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122 results for “Hawai`i”
Figure 5 from: Honsberger DN, Huber JT, Wright MG (2022) A new Mymaromma sp. (Mymarommatoidea, Mymarommatidae) in Hawai'i and first host record for the superfamily. Journal of Hymenoptera Research 89: 73-87. https://doi.org/10.3897/jhr.89.77931
Figure 5 Lepidopsocus sp., host of Mymaromma menehune sp. nov. A–DLepidopsocus sp. eggs, found on F. microcarpa branches, in C two eggs visible, oviposited into a fissure in the wood presumably chewed by an ovipositing cerambycid, and secondarily inhabited by Cryphalus brasiliensis (Coleoptera: Scolytinae) E, FLepidopsocus sp. adult reared from morphologically identical eggs.
Figure 3 from: Honsberger DN, Huber JT, Wright MG (2022) A new Mymaromma sp. (Mymarommatoidea, Mymarommatidae) in Hawai'i and first host record for the superfamily. Journal of Hymenoptera Research 89: 73-87. https://doi.org/10.3897/jhr.89.77931
Figure 3 Relative lengths and widths for 5 females and 4 males of antennal segments of M. menehune sp. nov. A, B female C, D male. Bar heights are means, error bars are ranges.
Figure 1 from: Honsberger DN, Huber JT, Wright MG (2022) A new Mymaromma sp. (Mymarommatoidea, Mymarommatidae) in Hawai'i and first host record for the superfamily. Journal of Hymenoptera Research 89: 73-87. https://doi.org/10.3897/jhr.89.77931
Figure 1 AFicus microcarpa tree on which the Mymaromma sp. was found and from which branches were obtained for collection of potential host eggs B the lengths of structures measured as shown. See text for more explanation C, DMymaromma menehune sp. nov. wings C allotype wing on left showing ventral microtrichia only, wing on right showing dorsal microtrichia only D holotype wing on left showing dorsal microtrichia only, wing on right showing ventral microtrichia only. Scale bars: 250 µm (C, D).
Figure 4 from: Honsberger DN, Huber JT, Wright MG (2022) A new Mymaromma sp. (Mymarommatoidea, Mymarommatidae) in Hawai'i and first host record for the superfamily. Journal of Hymenoptera Research 89: 73-87. https://doi.org/10.3897/jhr.89.77931
Figure 4 Mymaromma menehune sp. nov., ex Lepidopsocus sp. eggs on F. microcarpa branches. A–CM. menehune ♂ (paratype) and D egg from which it emerged E–GM. menehune ♀ (paratype) and H egg from which it emerged I–KM. menehune ♂ (paratype) and L egg from which it emerged.
Figure 7 from: Honsberger DN, Huber JT, Wright MG (2022) A new Mymaromma sp. (Mymarommatoidea, Mymarommatidae) in Hawai'i and first host record for the superfamily. Journal of Hymenoptera Research 89: 73-87. https://doi.org/10.3897/jhr.89.77931
Figure 7 Mymaromma menehune sp. nov. (♀) exploring wood, found and photographed during inspection of F. microcarpa branches.
Figure 2 from: Honsberger DN, Huber JT, Wright MG (2022) A new Mymaromma sp. (Mymarommatoidea, Mymarommatidae) in Hawai'i and first host record for the superfamily. Journal of Hymenoptera Research 89: 73-87. https://doi.org/10.3897/jhr.89.77931
Figure 2 Mymaromma menehune sp. nov. A, B holotype ♀ C, D allotype ♂ E head showing mandible (non type, ♀) F dorsal view of propodeum (non type, ♀) G close up of mandible (non type, ♀). Scale bars: 500 µm (A, C); 100 µm (B, D); 50 µm (E, F); 25 µm (G).
Figure 6 from: Honsberger DN, Huber JT, Wright MG (2022) A new Mymaromma sp. (Mymarommatoidea, Mymarommatidae) in Hawai'i and first host record for the superfamily. Journal of Hymenoptera Research 89: 73-87. https://doi.org/10.3897/jhr.89.77931
Figure 6 Eggs and adults of two other species of bark lice found to emerge from F. microcarpa branches from the same tree APsocidae sp. adult B–C eggs of Psocidae sp. (B unhatched C hatched) DEctopsocus ? pilosus adult E–F eggs, frass, and web of E. ? pilosus (E a patch of eggs visible near bottom left F the eggs are the white ovoids).
Supplementary material 1 from: Gonzalez Cruz J, Johnson M (2024) Towards a spectrum of dissent: A content analysis of Hawai'i's invasive species media. NeoBiota 92: 315-348. https://doi.org/10.3897/neobiota.92.115766
Coding protocol
Supplementary material 2 from: Gonzalez Cruz J, Johnson M (2024) Towards a spectrum of dissent: A content analysis of Hawai'i's invasive species media. NeoBiota 92: 315-348. https://doi.org/10.3897/neobiota.92.115766
Included media list
Figure 3 in Characterization of a Small Population of the Orangeblack Hawaiian Damselfly (Megalagrion xanthomelas) in Anchialine Pools at Kaloko-Honokōhau National Historical Park, Hawai'i Island
Figure 3. Mean number of male and female Megalagrion xanthomelas observed at the seven core pools (A–G) and at all core pools combined (H) during June 2016–August 2017.
Figure 6 from: Lu P-L, DeLay JK (2016) Vegetation and fire in lowland dry forest at Wa'ahila Ridge on O'ahu, Hawai'i. PhytoKeys 68: 51-64. https://doi.org/10.3897/phytokeys.68.7130
Figure 6 - The total individual numbers of the top three dominant species on the burned site from 2008–2015.
Figure 4 from: Lu P-L, DeLay JK (2016) Vegetation and fire in lowland dry forest at Wa'ahila Ridge on O'ahu, Hawai'i. PhytoKeys 68: 51-64. https://doi.org/10.3897/phytokeys.68.7130
Figure 4 - The frequency of native plants on the unburned site and the burned site per 1 m2. Error bars are ± SD (n=50). T-value = 6.50. P-value < 0.001.
Figure 7 from: Lu P-L, DeLay JK (2016) Vegetation and fire in lowland dry forest at Wa'ahila Ridge on O'ahu, Hawai'i. PhytoKeys 68: 51-64. https://doi.org/10.3897/phytokeys.68.7130
Figure 7 - The total individual numbers of the top three dominant species on the unburned site from 2008–2015.
Figure 1 from: Lu P-L, DeLay JK (2016) Vegetation and fire in lowland dry forest at Wa'ahila Ridge on O'ahu, Hawai'i. PhytoKeys 68: 51-64. https://doi.org/10.3897/phytokeys.68.7130
Figure 1 - The species richness on the unburned site and the burned site per 1 m2. Error bars are ± SD (n=50). T-value= 4.70, P-vale < 0.001.
Figure 5 from: Lu P-L, DeLay JK (2016) Vegetation and fire in lowland dry forest at Wa'ahila Ridge on O'ahu, Hawai'i. PhytoKeys 68: 51-64. https://doi.org/10.3897/phytokeys.68.7130
Figure 5 - The total individual numbers of dominant species on the unburned site and the burned site from 2008–2015.
Figure 3 from: Lu P-L, DeLay JK (2016) Vegetation and fire in lowland dry forest at Wa'ahila Ridge on O'ahu, Hawai'i. PhytoKeys 68: 51-64. https://doi.org/10.3897/phytokeys.68.7130
Figure 3 - The frequency of lichens, woody plants, forb plants, grass on the unburned site and the burned site per 1 m2. Error bars are ± SD (n=50). Lichens: T-value = 27.71; P-value < 0.001. Woody plants: T-value = 18.96; P-value < 0.001. Forb plants: T-value = -7.90; P-value < 0.001. Grass: T-value = -3.72; P-value =0.001.
Figure 2 from: Lu P-L, DeLay JK (2016) Vegetation and fire in lowland dry forest at Wa'ahila Ridge on O'ahu, Hawai'i. PhytoKeys 68: 51-64. https://doi.org/10.3897/phytokeys.68.7130
Figure 2 - The plant density on the unburned site and the burned site per 1 m2. Error bars are ± SD (n=50). T-value = 6.75. P-value < 0.001.
Optimal Green Infrastructure: Reducing Stormwater Pollution in Maunalua Bay, O'ahu, Hawai'i
Open the record for dataset details and reuse information.
Data from: Patterns and processes in complex landscapes: testing alternative biogeographic hypotheses through integrated analysis of phylogeography and community ecology in Hawai'i
Open the record for dataset details and reuse information.
Figure 2 from: Oppenheimer H (2020) A new species of Cyanea Gaud. (Lobelioideae, Campanulaceae) from Maui, Hawai`i. PhytoKeys 167: 1-11. https://doi.org/10.3897/phytokeys.167.55107
Figure 2 Cyanea heluensisA flowering stem B close-up of flowers. Photos by H. Oppenheimer.
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Allen Brain Atlas
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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.