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FIG. 2 in The Walker Scale: Details of a Method for Assessing Beach-Spawning Runs of California Grunion Leuresthes tenuis (Atheriniformes: Atherinopsidae)
FIG. 2. (A) Collecting eggs after a run. Clutches are indicated with blue flags. These were found within 10 min following a run scored at W-5. Not all clutches present are marked. (B) Grunion eggs. Photos by Karen Martin.
FIG. 7 in The Walker Scale: Details of a Method for Assessing Beach-Spawning Runs of California Grunion Leuresthes tenuis (Atheriniformes: Atherinopsidae)
FIG. 7. Report using Walker Scale in smaller segments, in the context of a coastal construction project. Map of Santa Ana River, California from Merkel & Associates, 2017 (used with permission of Keith Merkel). This would be reported as a W-4 for the Grunion Greeters for 4/12, a W-2 on 4/13, and a W-1 on 4/14. The detailed locations given for the run assist in project management along the shoreline to avoid nest sites during construction.
FIG. 1 in The Walker Scale: Details of a Method for Assessing Beach-Spawning Runs of California Grunion Leuresthes tenuis (Atheriniformes: Atherinopsidae)
FIG. 1. (A) California Grunion spawn out of water on beaches in southern California. Photo by Arnold Liu (used with permission of Grunion.org). (B) Grunion Greeters at a spawning run, scored as W-4. Photo by Harris Lakisic (used with permission of Grunion.org).
Figure 3 in Detailed integrative taxonomic analysis reveals large-scale species misidentification of barnacles based on DNA barcoding data
Figure 3. Neighbour-joining tree for the three investigated barcode index numbers. Ŋe coloured sequences in each clade indicate our newly generated sequences of specimens with unequivocal morphological identification.
Figure 2 in Detailed integrative taxonomic analysis reveals large-scale species misidentification of barnacles based on DNA barcoding data
Figure 2. Morphology of unidentified Balanus sp. individuals of clade A (BOLD:AAG0069) (A), Balanus balanus (B), Balanus crenatus
Figure 1 in Detailed integrative taxonomic analysis reveals large-scale species misidentification of barnacles based on DNA barcoding data
Figure 1. Bubble plot of the correspondence between species assignments and the barcode index number (BIN; genetic clade). Ŋe size of the bubbles corresponds to the number of sequences contained in each combination of BIN and species assignment. Vertical lines highlight BINs that contain more than one species assignment, and horizontal lines highlight species assignments that are present in more than one BIN. Grey bubbles indicate a one-to-one match between BIN and species assignment. Coloured bubbles represent the three BINs that were investigated further by integrative taxonomic analysis.
Best-fit Abundances, Observed Spectra and Spectral Models for the New Sample of Ultracool Dwarf Benchmarks with Detailed Chemical Characterization
<p>Dataset associated with Fisher et al. 2024 in RNAAS <a href="https://iopscience.iop.org/article/10.3847/2515-5172/ad79f0">[link to publication]</a></p> <p><code>summary.mrt</code> is a table of identifiers, photometry, fundamental stellar parameters and detailed chemical compositions for 13 candidate wide binary systems with FGK Main Sequence primaries (5100 K < Teff < 6300 K) and ultracool dwarf companions (2500 K < Teff < 3100 K). Refer to the file header for detailed description of columns and units.</p> <p><code>stars.zip</code> contains the high-resolution spectra of primaries observed with the Automated Planet Finder (APF, program <code>2021B_A010</code>), as well as the corresponding best-fit spectral models. Each FITS file in the archive represents an individual exposure of the primary. The files are arranged in directories by identifiers of the primaries. The total number of exposures varies from source to source.</p> <p>FITS files are composed of a primary HDU and 6 extensions.</p> <ul> <li>The primary HDU contains the unmodified sky-subtracted spectrum of the object as produced by the APF pipeline and published on <a href="https://jump.caltech.edu/">Jump</a>. The spectrum is stored as a 2D array organized by Echelle orders.</li> <li>The first extension contains the corresponding air wavelengths [in A] transformed to the rest frame of the source.</li> <li>The second extension is the boolean mask of pixels included in model fitting.</li> <li>The third extension is the adopted statistical weights of each pixel, estimated as inverse variances under the assumption of Poisson noise.</li> <li>The fourth extension contains the best-fit synthetic spectrum in CGS units of surface intensity per wavelength in A.</li> <li>The fifth extension is the best-fit spline continuum correction between the model and the data.</li> <li>The final extension contains the adopted FWHM of the line spread function in each pixel, estimated by combining in quadrature a wavelength-dependent component with λ/Δλ=120,000 and a best-fit wavelength independent component (the <code>quickblur</code> parameter of the <a href="https://github.com/Roman-UCSD/chemfit">chemfit</a> package)</li> </ul> <p>This repository is for the research note "New Sample of Ultracool Dwarf Benchmarks with Detailed Chemical Characterization" by Fisher et al. It is associated with manuscript number AAS58102.</p>
FIGURE 2. Tillandsia chalcatzingensis A. Inflorescence. B. Spike and detail with a flower. C. Floral bract. D. Flower. E. Petals. F. Androecium and gynoecium. Photos. R. Cerros and A in Tillandsia chalcatzingensis, a new species from the state of Morelos, Mexico
FIGURE 2. Tillandsia chalcatzingensis A. Inflorescence. B. Spike and detail with a flower. C. Floral bract. D. Flower. E. Petals. F. Androecium and gynoecium. Photos. R. Cerros and A. Espejo.
FIGURE 21. Habit and floral details. A in Can a rainbow consist of a single colour? A new comprehensive generic arrangement of the 'Iris sensu latissimo' clade (Iridaceae), congruent with morphology and molecular data
FIGURE 21. Habit and floral details. A) Zhaoanthus minutoaureus (Hooker 1910: t. 8293); B) Iridodictyum bakerianum (Foster 1889: t. 7084); C) Cryptobasis loczyi (photo: Georgy Lazkov); D) Cryptobasis mariae (photo: Elena Rahimova); E) Hermodactylus tuberosus (Syme 1869: t. 1496).
FIGURE 15. Habit and floral details. A in Can a rainbow consist of a single colour? A new comprehensive generic arrangement of the 'Iris sensu latissimo' clade (Iridaceae), congruent with morphology and molecular data
FIGURE 15. Habit and floral details. A) Limniris sibirica (Dietrich 1832–1833: t. 45); B) L. tenax (Hooker 1834: t. 3343); C) L. pseudacorus (Lindman 1922–1926: t. 398); D) L. wilsonii (Smith 1910: t. 8340).
FIGURE 13. Habit and floral details. A in Can a rainbow consist of a single colour? A new comprehensive generic arrangement of the 'Iris sensu latissimo' clade (Iridaceae), congruent with morphology and molecular data
FIGURE 13. Habit and floral details. A) Juno persica (Wright 1906: t. 8059); B) Evansia japonica (Redouté 1806: t. 152); C) Junopsis collettii (Hooker 1903: t. 7889); D) Tectiris milesii (Baker 1886: t. 6889).
FIGURE 18. Habit and floral details. A in Can a rainbow consist of a single colour? A new comprehensive generic arrangement of the 'Iris sensu latissimo' clade (Iridaceae), congruent with morphology and molecular data
FIGURE 18. Habit and floral details. A) Eremiris lactea (Lindley 1840: t. 1); B) Sclerosiphon songaricum (photo: Vladimir Kolobincev); C) Joniris ruthenica (photo: Aleksandr Kostjukov); D) Joniris ruthenica (Ker Gawler 1811: t. 1393); E) Phaeiris fulva (Small 1927: t. 388).
FIGURE 7. Habit and floral details. A in Can a rainbow consist of a single colour? A new comprehensive generic arrangement of the 'Iris sensu latissimo' clade (Iridaceae), congruent with morphology and molecular data
FIGURE 7. Habit and floral details. A) Siphonostylis cretensis (Baker 1878: t. 6343); B) Gattenhofia verna (Small 1931: t. 520); C) Pardanthopsis dichotoma (Baker 1879: t. 6428); D) Belamcanda chinensis (Curtis 1791: t. 171).
FIGURE 25. Habit and floral details. A in Can a rainbow consist of a single colour? A new comprehensive generic arrangement of the 'Iris sensu latissimo' clade (Iridaceae), congruent with morphology and molecular data
FIGURE 25. Habit and floral details. A) Chamaeiris anguifuga (photo: Jim Murrain); B) Dielsiris missouriensis (Baker 1881: t. 6579); C) Rodionenkoa gracilipes (Hemsley 1903: t. 7926); D) Lophiris cristata (Small 1924: t. 320).
FIGURE 23. Habit and floral details. A in Can a rainbow consist of a single colour? A new comprehensive generic arrangement of the 'Iris sensu latissimo' clade (Iridaceae), congruent with morphology and molecular data
FIGURE 23. Habit and floral details. A) Syrianthus grant-duffii (Baker 1889: t. 7604); B) Xiphion boissieri (Baker 1890: t. 7097); C) Alatavia kolpakowskiana (Baker 1880: t. 6489); D) Chamaeiris orientalis (Trew et al. 1773: t. 100).
FIGURE 1. Erythroxylum lancifolium Peyr. A. Flowering branch. B. Leaf blade, detailing venation. C. Branch detail, showing stipules. D. Stipule, abaxial view. E in Lectotypification and notes on the distribution and conservation status of Erythroxylum lancifolium (Erythroxylaceae), species endemic to the Brazilian Atlantic Forest
FIGURE 1. Erythroxylum lancifolium Peyr. A. Flowering branch. B. Leaf blade, detailing venation. C. Branch detail, showing stipules. D. Stipule, abaxial view. E. Flower bud, showing bracteoles at the base F. Brevistylous flower, with petals removed. G. Petal, showing appendages. H. Ovary. I. Drupe. J. Drupe in cross-section. Vouchers: A–H—A.P. Fontana et al. 1191 (MBML 24468); I–J—L. Kollmann et al. 9567 (MBML 29170). Drawn by Lucas Marinho.
FIGURE 1. Paepalanthus echinoides. A. Habit. B. Capitulum detail. C. Receptacle detail. D. Involucral bract, abaxial surface. E. Floral bract, abaxial surface. F. Pistillate flower. G. Gynoecium. H. Staminate flower. I in Paepalanthus echinoides (Eriocaulaceae), a new species from central Brazil with notes on leaf and scape anatomy
FIGURE 1. Paepalanthus echinoides. A. Habit. B. Capitulum detail. C. Receptacle detail. D. Involucral bract, abaxial surface. E. Floral bract, abaxial surface. F. Pistillate flower. G. Gynoecium. H. Staminate flower. I. Staminate flower with sepals removed and corolla opened. (M.L.O. Trovó & A.L. Silva 647 – RB).
FIGURE 2. Bulbostylis albidostricta.—A. Detail cataphylls.—B. Detail orifice hairs.—C in Bulbostylis albidostricta (Abildgaardieae, Cyperaceae): a new sedge species from Angola
FIGURE 2. Bulbostylis albidostricta.—A. Detail cataphylls.—B. Detail orifice hairs.—C. Detail of nutlet with removed velate layer. From the type specimen H. & E. Hess 51/253.
FIGURE 1. Homalopetalum joinvillense Mancinelli & E.C. Smidt. A. Habit. B. Flower. C. Dorsal sepal. D. Lateral sepal. E. Petal. F. Lip with margin detailed. G in Homalopetalum joinvillense (Epidendreae; Epidendroideae; Orchidaceae): a new species from Southern Brazil
FIGURE 1. Homalopetalum joinvillense Mancinelli & E.C. Smidt. A. Habit. B. Flower. C. Dorsal sepal. D. Lateral sepal. E. Petal. F. Lip with margin detailed. G. Lip and column—lateral view. H. Column—front view. I. Anther—dorsal face. J. Anther—ventral face. K. Pollinia.
FIGURE 2.Chamaecrista tenuicaulis. A. Habitat. B. Habit. C. Xylopodium, detail. D. Flowering branch. E. Branch with leaves. F. Flower. G in A new species of Chamaecrista (Leguminosae) from the Brazilian Central Plateau
FIGURE 2.Chamaecrista tenuicaulis. A. Habitat. B. Habit. C. Xylopodium, detail. D. Flowering branch. E. Branch with leaves. F. Flower. G. Fruiting branch. Photographs taken by Marcos J. Silva.
ScienceDex guides
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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.