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FIGURE. Aristolochia rethyae—A. Flower in pre-anthesis; B. Frontal view of flower; C. Lateral view of flower; D. Longitudinal section of utricle showing the gynostemium; E. Tip of the gynostemium; F. Stamens on gynostemium; G. Cross section of gynostemium showing the stamen arrangement; H. Cross section of ovary; I. Hair on capsule. A–C photographed by Soyala Kashung; D–I photographed by Rimi Barman. in Aristolochia rethyae, a new species from Arunachal Pradesh, north-east India

FIGURE. Aristolochia rethyae—A. Flower in pre-anthesis; B. Frontal view of flower; C. Lateral view of flower; D. Longitudinal section of utricle showing the gynostemium; E. Tip of the gynostemium; F. Stamens on gynostemium; G. Cross section of gynostemium showing the stamen arrangement; H. Cross section of ovary; I. Hair on capsule. A–C photographed by Soyala Kashung; D–I photographed by Rimi Barman.

opennotspecifiedSep 2022View details →
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parts conical pore; B = loculate pore; C = minute sclerotised pore; D = tubular duct of spermatheca; E = hair; F = hair­like seta; G = collared setae; H = satellite setae; L = bifurcated seta; M = abdominal spiracle; N = anal tube; P = part of leg; Q = claw; R = view of part of dorsal derm; S = view or part of ventral derm; T = abdominal tubular duct; Z = spine on eversible endophallus. Also note that, on central drawing, density of setae only shown on one abdominal segment and leg setae only shown on methorax in Morphology of Marchalina hellenica (Gennadius) (Hemiptera: Coccoidea: Marchalinidae) from Greece, with a discussion on the identity of M. caucasica Hadzibeyli from the Caucasus

parts conical pore; B = loculate pore; C = minute sclerotised pore; D = tubular duct of spermatheca; E = hair; F = hair­like seta; G = collared setae; H = satellite setae; L = bifurcated seta; M = abdominal spiracle; N = anal tube; P = part of leg; Q = claw; R = view of part of dorsal derm; S = view or part of ventral derm; T = abdominal tubular duct; Z = spine on eversible endophallus. Also note that, on central drawing, density of setae only shown on one abdominal segment and leg setae only shown on methorax

opennotspecifiedMay 2006View details →
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FIGURE XII. Elytral hairs and punctures.—12, Lemula (s. str.) cyanipennis Hayashi; 13, L. (s. str.) formosana formosana sp. nov.; 14, L. (s. str.) formosana aenea subsp. nov.; 15, L. (s. str.) coerulea Gressitt; 16, L. (s. str.) simillima sp. nov.; 17, L. (s. str.) fracta Holzschuh; 18, L. (s. str.) holzschuhi sp. nov.; 19, L. (s. str.) pilifera Holzschuh; 20, L. (s. str.) par Holzschuh; 21, L. (s. str.) shaanxiensis subsp. nov.; 22, L. (s. str.) gorodinskii gorodinskii Holzschuh; 23, L. (s. str.) gorodinskii henanica Holzschuh. in Revision of the genus Lemula (Coleoptera, Cerambycidae, Lepturinae)

FIGURE XII. Elytral hairs and punctures.—12, Lemula (s. str.) cyanipennis Hayashi; 13, L. (s. str.) formosana formosana sp. nov.; 14, L. (s. str.) formosana aenea subsp. nov.; 15, L. (s. str.) coerulea Gressitt; 16, L. (s. str.) simillima sp. nov.; 17, L. (s. str.) fracta Holzschuh; 18, L. (s. str.) holzschuhi sp. nov.; 19, L. (s. str.) pilifera Holzschuh; 20, L. (s. str.) par Holzschuh; 21, L. (s. str.) shaanxiensis subsp. nov.; 22, L. (s. str.) gorodinskii gorodinskii Holzschuh; 23, L. (s. str.) gorodinskii henanica Holzschuh.

opennotspecifiedSep 2019View details →
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FIGURE XIV. Elytral hairs and punctures.—24, Lemula (s. str.) lata lata Holzschuh; 25, L. (s. str.) lata zhejianga subsp. nov. 26, L. (s. str.) crucifera Shimomura; 27, L. (s. str.) japonica Tamanuki; 28, L. (Pseudolemula) viridipennis Holzschuh; 29, L. (Pseudolemula) tichyi sp. nov. in Revision of the genus Lemula (Coleoptera, Cerambycidae, Lepturinae)

FIGURE XIV. Elytral hairs and punctures.—24, Lemula (s. str.) lata lata Holzschuh; 25, L. (s. str.) lata zhejianga subsp. nov. 26, L. (s. str.) crucifera Shimomura; 27, L. (s. str.) japonica Tamanuki; 28, L. (Pseudolemula) viridipennis Holzschuh; 29, L. (Pseudolemula) tichyi sp. nov.

opennotspecifiedSep 2019View details →
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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.

opennotspecifiedMar 2014View details →
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FIGURE 1. Chrysosplenium zhangjiajieense, A-B, Leaf epidermal hairs. C, Caulline leaf. D-E, Bracteal leaf. F, Flower. G, Ovary. H in A new species of Chrysosplenium (Saxifragaceae) from Zhangjiajie, Hunan, central China

FIGURE 1. Chrysosplenium zhangjiajieense, A-B, Leaf epidermal hairs. C, Caulline leaf. D-E, Bracteal leaf. F, Flower. G, Ovary. H, Capsule.

opennotspecifiedSep 2016View details →
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MESA files for "She's Got Her Mother's Hair: End-to-End Collapsar Simulations Unveil the Origin of Black Holes' Magnetic Field"

<p>MESA input files, output, and scripts to reproduce Fig. 1 and the appendix figure in <a href="https://ui.adsabs.harvard.edu/abs/2024arXiv240716745G/abstract">Gottlieb, Renzo,&nbsp; et al. 2024</a><br><br></p>

opencc-by-4.0Aug 2024View details →
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FIGURE 1. Diplotaxis australis. A. Habit. B. Cauline leaf. C. Stem hairs. D in Taxa related to Diplotaxis virgata (Brassicaceae) in northwest Africa

FIGURE 1. Diplotaxis australis. A. Habit. B. Cauline leaf. C. Stem hairs. D. Top of flowering branch. E. Flower bud showing hairs on sepals. F. Siliques. Scale bars: A–B = 1 cm; C–F = 1 mm. All drawn from the type, BC 813229. Illustration by Marta Chirino.

opennotspecifiedOct 2018View details →
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FIGURE 2. Tayloria rudolphiana. A. Young sporophyte. B. Calyptra. C–D. Capsules. E. Columella with spore sac. F. Peristome teeth. G. Stomata. H. Axillary hairs. I in Revisit of European-Asiatic connections in Tayloria rudolphiana (Splachnaceae, Bryophyta) based on molecular data and new morphological evidence

FIGURE 2. Tayloria rudolphiana. A. Young sporophyte. B. Calyptra. C–D. Capsules. E. Columella with spore sac. F. Peristome teeth. G. Stomata. H. Axillary hairs. I. Cross sections of stem. J. Cross sections of leaves at midleaf. (All photo images prepared from He &amp; Yi 49798, MO).

opennotspecifiedApr 2020View details →
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Movies for Figure 4 in "She's Got Her Mother's Hair: End-to-End Collapsar Simulations Unveil the Origin of Black Holes' Magnetic Field, (#AAS56924)"

<p>There are 10 videos: Six 2D vertical maps of the logarithmic mass density and four 3D renderings of the disk density (red) and jet magnetization (blue). In the 2D maps, the black contours outline the magnetic field lines, where solid and dashed lines delineate positive and negative magnetic polarity, respectively.</p> <p>The filenames correspond to the model names in the paper:</p> <p>Model a9&Phi;hD includes a rapidly spinning black hole with a high magnetic flux reservoir and large angular momentum to form a disk.</p> <p>Model a9&Phi;hI includes a rapidly spinning black hole with a high magnetic flux reservoir and small angular momentum that does not form a disk.</p> <p>Model a1&Phi;hD includes a slowly spinning black hole with a high magnetic flux reservoir and large angular momentum to form a disk.</p> <p>Model a9&Phi;lD includes a rapidly spinning black hole with a low magnetic flux reservoir and large angular momentum to form a disk.</p> <p>Model a5&Phi;lD includes a moderately spinning black hole with a low magnetic flux reservoir and large angular momentum to form a disk.</p> <p>Model a1&Phi;lD includes a slowly spinning black hole with a low magnetic flux reservoir and large angular momentum to form a disk.</p> <p>BHs with higher spins and magnetic fluxes retain the remnant poloidal field of the PNS to maintain steady jet launching. When the BH spin and the initial flux on the BH are low, or an accretion disk is absent (model a9&Phi;hI), the BH cannot sustain a large-scale field. As a result, magnetic loops of opposite polarity are accreted onto the BH, causing the BH magnetic flux to reconnect and reduce the flux on the BH, resulting in the depletion of jets.</p>

opencc-by-4.0Oct 2024View details →
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FIGURE 6. Solanum hair types. A in A taxonomic revision of the Solanum echinatum group (Solanaceae)

FIGURE 6. Solanum hair types. A. section of fruiting calyx of S. echinatum showing prickles and hairs; B. section of upper leaf surface of S. rhaphiotes; C. a stellate hair from S. lucani; D. section of upper leaf surface of S. lapidosum. A from Harris 432; B from Russell-Smith 556; C from Thompson WES122; D from Fox 431. Scale bar: A = 2 mm, B = 0.3 mm, C = 0.25 mm, D = 0.3 mm.

opennotspecifiedJun 2012View details →
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FIGURE 3. Begonia tandangii. A. Habit. B. Stipule. C. Leaf margin sparsely fringed with minute hairs. D. Bracts. E. Staminate flower. F. Stamens. G. Pistillate flower, ventral view. H. Pistillate flower, lateral view. I. Styles and stigmas. J in Begonia tandangii (Begoniaceae, section Baryandra), a new species from Luzon Island, the Philippines

FIGURE 3. Begonia tandangii. A. Habit. B. Stipule. C. Leaf margin sparsely fringed with minute hairs. D. Bracts. E. Staminate flower. F. Stamens. G. Pistillate flower, ventral view. H. Pistillate flower, lateral view. I. Styles and stigmas. J. Transverse section of developing capsule. K. Capsule with persistent tepals. All drawn from Ching-I Peng 23400 (HAST) by Chien-Yu Ke.

opennotspecifiedNov 2013View details →
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FIGURE 2. Begonia tandangii. A. Habitat. B. Habit. C. Rhizome. D. Stipule. E. Leaf, adaxial view. F. Leaf margin sparsely fringed with minute hairs. G. Bracts. H. Staminate flower. I. Pistillate flower, ventral view. J. Pistillate flower, lateral view. K in Begonia tandangii (Begoniaceae, section Baryandra), a new species from Luzon Island, the Philippines

FIGURE 2. Begonia tandangii. A. Habitat. B. Habit. C. Rhizome. D. Stipule. E. Leaf, adaxial view. F. Leaf margin sparsely fringed with minute hairs. G. Bracts. H. Staminate flower. I. Pistillate flower, ventral view. J. Pistillate flower, lateral view. K. Transverse section of developing capsule. L. Capsule with persistent tepals. Scale bars are 5 cm for B, 5 mm for C–D and F–L, 10 mm for E. [All photos from Ching-I Peng 23400 (HAST)]

opennotspecifiedNov 2013View details →
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FIGURE 2. Andrographis stenophylla C.B. Clarke. A. Habit. B. Flower. C. Fruit. D. Calyx with glandular hairs. E. Seeds. F in Taxonomy, lectotypification and distribution of Andrographis stenophylla (Acanthaceae), a little known endemic species from southern India

FIGURE 2. Andrographis stenophylla C.B. Clarke. A. Habit. B. Flower. C. Fruit. D. Calyx with glandular hairs. E. Seeds. F. SEM photograph of seed. G &amp; H. SEM photographs of seed showing surface ornamentation (Photos G. Gnanasekaran).

opennotspecifiedJan 2014View details →
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FIGURE 2. Crinipellis birhizomorpha. a. cheilocystidia, b. basidiospores, c. pileus hairs, d in Three new species of Crinipellis and one new variety of Moniliophthora (Basidiomycota, Marasmiaceae) described from the Republic of Korea

FIGURE 2. Crinipellis birhizomorpha. a. cheilocystidia, b. basidiospores, c. pileus hairs, d. surface of abortive pilei. Scale bar = 20 μm for a–c, 50 μm for d.

opennotspecifiedMay 2014View details →
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Figure 9 in Can hair width and scale pattern and direction of dorsal scapular mammalian hair be a relatively simple means to identify species?

Figure 9. Scanning electron micrographs of mammalian hair. Little pocket mouse underfur (A); muskrat guard hair (B) and underfur (C); gold mantled ground squirrel guard hair (D, E) and underfur (F).

opennotspecifiedFeb 2009View details →
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Figure 3 in Can hair width and scale pattern and direction of dorsal scapular mammalian hair be a relatively simple means to identify species?

Figure 3. Scanning electron micrographs of mammalian hair. Striped skunk guard hair (A, C) and underfur (B, D); American badger guard hair (E) and underfur (F).

opennotspecifiedFeb 2009View details →
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Figure 4 in Can hair width and scale pattern and direction of dorsal scapular mammalian hair be a relatively simple means to identify species?

Figure 4. Scanning electron micrographs of mammalian hair. Northern raccoon guard hair (A) and underfur (B); American black bear guard hair (C) and underfur (D); pallid bat underfur (E, F).

opennotspecifiedFeb 2009View details →
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Figure 1 in Can hair width and scale pattern and direction of dorsal scapular mammalian hair be a relatively simple means to identify species?

Figure 1. Scanning electron micrographs of mammalian hair. Bighorn sheep guard hair (A) and underfur (B); elk guard hair (C) and underfur (D); white tailed deer guard hair (E) and underfur (F).

opennotspecifiedFeb 2009View details →
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Figure 8 in Can hair width and scale pattern and direction of dorsal scapular mammalian hair be a relatively simple means to identify species?

Figure 8. Scanning electron micrographs of mammalian hair. North American porcupine guard hair (A–C); northern pocket gopher underfur (D, E); little pocket mouse guard hair (F).

opennotspecifiedFeb 2009View details →

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Last verified 2026-04-30Open record

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.

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Last verified 2026-04-29Open record

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Last verified 2026-04-29Open record