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The moving minimum audible angle is smaller during self motion than during source motion

机译:自运动期间的移动最小可听角度小于源运动期间的最小可听角度

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摘要

We are rarely perfectly still: our heads rotate in three axes and move in three dimensions, constantly varying the spectral and binaural cues at the ear drums. In spite of this motion, static sound sources in the world are typically perceived as stable objects. This argues that the auditory system—in a manner not unlike the vestibulo-ocular reflex—works to compensate for self motion and stabilize our sensory representation of the world. We tested a prediction arising from this postulate: that self motion should be processed more accurately than source motion. We used an infrared motion tracking system to measure head angle, and real-time interpolation of head related impulse responses to create “head-stabilized” signals that appeared to remain fixed in space as the head turned. After being presented with pairs of simultaneous signals consisting of a man and a woman speaking a snippet of speech, normal and hearing impaired listeners were asked to report whether the female voice was to the left or the right of the male voice. In this way we measured the moving minimum audible angle (MMAA). This measurement was made while listeners were asked to turn their heads back and forth between ± 15° and the signals were stabilized in space. After this “self-motion” condition we measured MMAA in a second “source-motion” condition when listeners remained still and the virtual locations of the signals were moved using the trajectories from the first condition. For both normal and hearing impaired listeners, we found that the MMAA for signals moving relative to the head was ~1–2° smaller when the movement was the result of self motion than when it was the result of source motion, even though the motion with respect to the head was identical. These results as well as the results of past experiments suggest that spatial processing involves an ongoing and highly accurate comparison of spatial acoustic cues with self-motion cues.
机译:我们很少保持完全静止:我们的头部在三个轴上旋转并在三个维度上移动,从而不断改变耳鼓的频谱和双耳提示。尽管有这种运动,但世界上的静态声源通常仍被视为稳定的物体。这表明听觉系统以一种与前庭眼反射不同的方式来补偿自我运动并稳定我们对世界的感觉。我们测试了从这种假设得出的预测:自运动应该比源运动更准确地处理。我们使用了红外运动跟踪系统来测量头部角度,并对与头部相关的脉冲响应进行实时插值,以创建“头部稳定”的信号,该信号在头部旋转时似乎在空间中保持固定。在收到一对由一对男人和一个女人在讲一段语音的同时信号后,正常和听力受损的听众被要求报告女性声音在男性声音的左侧还是右侧。通过这种方式,我们测量了移动最小听觉角(MMAA)。进行此测量时,要求听众在±15°之间来回旋转,并使信号在空间中稳定。在这种“自我运动”状态之后,当听众保持静止并且使用第一个条件下的轨迹移动信号的虚拟位置时,我们在第二个“源运动”状态下测量了MMAA。对于正常听觉者和听力受损的听众,我们发现,相对于头部移动的信号,MMAA在运动是自运动的情况下要比源运动的结果小约1-2°。关于头部是相同的。这些结果以及过去的实验结果表明,空间处理涉及对空间声学线索与自运动线索的持续且高度准确的比较。

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