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8 - Arboreal Gathering, Terrestrial Traveling

Locomotion and Posture

Published online by Cambridge University Press:  10 July 2020

Kevin D. Hunt
Affiliation:
Indiana University, Bloomington
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Summary

Fig trees are the best for spying on chimpanzees. Their leaves are sparse, which means an observer need not stagger around under the tree while looking up, searching for a clear view through the foliage, stepping in holes, stumbling on fallen branches, or barging into large stones all the while. You can see chimpanzees on the far side of the tree as easily as the near side. As a bonus, the trees are simply esthetically pleasing, their branches are elegantly curved and their bark is a pleasingly warm shade of brown.

Type
Chapter
Information
Chimpanzee
Lessons from our Sister Species
, pp. 119 - 130
Publisher: Cambridge University Press
Print publication year: 2020

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References

Bauer, HR (1977) Chimpanzee bipedal locomotion in the Gombe National Park, East Africa. Primates 18, 913921.Google Scholar
Brown, JS, Kotler, BP, Mitchell, WM (1994) Foraging theory, patch use, and the structure of a Negev Desert granivore community. Ecology 75, 22862300.Google Scholar
Cannon, CH, Leighton, M (1994) Comparative locomotor ecology of gibbons and macaques: selection of canopy elements for crossing gaps. Am J Phys Anthropol 93, 505524.CrossRefGoogle ScholarPubMed
Cant, JGH (1992) Positional behavior and body size of arboreal primates: a theoretical framework for field studies and an illustration of its application. Am J Phys Anthropol 88, 273283.Google Scholar
Doran, DM (1996) Comparative positional behavior of the African apes. In Great Ape Societies (eds. McGrew, WC, Marchant, LF, Nishida, T), pp. 213224. Cambridge: Cambridge University Press.Google Scholar
Houle, A, Chapman, CA, Vickery, WL (2007) Intratree variation in fruit production and implications for primate foraging. Int J Primatol 28, 11971217.Google Scholar
Houle, A, Vickery, WL, Chapman, CA (2006) Testing mechanisms of coexistence among two species of frugivorous primates. J Anim Ecol 75, 10341044.Google Scholar
Houle, A, Chapman, CA, Vickery, WL (2010) Intratree vertical variation of fruit density and the nature of contest competition in frugivores. Behav Ecol Sociobiol 64, 429441.Google Scholar
Houle, A, Conklin-Brittain, NL, Wrangham, RW (2014) Vertical stratification of the nutritional value of fruit: macronutrients and condensed tannins. Am J Primatol 76, 12071232.CrossRefGoogle ScholarPubMed
Hunt, KD (1989) Positional behavior in Pan troglodytes at the Mahale Mountains and Gombe Stream National Parks, Tanzania, PhD dissertation. Ann Arbor, MI: University of Michigan.Google Scholar
Hunt, KD (1991) Mechanical implications of chimpanzee positional behavior. Am J Phys Anthropol 86, 521536.CrossRefGoogle ScholarPubMed
Hunt, KD (1992a) Positional behavior of Pan troglodytes in the Mahale Mountains and Gombe Stream National Parks, Tanzania. Am J Phys Anthropol 87, 83107.CrossRefGoogle ScholarPubMed
Hunt, KD (1992b) Social rank and body weight as determinants of positional behavior in Pan troglodytes. Primates 33, 347357.CrossRefGoogle Scholar
Hunt, KD (2016) Why are there apes? Evidence for the co-evolution of ape and monkey ecomorphology. J Anat 228, 630685.CrossRefGoogle ScholarPubMed
Hunt, KD, Cant, JGH, Gebo, DL, et al. (1996) Standardized descriptions of primate locomotor and postural modes. Primates 37, 363387.Google Scholar
Pontzer, H, Wrangham, RW (2004) Climbing and the daily energy cost of locomotion in wild chimpanzees: implications for hominoid evolution. J Hum Evol 46, 315333.CrossRefGoogle Scholar
Schultz, AH (1936) Characters common to higher primates and characters specific to man. Q Rev Biol 11, 259283, 425–455.Google Scholar
Wrangham, RW, Conklin-Brittain, NL, Hunt, KD (1998) Dietary response of chimpanzees and cercopithecines to seasonal variation in fruit abundance. I. Antifeedants. Int J Primatol 19, 949970.Google Scholar

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