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Sci., 64, 1333, 10.1093\u002Ficesjms\u002Ffsm134\nCutter, 2010, A comparison of bathymetry mapped with the Simrad ME70 multibeam echosounder operated in bathymetric and fisheries modes, ICES J. Mar. Sci., 67, 1301, 10.1093\u002Ficesjms\u002Ffsq012\nDolan, 2008, Modelling the local distribution of cold-water corals in relation to bathymetric variables: Adding spatial context to deep-sea video data, Deep-Sea Research Part I-Oceanographic Research Papers, 55, 1564, 10.1016\u002Fj.dsr.2008.06.010\nDormann, 2013, Collinearity: a review of methods to deal with it and a simulation study evaluating their performance, Ecography, 36, 027, 10.1111\u002Fj.1600-0587.2012.07348.x\nDuff, A.A., 2008, Using general linear models and ordinary kriging to map species distribution. Appenidx C. 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Sci., 17, 797, 10.1080\u002F13658810310001596058\nShotwell, 2008, Mapping marine benthic habitat in the Gulf of Alaska: Geological habitat, fish distributions, and fishing intensity, 349\nStauffer, G.D., (compiler), 2004, NOAA Protocols for Groundfish Bottom Trawl Surveys of the Nation’s Fishery Resources. U. S. Dep. Commerce, NOAA Tech. Memo. NMFS-F\u002FSPO-65, 205 pp.\nStein, 1992, Fish-habitat associations on a deep reef at the edge of the Oregon continental-shelf, Fish. Bull., 90, 540\nTodd, 2011, Surficial geology and benthic habitat of the German Bank seabed, Scotian Shelf, Canada, Cont. Shelf Res., 31, S54, 10.1016\u002Fj.csr.2010.07.008\nTrenkel, 2008, The new fisheries multibeam echosounder ME70: description and expected contribution to fisheries research, ICES J. Mar. Sci., 65, 645, 10.1093\u002Ficesjms\u002Ffsn051\nVon Szalay, P.G., Raring, N.W., Shaw, F.R., Wilkins, M.E., Martin, M.H., 2010, Data Report: 2009 Gulf of Alaska bottom trawl survey. NOAA Tech. Memo. NMFS-AFSC-208. 245 pp.\nWeber, 2013, Seabed classification for trawlability determined with a multibeam echo sounder on Snakehead Bank in the Gulf of Alaska, Fish. Bull., 111, 68\nWeiss, 2001, Topographic position and landforms analysis\nWentworth, 1922, A scale of grade and class terms for clastic sediments, J. Geology, 30, 377, 10.1086\u002F622910\nWilliams, 2010, Use of stereo camera systems for assessment of rockfish abundance in untrawlable areas and for recording pollock behavior during midwater trawls, Fish. Bull., 108, 352\nWilson, 2007, Multiscale terrain analysis of multibeam bathymetry data for habitat mapping on the continental slope, Marine Geodesy, 30, 3, 10.1080\u002F01490410701295962\nWright, D.J., Pendleton, M., Boulware, J., Walbridge, S., Gerlt, B., Eslinger, D., et al. 2012, ArcGIS Benthic Terrain Modeler (BTM), v. 3.0, Environmental Systems Research Institute, NOAA Coastal Services Center, Massachusetts Office of Coastal Zone Management. 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Rapid image processing and classification in underwater exploration using advanced high performance computing. In: IEEE OCEANS.\nSchoening, 2016, RecoMIA - Recommendations for marine image annotation: Lessons learned and future directions, Front. Mar. Sci., 3\nShi, 2000, Normalized cuts and image segmentation, IEEE Trans. Pattern Anal. Mach. Intell., 22, 888, 10.1109\u002F34.868688\nStackelberg, 1991, The formation of manganese nodules between the clarion and clipperton fracture zones southeast of Hawaii, Mar. Geol., 98, 411, 10.1016\u002F0025-3227(91)90113-I\nWiedicke, 1996, Small-scale variability of seafloor features in the northern peru basin: Results from acoustic survey methods, Mar. Geophys. 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pelagic fish populations: The application of demersal video techniques to the mid-water environment",{"VOID":539},"Anderson, 2003, Canonical analysis of principal coordinate: a useful method of constrained ordination for ecology, Ecology, 84, 511, 10.1890\u002F0012-9658(2003)084[0511:CAOPCA]2.0.CO;2\nBailey, 2007, Cameras and carcasses: historical and current methods for using artificial food falls to study deep-water animals, Mar. 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