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243 results for “Coastal area”
Figure 4 in Influence of circulation processes on cyanobacteria bloom and phytoplankton succession in the Baltic Sea coastal area
Figure 4. Photosynthetic active radiation attenuation coefficient (Kd) and inverse Secchi depth (D, circles) vs. turbidity and inverse Secchi depth (squares) at stations with cyanobacteria blooms (green symbols), under the influenced of cold water stations (blue symbols) and under the influenced of warm water stations (black symbols), respectively. Turbidity is given in units according to the turbidity standard for Formazine (Formazin Turbidity Unit, ftu).
Figure 3 in Influence of circulation processes on cyanobacteria bloom and phytoplankton succession in the Baltic Sea coastal area
Figure 3. Sea surface temperature (a) and chlorophyll a concentration (b) on August 22 (11:30 UTC), and sea surface temperature (c) on August 23, 2018 (12:10 UTC), all from MODIS-Aqua satellite data; (d) fragment of optical satellite image (red, green, blue composite) derived from the Ocean and Land Color Instrument (OLCI) on Sentinel-3A satellite from August 23, 2018 (9:25 UTС); (e) temperature (˚C) and salinity (f) transects along the northern coast of the Sambia Peninsula and Curonian Spit on August 23, 2018.
Figure 7 in Influence of circulation processes on cyanobacteria bloom and phytoplankton succession in the Baltic Sea coastal area
Figure 7. Vertical distribution of chlorophyll a concentration along the coastal area of the Sambia Peninsula on August 22, 2018.
Figure 8 in Influence of circulation processes on cyanobacteria bloom and phytoplankton succession in the Baltic Sea coastal area
Figure 8. Fragments of optical satellite images derived from OLCI Sentinel-2 on May 3, 2019 (a) and August 28, 2022 (b).
Figure 2 in Influence of circulation processes on cyanobacteria bloom and phytoplankton succession in the Baltic Sea coastal area
Figure 2. Study area and locations of station in the southeastern Baltic Sea (а) Conditional symbols: Yellow circles correspond to the stations conducted on August 22, 2018. Red circles correspond to the stations conducted on August 23, 2018. White circle is Wastewater Treatment Plant (WTP) on the northern coast of Sambia Peninsula. Amber Mining Plant (AC) is indicated as an asterisk on the western coast.
Figure 1 in Influence of circulation processes on cyanobacteria bloom and phytoplankton succession in the Baltic Sea coastal area
Figure 1. Phytoplankton patches on the surface of the southern Baltic Sea. Fragment of a color-synthesized image of the Baltic Sea surface in the visible range from OLCI-Sentinel-3 satellite scanner data of June 27, 2018.
Figure 6 in Influence of circulation processes on cyanobacteria bloom and phytoplankton succession in the Baltic Sea coastal area
Figure 6. Phytoplankton biomass contribution in the upper 1 m layer (station 16 and 24 – integrated samples over euphotic depth).
Figure 7. A. Trachylepis brevicollis with two keeled scales. B in Reptiles and Amphibians along the Coastal Area of the Eastern Province, Saudi Arabia
Figure 7. A. Trachylepis brevicollis with two keeled scales. B. Lateral view of Trachylepis brevicollis showing the upper labial and the first supraocular scale in contact with the frontal scale. C. Trachylepis tessellata with three keeled scales. D. Lateral view of Trachylepis tessellata showing the upper labial and the first supraocular scale not in contact with the frontal scale. E. Heremites septemtaeniatus with three keeled scales. F. Lateral view of Heremites septemtaeniatus showing the upper labial and the first supraocular scale in contact with the frontal scale.
Figure 9. A. Eryx jayakari. B. Lytorhynchus diadema. C. Platyceps ventromaculatus. D. Malpolon moilensis. E. Psammophis schokari. F in Reptiles and Amphibians along the Coastal Area of the Eastern Province, Saudi Arabia
Figure 9. A. Eryx jayakari. B. Lytorhynchus diadema. C. Platyceps ventromaculatus. D. Malpolon moilensis. E. Psammophis schokari. F. Cerastes gasperetti.
Figure 4. A. Bunopus tuberculatus. B. Hemidactylus flaviviridis. C. Hemidactylus persicus. D. Pseudoceramodactylus khobarensis. E. Trigonodactylus arabicus. F. Stenodactylus doriae. G. Stenodactylus slevini. H in Reptiles and Amphibians along the Coastal Area of the Eastern Province, Saudi Arabia
Figure 4. A. Bunopus tuberculatus. B. Hemidactylus flaviviridis. C. Hemidactylus persicus. D. Pseudoceramodactylus khobarensis. E. Trigonodactylus arabicus. F. Stenodactylus doriae. G. Stenodactylus slevini. H. Pristurus rupestris (Photo by J. Babbington). I. Ptyodactylus cf hasselquistii.
Figure 6. A & B in Reptiles and Amphibians along the Coastal Area of the Eastern Province, Saudi Arabia
Figure 6. A & B. Acanthodactylus hardyi (Photos by F. Hajual). C & D. Juvenile Acanthodactylus hardyi.
Figure 5. A. Trapelus persicus. B. Phrynocephalus arabicus. C. Phrynocephalus longicaudatus. D. Adult Uromastyx aegyptia. E in Reptiles and Amphibians along the Coastal Area of the Eastern Province, Saudi Arabia
Figure 5. A. Trapelus persicus. B. Phrynocephalus arabicus. C. Phrynocephalus longicaudatus. D. Adult Uromastyx aegyptia. E. Subadult Uromastyx aegyptia (Photo by A. Almusabeh).
Figure 3. A & B in Reptiles and Amphibians along the Coastal Area of the Eastern Province, Saudi Arabia
Figure 3. A & B. Pelophylax ridibundus from Al Qudaih Farm. C. Mauremys caspica from Al Asfar Lake. D. Eretmochelys imbricata near Al Jurayd Island (Photo by M. Alwani).
Supplementary materials for paper "Untangling the drivers of change and policy impact in coastal wetland area in the Yangtze Estuary using causal inference"
<h1>Annual coastal wetland vegetation maps of the Yangtze Estuary from 1986 to 2021</h1> <p> </p> <h2><strong>Basic information</strong></h2> <p>Using remotely sensed data from Google Earth Engine, we generated a 30 m resolution annual dataset of Yangtze Estuary wetland vegetation for the period 1986-2021. This dataset includes three dominant vegetation types (<em>Spartina alterniflora</em>, <em>Phragmites australis</em>, and <em>Scirpus mariqueter</em>) and tidal flat areas. We combined fieldwork data and high-resolution images for accuracy assessment, achieving an overall accuracy exceeding 80% in different years. Detailed information about the mapping methods can be found in our paper and accompanying supplementary materials.</p> <h2><strong>Notes:</strong></h2> <p>In the image classification scheme: 0-Tidal flats, 1-<em>Spartina alterniflora, </em>2-<em>Phragmites australis, </em>3-<em>Scirpus mariqueter.</em></p> <h2><strong>Usage Policy:</strong></h2> <p>This dataset is a collaborative effort between East China Normal University and Deakin University. If you plan to use our data in <strong>a scientific analysis paper or other research work</strong>, we strongly recommend contacting us in advance to seek our opinions, <strong>citing the unique DOI of this dataset</strong>, and considering acknowledging our contributions or including us as co-authors.</p>
Fig. 4 in Patterns In Community Structure Of Trawl Catches Along Coastal Area Of The South China Sea
Fig. 4. Cluster dendogram of abundance data for preference of 30 dominant fishes collected bimonthly (a) at different study sites and (b) in different months off Pattani and Narathiwat coasts between Nov.2005 and Jul.2007.
Fig. 3 in Patterns In Community Structure Of Trawl Catches Along Coastal Area Of The South China Sea
Fig. 3. Cluster dendogram of abundance data for each fish samples collected bimonthly (a) at four different zones and (b) in different months off Pattani and Narathiwat coasts between Nov.2005 and Jul.2000
Fig. 5 in Patterns In Community Structure Of Trawl Catches Along Coastal Area Of The South China Sea
Fig. 5. Cluster dendogram of benthic organisms' abundance data collected off Pattani and Narathiwat coasts between Nov.2005 and Jul.2007.
FIG. 1. — A, B. Cryptothecia duplofluorescens Aptroot & M.F in New crustose lichens from a tropical coastal area in Paraná (Brazil)
FIG. 1. — A, B. Cryptothecia duplofluorescens Aptroot & M.F. Souza, sp. nov.: A, thallus; B, thallus under UV light; C, soredia; D-F, Myriostigma xanthominiatum Aptroot & M.F. Souza, sp. nov.: D, thallus; E, thallus under UV light; F, ascus with ascospores; G, H, Herpothallon purpureum Aptroot & M.F. Souza, sp. nov.: G, hypophyllous thallus; H epiphyllous thallus; I, J, Wirthiotrema xanthopustulatum Aptroot & M.F. Souza, sp. nov.: I, thallus; J, thallus under UV light. All from holotypes. Scales: A, B, 4 mm; C, 30 µm; D, E, 5 mm; F, 80 µm; G, 7 mm, H-J, 5 mm.
"I am a journalist myself, working for a public radio and television in the Netherlands. As a radio reporter Ivisited Bangladesh just after the cyclone Sidr hit the coastal area in November 1997 (…) Itravelled to the islands on a boat. On that boat were two boatmen and one of them started singing while we were sailing. As Igeotagged this song you can see exactly where it was. Iwas staying at that time in Pirojpur, took a taxi to the river and got a boat. Along tall typical motorboat. It was a journey of three-quarters of an hour during which he sang two songs." [Jeroen/zeshoog]12 in Collecting Sounds. Online Sharing of Field Recordings as Cultural Practice
"I am a journalist myself, working for a public radio and television in the Netherlands. As a radio reporter Ivisited Bangladesh just after the cyclone Sidr hit the coastal area in November 1997 (…) Itravelled to the islands on a boat. On that boat were two boatmen and one of them started singing while we were sailing. As Igeotagged this song you can see exactly where it was. Iwas staying at that time in Pirojpur, took a taxi to the river and got a boat. Along tall typical motorboat. It was a journey of three-quarters of an hour during which he sang two songs." [Jeroen/zeshoog]12
Figure 1 in Two new species of eyeless amphipods from a coastal area in Japan (Crustacea: Amphipoda: Hadziidae, Melitidae), with reinstatement of the genus Paraniphargus Tattersall, 1925
Figure 1. Dulzura projecta sp. nov. Holotype, male (OMNH-Ar-9974), 6.6 mm. Habitus, lateral view.
ScienceDex guides
Understand access before you commit
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.