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FIGURE 9 in Morphology and Systematics of Kalophrynus interlineatus-pleurostigma Populations (Anura: Microhylidae: Kalophryninae) and a Taxonomy of the Genus Kalophrynus Tschudi, Asian Sticky Frogs
FIGURE 9. Distribution of Kalophrynus meizon (Borneo). Solid circle denote specimens examined in this study; open circles are literature records and museum records of specimens not examined.
FIGURE 2 in Morphology and Systematics of Kalophrynus interlineatus-pleurostigma Populations (Anura: Microhylidae: Kalophryninae) and a Taxonomy of the Genus Kalophrynus Tschudi, Asian Sticky Frogs
FIGURE 2. Schematic ventral view of the right (A) fore- and (B) hindfoot of Kalophrynus anya sp. nov. (USNM 537420). Scale bar equals ~1 mm.
FIGURE 3 in Morphology and Systematics of Kalophrynus interlineatus-pleurostigma Populations (Anura: Microhylidae: Kalophryninae) and a Taxonomy of the Genus Kalophrynus Tschudi, Asian Sticky Frogs
FIGURE 3. Schematic depiction of the roof of the mouth of a Kalophrynus anya sp. nov., emphasizing the palatal folds. Only the basal portion of the tongue is shown, epiglottis and esophageal opening are not shown, and lower jaw is foreshortened.
FIGURE 5 in Morphology and Systematics of Kalophrynus interlineatus-pleurostigma Populations (Anura: Microhylidae: Kalophryninae) and a Taxonomy of the Genus Kalophrynus Tschudi, Asian Sticky Frogs
FIGURE 5 (left). Images of holotype of Kalophrynus anya (USNM 537420, male, 39.7 mm SVL) in (A) dorsal, (B) lateral, and (C) ventral views [photographer, J.A. Poindexter].
Fig. 2 in Morphological and molecular variability of Peridinium volzii Lemmerm. (Peridiniaceae, Dinophyceae) and its relevance for infraspecific taxonomy
Fig. 2 Box plots displaying correlations between cell size (of motile cells; A, B) or side length (of empty thecate cells; C) in selected strains. Colours correspond to the ribotype of each strain (blue: ribotype I; magenta: ribotype II; orange: ribotype III). Statistically significant clusters are indicated with letters a, b and c and were calculated with Tukey's Honest Significant Difference (HSD) test (p-values <0.05). Box plots depict percentile values from 25–75% (box), median (bar inside the box), standard deviation (whiskers) and outliers (dots)
Fig. 1 in Data storage and data re-use in taxonomy-the need for improved storage and accessibility of heterogeneous data
Fig. 1 (a) Sp_ci_s d_scriptions p_r d_cad_ in s_l_ct_d major groups of organisms (bas_d on data _xtract_d from th_ Int_rnational Plant Nam_s Ind_x (https://www.ipni.org/) for plants, MycoBank (http://www. mycobank.org/) for fungi, Ind_x of Organism Nam_s (http://www. organismnam_s.com/) for ins_cts, and compil_d from various databas_s for v_rt_brat_s: Eschm_y_r Catalog for fish_s (https://www.calacad_my. org/sci_ntists/proj_cts/_schm_y_rs-catalog-of-fish_s), th_ Amphibian Sp_ci_s of th_ World for amphibians (http://r_s_arch.amnh.org/vz/ h_rp_tology/amphibia/), R_ptil_ Databas_ for r_ptil_s (http://www. r_ptil_-databas_.org/), Howard and Moor_ Databas_ (https://www. howardandmoor_.org/) for birds, and ASM Mammal Div_rsity Databas_ (https://mammaldiv_rsity.org/) for mammals, all acc_ss_d in April 2019. Not_ that data for fungi and v_rt_brat_s r_f_r to curr_ntly acc_pt_d sp_ci_s nam_s only wh_r_as ins_ct data also includ_ synonyms and subsp_ci_s, and contain data gaps for s_v_ral d_cad_s in th_ nin_t__nth c_ntury; for all taxa, th_ low valu_s obtain_d for th_ last
Figs. 1 and 2. 1 in Problems in Costa Rican thrips taxonomy and systematics (Insecta: Thysanoptera)
Figs. 1 and 2. 1. Maxillary stylets of genus Kolia [Fig. 1B from Soto-Rodriguez et al (2013)]. 2. Head and antennae of Jessicathrips cubensis [Fig. 1a from Gonzalez et al. (2010)].
Figs. 3–9 in Problems in Costa Rican thrips taxonomy and systematics (Insecta: Thysanoptera)
Figs. 3–9. [3–7 provided by Olman Alvarado Rodríguez of CIEMIC, University of Costa Rica]. 3–5. Holotype females of Arthrips madresalvensis, Kolia lilianae and Kolia zaidae. 6–7. Mouth cone of Kolia guanacastenis and Kolia zaidae, with protruding maxillary stylets indicated. 8. Tergite VIII posterior margin of Frankliniella fortissima female labelled "type" with microtrichial comb interrupted medially. 9. Head of Frankliniella caribae holotype (Fig. 2 from Retana-Salazar 2010a).
Fig. 2 in Measuring and explaining disagreement in bird taxonomy
Fig. 2. Schematic representation of some of the taxon concepts recognized by the different lists within the Tyto alba complex. Full lines represent concepts with species rank; dashed lines concept at subspecies rank. A. General overview. Not all concepts recognized as subspecies are shown. B. Example of concept conflict: the subgroups 'insularis' and 'nigrescens' belong in T. alba according to CLEM and HM; in T. furcata according to IOC (because they split T. furcata from T. alba sensu lato); but in T. glaucops according to BL, a taxon that all lists recognize at species-rank. C. Example of rank conflict. All lists recognize the same taxon concept, but CLEM, HM and IOC recognize it at specieslevel (T. deroepstorffi), while BL recognizes it at subspecies level (T. alba deroepstorffi).
Fig. 5 in Measuring and explaining disagreement in bird taxonomy
Fig. 5. Prevalence of conflict in bird lists. a. Prevalence of taxonomic conflict and agreement across the 12 730 concepts listed by at least one of the four lists. b. Prevalence of classificatory conflict and agreement across the 76 380 list-relations. Agreement relations are in shades of blue and conflict relations are in shades of green.
Fig. 4 in Measuring and explaining disagreement in bird taxonomy
Fig. 4. Directed acyclic graph (DAG) for the effort analysis. This DAG shows the assumed causal relations between disagreement, the proxies for research effort, and the three factors typically assumed to influence disagreement (species concepts, effort and diversification).
Figure 3 in A new species of Ananteris Thorell, 1891 from Cordillera Central in Colombia, with some notes on the taxonomy of the genus (Scorpiones: Buthidae)
Figure 3: Juvenile female paratype of Ananteris tolimana sp. n.: a) sternopectinal region, ventral view; b) sternites V–VI, ventral view; c) metasomal segments IV–V and telson, lateral view.
Figure 1 in A new species of Ananteris Thorell, 1891 from Cordillera Central in Colombia, with some notes on the taxonomy of the genus (Scorpiones: Buthidae)
Figure 1: Adult male holotype of Ananteris tolimana sp. n.: a) entire dorsal view; b) entire ventral view.
Figure 4 in A new species of Ananteris Thorell, 1891 from Cordillera Central in Colombia, with some notes on the taxonomy of the genus (Scorpiones: Buthidae)
Figure 4: Known geographical distribution of Colombian described species of the genus (modified from Lourenço, 1999, fig. 10, and Botero-Trujillo, 2007, fig. 1): Ananteris columbiana (1), A. ehrlichi (2), A. gorgonae (3), A. leilae (4), A. myriamae (5), and A. tolimana sp. n. (6).
Figure 2 in A new species of Ananteris Thorell, 1891 from Cordillera Central in Colombia, with some notes on the taxonomy of the genus (Scorpiones: Buthidae)
Figure 2: Adult male holotype of Ananteris tolimana sp. n.: a) prosoma, dorsal view; b) right pedipalp, dorsal view; c) sternopectinal region, ventral view; d) sternites IV–VI, ventral view; e) metasomal segments IV–V and telson, lateral view; f) telson, lateral view.
Figure 2 in Rare or poorly known scorpions from Colombia. III. On the taxonomy and distribution of Rhopalurus laticauda Thorell, 1876 (Scorpiones: Buthidae), with description of a new species of the genus
Figure 2: Adult male holotype of Rhopalurus caribensis sp. n.: a) carapace and tergites; b) pedipalp; c) sternopectinal region; d) metasomal segments IV–V and telson, lateral view.
Figure 4 in Rare or poorly known scorpions from Colombia. III. On the taxonomy and distribution of Rhopalurus laticauda Thorell, 1876 (Scorpiones: Buthidae), with description of a new species of the genus
Figure 4: Adult female paratype of Rhopalurus caribensis sp. n. from Nazareth: a) carapace and tergites; b) pedipalp; c) movable finger, dorsal view; d) sternopectinal region; e) metasomal segments IV–V and telson, lateral view.
Fig. 15 in Kasimovian (late Pennsylvanian) cornute rugose corals from Egypt: taxonomy, facies and palaeogeography of a cool-water fauna from northern Gondwana
Fig. 15 Depositional environments of the Aheimer Formation (lower member). A Microphotograph of calcareous silty mudstone; disarticulated crinoid ossicles (Cr), tiny shell fragments (in part ostracods) and indeterminable microbioclasts associated with silt-sized quartz grains, all set in a ferruginous calcareous cement. B Microphotograph of silty dolostone; large brachiopod shell (B), crinoid ossicles (Cr) and other undifferentiated fossil fragments, all altered and dolomitized, associated with silt-sized quartz grains. Brownish-black ferruginous oxides are filling the pore spaces. C, D Microphotographs of calcareous siltstone bearing crinoids (Cr), bryozoa (Br) and other altered fossil fragments. All components set in ferruginous– calcareous cement. E, F Vertical, elongated burrows of the Tisoa siphonalis in mudstone in the uppermost part of the lower member of the Aheimer Formation
FIGURE 10 in Morphology and Systematics of Kalophrynus interlineatus-pleurostigma Populations (Anura: Microhylidae: Kalophryninae) and a Taxonomy of the Genus Kalophrynus Tschudi, Asian Sticky Frogs
FIGURE 10. Images of neotype of Kalophrynus pleurostigma (USNM 36645, female, 34.5 mm SVL) in (A) dorsal, (B) lateral, and (C) ventral views [photographer, J.A. Poindexter].
◂Fig. 1 Morphology of thecate and coccoid cells, with labelled thecal plates. a–c, i, m Light microscopy, d–h, k–l scanning electron microscopy. a Ventral view of strain GeoM*788; b dorsal view of strain GeoM*793; c apical view of strain GeoK*044; d ventral view of strain GeoK*037; e dorsal view of strain GeoM*788; f apical view of strain GeoK*024, with the dehiscence of epithecal opening indicated by a blue line; g antapical view of strain GeoK*044; h leftlateral view of strain GeoM*866; i motile cell of strain GeoK*037; k–m coccoid cells showing variability in shape and size of strains k GeoM*866, l GeoM*793 and m GeoK*024. Abbreviations: n′: apical plate, n′′: precingular plate, n′′′: postcingular plate, n′′′′: antapical plate, na: anterior intercalary plate, nC: cingular plate, Sa: anterior sulcal plate, Sd: right sulcal plate, Sp: posterior sulcal plate. Ss: left sulcal plate. Scale bar: 10 µm. UA: 15 kV in Morphological and molecular variability of Peridinium volzii Lemmerm. (Peridiniaceae, Dinophyceae) and its relevance for infraspecific taxonomy
◂Fig. 1 Morphology of thecate and coccoid cells, with labelled thecal plates. a–c, i, m Light microscopy, d–h, k–l scanning electron microscopy. a Ventral view of strain GeoM*788; b dorsal view of strain GeoM*793; c apical view of strain GeoK*044; d ventral view of strain GeoK*037; e dorsal view of strain GeoM*788; f apical view of strain GeoK*024, with the dehiscence of epithecal opening indicated by a blue line; g antapical view of strain GeoK*044; h leftlateral view of strain GeoM*866; i motile cell of strain GeoK*037; k–m coccoid cells showing variability in shape and size of strains k GeoM*866, l GeoM*793 and m GeoK*024. Abbreviations: n′: apical plate, n′′: precingular plate, n′′′: postcingular plate, n′′′′: antapical plate, na: anterior intercalary plate, nC: cingular plate, Sa: anterior sulcal plate, Sd: right sulcal plate, Sp: posterior sulcal plate. Ss: left sulcal plate. Scale bar: 10 µm. UA: 15 kV
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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.