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1

Maccaferri. Maccaferri: For the restoration and draining of fluvial environments. River & Sea Gabions Ltd, 1995.

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2

McLaurin, Brett T. Reconstructing Human-Landscape Interactions - Volume 1: Interpreting Desert and Fluvial Environments. Springer Berlin Heidelberg, 2012.

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3

G, Brown A., and Quine T. A, eds. Fluvial processes and environmental change. J. Wiley, 1999.

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4

Rowiński, Paweł, and Artur Radecki-Pawlik, eds. Rivers – Physical, Fluvial and Environmental Processes. Springer International Publishing, 2015. http://dx.doi.org/10.1007/978-3-319-17719-9.

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5

International, Conference on Monitoring Simulation Prevention and Remediation of Dense and Debris Flows (2nd 2008 New Forest England). Monitoring, simulation, prevention and remediation of dense debris flows II. WIT, 2008.

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6

International Conference on Monitoring, Simulation, Prevention and Remediation of Dense and Debris Flows (3rd 2010 Milan, Italy). Monitoring, simulation, prevention and remediation of dense and debris flows III. WIT Press, 2010.

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7

International Conference on Monitoring, Simulation, Prevention, and Remediation of Dense and Debris Flows (4th 2012 Milan, Italy). Monitoring, simulation, prevention, and remediation of dense and debris flows IV. Edited by De Wrachien D. editor, Brebbia C. A. editor, and Mambretti S. editor. WIT Press, 2012.

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8

Beever, Erik. Integrated monitoring of hydrogeomorphic, vegetative, and edaphic conditions in riparian ecosystems of Great Basin National Park, Nevada. U.S. Geological Survey, 2004.

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9

Beever, Erik. Integrated monitoring of hydrogeomorphic, vegetative, and edaphic conditions in riparian ecosystems of Great Basin National Park, Nevada. U.S. Geological Survey, 2004.

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10

Wiejaczka, Łukasz. Wpływ zbiornika wodnego "Klimkówka" na abiotyczne elementy środowiska przyrodniczego w dolinie Ropy: Influence of the Klimkówka water reservoir on the abiotic elements of the natural environment in the Ropa River valley. PAN IGiPZ, 2011.

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11

Beever, Erik. Integrated monitoring of hydrogeomorphic, vegetative, and edaphic conditions in riparian ecosystems of Great Basin National Park, Nevada. U.S. Geological Survey, 2004.

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12

Bhattacharyya, Kumkum. The Lower Damodar River, India: Understanding the Human Role in Changing Fluvial Environment. Springer Science+Business Media B.V., 2011.

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13

Bolzano, Italy) Convegno italiano sulla riqualificazione fluviale (2nd 2012. Riqualificazione fluviale e gestione del territorio: 2o Convegno italiano sulla riqualificazione fluviale, Bolzano, 6-7 novembre 2012. BU Press, 2012.

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14

Collins, Brian. Fluvial geomorphology and river-gravel mining: A guide for planners, case studies included. California Dept. of Conservation, Division of Mines and Geology, 1990.

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15

G, Roberts R. Stream channel morphology: Major fluvial disturbances in logged watersheds on the Queen Charlotte Islands. BC Ministry of Forests and Lands, 1988.

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16

International Conference on Fluvial Hydraulics (2006 Lisbon, Portugal). River flow 2006: Proceedings of the International Conference on Fluvial Hydraulics, Lisbon, Portugal, 6-8 September 2006. Edited by Ferreira Rui M. L. Taylor & Francis, 2006.

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17

Schokker, Jeroen. Patterns and processes in a Pleistocene fluvio-aeolian environment: Roer Valley Graben, south-eastern Netherlands. Koninklijk Nederlands Aardrijkskundig Genootschap/Universiteit Utrecht, 2003.

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18

Montana. Dept. of Fish, Wildlife, and Parks. Draft programmatic environmental assessment for candidate conservation agreement with assurances and associated permit for fluvial Arctic grayling in the upper Big Hole River, Montana. Montana Fish, Wildlife and Parks, 2005.

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19

Maria da Graça Amaral Neto Saraiva. O rio como paisagem: Gestão de corredores fluviais no quadro do ordenamento do território. Fundação Calouste Gulbenkian, 1999.

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20

Adela M. Aura y Larios de Medrano and Sebastián F. Utrera Caro. Agua, trasvases y medio ambiente: Las cuencas fluviales y el nuevo Plan Hidrológico Nacional. Dykinson, S.L., 2013.

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21

Ludwig, Wolfgang. Continental erosion and river transport of organic carbon to the world's oceans =: Érosion des continents et transports fluviaux de matière organique vers les océans. Institut de Géologie, Université Louis Pasteur de Strasbourg, 1997.

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22

Managing Fluvial and Coastal Environments. Colourpoint Books, 2002.

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23

Rowiński, Paweł, and Artur Radecki-Pawlik. Rivers – Physical, Fluvial and Environmental Processes. Springer, 2015.

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24

Mossa, Michele, Youichi Yasuda, and Hubert Chanson, eds. Fluvial, Environmental and Coastal Developments in Hydraulic Engineering. CRC Press, 2004. http://dx.doi.org/10.1201/9780203023396.

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25

Fluvial Geomorphology and Riparian Vegetation: Environmental Importance, Functions and Effects on Climate Change. Nova Science Publishers, Incorporated, 2015.

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26

Graf, William. Fluvial Processes in Dryland Rivers (Springer Series in Physical Environment). Springer, 1988.

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27

(Editor), D. De Wrachien, M. A. Lenzi (Editor), and C. a. Brebbia (Editor), eds. Monitoring, Simulation, Prevention and Remediation of Dense and Debris Flows (Wit Transactions on Engineering Sciences). Wit Pr/Computational Mechanics, 2008.

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28

(Editor), G. Lorenzini, C. A. Brebbia (Editor), and D. Emmanouloudis (Editor), eds. Monitoring, Simulation, Prevention And Remediation of Dense And Debris Flows. WIT Press (UK), 2006.

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29

Bhattacharyya, Kumkum. The Lower Damodar River, India: Understanding the Human Role in Changing Fluvial Environment. Springer, 2014.

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30

E, Church S., and Geological Survey (U.S.), eds. Analytical results for 42 fluvial tailings cores and 7 stream sediment samples from High Ore Creek, northern Jefferson County, Montana. U.S. Dept. of the Interior, U.S. Geological Survey, 1998.

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31

Management and restoration of fluvial systems with broad historical changes and human impacts. Geological Society of America, 2009.

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32

Eric, Zahl, Balderrama Robert, and Spokane Research Center (United States. Dept. of Energy), eds. Treatment of fluvially deposited streamside mine waste: Material from Canyon Creek, Idaho. U.S. Dept. of Energy, Spokane Research Center, 1996.

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33

Allan, James L., Rathburn Sara L. 1962-, and Whittecar George Richard 1952-, eds. Managing rivers with broad historical changes and human impacts. Geological Society of America, 2009.

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34

Katherine, Walton-Day, United States. Environmental Protection Agency., United States. Bureau of Reclamation., and Geological Survey (U.S.), eds. Effects of fluvial tailings deposits on soils and surface- and ground-water quality, and implications for remediation--upper Arkansas River, Colorado, 1992-96. U.S. Dept. of the Interior, U.S. Geological Survey, 2000.

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35

L, Fey David, Church S. E, and Geological Survey (U.S.), eds. Chemical data and lead isotopic compositions of geochemical baseline samples from streambed sediments and smelter slag, lead isotopic compositions in fluvial tailings, and dendrochronology results from the Boulder River watershed, Jefferson County, Montana. U.S. Dept. of the Interior, U.S. Geological Survey, 2000.

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36

Rui M.L. Ferreira (Editor), Elsa C.T.L. Alves (Editor), Joao G.A.B. Leal (Editor), and Antonio H. Cardosa (Editor), eds. River Flow 2006: Proceedings of the International Conference on Fluvial Hydraulics, 6-8 Sept 2006, Lisabon, Portugal 2 Volume Set + CD ROM. Taylor & Francis, 2006.

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37

Mossa, Michele, Youichi Yasuda, and Hubert Chanson. Fluvial, Environmental and Coastal Developments in Hydraulic Engineering: Proceedings of the International Workshop on State-Of-the-Art Hydraulic Engineering, Bari, Italy, 16-19 February 2004. Taylor & Francis Group, 2004.

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38

Fluvial, Environmental and Coastal Developments in Hydraulic Engineering Proceedings of the International Workshop on State-of-the-Art Hydraulic Engineering, 16-19 February 2004, Bari, Italy. Taylor & Francis, 2004.

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39

Mossa, Michele, Youichi Yasuda, and Hubert Chanson. Fluvial, Environmental and Coastal Developments in Hydraulic Engineering: Proceedings of the International Workshop on State-Of-the-Art Hydraulic Engineering, Bari, Italy, 16-19 February 2004. Taylor & Francis Group, 2004.

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40

Kelly, Phil. Defending Classical Geopolitics. Oxford University Press, 2017. http://dx.doi.org/10.1093/acrefore/9780190228637.013.279.

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Three successive parts are presented within this article, all intended to raise the visibility and show the utility of classical geopolitics as a deserving and separate international-relations model: (a) a common traditional definition, (b) relevant theories that correspond to that definition, and (c) applications of certain theories that will delve at some depth into three case studies (the Ukrainian shatterbelt, contemporary Turkish geopolitics, and a North American heartland).The placement of states, regions, and resources, as affecting international relations and foreign policies, defines classical geopolitics. This definition emphasizes the application of spatially composed unbiased theories that should bring insight into foreign-affairs events and policies. Specifically, a “model” contains theories that correspond to its description. A “theory” is a simple sentence of probability, with “A” happening to likely affect “B.” Importantly, models are passive; they merely hold theories. In contrast, theories possess their own titles and perform actively when taken from such models.Various methodological challenges are presented: (a) combining concepts with theories, (b) estimating probability for testing theories, (c) claiming the “scientific,” (d) accounting for determinism, (e) revealing a dynamic environment for geopolitics, (f) separating realism from geopolitics, and (g) drawing classical geopolitics away from the critical. Certain theories that are placed within the geopolitical model are examined next: (a) heartlands and rimlands, (b) land and sea power, (c) choke points and maritime lines of communication, (d) offshore balancing, (e) the Monroe doctrine, (f) balances of power, (g) checkerboards, (h) shatterbelts, (i) pan-regions, (j) influence spheres, (k) dependency, (l) buffer states, (m) organic borders, (n) imperial thesis, (o) borders/wars, (p) contagion, (q) irredentism, (r) demography, (s) fluvial laws, (t) petro-politics, and (u) catastrophic events in nature. Additional theories apply elsewhere in the article as well.Of the three case studies, the Ukrainian shatterbelt represents the sole contemporary geopolitical configuration of this type, a regional conflict coupling with a strategic rivalry. Here, partisans of the civil war between the eastern and the western sectors of the country have joined with the Russians against the Europeans and Americans, respectively. Next, Turkey’s pivotal location has afforded it both advantages and disadvantages, a topic discussed at some length earlier in the article. Its “zero-problems” strategy of seeking positive relations with neighbors has now been forced to change tactics, reflective of new forces within and beyond the country. Finally, a North American heartland compares nicely to Halford Mackinder’s earlier Eurasia heartland thesis, with the American perhaps proving more stable, wealthy, and enduring, based in large part on its stronger geopolitical features.
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