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19 - The Himalayas as an Ecological Barrier for Avian Migrants: High and Dry, but also Dangerous?

from Part III - High-Altitude Migration Strategies

Published online by Cambridge University Press:  20 April 2017

Herbert H. T. Prins
Affiliation:
Wageningen Universiteit, The Netherlands
Tsewang Namgail
Affiliation:
Snow Leopard Conservancy India Trust
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Bird Migration across the Himalayas
Wetland Functioning amidst Mountains and Glaciers
, pp. 283 - 298
Publisher: Cambridge University Press
Print publication year: 2017

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References

Alerstam, T. (2001). Detours in bird migration. Journal of Theoretical Biology, 209, 319331.Google Scholar
Alerstam, T. & Hedenström, A. (1998). The development of bird migration theory. Journal of Avian Biology, 29, 343369.CrossRefGoogle Scholar
Alerstam, T., Hedenström, A. & Akesson, S. (2003). Long-distance migration: evolution and determinants. Oikos, 103, 247260.Google Scholar
Alerstam, T. & Lindström, Å. (1990). Optimal bird migration: the relative importance of time, energy and safety. In Gwinner, E., ed., Bird Migration: Physiology and Ecophysiology, Berlin: Springer-Verlag, pp. 331351.CrossRefGoogle Scholar
Beauchamp, G. (2014). Social Predation: How Group Living Benefits Predators and Prey. New York: Academic Press.Google Scholar
Bednarz, J.C. & Kerlinger, P. (1989). Monitoring hawk populations by counting migrants. National Wildlife Federation Scientific and Technical Series Supplement No. 13, 328342.Google Scholar
Bishop, C.M., Spivey, R.J., Hawkes, L.A., et al. (2015). The roller coaster flight strategy of Bar-headed Geese conserves energy during Himalayan migrations. Science, 347, 250254.CrossRefGoogle ScholarPubMed
Brown, J.S. & Kotler, B.P. (2007). Foraging and the ecology of fear. In Stephens, D.W., Brown, J.S. & Ydenberg, R.C., eds., Foraging: Behaviour and Ecology. Chicago: University of Chicago Press, pp. 437482.Google Scholar
Burns, J.G. & Ydenberg, R.C. (2002). The effects of wing loading and gender on the escape flights of Least Sandpipers (Calidris minutilla) and Western Sandpipers (Calidris mauri). Behavioural Ecology Sociobiology, 52, 128136.CrossRefGoogle Scholar
Cimprich, D.A., Woodrey, M.S. & Moore, F.R. (2005). Passerine migrants respond to variation in predation risk during stopover. Animal Behaviour, 69, 11731179.Google Scholar
Clark, C.W. & Butler, R.W. (1999). Fitness components of avian migration: a dynamic model of Western Sandpiper migration. Evolutionary Ecology Research, 1, 443457.Google Scholar
Cooper, W.E. & Blumstein, D.T., eds. (2015). Escaping from Predators: An Integrative View of Escape Decisions. Cambridge: Cambridge University Press.CrossRefGoogle Scholar
Cresswell, W. (1994). Age-dependent choice of redshank (Tringa tetanus) feeding location – profitability or risk? Journal of Animal Ecology, 63, 589600.Google Scholar
Cresswell, W. (1996). Surprise as a winter hunting strategy in Sparrowhawks Accipiter nisus, peregrines Falco peregrinus and Merlins F. columbarius. Ibis, 138, 684692.CrossRefGoogle Scholar
Dekker, D. & Ydenberg, R.C. (2004). Raptor predation on wintering Dunlins in relation to the tidal cycle. Condor, 106, 415419.Google Scholar
Díaz, M., Møller, A.P., Flensted-Jensen, E., et al. (2013). The geography of fear: a latitudinal gradient in anti-predator escape distances of birds across Europe. PLoS One, 8(5), e64634.Google Scholar
Drake, A.E.G., Rock, C.A., Quinlan, S.P., Martin, M. & Green, D.J. (2014). Wind speed during migration influences the survival, timing of breeding, and productivity of a Neotropical migrant, Setophaga petechia. PLoS One, 9, e97152.Google Scholar
Drent, R., Both, C., Green, M., Madsen, J. & Piersma, T. (2003). Pay-offs and penalties of competing migratory schedules. Oikos, 103, 274292.Google Scholar
Eichhorn, G., Drent, R.H., Stahl, J., Leito, A. & Alerstam, T. (2009). Skipping the Baltic: the emergence of a dichotomy of alternative spring migration strategies in Russian Barnacle Geese. Journal of Animal Ecology, 78, 6372.Google Scholar
Ellis, D.H., Bednarz, J.C., Smith, D.G. & Flemming, S.P. (1993). Social foraging classes in raptorial birds. BioScience, 43, 1420.Google Scholar
Frederick, W.G. & Cooper, W.E. (2007). Optimal flight initiation distance. Journal of Theoretical Biology, 224, 5967.Google Scholar
Hedenström, A. & Alerstam, T. (1997). Optimum fuel loads in migratory birds: distinguishing between time and energy minimization. Journal of Theoretical Biology, 189, 227234.Google Scholar
Hedenström, A. & Rosén, M. (2001). Predator versus prey: on aerial hunting and escape strategies in birds. Behavioural Ecology, 12, 150156.CrossRefGoogle Scholar
Heintzelman, D.S. (1975). Autumn Hawk Flights: The Migrations in Eastern North America. New Brunswick, NJ: Rutgers University Press.Google Scholar
Hope, D.D., Lank, D.B., Smith, B.D. & Ydenberg, R.C. (2011). Migration of two calidrid sandpiper species on the predator landscape: how stopover time and hence migration speed vary with proximity to danger. Journal of Avian Biology, 42, 523530.Google Scholar
Hope, D.D., Lank, D.B. & Ydenberg, R.C. (2014). Mortality-minimizing sandpipers vary stopover behaviour dependent on age and geographic proximity to migrating predators. Behavioural Ecology Sociobiology, 68, 827838.CrossRefGoogle Scholar
Houston, A.I. (1998). Models of optimal avian migration: state, time and predation. Journal of Avian Biology, 29, 395404.CrossRefGoogle Scholar
Hunt, W.G., Rogers, R.R. & Slowe, D.J. (1975). Migratory and foraging behaviour of Peregrine Falcons on the Texas coast. Canadian Field-Naturalist, 89, 111123.Google Scholar
Ibanez, C., Juste, J., Garcia-Mudarra, J.L. & Agirre-Mendi, P.T. (2001). Bat predation on nocturnally migrating birds. Proceedings of the National Academy of Science (US), 98, 97009702.Google Scholar
Inzunza, E.R. (2005). The raptor population index (RPI) project in its second year. Hawk Migration Studies, 32, 46.Google Scholar
Jamieson, S.E., Ydenberg, R.C. & Lank, D.B. (2014). Does predation danger on southward migration curtail parental investment by female Western Sandpipers? Animal Migration, 2, 3443.Google Scholar
Jonker, R.M., Eichhorn, G., Van Langevelde, F. & Bauer, S. (2010). Predation danger can explain changes in timing of migration: the case of the Barnacle Goose. PLoS One, e11369.CrossRefGoogle Scholar
Kang, C.-K., Moon, J.-Y., Lee, S.-I. & Jablonski, P.G. (2012). Camouflage through an active choice of a resting spot and body orientation in moths. Journal of Evolutionary Biology 25, 16951702.CrossRefGoogle ScholarPubMed
Kerlinger, P. (1989). Flight Strategies of Migrating Hawks. Chicago: University of Chicago Press.Google Scholar
Kotler, B.P. & Brown, J.S. (2007). Community ecology. In Stephens, D.W., Brown, J.S. & Ydenberg, R.C., eds., Foraging: Behaviour and Ecology. Chicago: University of Chicago Press, pp. 397436.Google Scholar
Kullberg, C. (1998). Does diurnal variation in body mass affect take-off ability in wintering willow tits? Animal Behaviour, 56, 227233.CrossRefGoogle ScholarPubMed
Kullberg, C., Fransson, T. & Jacobsson, S. (1996). Impaired predator evasion in fat blackcaps (Sylvia atricapilla). Proceedings of the Royal Society, London, Series B, 265, 16591664.CrossRefGoogle Scholar
Kurvers, R.H.J.M., Straates, K., Ydenberg, R.C., Van Wieren, S.E., Swierstra, P. & Prins, H.H.T. (2014). Social information use by Barnacle Geese Branta leucopsis, an experiment revisited. Ardea, 102, 173180.Google Scholar
Lank, D.B., Butler, R.W., Ireland, J. & Ydenberg, R.C. (2003). Effects of predation danger on migratory strategies of sandpipers. Oikos, 103, 303319.Google Scholar
Lank, D.B. & Ydenberg, R.C. (2003). Death and danger at migratory stopovers: problems with ‘predation risk’. Journal of Avian Biology, 34, 225228.Google Scholar
Lehikoinen, A. (2011). Advanced autumn migration of Sparrowhawk has increased the predation risk of long-distance migrants in Finland. PLoS ONE, 6(5), e20001.Google Scholar
Lima, S.L. (1986). Predation risk and unpredictable feeding conditions: determinants of body mass in birds. Ecology, 67, 377385.CrossRefGoogle Scholar
Lima, S.L. (1998). Stress and decision making under the risk of predation: recent developments from behavioural, reproductive, and ecological perspectives. Advances in the Study of Behaviour, 27, 215290.Google Scholar
Lima, S.L. & Bednekoff, P.A. (1999). Temporal variation in danger drives antipredator behaviour: the predation risk allocation hypothesis. American Naturalist, 153, 649659.Google Scholar
Lima, S.L. & Dill, L.M. (1990). Behavioural decisions made under the risk of predation: a review and prospectus. Canadian Journal of Zoology, 68, 619640.Google Scholar
Lind, J., Fransson, T., Jacobsson, S. & Kullberg, C. (1999). Reduced take-off ability in robins due to migratory fuel load. Behavioural Ecology and Sociobiology, 46, 6570.Google Scholar
Lindström, A. (1989). Finch flock size and risk of hawk predation at a migratory stopover site. Auk, 106, 225232.Google Scholar
Lindström, A. (1990). The role of predation risk in stopover habitat selection in migrating bramblings, Fringilla montifringilla. Behavioural Ecology, 1, 102106.CrossRefGoogle Scholar
Lok, E.K., Esler, D., Takekawa, J.Y., et al. (2012). Spatiotemporal associations between Pacific herring spawn and surf scoter spring migration: evaluating a ‘silver wave’ hypothesis. Marine Ecology Progress Series, 457, 139150.CrossRefGoogle Scholar
Maillet, D. & Weber, J.M. (2006). Performance-enhancing role of dietary fatty acids in a long-distance migrant shorebird: the semipalmated sandpiper. Journal of Experimental Biology, 209, 26862695.CrossRefGoogle Scholar
Metcalfe, N.B. & Ure, S.E. (1995). Diurnal variation in flight performance and hence potential predation risk in small birds. Proceedings of the Royal Society, London, Series B, 261, 395400.Google Scholar
Møller, A.P., Grim, T., Ibáñez-Álamo, J.D., Markó, G. & Tryjanowski, P. (2013). Change in flight initiation distance between urban and rural habitats following a cold winter. Behavioural Ecology, 24, 12111217.CrossRefGoogle Scholar
Møller, A.P. & Ibáñez-Álamo, J.D. (2012). Escape behaviour of birds provides evidence of predation being involved in urbanization. Animal Behaviour, 84, 341348.Google Scholar
Moore, F.R., Kerlinger, P. & Simons, T.R. (1990). Stopover on a gulf-coast barrier island by spring trans-gulf migrants. Wilson Bulletin, 102, 487500.Google Scholar
Newton, I. (2008). The Ecology of Bird Migration. London: Academic Press.Google Scholar
Pennycuick, C.J. (1989). Bird Flight Performance: A Practical Calculation Manual. Oxford: Oxford University Press.Google Scholar
Piersma, T. (1998). Phenotypic flexibility during migration: optimization of organ size contingent on the risks and rewards of fueling and flight? Journal of Avian Biology, 29, 511520.Google Scholar
Piersma, T. & Jr. Gill, R.E. (1998). Guts don’t fly: small digestive organs in obese Bar-Tailed Godwits. Auk, 115, 196203.CrossRefGoogle Scholar
Pomeroy, A.C. (2006). Trade-offs between food abundance and predation danger in spatial usage of a stopover site by Western Sandpipers, Calidris mauri. Oikos, 112, 629637.Google Scholar
Pomeroy, A.C., Butler, R.W. & Ydenberg, R.C. (2006). Experimental evidence that migrants adjust usage at a stopover site to trade off food and danger. Behavioural Ecology, 17, 10411045.CrossRefGoogle Scholar
Preisser, E.L., Bolnick, D.I. & Benard, M.F. (2005). Scared to death? The effects of intimidation and consumption in predator-prey interactions. Ecology, 86, 501509.CrossRefGoogle Scholar
Prins, H.H.T. & Iason, G. (1989). Dangerous lions and nonchalant buffalo. Behaviour, 108, 262296.CrossRefGoogle Scholar
Schmaljohann, H. & Dierschke, V. (2005). Optimal bird migration and predation risk: a field experiment with Northern Wheatears Oenanthe oenanthe. Journal of Animal Ecology, 74, 131138.Google Scholar
Si, Y., Xin, Q., de Boer, W.F., Gong, P., Ydenberg, R.C. & Prins, H.H.T. (2015). Do arctic breeding geese track or overtake a green wave during spring migration? Scientific Reports, 5, 8749.Google Scholar
Sillet, T.S. & Holmes, R.T. (2002). Variation in survivorship of a migratory songbird throughout its annual cycle. Journal of Animal Ecology, 71, 296308.CrossRefGoogle Scholar
Sutherland, W.J. (1998). Evidence for flexibility and constraint in migration systems. Journal of Avian Biology, 29, 441446.Google Scholar
Takekawa, J.Y., Heath, S.R., Douglas, D.C., et al. (2009). Geographic variation in Bar-headed Geese Anser indicus: connectivity of wintering area and breeding grounds across a broad front. Wildfowl, 59, 100123.Google Scholar
Therrien, J.-F., Gauthier, G., Korpimaki, E. & Béty, J. (2014). Predation pressure by avian predators suggests summer limitation of small-mammal populations in the Canadian arctic. Ecology, 95, 5667.Google Scholar
Tourenq, C., Combreau, O., Pole, S.B., et al. (2004). Monitoring of Asian Houbara Bustard Chlamydotis macqueenii populations in Kazakhstan reveals dramatic decline. Oryx, 38, 6267.Google Scholar
Van der Veen, I.T. (1999). Trade-off between Starvation and Predation: Weight-Watching in Yellowhammers. PhD thesis, Uppsala, Sweden: Uppsala University.Google Scholar
Van der Veen, I.T. & Lindström, K.M. (2000). Escape flights of yellowhammers and greenfinches: more than just physics. Animal Behaviour, 59, 593601.Google Scholar
Veasey, J.S., Metcalfe, N.B. & Houston, D.C. (1998). A reassessment of the effect of body mass upon flight speed and predation risk in birds. Animal Behaviour, 56, 883889.CrossRefGoogle ScholarPubMed
Walter, H. (1979). Eleonora’s Falcon: Adaptations to Prey and Habitat in a Social Raptor. Chicago: University of Chicago Press.Google Scholar
Wiedner, D.S., Kerlinger, P., Sibley, S.A., et al. (1992). Visible morning flight of neotropical landbird migrants at Cape May, New Jersey. Auk, 109, 500510.Google Scholar
Williams, T.D., Guglielmo, C.G., Egler, O. & Martyniuk, C.J. (1999). Plasma lipid metabolites provide information on mass change over several days in captive Western Sandpipers. Auk, 116, 9941000.CrossRefGoogle Scholar
Witter, M.S., Cuthill, I.C. & Bonser, R.H.C. (1994). Experimental investigations of mass-dependent predation risk in the European starling, Sturnus vulgaris. Animal Behaviour, 48, 201222.Google Scholar
Worcester, R. & Ydenberg, R. (2008). Cross-continental patterns in the timing of southward Peregrine Falcon migration in North America. Journal of Raptor Research, 42, 1319.CrossRefGoogle Scholar
Xu, C., Barrett, J., Lank, D.B. & Ydenberg, R.C. (2015). Large and irregular population fluctuations in migratory Pacific (Calidris alpina pacifica) and Atlantic (C. a. hudsonica) Dunlins are driven by density-dependence and climatic factors. Population Ecology, 57, 551567.Google Scholar
Ydenberg, R.C., Butler, R.W. & Lank, D.B. (2007). Effects of predator landscapes on the evolutionary ecology of routing, timing and molt by long-distance migrants. Journal of Avian Biology, 38, 523529.Google Scholar
Ydenberg, R.C., Butler, R.W., Lank, D.B., Guglielmo, C.G., Lemon, M. & Wolf, N. (2002). Trade-offs, condition dependence, and stopover site selection by migrating sandpipers. Journal of Avian Biology, 33, 4755.CrossRefGoogle Scholar
Ydenberg, R.C., Butler, R.W., Lank, D.B., Smith, B.D. & Ireland, J. (2004). Western Sandpipers have altered migration tactics as peregrine falcon populations have recovered. Proceedings of the Royal Society of London B, 271, 12631269.Google Scholar
Ydenberg, R.C. & Dill, L.M. (1986). The economics of fleeing from predators. Advances in the Study of Behaviour, 16, 229249.CrossRefGoogle Scholar
Zimmerman, J.L. (1990). Cheyenne Bottoms: Wetland in Jeopardy. Lawrence: University Press of Kansas.Google Scholar

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