different constraints and selection forces that are documented in different
systems might interact in a single species. The underlying theme of this
chapter is that long-distance acoustic signals are subject to a variety of selection forces and constraints and that the evolutionary history of a taxon can
influence the manner in which it responds to such forces. Thus, a true understanding of long-distance communication will inevitably require an increase
in both breadth and depth of studies.
References
Alexander RD (1962) Evolutionary change in cricket acoustical communication.
Evolution 16:443–467.
Andersson M (1994) Sexual Selection. Princeton, NJ: Princeton University Press.
Barclay RMR, Fenton B, Tuttle MD, Ryan MJ (1981) Echolocation calls produced
by Trachops cirrhosus (Chiroptera: Phyllostomatidae) while hunting for frogs.
Can J Zool 59:750–753.
Bauer M, van Helverson O (1987) Separate localization of sound recognizing
and sound producing neural mechanisms in a grasshopper. J Comp Physiol
161:95–101.
Bevier CR (1997) Utilization of energy substrates during calling activity in tropical
frogs. Behav Ecol Sociobiol 41:343–352.
Blair WF (1958) Mating call in the speciation of anuran amphibians. Am Nat
92:27–51.
Boake CRR (1991) Coevolution of senders and receivers of sexual signals: Genetic
coupling and genetic correlations. Trends Ecol Evol 6:225–231.
Bowman RI (1983) The evolution of song in Darwin’s finches. In: Bowman RI,
Besson M, Leviton AE (eds) Patterns of Evolution in Galapagos Organisms. San
Francisco: American Association for the Advancement of Science, pp. 237–536.
Brackenbury JH (1979) Power capabilities of the avian sound-producing system.
J Exp Biol 78:163–166.
Bradbury JW, Vehrencamp SL (1998) Principles of Animal Communication.
Sunderland, MA: Sinauer Associates Inc.
Brenowitz EA, Wilczynski W, Zakon HH (1984) Acoustic communication in spring
peepers. Environmental and behavioral aspects. J Comp Physiol A 155:585–592.
Brenowitz EA, Rose G, Capranica RR (1985) Neural correlates of temperature coupling in the vocal communication system of the gray tree frog (Hyla versicolor).
Brain Res 359:364–367.
Bruns V, Burda H, Ryan MJ (1989) Ear morphology of the frog-eating bat
(Trachops cirrhosus, Family Phylostomidae): Apparent specializations for lowfrequency hearing. J Morphol 199:103–118.
Bucher TL, Ryan MJ, Bartholomew G (1982) Oxygen consumption during resting,
calling, and nest building in the frog Physalaemus pustulosus. Physiol Zool
55:10–22.
Butlin R (1989) Reinforcement of premating isolation. In: Otte D, Endler JA (eds)
Speciation and its consequences. Sunderland, MA: Sinauer and Associates, pp.
158–179.
Cade WH (1975) Acoustically orienting parasites: Fly phonotaxis to cricket song.
Science 190:1312–1313.
266
M.J. Ryan and N.M. Kime
systems might interact in a single species. The underlying theme of this
chapter is that long-distance acoustic signals are subject to a variety of selection forces and constraints and that the evolutionary history of a taxon can
influence the manner in which it responds to such forces. Thus, a true understanding of long-distance communication will inevitably require an increase
in both breadth and depth of studies.
References
Alexander RD (1962) Evolutionary change in cricket acoustical communication.
Evolution 16:443–467.
Andersson M (1994) Sexual Selection. Princeton, NJ: Princeton University Press.
Barclay RMR, Fenton B, Tuttle MD, Ryan MJ (1981) Echolocation calls produced
by Trachops cirrhosus (Chiroptera: Phyllostomatidae) while hunting for frogs.
Can J Zool 59:750–753.
Bauer M, van Helverson O (1987) Separate localization of sound recognizing
and sound producing neural mechanisms in a grasshopper. J Comp Physiol
161:95–101.
Bevier CR (1997) Utilization of energy substrates during calling activity in tropical
frogs. Behav Ecol Sociobiol 41:343–352.
Blair WF (1958) Mating call in the speciation of anuran amphibians. Am Nat
92:27–51.
Boake CRR (1991) Coevolution of senders and receivers of sexual signals: Genetic
coupling and genetic correlations. Trends Ecol Evol 6:225–231.
Bowman RI (1983) The evolution of song in Darwin’s finches. In: Bowman RI,
Besson M, Leviton AE (eds) Patterns of Evolution in Galapagos Organisms. San
Francisco: American Association for the Advancement of Science, pp. 237–536.
Brackenbury JH (1979) Power capabilities of the avian sound-producing system.
J Exp Biol 78:163–166.
Bradbury JW, Vehrencamp SL (1998) Principles of Animal Communication.
Sunderland, MA: Sinauer Associates Inc.
Brenowitz EA, Wilczynski W, Zakon HH (1984) Acoustic communication in spring
peepers. Environmental and behavioral aspects. J Comp Physiol A 155:585–592.
Brenowitz EA, Rose G, Capranica RR (1985) Neural correlates of temperature coupling in the vocal communication system of the gray tree frog (Hyla versicolor).
Brain Res 359:364–367.
Bruns V, Burda H, Ryan MJ (1989) Ear morphology of the frog-eating bat
(Trachops cirrhosus, Family Phylostomidae): Apparent specializations for lowfrequency hearing. J Morphol 199:103–118.
Bucher TL, Ryan MJ, Bartholomew G (1982) Oxygen consumption during resting,
calling, and nest building in the frog Physalaemus pustulosus. Physiol Zool
55:10–22.
Butlin R (1989) Reinforcement of premating isolation. In: Otte D, Endler JA (eds)
Speciation and its consequences. Sunderland, MA: Sinauer and Associates, pp.
158–179.
Cade WH (1975) Acoustically orienting parasites: Fly phonotaxis to cricket song.
Science 190:1312–1313.
266
M.J. Ryan and N.M. Kime
