Passive sound localization of prey by the pallid bat (Antrozous p. pallidus)
- 1 January 1993
- journal article
- Published by Springer Nature in Journal of Comparative Physiology A
- Vol. 171 (6) , 767-777
- https://doi.org/10.1007/bf00213073
Abstract
The pallid bat (Antrozous p. pallidus) uses passive sound localization to capture terrestrial prey. This study of captive pallid bats examined the roles of echolocation and passive sound localization in prey capture, and focused on their spectral requirements for accurate passive sound localization. Crickets were used as prey throughout these studies. All tests were conducted in dim, red light in an effort to preclude the use of vision. Hunting performance did not differ significantly in red light and total darkness, nor did it differ when visual contrast between the terrestrial prey and the substrate was varied, demonstrating that the bats did not use vision to locate prey. Our bats apparently used echolocation for general orientation, but not to locate prey. They did not increase their pulse emission rate prior to prey capture, suggesting that they were not actively scanning prey. Instead, they required prey-generated sounds for localization. The bats attended to the sound of walking crickets for localization, and also attacked small, inanimate objects dragged across the floor. Stationary and/or anesthetized crickets were ignored, as were crickets walking on substrates that greatly attenuated walking sounds. Cricket communication sounds were not used in prey localization; the bats never captured stationary, calling crickets. The accuracy of their passive sound localization was tested with an open-loop passive sound localization task that required them to land upon an anesthetized cricket tossed on the floor. The impact of a cricket produced a single 10–20 ms duration sound, yet with this information, the bats were able to land within 7.6 cm of the cricket from a maximum distance of 4.9 m. This performance suggests a sound localization accuracy of approximately ±1° in the horizontal and vertical dimensions of auditory space. The lower frequency limit for accurate sound localization was between 3–8 kHz. A physiological survey of frequency representation in the pallid bat inferior colliculus suggests that this lower frequency limit is around 5 kHz.Keywords
This publication has 27 references indexed in Scilit:
- Feeding behaviour of captive brown long-eared bats, Plecotus auritusAnimal Behaviour, 1991
- Ear morphology of the frog‐eating bat (Trachops cirrhosus, family: Phyllostomidae): Apparent specializations for low‐freqency hearingJournal of Morphology, 1989
- Acoustical and neural aspects of hearing in the Australian gleaning bats,Macroderma gigas andNyctophilus gouldiJournal of Comparative Physiology A, 1988
- Visual acuity, sensitivity and binocularity in a gleaning insectivorous bat, Macrotus californicus (Chiroptera: Phyllostomidae)Animal Behaviour, 1986
- Acoustical resource partitioning by two species of phyllostomid bats (Trachops cirrhosus and Tonatia sylvicola)Animal Behaviour, 1985
- The ability of the frog-eating bat to discriminate among novel and potentially poisonous frog species using acoustic cuesAnimal Behaviour, 1983
- Bat Predation and the Evolution of Frog Vocalizations in the NeotropicsScience, 1981
- Nocturnal and Seasonal Activities of the Pallid Bat, Antrozous PallidusJournal of Mammalogy, 1977
- Phenology of sound-producing arctiid moths and the activity of insectivorous batsNature, 1977
- Nocturnal Behavior of the African False Vampire Bat (Cardioderma cor)Journal of Mammalogy, 1976