旋转轴和频率对前庭知觉阈值的影响。

IF 1.8 4区 心理学 Q3 BIOPHYSICS Multisensory Research Pub Date : 2022-01-05 DOI:10.1163/22134808-bja10069
Andrew R Wagner, Megan J Kobel, Daniel M Merfeld
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引用次数: 9

摘要

为了描述影响自我运动旋转线索感知的因素,对14名受试者的前庭自我运动感知阈值进行了测量,测量了旋转和俯仰平面以及与垂直半规管解剖方向对齐的平面(即左前,右后;LARP,右前,左后;RALP)。为了确定并发耳石线索的多感官影响,在每个运动平面内,以四个离散频率测量围绕地球水平旋转的阈值(即倾斜;EH)与土垂直轴(即头部定位在旋转平面内;电动汽车)。我们发现旋转的感觉,主要刺激垂直通道,与所有运动平面的高通滤波器的行为一致,速度阈值在较低的旋转频率下增加。相比之下,刺激耳道和耳石的倾斜(即EH旋转)速度阈值(即多感觉整合)在较低频率下降低,并且在低于2 Hz的每个频率下显著低于地球垂直旋转阈值。这些数据表明,耳石重力信号与半规管旋转信号的多感官整合提高了对频率低于2 Hz的倾斜运动的感知精度。我们还表明,旋转阈值,至少部分地取决于相对于垂直管的解剖对齐的旋转平面的方向。总的来说,这些数据提供了第一份关于旋转频率和旋转轴如何影响刺激垂直管的旋转自我运动线索的感知的综合报告。
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Impacts of Rotation Axis and Frequency on Vestibular Perceptual Thresholds.

In an effort to characterize the factors influencing the perception of self-motion rotational cues, vestibular self-motion perceptual thresholds were measured in 14 subjects for rotations in the roll and pitch planes, as well as in the planes aligned with the anatomic orientation of the vertical semicircular canals (i.e., left anterior, right posterior; LARP, and right anterior, left posterior; RALP). To determine the multisensory influence of concurrent otolith cues, within each plane of motion, thresholds were measured at four discrete frequencies for rotations about earth-horizontal (i.e., tilts; EH) and earth-vertical axes (i.e., head positioned in the plane of the rotation; EV). We found that the perception of rotations, stimulating primarily the vertical canals, was consistent with the behavior of a high-pass filter for all planes of motion, with velocity thresholds increasing at lower frequencies of rotation. In contrast, tilt (i.e, EH rotation) velocity thresholds, stimulating both the canals and otoliths (i.e., multisensory integration), decreased at lower frequencies and were significantly lower than earth-vertical rotation thresholds at each frequency below 2 Hz. These data suggest that multisensory integration of otolithic gravity cues with semicircular canal rotation cues enhances perceptual precision for tilt motions at frequencies below 2 Hz. We also showed that rotation thresholds, at least partially, were dependent on the orientation of the rotation plane relative to the anatomical alignment of the vertical canals. Collectively these data provide the first comprehensive report of how frequency and axis of rotation influence perception of rotational self-motion cues stimulating the vertical canals.

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来源期刊
Multisensory Research
Multisensory Research BIOPHYSICS-PSYCHOLOGY
CiteScore
3.50
自引率
12.50%
发文量
15
期刊介绍: Multisensory Research is an interdisciplinary archival journal covering all aspects of multisensory processing including the control of action, cognition and attention. Research using any approach to increase our understanding of multisensory perceptual, behavioural, neural and computational mechanisms is encouraged. Empirical, neurophysiological, psychophysical, brain imaging, clinical, developmental, mathematical and computational analyses are welcome. Research will also be considered covering multisensory applications such as sensory substitution, crossmodal methods for delivering sensory information or multisensory approaches to robotics and engineering. Short communications and technical notes that draw attention to new developments will be included, as will reviews and commentaries on current issues. Special issues dealing with specific topics will be announced from time to time. Multisensory Research is a continuation of Seeing and Perceiving, and of Spatial Vision.
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