Human Exploration of Enclosed Spaces through Echolocation

Исследование замкнутых пространств человеком посредством эхолокации
Magnus Wahlberg, Ludwig Wallmeier, Lutz Wiegrebe, Virginia L. Flanagin, Sven Schörnich, Michael Schranner, Nadine Hummel, Thomas Stephan
2017-01-10

active sensingfMRIhuman echolocationsensory-motor couplingvirtual-room size perception
Some blind humans have developed echolocation, as a method of navigation in space. Echolocation is a truly active sense because subjects analyze echoes of dedicated, self-generated sounds to assess space around them. Using a special virtual space technique, we assess how humans perceive enclosed spaces through echolocation, thereby revealing the interplay between sensory and vocal-motor neural activity while humans perform this task. Sighted subjects were trained to detect small changes in virtual-room size analyzing real-time generated echoes of their vocalizations. Individual differences in performance were related to the type and number of vocalizations produced. We then asked subjects to estimate virtual-room size with either active or passive sounds while measuring their brain activity with fMRI. Subjects were better at estimating room size when actively vocalizing. This was reflected in the hemodynamic activity of vocal-motor cortices, even after individual motor and sensory components were removed. Activity in these areas also varied with perceived room size, although the vocal-motor output was unchanged. In addition, thalamic and auditory-midbrain activity was correlated with perceived room size; a likely result of top-down auditory pathways for human echolocation, comparable with those described in echolocating bats. Our data provide evidence that human echolocation is supported by active sensing, both behaviorally and in terms of brain activity. The neural sensory-motor coupling complements the fundamental acoustic motor-sensory coupling via the environment in echolocation. SIGNIFICANCE STATEMENTPassive listening is the predominant method for examining brain activity during echolocation, the auditory analysis of self-generated sounds. We show that sighted humans perform better when they actively vocalize than during passive listening. Correspondingly, vocal motor and cerebellar activity is greater during active echolocation than vocalization alone. Motor and subcortical auditory brain activity covaries with the auditory percept, although motor output is unchanged. Our results reveal behaviorally relevant neural sensory-motor coupling during echolocation.
1
Echolocation performance differed across individuals and was associated with the type and number of vocalizations they produced.
2
Participants estimated virtual-room size more accurately during active vocalization than passive listening.
3
Sighted participants learned to detect small virtual-room size changes by analyzing real-time echoes of their own vocalizations.
4
Vocal-motor cortical and cerebellar activity increased during active echolocation beyond activity attributable to vocalization or sensory processing alone.
5
Vocal-motor, thalamic, and auditory-midbrain activity varied with perceived room size, supporting top-down sensory-motor coupling in human echolocation.

Human perception of enclosed or virtual-room spaces through vocal echolocation

Active sensory-motor coupling and neural mechanisms underlying room-size perception during human echolocation

Publication Details
Publication Date
2017-01-10
Journal
Publisher
ISSN
Access Type
Author Information
Authors
Magnus Wahlberg
Ludwig Wallmeier
Lutz Wiegrebe
Virginia L. Flanagin
Sven Schörnich
Michael Schranner
Nadine Hummel
Thomas Stephan
Explore further
Open the scid.ai AI chat with a ready-made request: it will find papers on a similar topic and help build a literature review.
Find similar papers in the chat
Make a presentation
100%