Congo Basin Hydrology, Climate, and Biogeochemistry. Группа авторов

Читать онлайн.
Название Congo Basin Hydrology, Climate, and Biogeochemistry
Автор произведения Группа авторов
Жанр География
Серия
Издательство География
Год выпуска 0
isbn 9781119656999



Скачать книгу

doi: 10.1016/j.scitotenv.2018.06.277

      30 Freitas, A. (2013). Water as a stress factor in sub‐Saharan Africa. European Union Institute for Security Studies, pages 1–4. Retrieved from http://www.iss.europa.eu/uploads/media/Brief_12.pdf. 12 July 2017.

      31 Gal, L., Grippa, M., Hiernaux, P., Pons, L., & Kergoat, L. (2017). The paradoxical evolution of runoff in the pastoral Sahel: analysis of the hydrological changes over the Agoufou watershed (Mali) using the KINEROS‐2 model. Hydrology and Earth System Sciences, 21(9), 4591–4613. doi: 10.5194/hess‐21‐4591‐2017

      32 Getirana, A., Jung, H. C., Hoek, J. V. D., & Ndehedehe, C. E. (2020). Hydropower dam operation strongly controls Lake Victoria’s freshwater storage variability. Science of The Total Environment, 726, 138343. https://doi.org/10.1016/j.scitotenv.2020.138343

      33 Getirana, A., Kumar, S., Girotto, M., & Rodell, M. (2017a). Rivers and floodplains as key components of global terrestrial water storage variability. Geophysical Research Letters, 44(20), 10,359–10,368. doi: 10.1002/2017GL074684

      34 Getirana, A., Peters‐Lidard, C., Rodell, M., & Bates, P. D. (2017b). Trade‐off between cost and accuracy in large‐scale surface water dynamic modeling. Water Resources Research, 53(6), 4942–4955. https://doi.org/10.1002/2017WR020519

      35 Getirana, A. C. V., Boone, A., Yamazaki, D., Decharme, B., Papa, F., & Mognard, N. (2012). The hydrological modeling and analysis platform (HyMAP): Evaluation in the Amazon basin. Journal of Hydrometeorology, 13(6), 1641–1665. doi: 10.1175/JHM‐D‐12‐021.1

      36 Gidley, S. L. (2009). Using high resolution satellite imagery to map aquatic macrophytes on multiple lakes in northern Indiana. Unpublished Msc thesis, Indiana University. Retrieved from https://core.ac.uk/download/pdf/46956355.pdf. 15 April 2019.

      37 Haley, M. R. (2017). K‐fold cross validation performance comparisons of six naive portfolio selection rules: how naive can you be and still have successful out‐of‐sample portfolio performance? Annals of Finance, 13(3), 341–353. doi: 10.1007/s10436‐017‐0301‐4

      38 Hall, J. W., Grey, D., Garrick, D., Fung, F., Brown, C., Dadson, S. J., & Sadoff, C. W. (2014). Coping with the curse of freshwater variability. Science, 346(6208), 429–430. doi: 10.1126/science.1257890

      39 Hua, W., Zhou, L., Chen, H., Nicholson, S. E., Raghavendra, A., & Jiang, Y. (2016). Possible causes of the Central Equatorial African long‐term drought. Environmental Research Letters, 11(12), 124002. doi: 10.1088/1748‐9326/11/12/124002

      40 Huffman, G. J., Adler, R. F., Bolvin, D. T., Gu, G., Nelkin, E. J., Bowman, K. P., et al. (2007). The TRMM Multisatellite Precipitation Analysis (TMPA): Quasi‐global, multiyear, combined‐sensor precipitation estimates at fine scales. Journal of Hydrometeorology, 8, 38–55. doi: 10.1175/JHM560.1

      41 Ivits, E., Horion, S., Fensholt, R., & Cherlet, M. (2014). Drought footprint on European ecosystems between 1999 and 2010 assessed by remotely sensed vegetation phenology and productivity. Global Change Biology, 20(2), 581–593. doi: 10.1111/gcb.12393

      42 Jolliffe, I. T. (2002). Principal Component Analysis (second edition). Springer Series in Statistics. Springer, New York.

      43 Jung, M., Reichstein, M., Ciais, P., Seneviratne, S. I., Sheffield, J., Goulden, M. L., et al. (2010). Recent decline in the global land evapotranspiration trend due to limited moisture supply. Nature, 467(7318), 951–954. https://doi.org/10.1038/nature09396

      44 Keddy, P. A., Fraser, L. H., Solomeshch, A. I., Junk, W. J., Campbell, D. R., Arroyo, M. T. K., & Alho, C. J. R. (2009). Wet and wonderful: The world’s largest wetlands are conservation priorities. BioScience, 59(1), 39–51. doi: 10.1525/bio.2009.59.1.8

      45 Kennard, M. J., Pusey, B. J., Olden, J. D., Mackay, S. J., Stein, J. L., & Marsh, N. (2010). Classification of natural flow regimes in Australia to support environmental flow management. Freshwater Biology, 55(1), 171–193. doi: 10.1111/j.1365‐2427.2009.02307.x

      46 Kiem, A. S., Johnson, F., Westra, S., van Dijk, A., Evans, J. P., O’Donnell, A., et al. (2016). Natural hazards in Australia: droughts. Climatic Change, 139(1), 37–54. doi: 10.1007/s10584‐016‐1798‐7

      47 Koster, R. D., Dirmeyer, P. A., Guo, Z., Bonan, G., Chan, E., Cox, P., et al. (2004). Regions of strong coupling between soil moisture and precipitation. Science, 305(5687), 1138–1140. doi: 10.1126/science.1100217

      48 Kubiak‐Wójcicka, K., & Bąk, B. (2018). Monitoring of meteorological and hydrological droughts in the Vistula basin (Poland). Environmental Monitoring and Assessment, 190(11), 691. doi: 10.1007/s10661‐018‐7058‐8

      49 Kummerow, C., Simpson, J., Thiele, O., Barnes, W., Chang, A. T. C., Stocker, E., et al. (2000). The status of the Tropical Rainfall Measuring Mission (TRMM) after two years in orbit. Journal of Applied Meteorology, 39(12), 1965–1982. doi: 10.1175/1520‐0450(2001)040<1965:TSOTTR>2.0.CO;2

      50 Lee, H., Beighley, R. E., Alsdorf, D., Jung, H. C., Shum, C., Duan, J., et al. (2011). Characterization of terrestrial water dynamics in the Congo Basin using GRACE and satellite radar altimetry. Remote Sensing of Environment, 115(12), 3530 – 3538. doi: 10.1016/j.rse.2011.08.015

      51 Lee, H., Jung, H. C., Yuan, T., Beighley, R. E., & Duan, J. (2014). Controls of terrestrial water storage changes over the Central Congo Basin determined by integrating Palsar ScanSar, Envisat Altimetry, and Grace data. Remote Sensing of the Terrestrial Water Cycle, Geophysical Monograph, 206, 117–129. doi: 10.1002/9781118872086.ch7/pdf

      52 Li, K., Coe, M., Ramankutty, N., & Jong, R. D. (2007). Modeling the hydrological impact of land‐use change in West Africa. Journal of Hydrology, 337(3–4), 258–268. doi: 10.1016/j.jhydrol.2007.01.038

      53 Loon, A. V. (2013). On the propagation of drought. how climate and catchment characteristics influence hydrological drought development and recovery. PhD thesis, Wageningen University, Wageningen, NL, page 198 p. Retrieved from http://library.wur.nl/WebQuery/wurpubs/438510. 1 February 2018.

      54 Luthcke, S. B., Sabaka, T., Loomis, B., Arendt, A., McCarthy, J., & Camp, J. (2013). Antarctica, Greenland and Gulf of Alaska land‐ice evolution from an iterated GRACE global mascon solution. Journal of Glaciology, 59(216), 613–631. doi: 10.3189/2013JoG12J147

      55 Mahé, G., & Olivry, J.‐C. (1999). Assessment of freshwater yields to the ocean along the intertropical atlantic coast of Africa (1951–1989). Comptes Rendus de l’Académie des Sciences ‐ Series IIA ‐ Earth and Planetary Science, 328(9), 621–626. doi: 10.1016/S1251‐8050(99)80159‐1

      56 Mahé, G., & Paturel, J.‐E. (2009). 1896–2006 Sahelian annual rainfall variability and runoff increase of Sahelian Rivers. Comptes Rendus Geoscience, 341(7), 538–546. doi: 10.1016/j.crte.2009.05.002

      57 Malhi, Y., Adu‐Bredu, S., Asare, R. A., Lewis, S. L., & Mayaux, P. (2013). African rainforests: past, present and future. Philosophical Transactions of the Royal Society B: Biological Sciences, 368(1625), 20120312. doi: 10.1098/rstb.2012.0312

      58 Masih, I., Maskey, S., Mussá, F. E. F., & Trambauer, P. (2014). A review of droughts on the African continent: a geospatial and long‐term perspective. Hydrology and Earth System Sciences, 18(9), 3635–3649. doi: 10.5194/hess‐18‐3635‐2014

      59 Materia, S., Gualdi, S., Navarra, A., & Terray, L. (2012). The effect of Congo River freshwater discharge on Eastern Equatorial Atlantic climate variability. Climate Dynamics, 39(9), 2109–2125. doi: 10.1007/s00382‐012‐1514‐x.

      60 McKee, T. B., Doeskin, N. J., & Kieist, J. (1993). The relationship of drought frequency and duration to time scales. Conference on Applied Climatology, American Meteorological Society, Boston, Massachusetts, pp. 179–184.