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FIGURE 5 in Pseudochromis lugubris and P. tonozukai, two new dottyback fish species from the IndoAustralian Archipelago (Perciformes: Pseudochromidae: Pseudochrominae)
FIGURE 5. Pseudochromis tonozukai, male, underwater photo, Weh Island, off northern Sumatra, Indonesia. (Photo by T. Tonozuka)
FIGURE 1 in Pseudochromis lugubris and P. tonozukai, two new dottyback fish species from the IndoAustralian Archipelago (Perciformes: Pseudochromidae: Pseudochrominae)
FIGURE 1. Pseudochromis lugubris, underwater photo, Milne Bay, Papua New Guinea. (Photo by S. W. Michael)
FIGURE 3 in Pseudochromis lugubris and P. tonozukai, two new dottyback fish species from the IndoAustralian Archipelago (Perciformes: Pseudochromidae: Pseudochrominae)
FIGURE 3. Pseudochromis bitaeniatus, underwater photo, Mabul, Sabah, Malaysia. (Photo by R. H. Kuiter).
Odontocete detections and corresponding values of environmental variables in the Hawaiian Archipelago
<p>This dataset contains detections of echolocation clicks at two sites in the Hawaiian Archipelago. These sites are Hawaii and Manawai (also known as Pearl and Hermes Reef). Echolocation clicks have been labeled using a neural network classifier that was trained and tested on data from the Hawaiian Islands and can successfully identify many species of regionally present odontocetes. During the labeling process, clicks were grouped into five-minute bins and each bin was given a class label. The data provided here is further binned at a daily level, where counts of a given class represent the number of five-minute bins within a given day that were labeled as that class. One file is provided per site, and files are in .csv format that can be read using any desired coding language. </p> <p>In addition to acoustic counts, values for environmental variables considered in the corresponding manuscript are provided in the CSV files. The final file in this dataset contains satellite-derived chlorophyll-a concentration values from NASA MODIS for the Hawaiian region (used to create Supplementary Fig. 1). Details on all variables and how they were accessed can be found in the manuscript and in the README file accompanying this dataset. </p>
FIG. 2 in A revised heterostracan-based ichthyostratigraphy of the Wood Bay Formation (Lower Devonian, Spitsbergen), and correlation with Russian Arctic archipelagos
FIG. 2. — Stratigraphical section of the Andrée Land Block of northern Spitsbergen, after Harland (1997) and Blomeier et al. (2003a). Ages after Blieck et al. (2000, 2002) and McCann (2000). Note that: 1) it is common to subdivide the lowermost part of the Red Bay Group into Wulffberget, Rabotdalen (locally present) and Princesse Alicefjellet formations instead of only the Rivieratoppen Formation, according to Murashov & Mokin (1976, 1979) – this subdivision being applicable throughout the Devonian of northern Spitsbergen (Blomeier et al. 2003a, b); and 2) the Grey Hoek and Wijde Bay formations are considered as lateral equivalents and Eifelian in age by Schweitzer (1999); however, Schweitzer's idea that the Grey Hoek and Wijde Bay formations are of equal age is certainly not true along Wijdefjorden, where one lies on top of the other with a depositional boundary; upper parts of the Grey Hoek Formation in the Woodfjorden area may be coeval with the Wijde Bay Formation farther east (Blomeier et al. 2003a, b; W. Dallmann, pers. comm. 2007).
Fig. 1 in Flower-visiting behaviour and habitats of the taxa of the Andrena wollastoni group (Hymenoptera, Anthophila, Micrandrena) on the Canary Islands compared to the Madeira Archipelago *
Fig. 1: (a) Typical crop-field margin with Hirschfeldia incana and Calendula arvensis, both frequently visited by Andrena catula (northern part of Gran Canaria, Zone IIb, 12th March 2018); photo: A. Schwabe. (b) Slope with ruderal vegetation (H. incana, frequently visited by A. g. gomerensis; additionally, Echium plantagineum and Psoralea bituminosa can be seen) with a grazed vegetation complex in the background (La Gomera, Zone IIb, 24th April 2016); photo: A. Schwabe. c: Road margin in the Teno area, with H. incana (frequently visited by A. a. tenoensis; additionally, E. plantagineum and Galactites tomentosus) (Tenerife, Zone IIA, 21st April 2016); photo: A. Schwabe. (d) A. a. tenoensis (female), collecting pollen on H. incana (margin of a small trail in the Teno area) (Tenerife, Zone IIA, 21st April 2016); photo: A. Schwabe.
Fig. 2 in Flower-visiting behaviour and habitats of the taxa of the Andrena wollastoni group (Hymenoptera, Anthophila, Micrandrena) on the Canary Islands compared to the Madeira Archipelago *
Fig. 2: (a) Habitat of the 'Cordillera Dorsal' species Descurainia lemsii, which is frequently visited by A. a. wildpreti (upper pine forest complex with rocky slopes, Zone III). Bottom right (not visited by A. a. wildpreti): Sideritis oroteneriffae ('Cordillera Dorsal' species); foreground: Adenocarpus viscosus (Tenerife, Montaña Ayosa; 22nd May 2019); photo: A. Schwabe. (b) Close-up of flowering and fruiting D. lemsii on a margin of rocky slopes in the Pinus canariensis forest complex (Tenerife, Montaña Ayosa; 26th May 2019); photo: A. Schwabe. (c) A. a. wildpreti (female, body length 7.7 mm); site and date of Fig. 2b; photo: A. Kratochwil. (d) Habitat of A. lineolata, visiting mainly D. bourgaeana (foreground) and Cytisus supranubius (white, background) (Tenerife, below Izaña, Teide area; Zone IV; 21st May 2019); photo: A. Schwabe.
Fig. 1 a-b in Large Benthic Foraminifera Pfendericonus Globulus Sirel & Deceviler In Sirel Et Al., 2020 (Priabonian Of Turkey): A Junior Synonym Of Pfendericonus Mindanaoensis Matsumaru, 2017 (Thanetian? Of The Philippine Archipelago)
Fig. 1 a-b Pfendericonus mindanaoensis (from Matsumaru, 2017, pl. 4, fig. 11, figured as Chrysalidina sp. and pl. 4, fig. 8, holotype specimen) of Selandian or Thanetian age from the Island of Mindanao, Philippine Archipelago. c-d Pfendericonus globulus Sirel & Deceviler (from Sirel et al., 2020, fig. 11I and 11J) from the Priabonian of NW Turkey.
Data from: Seasonal diet partition among top predators of a small island, Iriomotejima island in the Ryukyu Archipelago, Japan
<p>In general, small islands lack predators because species at higher trophic levels often cannot survive. However, two predators—the Iriomote cat <em>Prionailurus bengalensis iriomotensis</em>, and the Crested Serpent Eagle<em> Spilornis cheela perplexus</em>—live on Iriomotejima Island in the Ryukyu Archipelago, which covers an area of approximately 284 square kilometers. To understand how these two top predators coexist on such a small island with limited resources, we focused on their seasonal feeding habits which are considered crucial for survival in such an island ecosystem. To compare the diets of the Iriomote cat and Crested Serpent Eagle, we used DNA metabarcoding analysis of their fecal samples. In the summer, we identified 16 prey items from Iriomote cat fecal samples, and 15 Crested Serpent Eagle fecal samples. In the winter, we identified 37 and 14 prey items, respectively. Using a non-metric multidimensional scaling (NMDS) and a permutational multivariate analysis of variance (PERMANOVA), our study reveals significant differences in the diet composition at the order level between the predators during both seasons. Furthermore, although some prey items at the species-to-order level overlapped between the two predators, the frequency of occurrence of most prey items differed between them in both seasons. These results suggest that this difference in diets was one of the reasons why the Iriomote cat and the Crested Serpent Eagle coexisted on such a small island.</p>
Fig. 12 in Contribution to the Knowledge of the Genus Atholus (Coleoptera: Histeridae: Histerinae: Histerini) from the Indonesian Archipelago
Fig. 12. Map showing the occurrence of some species of Atholus from the Indonesian archipelago and its extra-limital distribution in the Oriental Region.
Fig. 11 in Contribution to the Knowledge of the Genus Atholus (Coleoptera: Histeridae: Histerinae: Histerini) from the Indonesian Archipelago
Fig. 11. Map showing the occurrence of some species of Atholus from the Indonesian archipelago and its extra-limital distribution in the Oriental Region. A, Atholus coelestis; B, A. philippinesis; C, A. torquatus; D, A. bifrons.
Fig. 10 in Contribution to the Knowledge of the Genus Atholus (Coleoptera: Histeridae: Histerinae: Histerini) from the Indonesian Archipelago
Fig. 10. Atholus singalanus (Marseul, 1880), SEM micrographs, IC-22-in07. A, Elytra, dorsal view; B, ditto, oblique view; C, prosternal process; D, meso- and metaventrite; E, propygidium and pygidium; F, propygidium (punctation); G, protibia, dorsal view; H, ditto, ventral view.
Fig. 9 in Contribution to the Knowledge of the Genus Atholus (Coleoptera: Histeridae: Histerinae: Histerini) from the Indonesian Archipelago
Fig. 9. Atholus singalanus (Marseul, 1880), SEM micrographs, IC-22-in07. A, Habitus, dorsal view; B, ditto, ventral view; C, ditto, oblique view; D, head, dorsal view; E, pronotum; F, mouthparts, ventral view.
Fig. 8 in Contribution to the Knowledge of the Genus Atholus (Coleoptera: Histeridae: Histerinae: Histerini) from the Indonesian Archipelago
Fig. 8. Atholus myrmidon (Marseul, 1861), male genitalia, IC-22-in05. A, Aedeagus, dorsal view; B, ditto, lateral view; C, ninth and tenth tergites, and spiculum gastrale, dorsal view; D, ditto, lateral view; E, eighth tergite and sternite, dorsal view; F, ditto, lateral view. Scale bar: 0.20 mm.
Fig. 6 in Contribution to the Knowledge of the Genus Atholus (Coleoptera: Histeridae: Histerinae: Histerini) from the Indonesian Archipelago
Fig. 6. Atholus myrmidon (Marseul, 1861), SEM micrographs, IC-22-in05. A, Habitus, dorsal view; B, ditto, ventral view; C, ditto, oblique view; D, head, dorsal view; E, pronotum; F, mouthparts, ventral view.
Fig. 7 in Contribution to the Knowledge of the Genus Atholus (Coleoptera: Histeridae: Histerinae: Histerini) from the Indonesian Archipelago
Fig. 7. Atholus myrmidon (Marseul, 1861), SEM micrographs, IC-22-in05. A, Elytra, dorsal view; B, ditto, oblique view; C, prosternal process; D, meso- and metaventrite; E, propygidium and pygidium; F, propygidium (punctation); G, protibia, dorsal view; H, ditto, ventral view.
Fig. 4 in Contribution to the Knowledge of the Genus Atholus (Coleoptera: Histeridae: Histerinae: Histerini) from the Indonesian Archipelago
Fig. 4. Atholus famulus (Lewis, 1892), male genitalia, IC-22-in03. A, Aedeagus, dorsal view; B, ditto, lateral view; C, ninth and tenth tergites, and spiculum gastrale, dorsal view; D, ditto, lateral view; E, eighth tergite and sternite, dorsal view; F, ditto, lateral view. Scale bar: 0.20 mm.
Fig. 2 in Contribution to the Knowledge of the Genus Atholus (Coleoptera: Histeridae: Histerinae: Histerini) from the Indonesian Archipelago
Fig. 2. Atholus famulus (Lewis, 1892), SEM micrographs, IC-22-in03. A, Habitus, dorsal view; B, ditto, ventral view; C, ditto, oblique view; D, head, dorsal view; E, pronotum; F, mouthparts, ventral view.
Fig. 3 in Contribution to the Knowledge of the Genus Atholus (Coleoptera: Histeridae: Histerinae: Histerini) from the Indonesian Archipelago
Fig. 3. Atholus famulus (Lewis, 1892), SEM micrographs, IC-22-in03. A, Elytra, dorsal view; B, ditto, oblique view; C, prosternal process; D, meso- and metaventrite; E, propygidium and pygidium; F, propygidium (punctation); G, protibia, dorsal view; H, ditto, ventral view.
Fig. 1. Some Indonesian Atholus, dorsal habitus. A in Contribution to the Knowledge of the Genus Atholus (Coleoptera: Histeridae: Histerinae: Histerini) from the Indonesian Archipelago
Fig. 1. Some Indonesian Atholus, dorsal habitus. A, Atholus bifrons (Marseul, 1854), IC-22-in01; B, A. philippinensis (Marseul, 1854), IC- 22-in06; C, A. coelestis (Marseul, 1857), IC-22-in02; D, A. myrmidon (Marseul, 1861), IC-22-in05; E, A. famulus (Lewis, 1892), IC-22-in03; F, A. singalanus (Marseul, 1880), IC-22-in07; G, A. torquatus (Marseul, 1854), IC-22-in08. Scale bar: 1.00 mm.
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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.