Biological data extraction from imagery - How far can we go? A case study from the Mid-Atlantic Ridge.
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Daphne Cuvelier | Jozée Sarrazin | Romain Lavaud | J. Sarrazin | P. Sarradin | M. Fabri | D. Cuvelier | Pierre-Marie Sarradin | Marie-Claire Fabri | Fanny de Busserolles | Estelle Floc'h | R. Lavaud | Fanny de Busserolles | E. Floc'h
[1] J. Childress,et al. Biogeochemistry of hydrothermal vent mussel communities: the deep-sea analogue to the intertidal zone , 1994 .
[2] Dana R. Yoerger,et al. Deep submergence synergy: Alvin and ABE explore the gálapagos rift at 86°W , 2003 .
[3] Stuart Robson,et al. The accuracy and precision of underwater measurements of length and maximum body depth of southern bluefin tuna (Thunnus maccoyii) with a stereo-video camera system , 2003 .
[4] D. Jollivet,et al. Spatial and temporal variations of recruitment in the tube worm Riftia pachyptila on the East Pacific Rise (9°50¹N and 13°N) , 2002 .
[5] Juan de Fuca. Mosaic community dynamics on Juan de Fuca Ridge sulphide edifices : substratum , temperature and implications for trophic structure , 2011 .
[6] H. Nemeschkal,et al. Hydrothermal vent meiobenthos associated with mytilid mussel aggregations from the Mid-Atlantic Ridge and the East Pacific Rise , 2006 .
[7] B. H. Magorrian. Analysis of underwater visual data to identify the impact of physical disturbance on horse mussel (Modiolus modiolus) beds , 1998 .
[8] C. Fisher. Toward an Appreciation of Hydrothennal‐Vent Animals: Their Environment, Physiological Ecology, and Tissue Stable Isotope Values , 2013 .
[9] P. Tyler,et al. Subannual Temporal Variation in Faunal Distributions at the TAG Hydrothermal Mound (26° N, Mid‐Atlantic Ridge) , 1999 .
[10] J. Childress,et al. Temporal change in megafauna at the Rose Garden hydrothermal vent (Galapagos Rift; eastern tropical Pacific) , 1988 .
[11] Adrian G. Glover,et al. Community dynamics over 14 years at the Eiffel Tower hydrothermal edifice on the Mid‐Atlantic Ridge , 2011 .
[12] Delaney,et al. Biological and geological dynamics over four years on a high-temperature sulfide structure at the Juan de Fuca Ridge hydrothermal observatory , 1997 .
[13] G. Massoth,et al. Habitat, growth and physiological ecology of a basaltic community of Ridgeia piscesae from the Juan de Fuca Ridge , 2003 .
[14] Community Structure , 2014, Encyclopedia of Social Network Analysis and Mining.
[15] R. Cosel,et al. Life‐history traits of the symbiotic scale‐worm Branchipolynoe seepensis and its relationships with host mussels of the genus Bathymodiolus from hydrothermal vents , 2007 .
[16] A. Colaço,et al. Nutritional relations of deep-sea hydrothermal fields at the Mid-Atlantic Ridge : a stable isotope approach , 2002 .
[17] D. Jollivet,et al. Videoscopic study of deep-sea hydrothermal vent alvinellid polychaete populations: biomass estimation and behaviour , 1993 .
[18] J. Sarrazin,et al. Biological characteristics of a hydrothermal edifice mosaic community , 1999 .
[19] M. Lilley,et al. Temporal and spatial patterns of biological community development at nascent deep-sea hydrothermal vents (9°50 N, East Pacific Rise) , 1998 .
[20] S. Goffredi,et al. Biogeography and Ecological Setting of Indian Ocean Hydrothermal Vents , 2001, Science.
[21] D. Miller,et al. Mid Atlantic Ridge , 1994 .
[22] A. Gebruk,et al. The hydrothermal vent community of a new deep-sea field, Ashadze-1, 12°58′N on the Mid-Atlantic Ridge , 2010, Journal of the Marine Biological Association of the United Kingdom.
[23] V. Tunnicliffe. The biology of hydrothermal vents : Ecology and evolution , 1991 .
[24] N. Dubilier,et al. A dual symbiosis shared by two mussel species, Bathymodiolus azoricus and Bathymodiolus puteoserpentis (Bivalvia: Mytilidae), from hydrothermal vents along the northern Mid-Atlantic Ridge. , 2006, Environmental microbiology.
[25] H. Singhb,et al. A dual sensor device to estimate fluid flow velocity at diffuse hydrothermal vents , 2010 .
[26] M. Tsurumi. Diversity at hydrothermal vents , 2003 .
[27] J. Sarrazin,et al. Mosaic community dynamics on Juan de Fuca Ridge sulphide edifices : substratum, temperature and implications for trophic structure , 2002 .
[28] Verena Tunnicliffe,et al. Observations on the effects of sampling on hydrothermal vent habitat and fauna of Axial Seamount, Juan de Fuca Ridge , 1990 .
[29] C. L. Van Dover,et al. Spatial and interannual variation in the faunal distribution at Broken Spur vent field (29°N, Mid-Atlantic Ridge) , 1997 .
[30] S. Juniper,et al. Feeding and territorial behavior of Paralvinella sulfincola, a polychaete worm at deep-sea hydrothermal vents of the Northeast Pacific Ocean , 2006 .
[31] A. Warén,et al. Migration, Isolation, and Speciation of Hydrothermal Vent Limpets (Gastropoda; Lepetodrilidae) Across the Blanco Transform Fault , 2006, The Biological Bulletin.
[32] C. Fisher,et al. Distribution of diffuse flow megafauna in two sites on the Eastern Lau Spreading Center, Tonga , 2009 .
[33] J. G. Norris,et al. Estimating basal area coverage of subtidal seagrass beds using underwater videography , 1997 .
[34] Robert R. Hessler,et al. Spatial and temporal variation of giant clams, tube worms and mussels at deep-sea hydrothermal vents , 1985 .
[35] J. Dreyer,et al. Development of macrofaunal community structure in mussel beds on the northern East Pacific Rise , 2005 .
[36] S. Juniper,et al. Deep-Sea Hydrothermal Vent Communities at 13°N on the East Pacific Rise: Microdistribution and Temporal Variations , 2013 .
[37] P. Tyler,et al. Hydrothermal faunal assemblages and habitat characterisation at the Eiffel Tower edifice (Lucky S , 2011 .
[38] Adrian G. Glover,et al. Distribution and spatial variation of hydrothermal faunal assemblages at Lucky Strike (Mid-Atlantic Ridge) revealed by high-resolution video image analysis , 2009 .
[39] L. Mullineaux. Deep-Sea Hydrothermal Vent Communities , 2013 .
[40] H. M. Page,et al. Experimental evidence for filter-feeding by the hydrothermal vent mussel, Bathymodiolus thermophilus , 1991 .
[41] G. Massoth,et al. In situ growth of the vestimentiferan Ridgeia piscesae living in highly diffuse flow environments in the main Endeavour Segment of the Juan de Fuca Ridge , 1998 .
[42] L. Germanovich,et al. The first measurements of hydrothermal heat output at 9°50′N, East Pacific Rise , 2006 .
[43] A. Grémare,et al. Relationship between filtration activity and food availability in the Mediterranean mussel Mytilus galloprovincialis , 2007 .
[44] J. Sarrazin,et al. Remote sensing of organism density and biomass at hydrothermal vents , 1998 .
[45] J. Stecher,et al. Population characteristics of abundant bivalves (Mollusca, Vesicomyidae) at a sulphide-rich seafloor site near Lihir Island, Papua New Guinea , 2003 .
[46] Jaume Piera,et al. Hierarchical segmentation-based software for cover classification analyses of seabed images (Seascape) , 2011 .
[47] J. Sarrazin,et al. Diversity and function in microbial mats from the Lucky Strike hydrothermal vent field. , 2011, FEMS microbiology ecology.
[48] P. Sarradin,et al. A review of the distribution of hydrothermal vent communities along the northern Mid-Atlantic Ridge: dispersal vs. environmental controls , 2000, Hydrobiologia.
[49] C. Devey,et al. Responsible Science at Hydrothermal Vents , 2007 .
[50] G. Massoth,et al. Biological colonization of new hydrothermal vents following an eruption on Juan de Fuca Ridge , 1997 .
[51] J. Sarrazin,et al. Community structure and temperature dynamics within a mussel assemblage on the Southern East Pacific Rise , 2006 .
[52] Robert K. Colwell,et al. Quantifying biodiversity: procedures and pitfalls in the measurement and comparison of species richness , 2001 .
[53] H. U. Riisgård,et al. Regulation of opening state and filtration rate in filter-feeding bivalves (Cardium edule, Mytilus edulis, Mya arenaria) in response to low algal concentration , 2003 .
[54] D. Yoerger,et al. Deep submergence synergy , 2003 .
[55] D. Desbruyéres. Temporal variations in the vent communities on the East Pacific Rise and Galápagos Spreading Centre : a review of present knowledge , 1998 .
[56] J. Trask,et al. Diversity at deep-sea hydrothermal vent and intertidal mussel beds , 2000 .
[58] Raymond W. Lee,et al. Role of thermal conditions in habitat selection by hydrothermal vent gastropods , 2005 .
[59] J. Sarrazin,et al. Measure and mis-measure of species diversity in deep-sea chemosynthetic communities , 2010 .
[60] D. Desbruyéres,et al. Population structure and recruitment in mytilid bivalves from the Lucky Strike and Menez Gwen hydrothermal vent fields (37°17\'N and 37°50\'N on the Mid-Atlantic Ridge) , 1998 .
[61] Robert A. Sohn,et al. Assessment of decadal-scale ecological change at a deep Mid-Atlantic hydrothermal vent and reproductive time-series in the shrimp Rimicaris exoculata , 2007, Journal of the Marine Biological Association of the United Kingdom.
[62] C. Vetriani,et al. Hydrothermal Vent Mussel Habitat Chemistry, Pre- and Post-Eruption at 9°50′North on the East Pacific Rise , 2008 .
[63] P. Sarradin,et al. Variations in deep-sea hydrothermal vent communities on the Mid-Atlantic Ridge near the Azores plateau , 2001 .
[64] V. Tunnicliffe,et al. Characteristics of a hydrothermal vent assemblage on a volcanically active segment of Juan de Fuca Ridge, northeast Pacific , 2001 .
[65] P. Sarradin,et al. Size-dependent variations on the nutritional pathway of Bathymodiolus azoricus demonstrated by a C-flux model , 2008 .
[66] C. Fisher,et al. Composition of a One-Year-Old Riftia pachyptila Community Following a Clearance Experiment: Insight to Succession Patterns at Deep-Sea Hydrothermal Vents , 2004, The Biological Bulletin.
[67] M. Meekan,et al. Temporal patterns in coral assemblages on the Great Barrier Reef from local to large spatial scales , 2000 .
[68] Daniel Mihai Toma,et al. The New Seafloor Observatory (OBSEA) for Remote and Long-Term Coastal Ecosystem Monitoring , 2011, Sensors.
[69] V. Tunnicliffe,et al. Post-eruption succession of macrofaunal communities at diffuse flow hydrothermal vents on Axial Volcano, Juan de Fuca Ridge, Northeast Pacific , 2009 .
[70] L. Godet,et al. Scientists as Stakeholders in Conservation of Hydrothermal Vents , 2011, Conservation biology : the journal of the Society for Conservation Biology.
[71] A. Warén,et al. Temporal variation of currents, particulate flux and organism supply at two deep-sea hydrothermal fields of the Azores Triple Junction , 2008 .
[72] A. Khripounoff,et al. Near-bottom biological and mineral particle flux in the Lucky Strike hydrothermal vent area (Mid-Atlantic Ridge) , 2000 .