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1,133 results for “wetlands”
Fig. 4 in On a new species of the genus Cyprinotus (Crustacea, Ostracoda) from a temporary wetland in New Caledonia (Pacific Ocean), with a reappraisal of the genus
Fig. 4. Cyprinotus drubea sp. nov., ♀♀. A. A1 (MNHN-IU-2019-2542). B. A2 (MNHN-IU-2019-2541). C. Detail of apical chaetotaxy of A2 (MNHN-IU-2019-2542). Scale bar: A = 344 µm; B = 135 µm; C = 46 µm.
Fig. 3 in On a new species of the genus Cyprinotus (Crustacea, Ostracoda) from a temporary wetland in New Caledonia (Pacific Ocean), with a reappraisal of the genus
Fig. 3. Scanning Electron Microscope images of Cyprinotus drubea sp. nov., ♀♀. A. RVi, detail of anterior part (MNHN-IU-2019-784). B. RVi, detail of posterior part (MNHN-IU-2019-784). C. CpRL, detail of carapace surface (MNHN-IU-2019-783). D. CpD, detail of hump (MNHN-IU-2019-782). E. CpV, detail of anterior part (RBINS-INV.156001/OC.3401). F. CpV, detail of central overlap (RBINS-INV.156001/ OC.3401). Arrows indicate anterior side. Scale bars: A, D–E = 200 µm; B = 400 µm; C, F = 100 µm.
Fig. 2 in On a new species of the genus Cyprinotus (Crustacea, Ostracoda) from a temporary wetland in New Caledonia (Pacific Ocean), with a reappraisal of the genus
Fig. 2. Scanning Electron Microscope images of Cyprinotus drubea sp. nov., ♀♀. A. LVi (MNHN- IU-2019-784). B. RVi (MNHN-IU-2019-784). C. CpRL (MNHN-IU-2019-783). D. CpLL (RBINS- INV.156000/OC.3400). E. CpD (MNHN-IU-2019-782). F. CpV (RBINS-INV.156001/OC.3401). G. LVi, detail of anterior part (MNHN-IU-2019-784). H. LVi, detail of posterior part (MNHN- IU-2019-784). Arrows indicate anterior side. Scale bars: A–F = 500 µm; G = 400 µm; H = 200 µm.
Figure 2 in Time-activity budgets of wintering Ferruginous Duck, Aythya nyroca, at Gajoldoba wetland, Jalpaiguri, India
Figure 2. Mean percentage of nocturnal time spent in various activities by the Ferruginous Duck in different time blocks, with standard error bars.
Figure 1 in Time-activity budgets of wintering Ferruginous Duck, Aythya nyroca, at Gajoldoba wetland, Jalpaiguri, India
Figure 1. Percentage of time allocated to different activities by Ferruginous Duck at different parts of winter season.
Figure 2 in Recently resighted population of Blue-breasted Quail (Synoicus chinensis) in and around East Kolkata Wetland is under threat due to development activities
Figure 2. (A) A male Blue-breasted Quails (BBQ) photographed at Baruipur (Photo: Amitava Majumder); (B) A female BBQ (Photo: Amitava Majumder); (C) A flock of BBQ (Photo: Anindya Naskar); (D) Same habitat wherein BBQ sighted in 2019 showing deteriorated condition and movement of heavy vehicles during filling up of wet grasslands (Photo: Anindya Naskar).
Figure 1 in Recently resighted population of Blue-breasted Quail (Synoicus chinensis) in and around East Kolkata Wetland is under threat due to development activities
Figure 1. Showing the location where BBQ were recorded. (Maps are prepared using ArcGIS 10.6 www.esri.com).
Figure 5 in Morphological and molecular characterization of Myxobolus puntiusii n. sp. (Cnidaria: Myxosporea) infecting Puntius sophore Hamilton, 1822 from Ranjit Sagar Wetland, Punjab (India)
Figure 5. Phylogenetic tree generated by maximum likelihood showing the phylogenetic position of Myxobolus puntiusii n. sp. (KU156662) with other myxosporeans. GenBank accession numbers are given and number above nodes indicates bootstrap confidence values. Scale bar: amount of inferred evolutionary change along the branch lengths.
Figure 2 in Morphological and molecular characterization of Myxobolus puntiusii n. sp. (Cnidaria: Myxosporea) infecting Puntius sophore Hamilton, 1822 from Ranjit Sagar Wetland, Punjab (India)
Figure 2. Line drawing of myxospores of Myxobolus puntiusii n. sp. a. Ziehl–Neelsen stain (frontal view). b. Fresh myxospore (sutural view). c. Myxospore showing sporoplasmic nuclei with extruded polar filament (iron–hematoxylin stain).
Figure 3 in Morphological and molecular characterization of Myxobolus puntiusii n. sp. (Cnidaria: Myxosporea) infecting Puntius sophore Hamilton, 1822 from Ranjit Sagar Wetland, Punjab (India)
Figure 3. Photomicrograph of myxospores of Myxobolus puntiusii n. sp. a. Fresh myxospores under dark field microscope. b. Fresh myxospores under phase contrast microscope.
Figure 1 in Morphological and molecular characterization of Myxobolus puntiusii n. sp. (Cnidaria: Myxosporea) infecting Puntius sophore Hamilton, 1822 from Ranjit Sagar Wetland, Punjab (India)
Figure 1. Photomicrograph of infected caudal fin of Puntius sophore showing plasmodia of Myxobolus puntiusii n. sp.
Figure 4 in Structural characteristics of the soil fauna community in beach wetlands of the Poyang Lake region
Figure 4. Shannon–Weiner index (H') and Pielou index (Js) of soil fauna community at different sampling sites in the Poyang Lake region.
Figure 1 in Structural characteristics of the soil fauna community in beach wetlands of the Poyang Lake region
Figure 1. Schematic diagram of soil fauna sampling locations in Poyang Lake beach wetlands. 1: Henghu Reclamation Farm, Xinjian district, Nanchang city (HH); 2: Nanji township, Xinjian district, Nanchang city (Nanji Wetland National Natural Reserve) (NJ); 3: Lianhu township, Poyang county, Shangrao city (LH).
Figure 4 in Spatiotemporal patterns of ground beetle diversity (Coleoptera: Carabidae) in a Ramsar wetland (Chott Tinsilt) of Algeria
Figure 4. Sample-based rarefaction (solid line) and extrapolation (dashed line) curves of species richness estimated for ground beetle communities living in the halophytic vegetation belts surrounding Chott Tinsilt in northeastern Algeria. White solid circles indicate reference samples. Light gray shaded areas represent lower and upper bounds of 95% confidence intervals for the S. Colored/shaded (est) areas indicate ±SDs.
Figure 3 in Spatiotemporal patterns of ground beetle diversity (Coleoptera: Carabidae) in a Ramsar wetland (Chott Tinsilt) of Algeria
Figure 3. Values of observed and estimated (Chao1) species richness with standard deviations (±SD) as vertical error bars, of ground beetle community sampled at Chott Tinsilt, northeastern Algeria.
Figure 1 in Spatiotemporal patterns of ground beetle diversity (Coleoptera: Carabidae) in a Ramsar wetland (Chott Tinsilt) of Algeria
Figure 1. Geographical location of Chott Tinsilt (northeastern Algeria), positioning of sampled stations (T1 and T2), and the layout of experimental design with pitfall traps at each station.
Figure 2 in Spatiotemporal patterns of ground beetle diversity (Coleoptera: Carabidae) in a Ramsar wetland (Chott Tinsilt) of Algeria
Figure 2. Total number of subfamilies, genera, and species of ground beetles (Coleoptera: Carabidae) for each station (T1 and T2), and for the entire wetland of Chott Tinsilt, northeastern Algeria.
Figure 2 in Diurnal time-activity budget and foraging techniques of red-crested pochards (Netta rufina) wintering at the wetlands of West Bengal, India
Figure 2. Canonical correspondence analysis (CCA with 95% ellipses) ordination diagram showing the scatter plot for the month-wise and site-wise density of the wintering RCPs together with the selected environmental variables. Vector lines represent the relationship of significant environmental variables to the ordination axes; their length is proportional to their relative significance.
Figure 1 in Diurnal time-activity budget and foraging techniques of red-crested pochards (Netta rufina) wintering at the wetlands of West Bengal, India
Figure 1. Study site (Adra saheb bandh,Purulia saheb bandh, Kadamdeuli Dam, and Gangdoa Dam) locations inWest Bengal, India (India and West Bengal maps not in scale).
Figure 4 in Diurnal time-activity budget and foraging techniques of red-crested pochards (Netta rufina) wintering at the wetlands of West Bengal, India
Figure 4. Comparison of the aggregated proportional time budget (values in percentages of the time spent) of the diurnal foraging activities of male and female RCPs in January and December; deep water conditions prevailed in both December and January at Sites 1, 2, and 4, while shallow water conditions prevailed at Site 3 in January.
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
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DANDI Archive for NWB datasets
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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.