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Aural localization of silent objects by active human biosonar: neural representations of virtual echo- acoustic space

机译:活跃人体生物体的静音物体的听觉定位:虚拟回声声空间的神经表示

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Some blind humans have developed the remarkable ability to detect and localize objects through the auditory analysis of self-generated tongue clicks. These echolocation experts show a corresponding increase in visual' cortex activity when listening to echo-acoustic sounds. Echolocation in real-life settings involves multiple reflections as well as active sound production, neither of which has been systematically addressed. We developed a virtualization technique that allows participants to actively perform such biosonar tasks in virtual echo-acoustic space during magnetic resonance imaging (MRI). Tongue clicks, emitted in the MRI scanner, are picked up by a microphone, convolved in real time with the binaural impulse responses of a virtual space, and presented via headphones as virtual echoes. In this manner, we investigated the brain activity during active echo-acoustic localization tasks. Our data show that, in blind echolocation experts, activations in the calcarine cortex are dramatically enhanced when a single reflector is introduced into otherwise anechoic virtual space. A pattern-classification analysis revealed that, in the blind, calcarine cortex activation patterns could discriminate left-side from right-side reflectors. This was found in both blind experts, but the effect was significant for only one of them. In sighted controls, visual' cortex activations were insignificant, but activation patterns in the planum temporale were sufficient to discriminate left-side from right-side reflectors. Our data suggest that blind and echolocation-trained, sighted subjects may recruit different neural substrates for the same active-echolocation task.
机译:一些盲人人类通过自我发电舌点击的听觉分析制定了检测和定位对象的显着能力。这些呼应专家在收听回声声音时显示出视觉'皮质活动的相应增加。现实生活中的回声定位涉及多个反射以及有源声音生产,这些反射都没有系统地解决。我们开发了一种虚拟化技术,允许参与者在磁共振成像(MRI)期间主动地在虚拟回波声空间中执行这种生物问题任务。 MRI扫描仪发出的舌头点击被麦克风拾取,实时与虚拟空间的双耳脉冲响应实时卷曲,并通过耳机作为虚拟回波呈现。以这种方式,我们在主动回声 - 声学定位任务期间调查了大脑活动。我们的数据表明,在盲声回声专家中,当单个反射器被引入另外的解剖学虚拟空间时,钙氨酸皮质中的激活显着增强。图案分类分析显示,在盲人中,滑稽体皮质激活模式可以从右侧反射器区分左侧。这是在盲人专家中发现的,但效果对于其中一个人来说很重要。在观察的控制中,视觉'皮质激活是微不足道的,但PLATUM休闲中的激活模式足以从右侧反射器区分左侧。我们的数据表明,盲目和回声机会训练有素的受试者可能会招募不同的神经基板以用于相同的主动回声机组任务。

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