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Fig. 8 in Brief description of 18 newly recorded ciliate species from soil and inland waters (Protozoa, Ciliophora) in South Korea
Fig. 8. Apocoriplites lajacola from life (A, C) and after protargol impregnation (C, D). A. Arrangement of cortical granules and contractile vacuole. B. Oral region showing the lack of extrusomes. C. Somatic ciliature and nuclear apparatus. D. Dorsal brush rows and somatic kineties. B, brush rows; CV, contractile vacuole; MA, macronucleus nodules; MI, micronucleus. Scale bars = 30 μm.
Fig. 1 in Brief description of 18 newly recorded ciliate species from soil and inland waters (Protozoa, Ciliophora) in South Korea
Fig. 1. Gonostomum kuehnelti from life (A) and after protargol impregnation (B, C). A. Ventral view of a representative specimen. B. Somatic and oral ciliature of ventral side. C. Dorsal kineties and nuclear apparatus. 1-3, dorsal kineties; III-VI, frontoventral rows; BC, buccal cirrus; CC, caudal cirri; FC, frontal cirri; LMR, left marginal row; MA, macronuclear nodules; RMR, right marginal row; PTC, pretransverse cirri; TC, transverse cirri. Scale bars = 30 μm.
Fig. 7 in Brief description of 18 newly recorded ciliate species from soil and inland waters (Protozoa, Ciliophora) in South Korea
Fig. 7. Pseudobirojimia muscorum from life (A, B) and after protargol impregnation (C, D). A. Slender body shape in vivo. B. Cortical granulation on dorsal side. C, D. Ventral ciliatures. BC, buccal cirrus; CV, contractile vacuole; FC, frontal cirri; LMR, left marginal row; MA, macronucleus nodule; RMR1, 2, inner and outer right marginal rows; TC, transverse cirri. Scale bars = 50 μm.
Fig. 5 in Brief description of 18 newly recorded ciliate species from soil and inland waters (Protozoa, Ciliophora) in South Korea
Fig. 5. Lamtostyla longa from life (A-C) and after protargol impregnation (D, E). A. Typical body shape in vivo. B, C. Dorsal and ventral views showing the lack of cortical granules absent. D, E. Somatic and oral ciliature on ventral side. ACR, amphisiellid median cirral row; AZM, adoral zone of membranelles; BC, buccal cirrus; CV, contractile vacuole; FV, food vacuole; LMR, left marginal row; MA, macronuclear nodule; MI, micronucleus; PTC, pretransverse cirri; RMR, right marginal row; TC, transverse cirri. Scale bars = 20 μm.
Dataset used in "Bathymetry observations of inland water bodies using a tethered single-beam sonar controlled by an Unmanned Aerial Vehicle". https://doi.org/10.5194/hess-2017-625.
<p>Dataset used in</p> <p>Bathymetry observations of inland water bodies using a tethered single-beam sonar controlled by an Unmanned Aerial Vehicle</p> <p>Filippo Bandini<sup>1</sup>, Daniel Olesen<sup>2</sup>, Jakob Jakobsen<sup>2</sup>, Cecile Marie Margaretha Kittel<sup>1</sup>, Sheng Wang<sup>1</sup>, Monica Garcia<sup>1</sup>, and Peter Bauer-Gottwein<sup>1</sup></p> <ul> <li><sup>1</sup>Department of Environmental Engineering, Technical University of Denmark, Kgs. Lyngby, Denmark</li> <li><sup>2</sup>National Space Institute, Technical University of Denmark, Kgs. Lyngby, 2800, Denmark</li> </ul> <p><strong>Hydrol. Earth Syst. Sci.</strong></p> <p><strong>https://doi.org/10.5194/hess-2017-625</strong></p> <p> </p> <p>The dataset contains</p> <p>-data/observations that were used to obtain the figures shown in the paper. Data have .mat extension (Binary data container format used by MATLAB; may include arrays, variables, functions, and other types of data;)</p> <p>-scripts to compute statistics and plot data, with .m extension (contain MATLAB code, either in the form of a script or a function)</p> <p>-shape files (shp — shape format; the feature geometry itself, .shx — shape index format, .dbf — attribute format, .prj — projection format; .sbn and .sbx — spatial index of the features, .cpg — used to specify the code page, .<em>qpj</em> QGIS projection file) or raster files (.geotiff) to reproduce the map contents reported in the referenced paper.</p> <p>The repository is subdivided into directories containing the dataset shown in the paper. These directories are named with the figures and/or tables numbers of the referenced paper. </p>
Time series of Inland Surface Water Dataset in China (ISWDC)
<p>The Inland Surface Water Dataset in China (ISWDC) maps the water body larger than 0.0625 km<sup>2</sup> in the terrestrial land of China for the period 2000–2016, in 8-day temporal and 250 m spatial resolution. It is closely correlated with the national reference data with the determinant coefficients (R<sup>2</sup>) greater than 0.99 in 2000, 2005, and 2010, and possess very good consistency, very similar change dynamics, and similar spatial patterns in different regions with the GSW dataset. The ISWDC data set can be used for studies on the inter-annual and seasonal variation of the surface water systems. It can also be used as reference data for other surface water data set verification and as input parameter for regional and global hydro-climatic models.</p>
Figure 7 in An update note on diversity and conservation of the endemic fishes in Iranian inland waters
Figure 7. Endemicity in the Iranian cyprinodontids: (A) Aphanius arakensis; (B) A. farsicus; (C) A. isfahanensis; (D) A. mesopotamicus; (E) A. pluristriatus; (F) A. shirini; (G) A. sophiae; (H) A. vladykovi; (I) A. furcatus. For photos of two recently described new endemic Aphanius species from Iran (A. kavirensis and A. darabensis), see Esmaeili et al. (2014).
Figure 6 in An update note on diversity and conservation of the endemic fishes in Iranian inland waters
Figure 6. Some Iranian endemic fishes: (A) Alburnoides qanati (Cyprinidae); (B) Acanthobrama persidis (Cyprinidae); (C) Alburnoides qanati (Cyprinidae); (D) Iranocypris typhlops (Cyprinidae); (E) Oxynoemacheilus persa (Nemacheilidae); (F) Cobitis linea (Cobitidae); (G) Oxynoemacheilus tongiorgii (Nemacheilidae); (H) Turcionemacheilus hafezi (Nemacheilidae).
Figure 5 in An update note on diversity and conservation of the endemic fishes in Iranian inland waters
Figure 5. The human-induced disturbance of ichthyofauna of Iran: (A and B) unusual methods of fishing by local people in the Mond River basin; (C) water pollution in the Pirbanow spring system, habitat of a vulnerable endemic species, Aphanius farsicus, and recently drought-stricken; (D) habitat alteration and reconstruction of the endemic and endangered species Aphanius ginaonis, the only known habitat for this species; (E and F) habitat alteration of the only endemic cichlid species in Iran and the Middle East, Iranocichla hormuzensis.
Figure 3 in An update note on diversity and conservation of the endemic fishes in Iranian inland waters
Figure 3. Unusual habitats for Iranian endemic fishes: (A) qanat system; (B) the qanat outlet opening; (C) cave system in Zagros Mountains, habitat of the only blind cyprinid fish and the only blind loach fish in Iran, which are respectively Iranocypris typhlops and Paracobitis smithi; and (D) hot sulfuric spring— Genow hot sulfuric spring—the only known habitat of the endangered Aphanius ginaonis in southern Iran.
Figure 1 in A taxonomic study on the families Lecanidae and Lepadellidae (Rotifera: Monogononta of Turkey and three new records for Turkish inland waters
Figure 1. ab. Lecane acanthinula ventral view (a- ventral view, b- dorsal view), bar 50 µm; cd. L. thalera dorsal view (c- ventral view, d- dorsal view), bar 100 µm; ef. L. unguitata first ventral, second dorsal view (e- ventral view, f- dorsal view), bar 100 µm. Photographs original.
Fig. 4 in Phylogenetic and functional diversity of Chrysophyceae in inland waters
Fig. 4 Ternary plots showing the percentage community composition of Chrysophyceae communities in each lake (no. of OTUs per nutritional mode). Each corner of the triangle represents a nutritional mode (phototroph, mixotroph, heterotroph). The points are colored according to the values of the different environmental factors of the lakes (pH, temperature, conductivity, altitude). For results expressed as a percentage, the absolute value corresponds to 100%
Fig. 2 in Phylogenetic and functional diversity of Chrysophyceae in inland waters
Fig. 2 Map of the sampling localities. The size of the dots indicates the relative contribution to the OTU diversity within the lake. The colors within the pie-charts indicate the different nutritional modes
Fig. 26 in Taxonomy and distribution of four Cladoceran families (Branchiopoda: Cladocera: Moinidae, Bosminidae, Chydoridae and Sididae) in Philippine inland waters
Fig. 26. Scanning electron micrographs of Diaphanosoma excisum. A, distal part of first segment of upper 2-segmented antennal branch; B, postero-ventral valve margin; C, ventral valve inflexion; D, terminal claws of post abdomen.
Fig. 22 in Taxonomy and distribution of four Cladoceran families (Branchiopoda: Cladocera: Moinidae, Bosminidae, Chydoridae and Sididae) in Philippine inland waters
Fig. 22. Scanning electron micrographs of Moinodaphnia macleayi parthenogenic female; A. habitus; B, head showing the antennule; C, antennule; D, antennae showing bas, end, and exopod.
Fig. 27 in Taxonomy and distribution of four Cladoceran families (Branchiopoda: Cladocera: Moinidae, Bosminidae, Chydoridae and Sididae) in Philippine inland waters
Fig. 27. Diaphamosoma sarsi, parthenogenetic female; A, habitus; B, postero-ventral valve margin; C, distal part of first segment of upper 2-segmented antennal branch; D, post abdomen.
Fig. 21. Moinodaphnia macleayi parthenogenic female. A in Taxonomy and distribution of four Cladoceran families (Branchiopoda: Cladocera: Moinidae, Bosminidae, Chydoridae and Sididae) in Philippine inland waters
Fig. 21. Moinodaphnia macleayi parthenogenic female. A, habitus; B, antennule with exopod; C, postabdomen; D, antennae.
Fig. 18 in Taxonomy and distribution of four Cladoceran families (Branchiopoda: Cladocera: Moinidae, Bosminidae, Chydoridae and Sididae) in Philippine inland waters
Fig. 18. Distribution of family Moinidae based on recently collected samples (2013) and stored samples in the UST ZRC.
Fig. 17 in Taxonomy and distribution of four Cladoceran families (Branchiopoda: Cladocera: Moinidae, Bosminidae, Chydoridae and Sididae) in Philippine inland waters
Fig. 17. Scanning electron micrographs of Oxyurella singalensis. A, habitus; B, post abdomen; C, Dorsal margin; D, rostrum and antennule.
Fig. 14 in Taxonomy and distribution of four Cladoceran families (Branchiopoda: Cladocera: Moinidae, Bosminidae, Chydoridae and Sididae) in Philippine inland waters
Fig. 14. Scanning electron micrographs of Anthalona sp. A, habitus; B, main and lateral head pores; C, antennae; D, post abdomen.
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.