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Scale-Free Brain Quartet: Artistic Filtering of Multi-Channel Brainwave Music

机译:无标度大脑四重奏:多通道脑电波音乐的艺术过滤

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摘要

To listen to the brain activities as a piece of music, we proposed the scale-free brainwave music (SFBM) technology, which translated scalp EEGs into music notes according to the power law of both EEG and music. In the present study, the methodology was extended for deriving a quartet from multi-channel EEGs with artistic beat and tonality filtering. EEG data from multiple electrodes were first translated into MIDI sequences by SFBM, respectively. Then, these sequences were processed by a beat filter which adjusted the duration of notes in terms of the characteristic frequency. And the sequences were further filtered from atonal to tonal according to a key defined by the analysis of the original music pieces. Resting EEGs with eyes closed and open of 40 subjects were utilized for music generation. The results revealed that the scale-free exponents of the music before and after filtering were different: the filtered music showed larger variety between the eyes-closed (EC) and eyes-open (EO) conditions, and the pitch scale exponents of the filtered music were closer to 1 and thus it was more approximate to the classical music. Furthermore, the tempo of the filtered music with eyes closed was significantly slower than that with eyes open. With the original materials obtained from multi-channel EEGs, and a little creative filtering following the composition process of a potential artist, the resulted brainwave quartet opened a new window to look into the brain in an audible musical way. In fact, as the artistic beat and tonal filters were derived from the brainwaves, the filtered music maintained the essential properties of the brain activities in a more musical style. It might harmonically distinguish the different states of the brain activities, and therefore it provided a method to analyze EEGs from a relaxed audio perspective.
机译:为了听脑活动作为音乐,我们提出了无标度脑电波音乐(SFBM)技术,该技术根据脑电图和音乐的幂律将头皮脑电图转换为音符。在本研究中,该方法被扩展为从具有艺术节拍和音调过滤的多通道脑电图推导四重奏。首先通过SFBM将来自多个电极的EEG数据分别转换为MIDI序列。然后,通过拍子滤波器处理这些序列,该拍子滤波器根据特征频率调整音符的持续时间。然后根据原始音乐作品的分析所定义的关键,从音调到音调进一步过滤序列。闭着眼睛并睁开40个对象的静息EEG用于产生音乐。结果表明,过滤前后音乐的无标度指数是不同的:过滤后的音乐在闭眼(EC)和睁眼(EO)条件下表现出更大的变化,并且过滤后的音高标度指数音乐接近1,因此更接近古典音乐。此外,滤过的音乐在睁开眼睛时的速度明显慢于睁开眼睛时。借助从多通道脑电图获得的原始材料,并在潜在艺术家的创作过程中进行了一些创造性的过滤,最终产生的脑电波四重奏打开了一个新窗口,以一种可听见的音乐方式注视着大脑。实际上,由于艺术性的节拍和音调过滤器是从脑电波衍生而来的,因此过滤后的音乐以更具音乐性的风格保持了大脑活动的基本特性。它可以和谐地区分大脑活动的不同状态,因此它提供了一种从轻松的音频角度分析脑电图的方法。

著录项

  • 期刊名称 other
  • 作者

    Dan Wu; Chaoyi Li; Dezhong Yao;

  • 作者单位
  • 年(卷),期 -1(8),5
  • 年度 -1
  • 页码 e64046
  • 总页数 7
  • 原文格式 PDF
  • 正文语种
  • 中图分类
  • 关键词

  • 入库时间 2022-08-21 11:21:58

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