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Czasopismo

2007 | 52 | 2 |

Tytuł artykułu

Factors affecting daily ranges of red deer Cervus elaphus in Bialowieza Primeval Forest, Poland

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
Daily ranges of 19 (6 males, 13 females) adult red deerCervus elaphus Linnaeus, 1758 were studied using 24-h tracking sessions in Białowieża Primeval Forest (BPF), Poland, from 2001 to 2004. Overall, size of mean (± SE) daily ranges was larger for males (1.22 ± 0.10 km2) than females (1.00 ± 0.09 km2), although the difference was not significant. Similarly, mean daily ranges were 6–46% larger for males than females in each season, although there were no statistical differences in mean daily ranges among seasons for each sex. Abiotic factors, especially temperature, significantly affected daily ranges of females, but not males, suggesting sexual differences in response to weather variables. On a daily basis, males used 3% of their annual home range, whereas females used 12% of their annual home range, indicating females used their annual home ranges more intensely than males. Consecutive daily ranges overlapped little for each sex. Daily ranges of red deer in BPF were considerably larger than previously reported in Europe, suggesting factors unique to BPF also influenced size of daily ranges.

Wydawca

-

Czasopismo

Rocznik

Tom

52

Numer

2

Opis fizyczny

p.113-118,fig.,ref.

Twórcy

autor
  • Polish Academy of Sciences, Mammal Research Institute, 17-230 Bialowieza, Poland

Bibliografia

  • Albon S. D., Staines H. J., Guinness F. E. and Clutton--Brock T. H. 1992. Density-dependent changes in the spacing behaviour of female kin in red deer. Journal of Animal Ecology 61: 131–137.
  • Appleby M. C. 1983. Competition in a red deer stag social group: rank, age and relatedness of opponents. Animal Behaviour 31: 913–918.
  • Carranza J., Alvarez F. and Redondo T. 1990. Territoriality as a mating strategy in red deer. Animal Behaviour 40: 79–88.
  • Carranza J., Hidalgo de Trucios S. J., Medina R., Valencia J. and Delgado J. 1991. Space use by red deer in a Mediterranean ecosystem as determined by radio-tracking. Applied Animal Behaviour Science 30: 363–371.
  • Catt D. C. and Staines B. W. 1987. Home range use and habitat selection of red deer (Cervus elaphus) in a Sitka--spruce plantation as determined by radio-tracking. Journal of Zoology, London 211: 681–693.
  • Childress M. J. and Lung M. A. 2003. Predation risk, gender and the group size effect: does elk vigilance depend upon the behaviour of conspecifics? Animal Behaviour 66: 389–398.
  • Clutton-Brock T. H., Guinness F. E. and Albon S. D. 1982. Red deer: behavior and ecology of two sexes. University of Chicago Press, Chicago: 1–378.
  • Clutton-Brock T. H., Iason G. R. and Guinness F. E. 1987. Sexual segregation and density-related changes in habitat use in male and female red deer (Cervus elaphus). Journal of Zoology, London 211: 275–289.
  • Conradt L. 1998. Could asynchrony in activity between the sexes cause intersexual social segregation in ruminants? Proceeding of the Royal Society of London B 265: 1359–1363.
  • Faul F. and Erdfelder E. 1992. GPOWER: a priori-, post hoc-, and compromise power analysis for MS-DOS (computer program). Bonn University, Germany.
  • Fortin D., Beyer H. L., Boyce M. S., Smith D. W., Duchesne T. and Mao J. S. 2005. Wolves influence elk movements: behavior shapes a trophic cascade in Yellowstone National Park. Ecology 86: 1320–1330.
  • Geist V. and Petocz R. G. 1977. Bighorn sheep in winter: do rams maximize reproductive fitness by spatial and habitat segregation from ewes? Canadian Journal of Zoology 55: 1802–1810.
  • Georgii B. 1980. Home range patterns of female red deer (Cervus elaphus) in the Alps. Oecologia 47: 278–285.
  • Georgii B. and Schroder W. 1983. Home range and activity patterns of male red deer (Cervus elaphus) in the Alps. Oecologia 58: 238–248.
  • Hebblewhite M., White C. A., Nietvelt C. G., McKenzie J. A., Hurd T. E., Fryxell J.M., Bayley S. E. and Paquet P. C. 2005. Human activity mediates a trophic cascade caused by wolves. Ecology 86: 2135–2144.
  • Hooge P. N. and Eichenlaub B. 1997. Animal movement extension to Arcview, ver. 1.1. Alaska Biological Science Center, U.S. Geological Survey, Anchorage.
  • Jędrzejewska B. and Jędrzejewski W. 1998. Predation in vertebrate communities: the Białowieża Primeval Forest as a case study. Springer-Verlag, Berlin: 1–450.
  • Jędrzejewska B., Okarma H., Jędrzejewski W. and Miłkowski L. 1994. Effects of exploitation and protection on forest structure, ungulate density and wolf predation in Białowie ża Primeval Forest, Poland. Journal of Applied Ecology 31: 664–676.
  • Jędrzejewski W. and Kamler J. F. 2004. From the field: modified drop-net for capturing ungulates. Wildlife Society Bulletin 32: 1305–1308.
  • Jędrzejewski W., Schmidt K., Theuerkauf J., Jędrzejewska B., Selva N., Zub K. and Szymura L. 2002. Kill rates and predation by wolves on ungulate populations in Białowie ża Primeval Forest (Poland). Ecology 83: 1341–1356.
  • Jędrzejewski W., Spaedtke H., Kamler J. F., Jędrzejewska B. and Stenkewitz U. 2006. Group size dynamics of red deer in Białowieża Primeval Forest, Poland. The Journal of Wildlife Management 70: 1054–1059.
  • Jeppesen J. L. 1987. Impact of human disturbance on home range, movements and activity of red deer (Cervus elaphus) in a Danish environment. Danish Review of Game Biology 13: 1–38.
  • Koubek P. and Hrabe V. 1996. Home range dynamics in the red deer (Cervus elaphus) in a mountain forest in central Europe. Folia Zoologica 45: 219–222.
  • Laundre J. W., Hernandez L. and Altendorf K. B. 2001. Wolves, elk, and bison: reestablishing the “landscape of fear” in Yellowstone National Park, U.S.A. Canadian Journal of Zoology 79: 1401–1409.
  • Mao J. S., Boyce M. S., Smith D. W., Singer F. J. and Vales D. J. 2005. Habitat selection by elk before and after wolf reintroduction in Yellowstone National Park. Journal of Wildlife Management 69: 1691–1707.
  • McNab B. K. 1963. Bioenergetics and the determination of home range size. The American Naturalist 97: 133–140.
  • Miquelle D. G., Peek J. M. and Van Ballenberghe V. 1992. Sexual segregation in Alaskan moose. Wildlife Monographs 122: 1–57.
  • Mohr C. O. 1947. Table of equivalent populations of North American small mammals. American Midland Naturalist 37: 223–249.
  • Post E., Langvatn R., Forchhammer M. C. and Stenseth N. C. 1999. Environmental variation shapes sexual dimorphism in red deer. Proceedings of the National Academy of Sciences (USA) 96: 4467–4471.
  • Ripple W. J., Larsen E. J., Renkin R. A. and Smith D. W. 2001. Trophic cascades among wolves, elk and aspen on Yellowstone National Park’s northern range. Biological Conservation 102: 227–234.
  • Staines B. W. and Crisp J. M. 1978. Observations on food quality in Scottish red deer (Cervus elaphus L.) as determined by chemical analysis of the rumen contents. Journal of Zoology, London 185: 253–259.
  • Staines B. W., Crisp J. M. and Parish T. 1982. Differences in the quality of food eaten by red deer (Cervus elaphus) stages and hinds in winter. Journal of Applied Ecology 19: 65–77.
  • Thouless C. R. 1990. Feeding competition between grazing red deer hinds. Animal Behaviour 40: 105–111.
  • Watson A. and Staines B. W. 1978. Differences in the quality of wintering areas by male and female red deer (Cervus elaphus) in Aberdeenshire. Journal of Zoology, London 286: 544–550.

Typ dokumentu

Bibliografia

Identyfikatory

Identyfikator YADDA

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