Systems Neuroscience and Neurotechnology Unit, Faculty of Medicine, Saarland University and School of Engineering, htw saar, Homburg/Saar, Germany.
Center for Digital Neurotechnologies Saar, Homburg/Saar, Germany.
Trends Hear. 2023 Jan-Dec;27:23312165231200158. doi: 10.1177/23312165231200158.
Recently, it has been demonstrated that electromyographic (EMG) activity of auricular muscles in humans, especially the postauricular muscle (PAM), depends on the spatial location of auditory stimuli. This observation has only been shown using wet electrodes placed directly on auricular muscles. To move towards a more applied, out-of-the-laboratory setting, this study aims to investigate if similar results can be obtained using electrodes placed in custom-fitted earpieces. Furthermore, with the exception of the ground electrode, only dry-contact electrodes were used to record EMG signals, which require little to no skin preparation and can therefore be applied extremely fast. In two experiments, auditory stimuli were presented to ten participants from different spatial directions. In experiment 1, stimuli were rapid onset naturalistic stimuli presented in silence, and in experiment 2, the corresponding participant's first name, presented in a "cocktail party" environment. In both experiments, ipsilateral responses were significantly larger than contralateral responses. Furthermore, machine learning models objectively decoded the direction of stimuli significantly above chance level on a single trial basis (PAM: 80%, in-ear: 69%). There were no significant differences when participants repeated the experiments after several weeks. This study provides evidence that auricular muscle responses can be recorded reliably using an almost entirely dry-contact in-ear electrode system. The location of the PAM, and the fact that in-ear electrodes can record comparable signals, would make hearing aids interesting devices to record these auricular EMG signals and potentially utilize them as control signals in the future.
最近,已经证明人类耳肌(EMG)的活动,尤其是耳后肌(PAM),取决于听觉刺激的空间位置。这一观察结果仅通过直接放置在耳肌上的湿电极得到证实。为了朝着更实用、非实验室的环境发展,本研究旨在探讨使用放置在定制耳内的电极是否可以获得类似的结果。此外,除了地电极外,仅使用干接触电极记录 EMG 信号,这需要很少或不需要皮肤准备,因此可以非常快速地应用。在两项实验中,十个参与者从不同的空间方向接收听觉刺激。在实验 1 中,刺激是在静默中呈现的快速起始自然刺激,在实验 2 中,呈现参与者的名字,在“鸡尾酒会”环境中呈现。在这两个实验中,同侧反应明显大于对侧反应。此外,机器学习模型在单次试验基础上客观地解码刺激的方向,显著高于随机水平(PAM:80%,入耳:69%)。几周后,参与者重复实验时没有显著差异。本研究提供了证据,表明使用几乎完全干接触的入耳式电极系统可以可靠地记录耳肌反应。PAM 的位置以及入耳式电极可以记录可比信号的事实,使助听器成为记录这些耳肌 EMG 信号的有趣设备,并有可能在未来将其用作控制信号。