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1,977 results for “2007”
FIGURE 16 in A revision of the genus Yoshiakioclytus Niisato, 2007 (Coleoptera: Cerambycidae: Cerambycinae: Anaglyptini)
FIGURE 16. Yoshiakioclytus qiaoi sp. nov., paratypes female. A – D. paratype F 1: A. dorsal view, B. ventral view, C. vertex and pronotum, D. dorsal view of right metacoxa, E – G. paratype F 2: E. vertex and pronotum, F. dorsal view, G. ventral view. Scale bars: a = 2.0 mm, b = 0.5 mm. HS = Haired Spot, Mc = Metacoxa.
FIGURE 8 in A revision of the genus Yoshiakioclytus Niisato, 2007 (Coleoptera: Cerambycidae: Cerambycinae: Anaglyptini)
FIGURE 8. Yoshiakioclytus qiaoi sp. nov., holotype male. A. dorsal view, B. ventral view, C. lateral view. Scale bars = 2 mm.
FIGURE 6 in A revision of the genus Yoshiakioclytus Niisato, 2007 (Coleoptera: Cerambycidae: Cerambycinae: Anaglyptini)
FIGURE 6. Male terminalia of Yoshiakioclytus breuningi. Tegmen: A. dorsal view, B. dorsal view of parameres, C. ventral view, D. ventral view of parameres, E. lateral view, F. dorsal view of anterior tegminal struts. Scale bars = 0.2 mm.
FIGURE 2. Yoshiakioclytus breuningi, male. A. dorsal view, B. ventral view, C in A revision of the genus Yoshiakioclytus Niisato, 2007 (Coleoptera: Cerambycidae: Cerambycinae: Anaglyptini)
FIGURE 2. Yoshiakioclytus breuningi, male. A. dorsal view, B. ventral view, C. lateral view. Scale bars = 2 mm.
FIGURES 12 – 15 in Three new species and redescription of the type species of Soesilarishius Makhan, 2007 (Araneae: Salticidae: Euophryini)
FIGURES 12 – 15. Soesilarishius laticlavus sp. nov. 12 – 13 male (12 dorsal, 13 ventral); 14 – 15 female (14 dorsal, 15 ventral).
FIGURES 1 – 4. Soesilarishius amrishi Makhan. 1 – 2 in Three new species and redescription of the type species of Soesilarishius Makhan, 2007 (Araneae: Salticidae: Euophryini)
FIGURES 1 – 4. Soesilarishius amrishi Makhan. 1 – 2 male (1 dorsal, 2 ventral); 3 – 4 female (3 dorsal, 4 ventral).
FIGURES 25 – 28 in Three new species and redescription of the type species of Soesilarishius Makhan, 2007 (Araneae: Salticidae: Euophryini)
FIGURES 25 – 28. Soesilarishius trombetas sp. nov. 25 – 26 left male palp (25 ventral, 26 retrolateral); 27 – 28 epigyne (27 ventral, 28 cleared, ventral).
FIGURES 13 – 18 in Re-description of the Arctic tardigrade Tenuibiotus voronkovi (Tumanov, 2007) (Eutardigrada; Macrobiotidea), with the first molecular data for the genus
FIGURES 13 – 18. Tenuibiotus voronkovi — egg process details, different shape of processes seen in PCM.
FIGURES 3 – 6 in Re-description of the Arctic tardigrade Tenuibiotus voronkovi (Tumanov, 2007) (Eutardigrada; Macrobiotidea), with the first molecular data for the genus
FIGURES 3 – 6. Tenuibiotus voronkovi — buccal apparatus: 3 — buccal apparatus, dorso-ventral projection (PCM); 4 — ventral view of the buccal armature, arrowhead indicate row of teeth (PCM); 5 — buccal apparatus, dorso-ventral projection (DIC); 4 — dorsal view of the buccal armature, arrowhead indicate single teeth (PCM).
FIGURES 9 – 12 in Re-description of the Arctic tardigrade Tenuibiotus voronkovi (Tumanov, 2007) (Eutardigrada; Macrobiotidea), with the first molecular data for the genus
FIGURES 9 – 12. Tenuibiotus voronkovi — eggs and juveniles: 9 — egg midsection (DIC); 10 — egg midsection with embryo (PCM); 11, 12 — juveniles and eggs.
FIGURES 1 – 2 in Re-description of the Arctic tardigrade Tenuibiotus voronkovi (Tumanov, 2007) (Eutardigrada; Macrobiotidea), with the first molecular data for the genus
FIGURES 1 – 2. Tenuibiotus voronkovi — habitus: 1 - dorso-ventral projection, exoskeleton after DNA extraction (PCM); 2 - dorso-ventral projection (DIC).
FIGURES 7 – 8 in Re-description of the Arctic tardigrade Tenuibiotus voronkovi (Tumanov, 2007) (Eutardigrada; Macrobiotidea), with the first molecular data for the genus
FIGURES 7 – 8. Tenuibiotus voronkovi — claws of leg IV seen in PCM: 7 — arrowhead indicate accessory points; 8 — dentate lunules and granulation.
Figs. 1-2 in A new larval trombidiid, Sicilitrombium albanesianum nov.gen., nov.sp. (Acari: Prostigmata: Trombidiidae) from Sicily, Italy, with notes on Arknotrombium HAITLINGER 2007 and Javatrombium HAITLINGER 2009
Figs. 1-2. Sicilitrombium albanesianum nov.sp. (1) idiosoma, dorsal view; (2) idiosoma and gnathosoma, ventral view.
LGHAP v2: Global daily 1-km gap-free AOD grids (2007)
<p>A Long-term Gap-free High-resolution Air Pollutants concentration dataset (abbreviated as LGHAP) is of great significance for environmental management and earth system science analysis. In the current release of LGHAP dataset (LGHAP v2), we provide 22-year-long gap free aerosol optical depth (AOD) and near-surface PM2.5 concentrations with daily 1-km resolution covering the global land area from 2000 to 2021. Leveraging an improved big earth data analytic framework with attention-reinforced tensor construction and adaptive background information updating schemes, gap-free AOD grids were firstly derived via an integration of multimodal AODs and air quality measurements acquired from diverse satellites, ground monitors, and numerical models. For better predicting PM2.5 concentration across the globe, a scene-aware ensemble learning graph attention network (SCAGAT) was then developed to account for large modeling bias over regions with limited or even none in situ air quality measurements. These datasets were archived in the NetCDF (nc) format, while data in every year were archived as an individual submission. Python, MATLAB, R, and IDL codes were also provided to help users read and visualize the LGHAP v2 data.</p>
LGHAP v2: Global daily 1-km gap-free PM2.5 grids (2007)
<p>A Long-term Gap-free High-resolution Air Pollutants concentration dataset (abbreviated as LGHAP) is of great significance for environmental management and earth system science analysis. In the current release of LGHAP dataset (LGHAP v2), we provide 22-year-long gap free aerosol optical depth (AOD) and near-surface PM2.5 concentrations with daily 1-km resolution covering the global land area from 2000 to 2021. Leveraging an improved big earth data analytic framework with attention-reinforced tensor construction and adaptive background information updating schemes, gap-free AOD grids were firstly derived via an integration of multimodal AODs and air quality measurements acquired from diverse satellites, ground monitors, and numerical models. For better predicting PM2.5 concentration across the globe, a scene-aware ensemble learning graph attention network (SCAGAT) was then developed to account for large modeling bias over regions with limited or even none in situ air quality measurements. These datasets were archived in the NetCDF (nc) format, while data in every year were archived as an individual submission. Python, MATLAB, R, and IDL codes were also provided to help users read and visualize the LGHAP v2 data.</p>
Figure 1 in Contribution to the knowledge of Parichoronyssus bakeri Morales-Malacara and Guerrero, 2007 (Mesostigmata: Macronyssidae): new locality and host-association records with additional molecular data
Figure 1 Light Microscopy images of the female Parichoronyssus bakeri. A – General view of the ventral idiosoma; B – General view of the dorsal idiosome; C – Close up of sternal shield; D – Close up of genital and anal shields; E – Gnathosoma and coxa of the Leg I, with the black arrow pointed out the spine-like projection; F – Close up of the dorsal shield. Scales: A and B 50µm, C-F 20µm.
Figures 11–13 in Abrolophus balkanicus sp. nov. from Montenegro, with redescriptions of A. stanislavae (Haitlinger, 1986) and A. wratislaviensis (Haitlinger, 1986) and notes on A. podorasensis (Haitlinger, 2007) (Acari: Erythraeidae)
Figures 11–13. Abrolophus stanislavae (Haitlinger) (larva). 11. Ventral view of idiosoma; 12. Ventral view (right) and dorsal view of gnathosoma (left); 13. Palptarsus.
Figures 19–21 in Abrolophus balkanicus sp. nov. from Montenegro, with redescriptions of A. stanislavae (Haitlinger, 1986) and A. wratislaviensis (Haitlinger, 1986) and notes on A. podorasensis (Haitlinger, 2007) (Acari: Erythraeidae)
Figures 19–21. Abrolophus wratislaviensis (Haitlinger) (larva). 19. Ventral view of idiosoma; 20. Ventral view (right) and dorsal view of gnathosoma (right); 21. Palptarsus.
Figures 3–5 in Abrolophus balkanicus sp. nov. from Montenegro, with redescriptions of A. stanislavae (Haitlinger, 1986) and A. wratislaviensis (Haitlinger, 1986) and notes on A. podorasensis (Haitlinger, 2007) (Acari: Erythraeidae)
Figures 3–5. Abrolophus balkanicus sp. nov. (larva). 3. Ventral view of idiosoma; 4. Ventral view (right) and dorsal view of gnathosoma (left); 5. Palptarsus.
Figures 17–18 in Abrolophus balkanicus sp. nov. from Montenegro, with redescriptions of A. stanislavae (Haitlinger, 1986) and A. wratislaviensis (Haitlinger, 1986) and notes on A. podorasensis (Haitlinger, 2007) (Acari: Erythraeidae)
Figures 17–18. Abrolophus wratislaviensis (Haitlinger) (larva). 17. Dorsal view of idiosoma; 18. Scutum.
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.