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Embodied information processing: vibrissa mechanics and texture features shape micromotions in actively sensing rats.

机译:具体的信息处理:触觉力学和纹理特征在主动感应大鼠中塑造微运动。

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摘要

Peripheral sensory organs provide the first transformation of sensory information, and understanding how their physical embodiment shapes transduction is central to understanding perception. We report the characterization of surface transduction during active sensing in the rodent vibrissa sensory system, a widely used model. Employing high-speed videography, we tracked vibrissae while rats sampled rough and smooth textures. Variation in vibrissa length predicted motion mean frequencies, including for the highest velocity events, indicating that biomechanics, such as vibrissa resonance, shape signals most likely to drive neural activity. Rough surface contact generated large amplitude, high-velocity "stick-slip-ring" events, while smooth surfaces generated smaller and more regular stick-slip oscillations. Both surfaces produced velocities exceeding those applied in reduced preparations, indicating active sensation of surfaces generates more robust drive than previously predicted. These findings demonstrate a key role for embodiment in vibrissal sensing and the importance of input transformations in sensory representation.
机译:周围的感觉器官提供了感觉信息的第一个转换,并且了解它们的物理实施方式如何形成转导对于理解感知至关重要。我们报告了在啮齿动物触须感觉系统(一种广泛使用的模型)中的主动感应过程中的表面转导特征。利用高速摄影,我们跟踪了触须,而老鼠则采样了粗糙而光滑的纹理。触模长度预测运动平均频率的变化(包括最高速度事件的频率)表明生物力学(如触模共振)会形成最有可能驱动神经活动的信号。粗糙的表面接触会产生大幅度的高速“粘滑环”事件,而光滑的表面会产生较小且规则的粘滑振动。两个表面产生的速度都超过还原制剂中施加的速度,这表明表面的主动感觉比以前预测的产生了更强劲的驱动力。这些发现证明了在振动感测中实施方案的关键作用以及在感觉表征中输入转换的重要性。

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