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Figure 2. Calibrated phylogenetic tree obtained with BEAST v.1.10.4 in Cryptic lineages, cryptic barriers: historical seascapes and oceanic fronts drive genetic diversity in supralittoral rockpool beetles (Coleoptera: Hydraenidae)
Figure 2. Calibrated phylogenetic tree obtained with BEAST v.1.10.4 of Ochthebius with focus on subgenus Cobalius (purple shade) and quadricollis species group (green shade) (former subgenus 'Calobius'). Numbers at nodes represent posterior probabilities, and 95% highest posterior density are given in blue horizontal rectangles. Calibrations points used in analysis are specified by grey dots.
Figure 5 in Cryptic lineages, cryptic barriers: historical seascapes and oceanic fronts drive genetic diversity in supralittoral rockpool beetles (Coleoptera: Hydraenidae)
Figure 5. Haplotype networks for COI and wingless for Ochthebius (Cobalius) lejolisii. Colours represent the main geographic areas indicated in the legend.
Figure 1 in Cryptic lineages, cryptic barriers: historical seascapes and oceanic fronts drive genetic diversity in supralittoral rockpool beetles (Coleoptera: Hydraenidae)
Figure 1. Distribution of sampling localities 1-57 (as listed in Table 1) and main surface marine currents and potential geographic barriers to dispersal (inset top-right).
Figure 4 in Cryptic lineages, cryptic barriers: historical seascapes and oceanic fronts drive genetic diversity in supralittoral rockpool beetles (Coleoptera: Hydraenidae)
Figure 4. Haplotype networks for COI and wingless for Ochthebius (Cobalius) subinteger. Colours represent the main geographic areas indicated in the legend.
Front Door Lock and Knob
For more information about this item visit: https://bhpsite.org/ Source: Objaverse 1.0 / Sketchfab
B4693 front
Source: Objaverse 1.0 / Sketchfab
Boggo Road Gaol - Front Gates
Boggo Road Gaol, Dutton Park, Queensland, Australia Source: Objaverse 1.0 / Sketchfab
2910 Front Cropped
Source: Objaverse 1.0 / Sketchfab
Data and Code for manuscript titled "Global mapping and evolution of persistent fronts in Large Marine Ecosystems over the past 40 years"
<h1>A dataset of global persistent fronts around Large Marine Ecosystems.</h1> <h2>Xing, Q., Yu, H. & Wang, H. Global mapping and evolution of persistent fronts in Large Marine Ecosystems over the past 40 years. Nat Commun 15, 4090 (2024). https://doi.org/10.1038/s41467-024-48566-w</h2>
Figure 1 in Comparison of proteomic profiles of the phaeophyte Saccharina japonica thalli proximal to and beneath the front of epiphytic hydrozoan colonies against healthy tissue
Figure 1: Saccharina japonica thallus sections defined as thallus tissue proximal to hydrozoan colonies and tissue at the colony front. The proximal tissues were collected from the 1-cm zone outside the boundary of the colony. The colony-front tissues were obtained from the 1-cm zone under the newly formed front of the colony after removing the hydrozoans. Inset photo shows hydrozoans on the brown alga S. japonica.
Figure 4 in Comparison of proteomic profiles of the phaeophyte Saccharina japonica thalli proximal to and beneath the front of epiphytic hydrozoan colonies against healthy tissue
Figure 4: Sections of two-dimensional gels showing the proteins (arrows) that decreased during hydrozoan colonization. The separated proteins were visualized by silver staining. (A) Distal healthy thallus tissue. (B) Thallus tissue proximal to hydrozoan colonies. (C) Thallus tissue at the colony front.
Figure 3 in Comparison of proteomic profiles of the phaeophyte Saccharina japonica thalli proximal to and beneath the front of epiphytic hydrozoan colonies against healthy tissue
Figure 3: Sections of two-dimensional gels showing the proteins (arrows) that increased most in the thallus tissue proximal to hydrozoan colonies or in the thallus at the colony front, but were not detected in the distal healthy thallus tissue. The separated proteins were visualized by silver staining. (A) Distal healthy thallus tissue. (B) Thallus tissue proximal to hydrozoan colonies. (C) Thallus tissue at the colony front.
Figure 2 in Comparison of proteomic profiles of the phaeophyte Saccharina japonica thalli proximal to and beneath the front of epiphytic hydrozoan colonies against healthy tissue
Figure 2: Two-dimensional gel electrophoresis profiles of lateharvested Saccharina japonica. (A) Distal healthy thallus tissue. (B) Thallus tissue proximal to hydrozoan colonies. (C) Thallus tissue at the colony front. The separated proteins were visualized by silver staining. Numbers attached to the arrows refer to the spot numbers listed in Table 1.
Figs 349-356. Oedignatha scrobiculata. 349. Male Sumbawa. habitus. ventral. 350. Lateral. 351. Front view. 352. Palp, retrolateral. 353. Ventral. 354. Female Sumbawa. venter. 355. Epigyne. 356 in Forest Spiders of South East Asia With a revision of the sac and ground spiders (Araneae: Clubionidae, Corinnidae, Liocranidae, Gnaphosidae, Prodidomidae and Trochanteriidae).
Figs 349-356. Oedignatha scrobiculata. 349. Male Sumbawa. habitus. ventral. 350. Lateral. 351. Front view. 352. Palp, retrolateral. 353. Ventral. 354. Female Sumbawa. venter. 355. Epigyne. 356. Vulva in clove oil. ventral.
DL-FRONT MERRA-2 weather front probability maps over North America, 1980-
<p>DL-FRONT is a Deep Learning Neural Network (DLNN) that was trained to detect weather fronts using spatial grids of near-surface atmospheric variables. The dataset is composed of hourly spatial grids containing probability maps for each of five front-type categories—cold front, warm front, stationary front, occluded front, and no front.</p> <p>This dataset is the product of processing data from the National Aeronautics and Space Administration (NASA) <a href="https://gmao.gsfc.nasa.gov/reanalysis/MERRA-2/">Modern-Era Retrospective analysis for Research and Applications, Version 2</a> (MERRA-2). DL-FRONT processed MERRA-2 hourly data grids of instantaneous measures of air pressure reduced to mean sea level, air temperature at 2 meters, specific humidity at 2 meters, and wind velocity at 10 meters over the time span 1980 - 2018 to produce this dataset. The original MERRA-2 data were resampled at 1 degree resolution over the spatial range 31W - 171W x 10N - 77N using bicubic interpolation.</p> <p>At each hourly time step the network produced a set of spatial grids with the same resolution and spatial range as the input, one for each of the five categories mentioned above. Each cell in a spatial grid for a given category records the network-assigned probability (from 0.0 to 1.0) that the cell is in a weather front boundary region of that category (or, for the "no front" category, the probability that the cell is not in any weather front boundary region).</p> <p>The DLNN was trained using MERRA-2 data and human-identified fronts from the NOAA National Weather Service (NWS) Weather Prediction Center (WPC) <a href="https://www.wpc.ncep.noaa.gov/html/sfc2.shtml">Coded Surface Bulletin</a> dataset. The training datasets covered the years 2003-2007.</p> <p>The dataset contains two sets of files. The first set contains the original front probability maps. The second set contains "one hot" versions of the front probability maps. In the one hot version the five front-type probabilities for a spatial grid cell for a given time step are replaced by the value 1 for the largest front-type probability, and by 0 for the others.</p> <p>The front probability files have names that follow the form merra2_merra2-1deg_fronts_<year>.nc. The one hot files have names that follow the form merra2_merra2-1deg_onehot_<year>.nc. Each file contains one year of hourly spatial data grids.</p>
FIGURE 16. Appendicula spicata. A. Flowering shoot. B. Flower, front view. C. Flower, side view. D in New orchids in the flora of Vietnam VIII (Orchidaceae: Epidendroideae, tribes Malaxideae, Neottieae and Podochileae)
FIGURE 16. Appendicula spicata. A. Flowering shoot. B. Flower, front view. C. Flower, side view. D. Flower, front view (lip removed). E. Lip, view from above and from below. F. Lip, sagittal section. Drawn from the specimen Averyanov, T. Maisak, AL1280 by L. Averyanov.
FIGURE 3. Tricyrtis lingyunyanensis. A. Habit. B. Flower, front view. C. Flower, side view. D. Mature capsule with transverse slits. E. Seed. F in Taxonomic revision of Tricyrtis (Liliaceae) in Taiwan and a new species, Tricyrtis lingyunyanensis
FIGURE 3. Tricyrtis lingyunyanensis. A. Habit. B. Flower, front view. C. Flower, side view. D. Mature capsule with transverse slits. E. Seed. F. Adaxial surface of tepal, inner (left), outer (right). G. Abaxial surface of tepal, inner (left), outer (right). H. Adaxial surface of leaf. I. Abaxial surface of leaf. Photos taken by Y.H. Chen.
ਤ 2.ɹA: Ṧ֘ğĻƟȎẉƟཪḺķIJƺhĽğĻ ĵ«ỳ.B: ȎẉƟÜħḺķIJƺhĽṽ̆ỳ. Fig. 2.ɹA: Specimen label on the pedestal of this specimen. B: Label attached to the front of the pedestal. in DZŹՊŸതńffiॴଂνγd7ണṶğĻṒ =‡żϯϯḩì Canis lupus hodophilax Ḟȑ Is a Skin Specimen of bYamainu`in the Collection of the National Museum of Nature and Science, Tokyo, a Japanese wolf Canis lupus hodophilax?
ਤ 2.ɹA: Ṧ֘ğĻƟȎẉƟཪḺķIJƺhĽğĻ ĵ«ỳ.B: ȎẉƟÜħḺķIJƺhĽṽ̆ỳ. Fig. 2.ɹA: Specimen label on the pedestal of this specimen. B: Label attached to the front of the pedestal.
Fig. 6 in Crossing the polar front-Antarctic species discovery in the nudibranch genus Tritoniella (Gastropoda)
Fig. 6 Schematic drawings of the male reproductive system showing vas deferens (vd) and penial papilla (pp). A, Tritoniella belli. B, T. gnocchi n. sp. C, T. prinzess n. sp., pp was attached to penial sheath
Fig. 14 in Crossing the polar front-Antarctic species discovery in the nudibranch genus Tritoniella (Gastropoda)
Fig. 14 Paratype of Tritoniella schoriesi n. sp. (ZSM 20110202–02). A, dorsal view. B, ventral view. C, lateral view. D, live picture. E, ventral view of the anterior part with velum
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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)
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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.