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1

Friedrichs, Marjorie Anne MacWhorter. Meridional circulation in the tropical North Atlantic. Woods Hole Oceanographic Institution, 1993.

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2

Ivanova, E. V. Globalʹnai︠a︡ termokhalinnai︠a︡ paleot︠s︡irkuli︠a︡t︠s︡ii︠a︡. Nauchnyĭ mir, 2006.

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3

Komuro, Yoshiki. Role of the arctic freshwater pathways in controlling the Atlantic meridional overturning circulation. Center for Climate Systems Research, University of Tokyo, 2004.

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4

Urakawa, L. Shogo. Energy budget analysis on the role of the Southern Ocean in driving the global thermohaline circulation. Division of Climate System Research, Atmosphere and Ocean Research Institute, University of Tokyo, 2011.

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5

Jochum, Markus. On the pathways of the return flow of the meridional overturning circulation in the tropical Atlantic. Massachusetts Institute of Technology, 2002.

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6

Hellmer, Hartmut H. Ein zweidimensionales Modell zur thermohalinen Zirkulation unter dem Schelfeis =: A two-dimensional model for the thermohaline circulation under an ice shelf. Alfred-Wegener-Institut für Polar- und Meeresforschung, 1989.

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7

Hellmer, Hartmut H. Ein zweidimensionales Modell zur thermohalinen Zirkulation unter dem Schelfeis =: A two-dimensional model for the thermohaline circulation under an ice shelf. Alfred-Wegener-Institut für Polar- und Meeresforschung, 1989.

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8

Schmittner, Andreas, John C. H. Chiang, and Sidney R. Hemming, eds. Ocean Circulation: Mechanisms and Impacts—Past and Future Changes of Meridional Overturning. American Geophysical Union, 2007. http://dx.doi.org/10.1029/gm173.

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9

Andreas, Schmittner, Chiang John C. H, and Hemming Sidney R, eds. Ocean circulation: Mechanisms and impacts : past and future changes of meridional overturning. American Geophysical Union, 2007.

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10

Zahn, Rainer. North Atlantic thermohaline circulation during the last glacial period: Evidence for coupling between meltwater events and convective instability. Forschungszentrum für Marine Geowissenschaften der Christian-Albrechts-Universität zu Kiel, 1997.

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11

Shcherbakov, A. V. Chislennoe modelirovanie globalʹnogo klimata okeana. In-t vychislitelʹnoĭ matematiki i matematicheskoĭ geofiziki SO RAN, 2008.

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12

Shcherbakov, A. V. Chislennoe modelirovanie globalʹnogo klimata okeana. In-t vychislitelʹnoĭ matematiki i matematicheskoĭ geofiziki SO RAN, 2008.

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13

Hemming, Sidney R., Andreas Schmittner, and John C. H. Chiang. Ocean Circulation: Mechanisms and Impacts -- Past and Future Changes of Meridional Overturning. American Geophysical Union, 2013.

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14

Hemming, Sidney R., Andreas Schmittner, and John C. H. Chiang. Ocean Circulation: Mechanisms and Impacts -- Past and Future Changes of Meridional Overturning. Wiley & Sons, Limited, John, 2013.

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15

Hemming, Sidney R., Andreas Schmittner, and John C. H. Chiang. Ocean Circulation: Mechanisms and Impacts -- Past and Future Changes of Meridional Overturning. American Geophysical Union, 2013.

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16

Hemming, Sidney R., Andreas Schmittner, and John C. H. Chiang. Ocean Circulation: Mechanisms and Impacts -- Past and Future Changes of Meridional Overturning. American Geophysical Union, 2013.

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17

Aken, Hendrik M. van. Oceanic Thermohaline Circulation: An Introduction. Springer, 2010.

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18

Aken, Hendrik M. van. Oceanic Thermohaline Circulation: An Introduction. Springer London, Limited, 2007.

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19

Swallow, J. C., and K. N. Fedorov. Thermohaline Finestructure of the Ocean: Pergamon Marine Series. Elsevier Science & Technology Books, 2013.

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20

Formy tonkoĭ termokhalinnoĭ struktury okeana: Katalog = Forms of ocean thermohaline finestructure [sic] : catalogue. Akademii͡a︡ nauk SSSR, Mezhduvedomstvennyĭ geofizicheskiĭ kom-t, Sekt͡s︡ii͡a︡ okeanografii, 1987.

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21

The Oceanic Thermohaline Circulation: An Introduction (Atmospheric and Oceanographic Sciences Library). Springer, 2006.

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22

Clark, James S., Dave Bell, Michael Dietze, et al. Assessing the probability of rare climate events. Edited by Anthony O'Hagan and Mike West. Oxford University Press, 2018. http://dx.doi.org/10.1093/oxfordhb/9780198703174.013.16.

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This article focuses on the use of Bayesian methods in assessing the probability of rare climate events, and more specifically the potential collapse of the meridional overturning circulation (MOC) in the Atlantic Ocean. It first provides an overview of climate models and their use to perform climate simulations, drawing attention to uncertainty in climate simulators and the role of data in climate prediction, before describing an experiment that simulates the evolution of the MOC through the twenty-first century. MOC collapse is predicted by the GENIE-1 (Grid Enabled Integrated Earth system m
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23

Goswami, B. N., and Soumi Chakravorty. Dynamics of the Indian Summer Monsoon Climate. Oxford University Press, 2017. http://dx.doi.org/10.1093/acrefore/9780190228620.013.613.

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Lifeline for about one-sixth of the world’s population in the subcontinent, the Indian summer monsoon (ISM) is an integral part of the annual cycle of the winds (reversal of winds with seasons), coupled with a strong annual cycle of precipitation (wet summer and dry winter). For over a century, high socioeconomic impacts of ISM rainfall (ISMR) in the region have driven scientists to attempt to predict the year-to-year variations of ISM rainfall. A remarkably stable phenomenon, making its appearance every year without fail, the ISM climate exhibits a rather small year-to-year variation (the sta
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