108
Southward, A.J., Boalch, G.T., Maddock, L., 1988. Fluctuations in the herring and pilchard fisheries of Devon
and Cornwall linked to change in climate since the 16th century. J. Mar. Biol. Assoc. U. K. 68, 423–
445.
SUND, P., M, B., F, W., 1981. TUNAS AND THEIR ENVIRONMENT IN THE PACIFIC OCEAN: A REVIEW. TUNAS
THEIR Environ. Pac. OCEAN Rev.
Taborsky, B., 2006. The influence of juvenile and adult environments on life-history trajectories. Proc. R.
Soc. B Biol. Sci. 273, 741–750.
Taupier-Letage, I., Puillat, I., Millot, C., Raimbault, P., 2003. Biological response to mesoscale eddies in the
Algerian Basin. J. Geophys. Res. Oceans 108.
Teo, S., Boustany, A., Block, B., 2007a. Oceanographic preferences of Atlantic bluefin tuna, Thunnus
thynnus, on their Gulf of Mexico breeding grounds. Mar. Biol. 152, 1105–1119.
https://doi.org/10.1007/s00227-007-0758-1
Teo, S., Boustany, A., Block, B., 2007b. Oceanographic preferences of Atlantic bluefin tuna, Thunnus
thynnus, on their Gulf of Mexico breeding grounds. Mar. Biol. 152, 1105–1119.
https://doi.org/10.1007/s00227-007-0758-1
Teo, S., Boustany, A., Block, B., 2007c. Oceanographic preferences of Atlantic bluefin tuna, Thunnus
thynnus, on their Gulf of Mexico breeding grounds. Mar. Biol. 152, 1105–1119.
https://doi.org/10.1007/s00227-007-0758-1
Teo, S., Boustany, A., Block, B., 2007d. Oceanographic preferences of Atlantic bluefin tuna, Thunnus
thynnus, on their Gulf of Mexico breeding grounds. Mar. Biol. 152, 1105–1119.
https://doi.org/10.1007/s00227-007-0758-1
Tham, D.-H., 1998a. Déplacements verticaux des thons et contraintes liées à la profondeur dans l’océan
Pacifique sub-tropical : approche de la gestion des gaz dissous.
Tham, D.-H., 1998b. Déplacements verticaux des thons et contraintes liées à la profondeur dans l’océan
Pacifique sub-tropical : approche de la gestion des gaz dissous.
Tham, D.-H., 1998c. Déplacements verticaux des thons et contraintes liées à la profondeur dans l’océan
Pacifique sub-tropical : approche de la gestion des gaz dissous.
Tiews, K., 1963. Synopsis of biological data on bluefin tuna Thunnus thynnus (Linnaeus) 1758 (Atlantic and
Mediterranean) 62.
Troupin, C., Pascual, A., Ruiz, S., Olita, A., Casas, B., Margirier, F., Poulain, P.-M., Notarstefano, G., Torner,
M., Fernández, J.G., Rújula, M.À., Muñoz, C., Alou, E., Ruiz, I., Tovar-Sánchez, A., Allen, J.T.,
Mahadevan, A., Tintoré, J., 2019. The AlborEX dataset: sampling of sub-mesoscale features in the
Alboran Sea. Earth Syst. Sci. Data 11, 129–145. https://doi.org/10.5194/essd-11-129-2019
Voituriez, B., 2006. La révolution océanographique : les satellites et l’ordinateur [WWW Document]. Futura.
URL https://www.futura-sciences.com/planete/dossiers/oceanographie-revolutionoceanographique-satellites-ordinateur-610/ (accessed 6.1.23).
Vu, B.L., Stegner, A., Arsouze, T., 2018. Angular Momentum Eddy Detection and Tracking Algorithm
(AMEDA) and Its Application to Coastal Eddy Formation. J. Atmospheric Ocean. Technol. 35, 739–
762. https://doi.org/10.1175/JTECH-D-17-0010.1
Waldman, R., Brüggemann, N., Bosse, A., Spall, M., Somot, S., Sevault, F., 2018. Overturning the
Mediterranean Thermohaline Circulation. Geophys. Res. Lett. 45, 8407–8415.
https://doi.org/10.1029/2018GL078502
Watson, D.F., Philip, G.M., 1985. Comment on “a nonlinear empirical prescription for simultaneously
interpolating and smoothing contours over an irregular grid” by F. Duggan. Comput. Methods Appl.
Mech. Eng. 50, 195–198. https://doi.org/10.1016/0045-7825(85)90090-8
Woillez, M., Rivoirard, J., Petitgas, P., Deerenberg, C., 2007. Selecting and combining survey based indices
of fish stocks using their correlation in time to make diagnostic of their status 19.
Woodson, C.B., Litvin, S.Y., 2015. Ocean fronts drive marine fishery production and biogeochemical cycling.
Proc. Natl. Acad. Sci. 112, 1710–1715. https://doi.org/10.1073/pnas.1417143112
Southward, A.J., Boalch, G.T., Maddock, L., 1988. Fluctuations in the herring and pilchard fisheries of Devon
and Cornwall linked to change in climate since the 16th century. J. Mar. Biol. Assoc. U. K. 68, 423–
445.
SUND, P., M, B., F, W., 1981. TUNAS AND THEIR ENVIRONMENT IN THE PACIFIC OCEAN: A REVIEW. TUNAS
THEIR Environ. Pac. OCEAN Rev.
Taborsky, B., 2006. The influence of juvenile and adult environments on life-history trajectories. Proc. R.
Soc. B Biol. Sci. 273, 741–750.
Taupier-Letage, I., Puillat, I., Millot, C., Raimbault, P., 2003. Biological response to mesoscale eddies in the
Algerian Basin. J. Geophys. Res. Oceans 108.
Teo, S., Boustany, A., Block, B., 2007a. Oceanographic preferences of Atlantic bluefin tuna, Thunnus
thynnus, on their Gulf of Mexico breeding grounds. Mar. Biol. 152, 1105–1119.
https://doi.org/10.1007/s00227-007-0758-1
Teo, S., Boustany, A., Block, B., 2007b. Oceanographic preferences of Atlantic bluefin tuna, Thunnus
thynnus, on their Gulf of Mexico breeding grounds. Mar. Biol. 152, 1105–1119.
https://doi.org/10.1007/s00227-007-0758-1
Teo, S., Boustany, A., Block, B., 2007c. Oceanographic preferences of Atlantic bluefin tuna, Thunnus
thynnus, on their Gulf of Mexico breeding grounds. Mar. Biol. 152, 1105–1119.
https://doi.org/10.1007/s00227-007-0758-1
Teo, S., Boustany, A., Block, B., 2007d. Oceanographic preferences of Atlantic bluefin tuna, Thunnus
thynnus, on their Gulf of Mexico breeding grounds. Mar. Biol. 152, 1105–1119.
https://doi.org/10.1007/s00227-007-0758-1
Tham, D.-H., 1998a. Déplacements verticaux des thons et contraintes liées à la profondeur dans l’océan
Pacifique sub-tropical : approche de la gestion des gaz dissous.
Tham, D.-H., 1998b. Déplacements verticaux des thons et contraintes liées à la profondeur dans l’océan
Pacifique sub-tropical : approche de la gestion des gaz dissous.
Tham, D.-H., 1998c. Déplacements verticaux des thons et contraintes liées à la profondeur dans l’océan
Pacifique sub-tropical : approche de la gestion des gaz dissous.
Tiews, K., 1963. Synopsis of biological data on bluefin tuna Thunnus thynnus (Linnaeus) 1758 (Atlantic and
Mediterranean) 62.
Troupin, C., Pascual, A., Ruiz, S., Olita, A., Casas, B., Margirier, F., Poulain, P.-M., Notarstefano, G., Torner,
M., Fernández, J.G., Rújula, M.À., Muñoz, C., Alou, E., Ruiz, I., Tovar-Sánchez, A., Allen, J.T.,
Mahadevan, A., Tintoré, J., 2019. The AlborEX dataset: sampling of sub-mesoscale features in the
Alboran Sea. Earth Syst. Sci. Data 11, 129–145. https://doi.org/10.5194/essd-11-129-2019
Voituriez, B., 2006. La révolution océanographique : les satellites et l’ordinateur [WWW Document]. Futura.
URL https://www.futura-sciences.com/planete/dossiers/oceanographie-revolutionoceanographique-satellites-ordinateur-610/ (accessed 6.1.23).
Vu, B.L., Stegner, A., Arsouze, T., 2018. Angular Momentum Eddy Detection and Tracking Algorithm
(AMEDA) and Its Application to Coastal Eddy Formation. J. Atmospheric Ocean. Technol. 35, 739–
762. https://doi.org/10.1175/JTECH-D-17-0010.1
Waldman, R., Brüggemann, N., Bosse, A., Spall, M., Somot, S., Sevault, F., 2018. Overturning the
Mediterranean Thermohaline Circulation. Geophys. Res. Lett. 45, 8407–8415.
https://doi.org/10.1029/2018GL078502
Watson, D.F., Philip, G.M., 1985. Comment on “a nonlinear empirical prescription for simultaneously
interpolating and smoothing contours over an irregular grid” by F. Duggan. Comput. Methods Appl.
Mech. Eng. 50, 195–198. https://doi.org/10.1016/0045-7825(85)90090-8
Woillez, M., Rivoirard, J., Petitgas, P., Deerenberg, C., 2007. Selecting and combining survey based indices
of fish stocks using their correlation in time to make diagnostic of their status 19.
Woodson, C.B., Litvin, S.Y., 2015. Ocean fronts drive marine fishery production and biogeochemical cycling.
Proc. Natl. Acad. Sci. 112, 1710–1715. https://doi.org/10.1073/pnas.1417143112
