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372 results for “hawaii”
Figure 3 in Diversity and taxonomy of rocky-intertidal Bryozoa on the Island of Hawaii, USA
Figure 3. (A–C) Alderina flaventa n. sp., holotype (NHM 2006.7.21.1): (A) group of autozooids and ovicellate zooids; (B) ovicellate zooid; (C) colony margin showing uniporous septula. (D) Parellisina albida (Hincks): autozooids, ovicellate zooid, and interzooidal avicularia. All specimens bleached. Scale bars: 500 Mm (A, C, D); 400 Mm (B).
Figure 17. Favosipora adunca n in Diversity and taxonomy of rocky-intertidal Bryozoa on the Island of Hawaii, USA
Figure 17. Favosipora adunca n. sp.: (A) paratype 1 (NHM 2006.7.21.25), partial view of colony; (B) paratype 1, enlargement of fused peristomes of autozooids; (C) holotype (NHM 2006.7.21.24), brood chamber; (D) holotype, enlargement of brood chamber, showing oeciostome (top, right of centre); (E) paratype 4 (YPM-38559), detail of brood-chamber formation, showing granulated floor and struts of calcification that will contribute to covering; (F) paratype 4, enlargement of kenozooidal openings. All specimens bleached. Scale bars: 1 mm (A); 200 Mm (B, D, E); 500 Mm (C); 100 Mm (F).
Figure 2 in Diversity and taxonomy of rocky-intertidal Bryozoa on the Island of Hawaii, USA
Figure 2. Photographs of rock-pile habitats examined at study sites on the Island of Hawaii; all taken within an hour of low tide (20.03 to +0.15 m referenced to mean lower low water). (A) Kealakekua Bay; study site is shallow inlet beginning at centre and extending to just below left centre; plastic kayak at upper right indicates scale. (B) Whittington Beach Park; sheltered lagoon inside benchrock barrier, part of which can be seen in distance at far upper right; scale indicated by water bottle at lower left. (C) Kapa'a Beach Park; an exposed site with roundedboulder beaches (centre) and solid benchrock (in distance, upper right); sampling site was a tidepool in the benchrock just beyond the upper right of the photograph. (D) Kiholo Bay; entrance to large lagoon separated from the sea by a long barrier spit, on which palm and other trees are growing; end of spit is seen just above right centre, with lagoon evident beyond that in the distance; the shallow area with boulders protruding from water, left to right just below centre, was examined for bryozoans; photograph taken about an hour before low tide.
Figure 8 in Diversity and taxonomy of rocky-intertidal Bryozoa on the Island of Hawaii, USA
Figure 8. (A, B) Drepanophora corrugata (Thornely): (A) autozooids; (B) enlargement of orifice from distal view showing lyrula and condyles. (C, D) Escharoides longirostris (Dumont): (C) autozooids and one ovicellate zooid; (D) enlargement of orifice and lateral oral avicularium. All specimens bleached. Scale bars: 500 Mm (A, C); 100 Mm (B, D).
Figure 1 in Diversity and taxonomy of rocky-intertidal Bryozoa on the Island of Hawaii, USA
Figure 1. Outline map of the Island of Hawaii, showing the location of the main town, Hilo, and the four localities examined for bryozoans (smaller circles).
Figure 13 in Diversity and taxonomy of rocky-intertidal Bryozoa on the Island of Hawaii, USA
Figure 13. (A–C) Cribellopora souleorum n. sp., paratype 1 (NHM 2006.7.21.20): (A) autozooids and ovicellate zooids; note predation hole in ovicell at right and scars on both ovicells; (B) enlargement of orifice; (C) ancestrula (lower right) and three periancestrular zooids; note predation holes in frontal walls of two zooids. (D, E) Nimba
Figure 11 in Diversity and taxonomy of rocky-intertidal Bryozoa on the Island of Hawaii, USA
Figure 11. (A) Hippopodina iririkiensis Tilbrook: autozooids and ovicellate zooids. (B, C) Cosciniopsis lonchaea (Busk): (B) autozooids and ovicellate zooids; (C) enlargement showing shapes of primary and secondary orifices. (D, E) Calyptotheca kapaaensis n. sp., holotype (NHM 2006.7.21.15): (D) autozooids; (E) enlargement of primary orifice and suboral avicularium. (F) Cheiloporina haddoni Harmer: autozooids and one ovicellate zooid (upper left). All specimens bleached. Scale bars: 1 mm (A, B, F); 200 Mm (C); 500 Mm (D); 100 Mm (E).
Figure 12 in Diversity and taxonomy of rocky-intertidal Bryozoa on the Island of Hawaii, USA
Figure 12. (A–C) Bryopesanser serratus n. sp.: (A) paratype 1 (NHM 2006.7.21.18), autozooids; note predation hole in right-hand zooid; (B) holotype (NHM 2006.7.21.17), enlargement of distal end of an ovicellate zooid; (C) paratype 2 (YPM-38556), ancestrula (lower left-of-centre, broken) and periancestrular zooids, showing a spiral budding pattern. (D) Fenestrulina caseola Hayward: autozooid and ovicellate zooid. All specimens bleached. Scale bars: 400 Mm (A); 200 Mm (B); 500 Mm (C, D).
Dataset used in "Uncertainty-Aware Learning for Improvements in Image Quality of the Canada-France-Hawaii Telescope" (https://arxiv.org/abs/2107.00048)
<p>'x_train.p', 'y_train.p': pickle files for training split containing 50,757 samples</p> <p>'x_val.p', 'y_val.p': pickle file for validation split containing 5,640 samples</p> <p>'x_test.p', 'y_test.p': pickle file for test split containing 6,267 samples</p> <p>'feature_names.p': pickle file containing names of all 119 features</p>
Figure 5 in Entomopathogenic Fungi as Mortality Factors of Macadamia Felted Coccid, Eriococcus ironsidei (Hemiptera: Eriococcidae) in Hawaii
Figure 5. Mean mortality (±SEM) of E. ironsidei after dipping in increasing conidial concentrations of P. coccorum. Bars with different letters differ significantly (α = 0.05) by LSD.
Figure 6 in Entomopathogenic Fungi as Mortality Factors of Macadamia Felted Coccid, Eriococcus ironsidei (Hemiptera: Eriococcidae) in Hawaii
Figure 6. Mean mortality (±SEM) of E. ironsidei after dipping in increasing conidial concentrations of B. bassiana. Bars with different letters differ significantly (α = 0.05) by LSD.
Figure 2 in Entomopathogenic Fungi as Mortality Factors of Macadamia Felted Coccid, Eriococcus ironsidei (Hemiptera: Eriococcidae) in Hawaii
Figure 2. Mean (±SEM) length of time E. ironsidei continued to reproduce following treatment with different conidial concentrations of P. coccorum. Bars with different letters differ significantly (α = 0.05) by LSD.
Figure 1 in Entomopathogenic Fungi as Mortality Factors of Macadamia Felted Coccid, Eriococcus ironsidei (Hemiptera: Eriococcidae) in Hawaii
Figure 1. Mean (±SEM) length of time E. ironsidei continued to reproduce following treatment with different conidial concentrations of C. griseum. Bars with different letters differ significantly (α = 0.05) by LSD.
Figures 2–5 in Lobate Lac Scale (Paratachardina pseudolobata Kondo and Gullan) Invades from Oahu into Neighbor Islands: Statewide Survey in Hawaii
Figures 2–5. Lobate lac scale (LLS) sites surveyed. (2) Hawaii. LLS in Hilo was detected by HDOA staff (personal communication, 2017). (3) Maui. (4) Kauai. (5a) Molokai. (5b) Lanai. Color code for survey sites in Figures 2–5: Blue: no LLS detected. Yellow: LLS detected, but no longer detected in later surveys. Red: LLS detected and established.
Figure 1 in Lobate Lac Scale (Paratachardina pseudolobata Kondo and Gullan) Invades from Oahu into Neighbor Islands: Statewide Survey in Hawaii
Figure 1. Mature female lobate lac scale (x-shaped, deep maroon color) and crawlers (red color) (1a); sooty mold formation on twigs and leaves (1b).
Figure 1 in Comparison of Sampling Intensity to Estimate Infestations of Coffee Berry Borer on Hawaii
Figure 1. Mean proportion of infested berries ± SEM estimated by counting berries using three sampling intensities. The data are averages from four farms on Hawaii island.
Figure 4 in First Field Collection of the Rough Sweetpotato Weevil, Blosyrus asellus (Olivier) (Coleoptera: Curculionidae), on Hawaii Island, with Notes on Detection Methods
Figure 4. Average (+ SEM) catch of adult rough sweetpotato weevils/trap/day in green light traps with and without added attractant(s). Treatments having the same letter above the error bar are not significantly different at the α = 0.05 level. Only results of treatments which included green light (Treatments 5–9) are presented here because there was no catch in this trial in traps of any of the treatments where the green light was off (Treatments 1–4).
Figure 2 in Dichromothrips smithi (Zimmermann), a New Thrips Species Infesting Bamboo Orchids Arundina graminifolia (D. Don) Hochr. and Commercially Grown Orchids in Hawaii
Figure 2. Area where bamboo orchids were common in lower Puna (2a). Locations (marked with red pins) in east Hawaii in which bamboo orchids were surveyed for the presence of D. smithi in 2008 and 2009 (2b).
Figure 1. A in Dichromothrips smithi (Zimmermann), a New Thrips Species Infesting Bamboo Orchids Arundina graminifolia (D. Don) Hochr. and Commercially Grown Orchids in Hawaii
Figure 1. A bamboo orchid blossom infested with adult females of D. smithi, which appear black against the light pink color of the petals.
Figure 4. A normal female and a in Dichromothrips smithi (Zimmermann), a New Thrips Species Infesting Bamboo Orchids Arundina graminifolia (D. Don) Hochr. and Commercially Grown Orchids in Hawaii
Figure 4. A normal female and a teneral (newly molted, light colored) female D. smithi after storage in 70% ethanol (4a). Male and female D. smithi in ethanol (4b). The two males are lighter in color. Note that females stored in ethanol appear lighter brown with abdominal segments stretched out in comparison to the live female on blossom tissue pictured in 4c.
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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.