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96 results for “karst region”
Figure 2 from: Shang C, Xue J, Yang Y, Liao X, Liu Q, Wu L (2024) Ophiorrhiza reflexa (Rubiaceae), a new species from a karst region in Guangxi, China. PhytoKeys 238: 231-240. https://doi.org/10.3897/phytokeys.238.116767
Figure 2 Ophiorrhiza reflexaA, B habit C stipule D young inflorescence E inflorescence in lateral view F inflorescences in different development stages G bracts from lower part to upper part of inflorescence H leaves I corollas in lateral view J corollas in top view K longitudinally dissected long-styled flower L longitudinally dissected short-styled flower M infructescence. Photos by L. Wu. Scale bars: 3 mm (C); 1 cm (G, J–L); 2 cm (E, F, I, M); 10 cm (H).
Figure 1 from: Shang C, Xue J, Yang Y, Liao X, Liu Q, Wu L (2024) Ophiorrhiza reflexa (Rubiaceae), a new species from a karst region in Guangxi, China. PhytoKeys 238: 231-240. https://doi.org/10.3897/phytokeys.238.116767
Figure 1 Ophiorrhiza revolutaA flowering branch B stipule C part of inflorescence D longitudinally dissected short-styled flower E longitudinally dissected long-styled flower F capsules. Drawn from the holotype by X.Y. Zeng.
FIGURE 1 in Integrative taxonomy reveals two new species of karst-dwelling Hemiphyllodactylus Bleeker, 1860 (Squamata: Gekkonidae) from the border region of Laos and Vietnam
FIGURE 1. Type localities of the species of Hemiphyllodactylus of clade 6 (Agung et al., 2022).
Figure 3 from: Niemiller ML, Zigler KS, Hart PB, Kuhajda BR, Armbruster JW, Ayala BN, Engel AS (2016) First definitive record of a stygobiotic fish (Percopsiformes, Amblyopsidae, Typhlichthys) from the Appalachians karst region in the eastern United States. Subterranean Biology 20: 39-50. https://doi.org/10.3897/subtbiol.20.9693
Figure 3 - Distribution of Typhlichthys subterraneus (solid circles) in southeastern Tennessee, northeastern Alabama, and northwestern Georgia. The new record at Crane Cave is denoted with a red triangle and lineage A localities are highlighted in peach. Lineage A populations that have been genetically examined are marked with an asterisk and labeled as follows: LMC – Limestone Caverns, LPC – Lost Pig Cave, LRW – Long's Rock Wall, and PCS – Pryor Cave Spring. Counties with Typhlichthys records are labeled. Karst and cave-bearing strata are shaded gray based on the U.S. karst map (Weary and Doctor 2014). The border of the Appalachian Valley and Ridge (AVR) physiographic province is denoted by the dot and dashed line.
Figure 2 from: Niemiller ML, Zigler KS, Hart PB, Kuhajda BR, Armbruster JW, Ayala BN, Engel AS (2016) First definitive record of a stygobiotic fish (Percopsiformes, Amblyopsidae, Typhlichthys) from the Appalachians karst region in the eastern United States. Subterranean Biology 20: 39-50. https://doi.org/10.3897/subtbiol.20.9693
Figure 2 - Maximum likelihood gene trees for mitochondrial ND2 (left) and nuclear S7 (right) loci. Colors correspond to genetic lineages for Typhlichthys subterraneus designated in Niemiller et al. (2012b). Bootstrap values are to the left (ND2) or right (S7) of the corresponding node with >0.70 support. Outgroup taxa include Speoplatyrhinus poulsoni and Amblyopsis hoosieri. Scale bar unit: expected substitutions per site.
Figure 1 from: Niemiller ML, Zigler KS, Hart PB, Kuhajda BR, Armbruster JW, Ayala BN, Engel AS (2016) First definitive record of a stygobiotic fish (Percopsiformes, Amblyopsidae, Typhlichthys) from the Appalachians karst region in the eastern United States. Subterranean Biology 20: 39-50. https://doi.org/10.3897/subtbiol.20.9693
Figure 1 - Typhlichthys subterraneus collected 25 November 2015 from Crane Cave (GCZ80), Catoosa County, Georgia. Photograph by B.R. Kuhajda.
Figure 1 from: Zheng L-P, Chen X-Y, Yang J-X (2016) Molecular systematics of the Labeonini inhabiting the karst regions in southwest China (Teleostei, Cypriniformes). ZooKeys 612: 133-148. https://doi.org/10.3897/zookeys.612.9085
Figure 1 - Phylogenetic tree derived from a partitioned Maximum Likelihood analysis of the combined data set. The nodal numbers are ML bootstrap values and Bayesian posterior probabilities, respectively. Only values above 50% are given.
Figure 2 from: Zheng L-P, Chen X-Y, Yang J-X (2016) Molecular systematics of the Labeonini inhabiting the karst regions in southwest China (Teleostei, Cypriniformes). ZooKeys 612: 133-148. https://doi.org/10.3897/zookeys.612.9085
Figure 2 - Ventral view of the mouth morphology. A Pseudogyrinocheilus longisulcus B Pseudogyrinocheilus prochilus C Cophecheilus bamen.
Figure 4 from: Zheng L-P, Chen X-Y, Yang J-X (2016) Molecular systematics of the Labeonini inhabiting the karst regions in southwest China (Teleostei, Cypriniformes). ZooKeys 612: 133-148. https://doi.org/10.3897/zookeys.612.9085
Figure 4 - Ventral view of the mouth morphology. A Hongshuia megalophthalmus B Discogobio brachyphysallidos C Discocheilus wuluoheensis.
Figure 3 from: Zheng L-P, Chen X-Y, Yang J-X (2016) Molecular systematics of the Labeonini inhabiting the karst regions in southwest China (Teleostei, Cypriniformes). ZooKeys 612: 133-148. https://doi.org/10.3897/zookeys.612.9085
Figure 3 - Ventral view of the mouth morphology. A Stenorynchoacrum xijiangensis B Rectoris posehensis.
Fig. 10 in New species of land snails (Mollusca: Gastropoda) from two isolated karst formations in central western Madagascar: Tsingy Beanka and Antsingimavo, with additional notes on other regional endemics
Fig. 10. Conulinus randalanai sp. n. and C. rufoniger (Reeve, 1849): (A, B) C. randalanai, holotype, height 16.9 mm, AMS C.469591; (C) C. randalanai, paratype, height 17.5 mm, NMSA L8469/T2897; (D–E) C. rufoniger, Diego Suarez [Antsiranana] district, 8 km south of Orangea, height 18.6 mm, NMSA L8443.
Figure 5 from: Zheng L-P, Chen X-Y, Yang J-X (2016) Molecular systematics of the Labeonini inhabiting the karst regions in southwest China (Teleostei, Cypriniformes). ZooKeys 612: 133-148. https://doi.org/10.3897/zookeys.612.9085
Figure 5 - Ventral view of the mouth morphology. A Sinigarra napoensis B Garra micropulvinus.
Hillfort Tabor; Karst region - Slovenia
3D model of a extensive hillfort Tabor near village Povir; Karst region, Slovenia. Hillfort occupies two hilltops and hillfort is connected by an outer wall. Inside both hillforts we still can see some remains of late antiquity houses. I have marked some on left hilltop. This is a quite common "reuse" of hillforts in late antiquity. The extensive roman settlement was just north of a village Povir alongside one of the major roman state roads that ran towards Tergeste. We can also see on LiDAR visualization different field systems, some prehistoric ( I have marked some with a blue colour, but just few) burried drywalls and over them (on a different aligement) medieval and modern field system. LiDAR data - Slovenian agency for water: http://gis.arso.gov.si/evode/profile.aspx?id=atlas_voda_Lidar@Arso Software used: SAGA GIS, LAS tools, Fusion, QGIS and planlauf/TERRAIN. Part of [#HillfortsWednesday](https://twitter.com/search?q=hillfortswednesday&src=typd) project on Twitter. Source: Objaverse 1.0 / Sketchfab
FIGURE 7 in Integrative taxonomy reveals two new species of karst-dwelling Hemiphyllodactylus Bleeker, 1860 (Squamata: Gekkonidae) from the border region of Laos and Vietnam
FIGURE 7. Dorsal views of Hemiphyllodactylus houaphanensis sp. nov. from Sa Kok Village, Hiem District, Houaphan Province, Laos. A: adult male holotype (VNUF R.2020.16) and B: adult female paratype (VNUF R.2020.17). Photos: Vilay Phimpasone.
FIGURE 5. A in Integrative taxonomy reveals two new species of karst-dwelling Hemiphyllodactylus Bleeker, 1860 (Squamata: Gekkonidae) from the border region of Laos and Vietnam
FIGURE 5. A: Principal component analysis (PCA) of Hemiphyllodactylus species of clade 6 showing their morphospatial relationships along the first two principal components based on the meristic and normalized morphometric characters. B: Discriminant analysis of principal components (DAPC) based on the retention of the first five PCs accounting for 98.0% of the variation.
FIGURE 4 in Integrative taxonomy reveals two new species of karst-dwelling Hemiphyllodactylus Bleeker, 1860 (Squamata: Gekkonidae) from the border region of Laos and Vietnam
FIGURE 4. Violin plots of the significantly different morphometric characters overlain with box plots showing the range, frequency, mean (white dot), and 50% quartile (black rectangle) of the size-adjusted morphometric characters among available Hemiphyllodactylus species of clade 6.
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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.