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462 results for “volcano”
Noddy Aeromag Volcano Models
<p>Noddy models for<strong> </strong>Volcano Monitoring with Magnetic Measurements: A Simulation of Eruptions at Axial Seamount, Kīlauea, Bárðarbunga, and Mount Saint Helens</p>
FIGURE 14 in A new species of brilliant green frog of the genus Tlalocohyla (Anura, Hylidae) hiding between two volcanoes of northern Costa Rica
FIGURE 14. Habitat where Tlalocohyla celeste sp. nov. is found. General view of the north (A) and southwest (B) sector of the wetland. The habitat is dominated by the grass Rhynchospora corymbosa (C), but other species of plants tolerant to flooded environments can be used by the frog for its reproductive activity (D).
FIGURE 13 in A new species of brilliant green frog of the genus Tlalocohyla (Anura, Hylidae) hiding between two volcanoes of northern Costa Rica
FIGURE 13. Geographic distribution of the genus Tlalocohyla in Mesoamerica. Inset, map of Costa Rica, showing the distribution of Tlalocohyla loquax (green circles) and Tlalocohyla celeste sp. nov. (red circle). Sources: (GBIF.org 2022).
FIGURE 10 in A new species of brilliant green frog of the genus Tlalocohyla (Anura, Hylidae) hiding between two volcanoes of northern Costa Rica
FIGURE 10. Oviposition process of Tlalocohyla celeste sp. nov. (A) A pair in axillary amplexus with egg deposition. (B-D) Oviposition at the end of different leaves. (E) 5 days of development. (F) 9 days of development.
FIGURE 9 in A new species of brilliant green frog of the genus Tlalocohyla (Anura, Hylidae) hiding between two volcanoes of northern Costa Rica
FIGURE 9. Call repertoire of Tlalocohyla celeste sp. nov. Call type III: (A) oscillogram and (B) spectrogram of a call series: call type I following call type III; (C) oscillogram and (D) power spectrum of notes in call type III. Dotted red line indicates the dominant frequency. (E) Oscillogram of call groups in Tlalocohyla celeste sp. nov. Showing a combination of the three call types (type I in orange, type II in green and type III in red) emitted by different males during the chorus.
FIGURE 8 in A new species of brilliant green frog of the genus Tlalocohyla (Anura, Hylidae) hiding between two volcanoes of northern Costa Rica
FIGURE 8. Calls repertory of Tlalocohyla celeste sp. nov. Call type I: (A) oscillogram of a call series type I, first growing in amplitude and the second and third with similar amplitude notes; (B) oscillogram and (C) spectrogram of a call type I with 13 notes; (D) power spectrum and (E) oscillogram of a single note. Call type II: (F) oscillogram and (G) spectrogram of a call group: call type I following call type II; (H) oscillogram and (I) power spectrum of the single squeak-like note in call Type II. Dotted red line indicates the dominant frequency.
FIGURE 11 in A new species of brilliant green frog of the genus Tlalocohyla (Anura, Hylidae) hiding between two volcanoes of northern Costa Rica
FIGURE 11. Metamorphosis of Tlalocohyla celeste sp. nov. (A) Tadpole at stage 35. (B) Metamorph of 11 mm of SVL. (C) Recently metamorphosed juvenile of 7 mm. (D) Juvenile.
FIGURE 7 in A new species of brilliant green frog of the genus Tlalocohyla (Anura, Hylidae) hiding between two volcanoes of northern Costa Rica
FIGURE 7. Vocal sac of uncollected males of Tlalocohyla celeste sp. nov. (A) Ventral view and vocal sac deflated. (B–D). Calling males perched on vegetation in different positions, note the vocal sac extension.
FIGURE 12 in A new species of brilliant green frog of the genus Tlalocohyla (Anura, Hylidae) hiding between two volcanoes of northern Costa Rica
FIGURE 12. Tlalocohyla celeste sp. nov. tadpole at stage 34 (35) according to Gosner (1960). (A) Lateral view, (B) dorsal view, (C) ventral view, (D) oral disc.
FIGURE 1 in A new species of brilliant green frog of the genus Tlalocohyla (Anura, Hylidae) hiding between two volcanoes of northern Costa Rica
FIGURE 1. Bayesian phylogenetic tree within the Hylidae family based on 12S and 16S mitochondrial DNA genes. Posterior probabilities in nodes, asterisks represent support of>95. Branches are collapsed to illustrate genus-level relationships, see expanded branches on Suppl. material. 2. The scale bar refers to the estimated substitutions per site.
FIGURE 3 in A new species of brilliant green frog of the genus Tlalocohyla (Anura, Hylidae) hiding between two volcanoes of northern Costa Rica
FIGURE 3. Holotype of Tlalocohyla celeste sp. nov. (UCR 23700) (A) Dorsal view of head in living specimen. (B) Lateral view of head in preserved specimen. (C) Lateral view in preserved specimen, note the tympanum. Scale bar = 2 mm. (D) Right hand in ventral view. (E) Right foot in ventral view.
FIGURE 6 in A new species of brilliant green frog of the genus Tlalocohyla (Anura, Hylidae) hiding between two volcanoes of northern Costa Rica
FIGURE 6. Ventral view Tlalocohyla celeste sp. nov. (A) Ventrals skin texture, and cloacal view. (B) Liver of recently preserved specimen (ECB-Anf-f50-08-01,01.). (C) Nuptial pads of the left hand in Tlalocohyla celeste sp. nov. male holotype (UCR 23700), in life, and preserved.
FIGURE 5 in A new species of brilliant green frog of the genus Tlalocohyla (Anura, Hylidae) hiding between two volcanoes of northern Costa Rica
FIGURE 5. Variation and diagnostic characteristics in Tlalocohyla celeste sp. nov. (A-B) pattern change and green tones change of two uncollected males. (C) Ventral view in diurnal pattern. (D) ventral view of female (UCR 23701), note green bones (black arrow) and white peritoneum (blue arrow). (E) Spotted pattern in juvenile. (F) Axillary membrane (red arrow).
FIGURE 4 in A new species of brilliant green frog of the genus Tlalocohyla (Anura, Hylidae) hiding between two volcanoes of northern Costa Rica
FIGURE 4. Variation in dorsal pattern of Tlalocohyla celeste sp. nov. (A–B) male holotype of Tlalocohyla celeste sp. nov. (UCR 23700) in life. (C) Size differences between females and males. (D) Typical nocturnal pattern of males. (E) Female with the oocytes visible by transparency in the body. (F) Diurnal pattern of adults, males and females, note the white iris chance. (G) Juvenile. (H) Diurnal pattern with red-brown iris.
Datafiles for "Ring Fault Slip Reversal at Bárðarbunga Volcano, Iceland: Seismicity during Caldera Collapse and Re-Inflation 2014-2018"
<p><strong>Datafiles for the manuscript "Ring Fault Slip Reversal at Bárðarbunga Volcano, Iceland: Seismicity during Caldera Collapse and Re-Inflation 2014-2018" by Glastonbury-Southern, E., Winder, T., White, R.S., and Brandsdóttir, B., submitted for publication in Geophysical Research Letters.</strong></p> <p>This includes cut waveform data in miniseed format from stations operated by the University of Cambridge for the 30 earthquakes included in the study, as listed in Table S1.</p>
FIGURE 3. A in Two new day-flying species of Agrotis Ochsenheimer (Lepidoptera: Noctuidae) from the alpine summit of the Maunakea Volcano
FIGURE 3. A: A. kuamauna, male genitalia (slide LB83) scale bars = 1mm. B: A. kuamauna, female genitalia (slide LB82) scale bar = 1mm. C: A. helela, male genitalia (slide LB80) scale bars = 1mm. D: A. helela, female genitalia (slide LB81) scale bar = 1mm.
FIGURE 2. A in Two new day-flying species of Agrotis Ochsenheimer (Lepidoptera: Noctuidae) from the alpine summit of the Maunakea Volcano
FIGURE 2. A: Wing venation of A. helela (from slide LB81 "wings"). B: Wing venation of A. kuamauna (from slide LB82 "wings"). C: A. kuamauna larva, length = 20mm. D: A. kuamauna pupa, length = 15mm.
FIGURE 1. A in Two new day-flying species of Agrotis Ochsenheimer (Lepidoptera: Noctuidae) from the alpine summit of the Maunakea Volcano
FIGURE 1. A: A. helela, paratype voucher AP117, wing expanse 28.5mm. B: A. kuamauna, holotype voucher AP114, wing expanse 46.6mm. C. A. kuamauna, paratype (voucher AP114; UHIM), wing expanse 40.5mm. D: A. epicremna (voucher AP327; UHIM), wing expanse 48mm. E: A. helela, paratype (voucher AP117; UHIM), wing expanse 24mm. F: A. microreas (BPBM), wing expanse 26mm.
The dataset used in numerical simulations based on the resistivity structure of Kusatsu-Shirane Volcano, Japan
<p>The dataset used in the numerical simulations based on the resistivity structure of Kusatsu-Shirane Volcano, Japan. </p> <p>Descriptions of included files:</p> <p><strong>TOUGH_model.zip</strong></p> <p>The data used in the numerical simulations by the TOUGH3 code. It includes ten cases with different permeability structures considered.</p> <p><strong>HT_model.zip</strong></p> <p>The data used in the numerical simulations by the HYDROTHERM code. It includes seven cases with different permeability structures considered.</p>
Data and program codes to reproduce the results of seismic tomography for the Northern Paramushir Island and Ebeko Volcano (Kuril Arc)
<p>This file contains the files to reproduce the results presented in the article: by Ivan Koulakov et al. (2024). Seismic structure beneath Ebeko Volcano and surrounding areas of Paramushir Island (Kuril Arc) inferred from local earthquake tomograph, Journal of Volcanology and Geothermal Research.</p> <p>This file includes:</p> <p>1. The full folder with the LOTOS code for the passive-source seismic tomography (Koulakov, 2009, BSSA). </p> <p>2. Folder with the dataset including arrival times of the P and S waves from local seismicity in the area of the Paramushir Island.</p> <p>3. README_EBEKO.PDF file with the description of the workflow on how to reproduce the tomography models based on experimental and synthetic data presented in the article. </p> <p>4. Folder SRF_FIGS with figures from the paper created in Surfer-13 that can be used as templates to visualize the results. </p> <p>Koulakov, I., 2009, LOTOS code for local earthquake tomographic inversion: Benchmarks for testing tomographic algorithms: Bulletin of the Seismological Society of America, v. 99, p. 194–214, https://doi.org/10.1785/0120080013.</p>
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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.