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496 results for “Tibetan Plateau”
Figure 4 from: Xu R-J, Li J-F, Zhou D-Q, Boonmee S, Zhao Q, Chen Y-Y (2024) Three novel species of Aquapteridospora (Distoseptisporales, Aquapteridosporaceae) from freshwater habitats in Tibetan Plateau, China. MycoKeys 102: 183-200. https://doi.org/10.3897/mycokeys.102.112905
Figure 4 Aquapteridospora submersa (HKAS 128980, holotype) a colonies on the substratum b–d conidiophores, conidiogenous cells with conidia e–g conidiogenous cells with developmental conidia h–k conidia l germinating conidium m, n culture on PDA. Scale bars: 50 μm (b–d); 20 μm (e–g); 10 μm (h–l).
Snow phenology extraction, trend analysis, and M–K test for Tibetan plateau
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The Yarlung Zangbo River valley in the Tibetan Plateau as the dust source to Greenland and the North Pacific
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Differences in adult survival drive divergent demographic responses to warming on the Tibetan Plateau
<p>This file provides the demographic parameters for vital rates and codes to run the analyses in the manuscript "Differences in adult survival drive divergent demographic responses to warming on the Tibetan Plateau".</p> <p>1. Demographic parameters are contained in the <code>PARAMETERS FOR VITAL RATES/</code> directory.</p> <p>2. The codes are contained in the <code>RCODE/</code> directory.</p>
Community species diversity mediates the trade-off between aboveground and belowground biomass for grasses and forbs in degraded alpine meadow, Tibetan Plateau
<p>Although many empirical experiments have shown that increasing degradation results in lower aboveground biomass (AGB), our knowledge of the magnitude of belowground biomass (BGB) for individual plants is a prerequisite for accurately revealing the biomass trade-off in degraded grasslands. Here, by linking the AGB and BGB of individual plants, species in the community, and soil properties, we explored the biomass partitioning patterns in different plant functional groups (grasses of <i>Stipa capillacea</i> and forbs of <i>Anaphalis xylorhiza</i>). Our results indicated that 81% and 60% of the biomass trade-off variations could be explained by environmental factors affecting grasses and forbs, respectively. The change in community species diversity dominated the biomass trade-off via either direct or indirect effects on soil properties and biomass. However, the community species diversity imparted divergent effects on the biomass trade-off for grasses (scored at -0.72) and forbs (scored at 0.59). Our findings suggest that plant communities have evolved two contrasting strategies of biomass allocation patterns in degraded grasslands. These are the "conservative" strategy in grasses, in which plants with larger BGB trade-off depends on gigantic roots for soil resources, and the "opportunistic" strategy in forbs, in which plants can adapt to degraded lands using high variation and optimal biomass allocation.</p>
Figure 1 from: Angus RB (2017) A remarkable new Helophorus species (Coleoptera, Helophoridae) from the Tibetan Plateau (China, Sichuan). ZooKeys 718: 133-137. https://doi.org/10.3897/zookeys.718.21361
Figure 1 - Helophorus dracomontanus sp. n. a holotype, dorsal b holotype head and pronotum, dorsal c paratype, lateral part of pronotum, ventral d paratype elytral epipleurs and flanks, metaventrite and abdomen, ventral e, f base of elytra and pronotum (dorsal) of holotype (e) and paratype (f) showing the scutellary striae. Scale bar: 1 mm (a, b, d, e, f); 0.5 mm (c).
Figure 2 from: Angus RB (2017) A remarkable new Helophorus species (Coleoptera, Helophoridae) from the Tibetan Plateau (China, Sichuan). ZooKeys 718: 133-137. https://doi.org/10.3897/zookeys.718.21361
Figure 2 - Habitat of Helophorus dracomontanus sp. n., Sichuan. Kangding County. Yalashenshan 30°12'17.22"N, 101°45'17.82"E. Small pools 4074 m above sea level. On the right is the driver and beside him Zhi-qiang Li. (For an account of this trip, see Angus 2017).
Seismic reflection data of the Ganyanchi baisn, Haiyuan fault, NE Tibetan Plateau
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Temporal characteristics and tectonic significance of late Cenozoic sediments in the Zoige Basin, northeastern Tibetan Plateau
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Impacts of anthropogenic management legacies on forest dynamics of the Tibetan Plateau transition region under changing climates
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Figure 5 in The first Fulgoridae (Hemiptera: Fulgoromorpha) from the Eocene of the central Qinghai-Tibetan Plateau
Figure 5. Interpretative drawing of the specimen. (a) Illustration of the specimen, veins of the right forewing in blue, veins of the left forewing in red, and veins of the hind wings in green. (b) Venation of the right forewing. (c) Venation of the apex of the left forewing. (d) The tip of the metaleg.
Supplementary Information for 'Catastrophic outburst floods along the middle Yarlung Tsangpo River: Responses to coupled fault and glacial activity on the southern Tibetan Plateau
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Figure 1 from: Yang Q, Shi C, Li X, Pang H, Ren D (2018) The first fossil brown lacewing from the Miocene of the Tibetan Plateau (Neuroptera, Hemerobiidae). ZooKeys 726: 145-154. https://doi.org/10.3897/zookeys.726.21086
Figure 1 Wesmaelius makarkini sp. n., holotype CNU-NEU-QZ2017001. A photograph of forewing under alcohol B Line drawing of forewing. Scale bars: 2 mm.
Figure 8 from: Hou Z, Li S (2018) Four new Gammarus species from Tibetan Plateau with a key to Tibetan freshwater gammarids (Crustacea, Amphipoda, Gammaridae). ZooKeys 747: 1-40. https://doi.org/10.3897/zookeys.747.21999
Figure 8 Gammarus kangdingensis sp. n., male holotype. A gnathopod I B pleopod II C pleopod I D propodus of gnathopod I (medial view) E lower lip F antenna II G maxilla II H maxilliped I telson.
Figure 5 from: Hou Z, Li S (2018) Four new Gammarus species from Tibetan Plateau with a key to Tibetan freshwater gammarids (Crustacea, Amphipoda, Gammaridae). ZooKeys 747: 1-40. https://doi.org/10.3897/zookeys.747.21999
Figure 5 Gammarus altus sp. n., male holotype. A pereopod V B pereopod VII C pereopod VI D pleopod I E pleopod II F pleopod III G dactylus of pereopod VI H dactylus of pereopod VII.
Figure 4 from: Hou Z, Li S (2018) Four new Gammarus species from Tibetan Plateau with a key to Tibetan freshwater gammarids (Crustacea, Amphipoda, Gammaridae). ZooKeys 747: 1-40. https://doi.org/10.3897/zookeys.747.21999
Figure 4 Gammarus altus sp. n., male holotype. A antenna I B antenna II C epimeral plates I–III D head E pereopod IV F pereopod III G dactylus of pereopod III H dactylus of pereopod IV.
Figure 18 from: Hou Z, Li S (2018) Four new Gammarus species from Tibetan Plateau with a key to Tibetan freshwater gammarids (Crustacea, Amphipoda, Gammaridae). ZooKeys 747: 1-40. https://doi.org/10.3897/zookeys.747.21999
Figure 18 Gammarus limosus sp. n., male holotype. A antenna I B gnathopod II C gnathopod I D propodus of gnathopod I (medial view) E propodus of gnathopod II (medial view) F pleopod I G pleopod II H pleopod III.
Figure 21 from: Hou Z, Li S (2018) Four new Gammarus species from Tibetan Plateau with a key to Tibetan freshwater gammarids (Crustacea, Amphipoda, Gammaridae). ZooKeys 747: 1-40. https://doi.org/10.3897/zookeys.747.21999
Figure 21 Gammarus limosus sp. n., female paratype. A gnathopod I B gnathopod II C propodus of gnathopod I (medial view) D propodus of gnathopod II (medial view).
Figure 7 from: Hou Z, Li S (2018) Four new Gammarus species from Tibetan Plateau with a key to Tibetan freshwater gammarids (Crustacea, Amphipoda, Gammaridae). ZooKeys 747: 1-40. https://doi.org/10.3897/zookeys.747.21999
Figure 7 Gammarus kangdingensis sp. n., male holotype. A body (lateral view) B head C urosomites (dorsal view) D epimeral plates I–III E urosomites (lateral view) F antenna I G flagellum of antenna I H left mandible I inner face of article III of right palp J incisor of right palp K left maxilla L palp of right maxilla M upper lip.
Figure 17 from: Hou Z, Li S (2018) Four new Gammarus species from Tibetan Plateau with a key to Tibetan freshwater gammarids (Crustacea, Amphipoda, Gammaridae). ZooKeys 747: 1-40. https://doi.org/10.3897/zookeys.747.21999
Figure 17 Gammarus limosus sp. n., male holotype. A head B epimeral plates I–III C urosomites I–III (dorsal view) D lower lip E upper lip F maxilliped G palp of left mandible H incisor of left mandible I left maxilla I J palp of right maxilla I K incisor of right mandible L maxilla II.
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.