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Biodiversity, biogeography, and connectivity of polychaetes in the world's largest marine minerals exploration frontier.
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- Diversity & Distributions, 2023, v. 29, n. 6, p. 727, doi. 10.1111/ddi.13690
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Mass falls of crustacean carcasses link surface waters and the deep seafloor.
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- Ecology, 2023, v. 104, n. 2, p. 1, doi. 10.1002/ecy.3898
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Climate change considerations are fundamental to management of deep‐sea resource extraction.
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- Global Change Biology, 2020, v. 26, n. 9, p. 4664, doi. 10.1111/gcb.15223
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Evidence for seasonal cycles in deep‐sea fish abundances: A great migration in the deep SE Atlantic?
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- Journal of Animal Ecology, 2020, v. 89, n. 7, p. 1593, doi. 10.1111/1365-2656.13215
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- Article
Megafauna community assessment of polymetallic-nodule fields with cameras: platform and methodology comparison.
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- Biogeosciences, 2020, v. 17, n. 12, p. 3115, doi. 10.5194/bg-17-3115-2020
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- Article
Cold‐water coral assemblages on vertical walls from the Northeast Atlantic.
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- Diversity & Distributions, 2020, v. 26, n. 3, p. 284, doi. 10.1111/ddi.13011
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A framework for the development of a global standardised marine taxon reference image database (SMarTaR-ID) to support image-based analyses.
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- PLoS ONE, 2019, v. 14, n. 12, p. N.PAG, doi. 10.1371/journal.pone.0218904
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Megafauna community assessment of polymetallic nodule fields with cameras: Platform and methodology comparison.
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- Biogeosciences Discussions, 2019, p. 1, doi. 10.5194/bg-2019-363
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Ecology of a polymetallic nodule occurrence gradient: Implications for deep‐sea mining.
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- Limnology & Oceanography, 2019, v. 64, n. 5, p. 1883, doi. 10.1002/lno.11157
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On the impact of Citizen Science-derived data quality on deep learning based classification in marine images.
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- PLoS ONE, 2019, v. 14, n. 6, p. 1, doi. 10.1371/journal.pone.0218086
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Biological effects 26 years after simulated deep-sea mining.
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- Scientific Reports, 2019, v. 9, n. 1, p. N.PAG, doi. 10.1038/s41598-019-44492-w
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Implications of population connectivity studies for the design of marine protected areas in the deep sea: An example of a demosponge from the Clarion‐Clipperton Zone.
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- Molecular Ecology, 2018, v. 27, n. 23, p. 4657, doi. 10.1111/mec.14888
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Recovery of Holothuroidea population density, community composition, and respiration activity after a deep‐sea disturbance experiment.
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- Limnology & Oceanography, 2018, v. 63, n. 5, p. 2140, doi. 10.1002/lno.10929
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- Article
Abyssal plain faunal carbon flows remain depressed 26 years after a simulated deep-sea mining disturbance.
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- Biogeosciences, 2018, v. 15, n. 13, p. 4131, doi. 10.5194/bg-15-4131-2018
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Scavenging processes on jellyfish carcasses across a fjord depth gradient.
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- Limnology & Oceanography, 2018, v. 63, n. 3, p. 1146, doi. 10.1002/lno.10760
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Faunal carbon flows in the abyssal plain food web of the Peru Basin have not recovered during 26 years from an experimental sediment disturbance.
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- Biogeosciences Discussions, 2018, p. 1, doi. 10.5194/bg-2018-167
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New species of the xenophyophore genus Aschemonella (Rhizaria: Foraminifera) from areas of the abyssal eastern Pacific licensed for polymetallic nodule exploration.
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- Zoological Journal of the Linnean Society, 2018, v. 182, n. 3, p. 479, doi. 10.1093/zoolinnean/zlx052
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Big in the benthos: Future change of seafloor community biomass in a global, body size-resolved model.
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- Global Change Biology, 2017, v. 23, n. 9, p. 3554, doi. 10.1111/gcb.13680
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Biological responses to disturbance from simulated deep-sea polymetallic nodule mining.
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- PLoS ONE, 2017, v. 12, n. 2, p. 1, doi. 10.1371/journal.pone.0171750
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- Article
Benthic megafauna on steep slopes at the Northern Mid-Atlantic Ridge.
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- Marine Ecology, 2016, v. 37, n. 6, p. 1290, doi. 10.1111/maec.12319
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Landscape-scale spatial heterogeneity in phytodetrital cover and megafauna biomass in the abyss links to modest topographic variation.
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- Scientific Reports, 2016, p. 34080, doi. 10.1038/srep34080
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A new method for ecological surveying of the abyss using autonomous underwater vehicle photography.
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- Limnology & Oceanography, Methods, 2014, v. 12, n. 11, p. 795, doi. 10.4319/lom.2014.12.795
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Gelatinous zooplankton biomass in the global oceans: geographic variation and environmental drivers.
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- Global Ecology & Biogeography, 2014, v. 23, n. 7, p. 701, doi. 10.1111/geb.12169
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Global reductions in seafloor biomass in response to climate change.
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- Global Change Biology, 2014, v. 20, n. 6, p. 1861, doi. 10.1111/gcb.12480
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Fish Food in the Deep Sea: Revisiting the Role of Large Food-Falls.
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- PLoS ONE, 2014, v. 9, n. 5, p. 1, doi. 10.1371/journal.pone.0096016
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Marine Litter Distribution and Density in European Seas, from the Shelves to Deep Basins.
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- PLoS ONE, 2014, v. 9, n. 4, p. 1, doi. 10.1371/journal.pone.0095839
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Biotic and Human Vulnerability to Projected Changes in Ocean Biogeochemistry over the 21st Century.
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- PLoS Biology, 2013, v. 11, n. 10, p. 1, doi. 10.1371/journal.pbio.1001682
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Does Presence of a Mid-Ocean Ridge Enhance Biomass and Biodiversity?
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- PLoS ONE, 2013, v. 8, n. 5, p. 1, doi. 10.1371/journal.pone.0061550
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Benthic-Pelagic Coupling: Effects on Nematode Communities along Southern European Continental Margins.
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- PLoS ONE, 2013, v. 8, n. 4, p. 1, doi. 10.1371/journal.pone.0059954
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Recovery of Benthic Megafauna from Anthropogenic Disturbance at a Hydrocarbon Drilling Well (380 m Depth in the Norwegian Sea).
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- PLoS ONE, 2012, v. 7, n. 10, p. 1, doi. 10.1371/journal.pone.0044114
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Depth attenuation of organic matter export associated with jelly falls.
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- Limnology & Oceanography, 2011, v. 56, n. 5, p. 1917, doi. 10.4319/lo.2011.56.5.1917
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Global contribution of echinoderms to the marine carbon cycle: CaCO<sub>3</sub> budget and benthic compartments.
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- Ecological Monographs, 2010, v. 80, n. 3, p. 441, doi. 10.1890/09-0553.1
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Using existing industrial remotely operated vehicles for deep-sea science.
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- Zoologica Scripta, 2009, v. 38, p. 41, doi. 10.1111/j.1463-6409.2007.00315.x
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