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18,140 results for “Phylogenetic”
Figure 4. Living animals. A in A phylogenetic analysis and systematic revision of the cryptobranch dorids (Mollusca, Nudibranchia, Anthobranchia)
Figure 4. Living animals. A, Doris pseudoargus (CASIZ 121105). B, Doris immonda (CASIZ 089023), photo by T. M. Gosliner. C, Doris granulosa (CASIZ 073536), photo by T. M. Gosliner. D, Discodoris boholiensis (CASIZ 083654), photo by T. M. Gosliner. E, Discodoris ketos, San Pedrillo, Puntarenas, Costa Rica, photo by T. M. Gosliner. F, Thordisa rubescens (CASIZ 015860), photo by T. M. Gosliner. G, Aphelodoris antillensis (CASIZ 077289), photo by T. M. Gosliner. H, Peltodoris atromaculata (CASIZ 119474). I, Peltodoris nobilis, Monterey Bay, California, photo by A. Smith.
Figure 14 in A phylogenetic analysis and systematic revision of the cryptobranch dorids (Mollusca, Nudibranchia, Anthobranchia)
Figure 14. Hexabranchus sanguineus (CASIZ 071897), SEM images of the radula and jaws. A, inner lateral teeth; scale bar = 100 Mm. B, mid-lateral teeth; scale bar = 100 Mm. C, outer lateral teeth; scale bar = 150 Mm. D, jaw elements; scale bar = 10 Mm.
Figure 22 in A phylogenetic analysis and systematic revision of the cryptobranch dorids (Mollusca, Nudibranchia, Anthobranchia)
Figure 22. Thordisa rubescens (CASIZ 068976). A, general view of the anatomy; scale bar = 1 mm. B, reproductive system; scale bar = 1 mm. C, detail of the ampulla; scale bar = 1 mm. D, lateral view of the buccal bulb; scale bar = 1 mm. E, central nervous system; scale bar = 1 mm. F, ventral view of the mouth area; scale bar = 1 mm.
Figure 5 in A phylogenetic analysis and systematic revision of the cryptobranch dorids (Mollusca, Nudibranchia, Anthobranchia)
Figure 5. Doris pseudoargus (CASIZ 081871), SEM images of the radula and dorsal tubercles. A, inner lateral teeth; scale bar = 75 Mm. B, mid-lateral teeth; scale bar = 75 Mm. C, outer lateral teeth; scale bar = 43 Mm. D, dorsal tubercles; scale bar = 750 Mm.
Figure 29 in A phylogenetic analysis and systematic revision of the cryptobranch dorids (Mollusca, Nudibranchia, Anthobranchia)
Figure 29. Peltodoris atromaculata (CASIZ 072584). A, general view of the anatomy; scale bar = 1 mm. B, reproductive system; scale bar = 1 mm. C, detail of several reproductive organs; scale bar = 1 mm. D, lateral view of the buccal bulb; scale bar = 1 mm. E, central nervous system; scale bar = 0.5 mm. F, ventral view of the mouth area; scale bar = 1 mm.
Figure 28 in A phylogenetic analysis and systematic revision of the cryptobranch dorids (Mollusca, Nudibranchia, Anthobranchia)
Figure 28. Peltodoris atromaculata (CASIZ 072584), SEM images of the radula and dorsal tubercles. A, inner lateral teeth; scale bar = 75 Mm. B, mid-lateral teeth; scale bar = 250 Mm. C, outer lateral teeth; scale bar = 150 Mm. D, dorsal tubercles; scale bar = 250 Mm.
Figure 1. Phylogenetic hypotheses for the Micropsectra atrofasciata species group, only including species with sequenced COII. A in A revision of West Palaearctic species of the Micropsectra atrofasciata species group (Diptera: Chironomidae)
Figure 1. Phylogenetic hypotheses for the Micropsectra atrofasciata species group, only including species with sequenced COII. A, result from Bayesian analysis of COII gene sequences. Posterior probabilities shown above branches, bootstrap support below branches from parsimony analysis of the same data set. B, result from parsimony analysis of the combined molecular and morphological data sets. Bremer support on branches. C, result from parsimony analysis of the combined molecular and morphological data sets, with third positions excluded. Bremer support on branches.
Figure 2. Phylogenetic hypotheses for the Micropsectra atrofasciata species group. A in A revision of West Palaearctic species of the Micropsectra atrofasciata species group (Diptera: Chironomidae)
Figure 2. Phylogenetic hypotheses for the Micropsectra atrofasciata species group. A, result from parsimony analysis of the morphological character matrix, with characters weighted according to their rescaled consistency indices. B, result from parsimony analysis of the combined molecular and morphological matrices, using tree in Figure 1C as backbone constraint.
Figure 6 in A new choristodere (Reptilia: Diapsida) from the Lower Cretaceous of western Liaoning Province, China, and phylogenetic relationships of Monjurosuchidae
Figure 6. Comparison of the two equally parsimonious trees (TL = 123 steps; CI = 0.85; RI = 0.87) derived from analysis of data presented in Appendices 1 and 2.
Figure 5 in A new choristodere (Reptilia: Diapsida) from the Lower Cretaceous of western Liaoning Province, China, and phylogenetic relationships of Monjurosuchidae
Figure 5. Philydrosaurus proseilus gen. et sp. nov., pelvic girdle, hind limbs and anterior caudal vertebrae of the holotype (PKUP V2001). Double arrows pointing to the ischium spike.
Figure 4 in A new choristodere (Reptilia: Diapsida) from the Lower Cretaceous of western Liaoning Province, China, and phylogenetic relationships of Monjurosuchidae
Figure 4. Philydrosaurus proseilus gen. et sp. nov., pectoral girdle and fore limb of the holotype (PKUP V2001). Note arrows pointing to ect- and entepicondylar foramina.
Figure 3 in A new choristodere (Reptilia: Diapsida) from the Lower Cretaceous of western Liaoning Province, China, and phylogenetic relationships of Monjurosuchidae
Figure 3. Philydrosaurus proseilus gen. et sp. nov., photograph and line drawing of the holotype skull and mandibles (PKUP V2001).
Figure 1 in A new choristodere (Reptilia: Diapsida) from the Lower Cretaceous of western Liaoning Province, China, and phylogenetic relationships of Monjurosuchidae
Figure 1. Map showing geographical location of monjurosuchid fossil sites in China: Shangheshou near Chaoyang, Jingangshan (Zaocishan) near Yixian, Doutai near Yixian, and Niuyingzi and Dawangzhangzi near Lingyuan.
Figure 2 in A new choristodere (Reptilia: Diapsida) from the Lower Cretaceous of western Liaoning Province, China, and phylogenetic relationships of Monjurosuchidae
Figure 2. Philydrosaurus proseilus gen. et sp. nov., holotype (PKUP V2001) from Shangheshou near Chaoyang, western Liaoning Province; Early Cretaceous Chiufotang Formation.
Figure 5 in New taxa of Japanese and New Zealand Eurystomellidae (Phylum Bryozoa) and their phylogenetic relationships
Figure 5. The strict consensus of 39 final trees. Synapomorphies for each clade in the ingroups are indicated by solid bars: lunulitiform colony (1), encrusting colony (1¢), ancestrular attachment without cementation (2), subtatiform ancestrular frontal wall (3), gymnocystal foramina (6), lack of well-formed costae (8), zooid deeper than length (12), undifferentiated proximal corners of orificial anter (13), indented proximolateral corners of orificial poster (15), vestigial excavations in gymnocystal surface (16), small excavations in gymnocystal surface (16¢), lack of medial suture in proximal rim or orifice (18), maternal orifice slightly dimorphic (19), endozooidal brooding of embryos (20), two kenozooidal foramina (22), one central plus two small kenozooidal foramina (22¢), interzooidal communications with pore-chambers (25).
Figure 4 in New taxa of Japanese and New Zealand Eurystomellidae (Phylum Bryozoa) and their phylogenetic relationships
Figure 4. One of the 39 most parsimonious trees obtained from the final analysis carried out by PAUP*. The transformations of all 25 skeletal characters are mapped (cf. Character List).
Figure 3. A–C in New taxa of Japanese and New Zealand Eurystomellidae (Phylum Bryozoa) and their phylogenetic relationships
Figure 3. A–C, Integripeltra shirayamai sp. nov. Saiki-wan, Honshu. A, autozooids, x, 70. B, maternal zooids with foraminate kenozooids distally, ¥116. C, autozooidal orifice with proximal rim partly removed to show how the long crescentic slits are merely the frontal expressions of the proximolateral embayments of the orifice, ¥201. D, E, Integripelta umbonata sp. nov. NZOI Stn Z9697. F, autozooids and a maternal zooid with foraminate distal kenozooid, ¥106. G, prox-
Figure 2. A, B in New taxa of Japanese and New Zealand Eurystomellidae (Phylum Bryozoa) and their phylogenetic relationships
Figure 2. A, B. Integripelta novella sp. nov. Hokkaido, intertidal. A, autozooids and two maternal zooids, the kenozooid distal to the one at left lacking a foramen, ¥89. B, maternal zooid with distal foraminate kenozooid, ¥121. C, D, Integripelta japonica sp. nov. Mi-shimi, Honshu. C, autozooids and maternal zooids, ¥53. D, maternal orifice and kenozooid, ¥211. E, F, Integripelta sextaria sp. nov. NZOI Stn Z9700. E, autozooids and maternal zooids, ¥48. F, autozooidal orifice, ¥181.
Figure 1. A, B in New taxa of Japanese and New Zealand Eurystomellidae (Phylum Bryozoa) and their phylogenetic relationships
Figure 1. A, B, Eurystomella foraminigera. Greta Point, Wellington, intertidal. A, group of zooids, ¥65. B, suboral rim, showing triradiate suture, ¥803. C-E, Eurystomella biperforata sp. nov. C,E, NZOI Stn Z9700. C, group of autozooids, ¥53. D, NZOI Stn Z9677, maternal zooid with distal foraminate kenozooid, ¥95. E, rare zooid with a single foramen, ¥163. F, Eurystomella aupouria sp. nov. NZOI Stn Z9716, ¥63.
Figure 17 in A new species of Halisaurus from the Late Cretaceous phosphates of Morocco, and the phylogenetical relationships of the Halisaurinae (Squamata: Mosasauridae)
Figure 17. Strict consensus tree of six most parsimonious trees (270 steps) showing the phylogenetic relationships of Halisaurus arambourgi sp. nov. and Halisaurinae among Mosasauridae.
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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.