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A Simple but Efficient EEG Data Compression Algorithm for Neuromorphic Applications

机译:一种简单但高效的神经胸应用脑电图数据压缩算法

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摘要

Widespread use of Multichannel Electroencephalograph (MCEEG) in diversified fields ranging from clinical studies to Brain Computer Interface (BCI) application, has put in a lot of thrust in data processing concepts, for effective storage and transmission. The paper proposes a computationally simple and novel methodology Normalized Spatial Pseudo Codec (n-SPC) to compress MCEEG signals. The signals are first normalized followed by two operations namely the spatial coding and pseudo coding operating on integer part and fractional part of the normalized data respectively. The proposed method was evaluated on publicly available EEG databases and results indicate that the algorithm exhibits good storage efficiency with average Compression Ratio (CR) of 4.61 with a computational complexity of only O(zN). The algorithm offers significantly a better decompressed signal quality, quantified by average Peak Signal to Noise Ratio (PSNR) of 21.42 dB. The average encoding and decoding time per sample is 0.3 and 0.04 ms, respectively with an average Percentage Root Mean Square Deviation (PRD) of 5.33. The efficacy was further evaluated using the decompressed signal to detect sleep spindle, from an excerpt of EEG recording and was compared with the visual scoring of two experts, available at the DREAMS Sleep Spindles Database. Hence, the proposed compression scheme can be used in practical MCEEG recording, archiving and BCI and neuromorphic systems.
机译:广泛使用多通道脑电图(MCEEG)在多样化的字段中,从临床研究到脑电器界面(BCI)应用,已经在数据处理概念中提出了大量推力,用于有效的存储和传输。本文提出了一种计算简单和新颖的方法标准化空间伪编解码器(N-SPC)来压缩MCEEG信号。首先将信号归一化,然后是两个操作,即分别在整数部分和归一化数据的分数部分上操作的空间编码和伪编码。在公开的EEG数据库中评估所提出的方法,结果表明该算法表现出具有4.61的平均压缩比(CR)的良好存储效率,仅具有O(Zn)的计算复杂性。该算法提供了更好的减压信号质量,通过平均峰值信号量化到21.42 dB的噪声比(PSNR)量化。每个样品的平均编码和解码时间为0.3和0.04ms,分别具有5.33的平均百分比均方偏差(PRD)。使用eg录音的摘录来检测睡眠主轴的解压缩信号进一步评估疗效,并与两个专家的视觉评分进行比较,可在梦想睡眠主轴数据库中获得。因此,所提出的压缩方案可用于实际的MCEEG记录,存档和BCI和神经形态系统。

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