl. E, Close-up from above of sculpture across entire shell. F, Microsculpture on teleoconch whorl. Scale bars: A-B, D-E = 1 mm, C, F = 0.5 mm.
Figure 3 in Land snail diversity in the monsoon tropics of Northern Australia: revision of the genus Exiligada Iredale, 1939 (Mollusca: Pulmonata: Camaenidae), with description of 13 new species
Figure 3. Diagrammatic representation of pair–wise comparisons of shell parameters in Exiligada species by means of pair-wise one–way ANOVA (H, left; D, right). Full squares: null hypothesis that group means are equal rejected with statistical significance (P <0.05). Crosses: null hypothesis not rejected (P> 0.05).
Figure 7 in Land snail diversity in the monsoon tropics of Northern Australia: revision of the genus Exiligada Iredale, 1939 (Mollusca: Pulmonata: Camaenidae), with description of 13 new species
Figure 7. SEM micrographs of Exiligada shells. A-C, E. negriensis Iredale, 1939 (WAM S49152). A, Apical view showing protoconch and first whorl. B, Close-up from above of sculpture across entire shell. C, Microsculpture on teleoconch whorl. D-F. E. brabyi sp. nov. (paratype WAM S49159). D, Apical view showing protoconch and first whorl. E, Close-up from above of sculpture across entire shell. F, Microsculpture on teleoconch whorl. Scale bars: A-B, D-E = 1 mm, C, F = 0.5 mm.
Figure 5 in Land snail diversity in the monsoon tropics of Northern Australia: revision of the genus Exiligada Iredale, 1939 (Mollusca: Pulmonata: Camaenidae), with description of 13 new species
Figure 5. Shells of Exiligada species. A, E. negriensis (holotype AM C.64865). B, E. brabyi sp. nov. (paratype C.443279). C, E. calciphila sp. nov. (paratype C.462723). D, E. floraevallis sp. nov. (paratype WAM S49204). E, E. gregoriana sp. nov. (paratype AM C.462820). F, E. limbunya sp. nov. (paratype AM C.470205). G, E. longicauda sp. nov. (paratype WAM S49228). H, E. monochroma sp. nov. (paratype AM C.469772).
Figure 18 in Land snail diversity in the monsoon tropics of Northern Australia: revision of the genus Exiligada Iredale, 1939 (Mollusca: Pulmonata: Camaenidae), with description of 13 new species
Figure 18. Penial anatomy of E. montejinni sp. nov. (holotype C.475769). A. External anatomy of penial complex, penial sheath removed. B. Anatomy of inner penial wall and detail of epiphallus–penis junction. Scale bar = 5 mm; a = 1 mm.
Figure 2 in Land snail diversity in the monsoon tropics of Northern Australia: revision of the genus Exiligada Iredale, 1939 (Mollusca: Pulmonata: Camaenidae), with description of 13 new species
Figure 2. Comparison of specimens of Exiligada species by means of box and whisker plots for shell parameters H and D.
Figure 6 in Taxonomy of the African giant pouched rats (Nesomyidae: Cricetomys): molecular and craniometric evidence support an unexpected high species diversity
Figure 6. Canonical analysis comparing operational taxonomic units from Central (left and right bank of Congo River, Democratic Republic of Congo) and East Africa links specimens from Faradje (near type locality of Cricetomys emini) to C. emini and those from Rwanda (near type locality Cricetomys kivuensis) to Cricetomys ansorgei. Below the graph are the various character loadings on roots 1 and 2.
Figure 5. A in Taxonomy of the African giant pouched rats (Nesomyidae: Cricetomys): molecular and craniometric evidence support an unexpected high species diversity
Figure 5. A, canonical analysis comparing all six operational taxonomic units (OTUs). Plotted are skulls that were also sequenced in the molecular analysis (labelled 'g' for Cricetomys gambianus, 'a' for Cricetomys ansorgei, 'e' for Cricetomys emini, '2' for Cricetomys sp. 2, and '3' for Cricetomys sp. 3). Below the graph are the various character loadings on roots 1 and 2. B, tree diagram showing clustering patterns of all six OTUs from this study based on craniometric data.
Figure 4 in Taxonomy of the African giant pouched rats (Nesomyidae: Cricetomys): molecular and craniometric evidence support an unexpected high species diversity
Figure 4. Canonical analysis comparing Cricetomys gambianus, Cricetomys sp. 1, and Cricetomys ansorgei. Below the graph are the various character loadings on roots 1 and 2.
Figure 2 in Taxonomy of the African giant pouched rats (Nesomyidae: Cricetomys): molecular and craniometric evidence support an unexpected high species diversity
Figure 2. Bayesian tree (consensus of two runs, 5 000 000 generations each) based on 735-bp-long Cricetomys cytochrome b sequences. Besides a posteriori support values obtained by MrBayes, bootstrap support obtained for maximum likelihood (100 replications) and maximum parsimony (500 replications) are shown.
Figure 3. A in Taxonomy of the African giant pouched rats (Nesomyidae: Cricetomys): molecular and craniometric evidence support an unexpected high species diversity
Figure 3. A, geographical distribution of sampling localities for the mitochondrial phylogeny resolved in this study in relation to currently recognized type localities of Cricetomys. Colours correspond to those in Figure 2: red for Cricetomys gambianus, dark blue for Cricetomys sp. 1, light blue for Cricetomys sp. 3, green for Cricetomys emini, yellow for Cricetomys sp. 2, and pink for Cricetomys ansorgei. Stars represent various type localities. Numbers represent localities from which sequences were obtained (listed in Table S1). The dotted circles represent sequences from GenBank, for which information on the geographical origin of these sequences is uncertain, except for the country they came from. B, geographical distribution of sampling localities for the craniometric analysis in this study in relation to currently recognized type localities of Cricetomys. Colour codes are as above. Numbers represent localities from which skulls were obtained (listed in Table S2).
Figure 1 in Taxonomy of the African giant pouched rats (Nesomyidae: Cricetomys): molecular and craniometric evidence support an unexpected high species diversity
Figure 1. Approximate distribution patterns of various Cricetomys species named in A, Genest-Villard (1967) and B, Musser & Carleton (2005). The darker shade of grey in the map represents the Guineo-Congolian forest block whereas the lighter grey portion represents the distribution of the savannahs.
Figure 5 in Species diversity in the Monodelphis brevicaudata complex (Didelphimorphia: Didelphidae) inferred from molecular and morphological data, with the description of a new species
Figure 5. Dorsal (top) and ventral (bottom) views of the skulls of old adult specimens of: A, Monodelphis glirina (USNM 521431, female); B, Monodelphis palliolata (USNM 371285, female); C, Monodelphis brevicaudata (USNM 385005, female); D, Monodelphis arlindoi sp. nov. (MPEG 38052, holotype, male); E, Monodelphis touan (ISEM V-1563, male). Scale bar = 10 mm.
Figure 4 in Species diversity in the Monodelphis brevicaudata complex (Didelphimorphia: Didelphidae) inferred from molecular and morphological data, with the description of a new species
Figure 4. Dorsal (left) and ventral (right) views of the skins of adult specimens of (top to bottom): Monodelphis glirina (USNM 521429), Monodelphis palliolata (USNM 406904), Monodelphis brevicaudata (USNM 385005), Monodelphis arlindoi sp. nov. (UFMG 3190, paratype), Monodelphis touan (IEPA 1154). Scale bar = 50 mm.
Figure 7 in Species diversity in the Monodelphis brevicaudata complex (Didelphimorphia: Didelphidae) inferred from molecular and morphological data, with the description of a new species
Figure 7. Adult male of Monodelphis arlindoi sp. nov. (MPEG 42428, paratype) from Porto Trombetas, Oriximiná, Pará, Brazil.
Figure 3 in Species diversity in the Monodelphis brevicaudata complex (Didelphimorphia: Didelphidae) inferred from molecular and morphological data, with the description of a new species
Figure 3. Collecting localities of specimens included in molecular analyses, and corresponding clade structure found in the molecular phylogeny, with taxon names associated with them (tree to the right).
Figure 1 in Species diversity in the Monodelphis brevicaudata complex (Didelphimorphia: Didelphidae) inferred from molecular and morphological data, with the description of a new species
Figure 1. Species of the Monodelphis brevicaudata complex according to Solari (2010). Geographical distributions were modified from Pine & Handley (2008).
ScienceDex guides
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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.