Works matching Red tide
Results: 1102
Red Tide Detection Based on Improved DenseNet Network--Example of Red Tide Detection from Geostationary Ocean Color Imager Data in Bohai Sea.
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- Sensors & Materials, 2022, v. 34, n. 12 Part 2, p. 4435, doi. 10.18494/SAM4187
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Derivation of Red Tide Index and Density Using Geostationary Ocean Color Imager (GOCI) Data.
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- Remote Sensing, 2021, v. 13, n. 2, p. 298, doi. 10.3390/rs13020298
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Comparative Study on the Toxic Effects of Red Tide Flagellates Heterocapsa circularisquama and Chattonella marina on the Short-Necked Clam (Ruditapes philippinarum).
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- Bioscience, Biotechnology & Biochemistry, 2011, v. 75, n. 10, p. 2052, doi. 10.1271/bbb.110382
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Selective Toxic Effects of Polyunsaturated Fatty Acids Derived from Ulva fasciata on Red Tide Phyotoplankter Species.
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- Bioscience, Biotechnology & Biochemistry, 2007, v. 71, n. 1, p. 265, doi. 10.1271/bbb.60475
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A new recorded of red tide forming species; Heterocapsa triquetra, Gymnodinium impudicum, Heterosigma akashiwo and Thalassiosira rotula in Alexandria Waters, Egypt.
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- Egyptian Journal of Aquatic Biology & Fisheries, 2020, v. 24, n. 6, p. 207, doi. 10.21608/ejabf.2020.117258
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Interactions between common heterotrophic protists and the dinoflagellate Tripos furca: implication on the long duration of its red tides in the South Sea of Korea in 2020.
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- Algae, 2021, v. 36, n. 1, p. 25, doi. 10.4490/algae.2021.36.2.22
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Monitoring the 2007 Florida east coast Karenia brevis (Dinophyceae) red tide and neurotoxic shellfish poisoning (NSP) event.
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- Algae, 2015, v. 30, n. 1, p. 49, doi. 10.4490/algae.2015.30.1.049
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Interactions between marine bacteria and red tide organisms in Korean waters.
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- Algae, 2013, v. 28, n. 4, p. 297, doi. 10.4490/algae.2013.28.4.297
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Earth system models for regional environmental management of red tide: Prospects and limitations of current generation models and next generation development.
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- Environmental Earth Sciences, 2022, v. 81, n. 9, p. 1, doi. 10.1007/s12665-022-10343-7
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A Twitter-Lived Red Tide Crisis on Chiloé Island, Chile: What Can Be Obtained for Social-Ecological Research through Social Media Analysis?
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- Sustainability (2071-1050), 2020, v. 12, n. 20, p. 8506, doi. 10.3390/su12208506
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Severe Karenia brevis red tides influence juvenile bottlenose dolphin ( Tursiops truncatus) behavior in Sarasota Bay, Florida.
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- Marine Mammal Science, 2011, v. 27, n. 3, p. 622, doi. 10.1111/j.1748-7692.2010.00428.x
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Regeneration and utilization of nutrients during collapse of a Mesodinium rubrum red tide and its influence on phytoplankton species composition.
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- SCIENCE CHINA Earth Sciences, 2018, v. 61, n. 10, p. 1384, doi. 10.1007/s11430-017-9233-x
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Role of Oxyrrhis marina as a key predator in regulating phytoplankton dynamics during red tide events of 2018-2019 in the San Jorge Bay, Antofagasta, Chile.
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- Latin American Journal of Aquatic Research, 2024, v. 52, n. 5, p. 752, doi. 10.3856/vol52-issue5-fulltext-3229
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Nutrient-based method for assessing the hazard degree of red tide: a case study in the Zhejiang coastal waters, East China Sea.
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- Environmental Earth Sciences, 2013, v. 70, n. 6, p. 2671, doi. 10.1007/s12665-013-2324-0
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Relationship between aerosol transport routes and red tide occurrences in the East China Sea.
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- Environmental Earth Sciences, 2013, v. 69, n. 5, p. 1499, doi. 10.1007/s12665-012-1984-5
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Karenia brevis red tides and brevetoxin-contaminated fish: a high risk factor for Florida's scavenging shorebirds?
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- Botanica Marina, 2012, v. 55, n. 1, p. 31, doi. 10.1515/bot.2011.122
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HPLC-Based Detection of Two Distinct Red Tide Causative Species (Mesodinium rubrum and Margalefidinium polykrikoides) in the South Sea of Korea.
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- Water (20734441), 2023, v. 15, n. 17, p. 3050, doi. 10.3390/w15173050
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A Simple Red Tide Monitoring Method using Sentinel-2 Data for Sustainable Management of Brackish Lake Koyama-ike, Japan.
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- Water (20734441), 2019, v. 11, n. 5, p. 1044, doi. 10.3390/w11051044
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SPATIOTEMPORAL AND BIOLOGICAL VARIABILITY OF RED TIDE IN TIANJIN COASTAL WATERS DURING THE PAST 15 YEARS.
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- Applied Ecology & Environmental Research, 2022, v. 20, n. 3, p. 170, doi. 10.15666/aeer/2003_21432155
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A Comprehensive Review of Secondary Metabolites with Antialgal Activity from Marine Macroalgae against Red Tide Microalgae.
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- Journal of Coastal Research, 2022, v. 93, p. 475, doi. 10.2112/SI93-062.1
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Relationship between the Occurrence of Red Tides and the Dynamic Response Mechanisms in the Northern Beibu Gulf.
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- Journal of Coastal Research, 2022, v. 93, p. 185, doi. 10.2112/SI93-026.1
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Research on Nonlinear Dynamic Analysis of the Cause of Coastal Red Tide.
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- Journal of Coastal Research, 2020, v. 109, p. 127, doi. 10.2112/JCR-SI109-021.1
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A Comprehensive Review of Secondary Metabolites with Antialgal Activity from Marine Macroalgae against Red Tide Microalgae.
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- Journal of Coastal Research, 2019, v. 93, p. 475, doi. 10.2112/SI93-062.1
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Relationship between the Occurrence of Red Tides and the Dynamic Response Mechanisms in the Northern Beibu Gulf.
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- Journal of Coastal Research, 2019, v. 93, p. 185, doi. 10.2112/SI93-026.1
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A Comprehensive Review of Secondary Metabolites with Antialgal Activity from Marine Macroalgae against Red Tide Microalgae.
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- Journal of Coastal Research, 2019, v. 93, p. 475, doi. 10.2112/SI93-062.1
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Relationship between the Occurrence of Red Tides and the Dynamic Response Mechanisms in the Northern Beibu Gulf.
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- Journal of Coastal Research, 2019, v. 93, p. 185, doi. 10.2112/SI93-026.1
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Research on 2-D Ecological Mathematical Model of Red Tide.
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- Nature Environment & Pollution Technology, 2016, v. 15, n. 1, p. 195
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Potential Effects of Some Environmental Factors on a Dinoflagellate Red Tide Caused by Gymnodinium cat-enatum in Shenhu Bay in 2017.
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- Meteorological & Environmental Research, 2019, v. 10, n. 4, p. 26, doi. 10.19547/j.issn2152-3940.2019.04.007
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Allelopathic interactions between the red-tide causative dinoflagellate Prorocentrum donghaiense and the diatom Phaeodactylum tricornutum.
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- Oceanologia, 2014, v. 56, n. 3, p. 639, doi. 10.5697/oc.56-3.639
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Purification and Screening of the Antialgal Activity of Seaweed Extracts and a New Glycolipid Derivative against Two Ichthyotoxic Red Tide Microalgae Amphidinium carterae and Karenia mikimotoi.
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- Marine Drugs, 2024, v. 22, n. 6, p. 279, doi. 10.3390/md22060279
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Are oil spills enhancing outbreaks of red tides in the Chinese coastal waters from 1973 to 2017?
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- Environmental Science & Pollution Research, 2021, v. 28, n. 40, p. 56473, doi. 10.1007/s11356-021-14549-3
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Several natural products isolated from a red alga Gracilaria lemaneiformis and its evaluation of antialgal activity against six common red tide microalgae.
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- Environmental Science & Pollution Research, 2021, v. 28, n. 18, p. 22409, doi. 10.1007/s11356-020-11755-3
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Inhibition effect of natural flavonoids on red tide alga Phaeocystis globosa and its quantitative structure-activity relationship.
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- Environmental Science & Pollution Research, 2019, v. 26, n. 23, p. 23763, doi. 10.1007/s11356-019-05482-7
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Effects of a red tide on the structure of estuarine fish assemblages in northeastern Brazil.
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- International Review of Hydrobiology, 2012, v. 97, n. 5, p. 389, doi. 10.1002/iroh.201101457
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Prey preference, environmental tolerances and ichthyotoxicity by the red-tide dinoflagellate Noctiluca scintillans cultured from Tasmanian waters.
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- Journal of Plankton Research, 2019, v. 41, n. 4, p. 407, doi. 10.1093/plankt/fbz037
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Ultrasound backscattered power from Cochlodinium polykrikoides, the main red tide species in the Southern Sea of Korea.
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- Journal of Plankton Research, 2010, v. 32, n. 4, p. 503, doi. 10.1093/plankt/fbq001
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Complexation of iron by microbial siderophores and effects of iron chelates on the growth of marine microalgae causing red tides.
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- Phycological Research, 2008, v. 56, n. 1, p. 58, doi. 10.1111/j.1440-1835.2008.00485.x
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Relationships between dynamics of red tide-causing raphidophycean flagellates and algicidal micro-organisms in the coastal sea of Japan.
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- Phycological Research, 1998, v. 46, p. 139, doi. 10.1111/j.1440-1835.1998.tb00106.x
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A novel algicidal properties of fermentation products from Pseudomonas sp. Ps3 strain on the toxic red tide dinoflagellate species.
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- Frontiers in Microbiology, 2023, p. 01, doi. 10.3389/fmicb.2023.1146325
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The Coastal Ocean Circulation Influence on the 2018 West Florida Shelf K. brevis Red Tide Bloom.
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- Journal of Geophysical Research. Oceans, 2019, v. 124, n. 4, p. 2501, doi. 10.1029/2018JC014887
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Reported Respiratory Symptom Intensity in Asthmatics During Exposure to Aerosolized Florida Red Tide Toxins.
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- Journal of Asthma, 2007, v. 44, n. 7, p. 583, doi. 10.1080/02770900701539251
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Urea is a potentially important nitrogen source for phytoplankton during red tide formation in Isahaya Bay, Japan.
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- Journal of Oceanography, 2022, v. 78, n. 3, p. 177, doi. 10.1007/s10872-022-00640-x
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Detecting red tides in the eastern Seto inland sea with satellite ocean color imagery.
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- Journal of Oceanography, 2009, v. 65, n. 5, p. 647, doi. 10.1007/s10872-009-0055-3
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Harmful algal toxins of the Florida red tide (Karenia brevis): natural chemical stressors in South Florida coastal ecosystems.
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- Ecotoxicology, 2008, v. 17, n. 7, p. 623, doi. 10.1007/s10646-008-0241-x
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Red tide of the dinoflagellate Heterocapsa triquetra (Dinophyta) in a ferry-mixed coastal inlet
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- Hydrobiologia, 1999, v. 393, n. 1-3, p. 245, doi. 10.1023/A:1003563022422
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瀬戸内海・播磨灘におけるヤコウチュウ赤潮の長期変動.
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- Oceanography of Japan / Umi no Kenkyū, 2021, v. 30, n. 3, p. 47, doi. 10.5928/kaiyou.30.3_47
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Red Tide Detection Method for HY−1D Coastal Zone Imager Based on U−Net Convolutional Neural Network.
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- Remote Sensing, 2022, v. 14, n. 1, p. 88, doi. 10.3390/rs14010088
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Public Perceptions of Florida Red Tide Risks.
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- Risk Analysis: An International Journal, 2009, v. 29, n. 7, p. 963, doi. 10.1111/j.1539-6924.2009.01228.x
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Red Tide Detection Method Based on Improved U-Net Model-Taking GOCI Data in East China Sea as an Example.
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- Sensors (14248220), 2023, v. 23, n. 22, p. 9195, doi. 10.3390/s23229195
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RESEARCH ON HIGH ACCURACY DETECTION OF RED TIDE HYPERSPECRRAL BASED ON DEEP LEARNING CNN.
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- International Archives of the Photogrammetry, Remote Sensing & Spatial Information Sciences, 2018, v. 42, n. 3, p. 573, doi. 10.5194/isprs-archives-XLII-3-573-2018
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