Compression Performance Analysis of Electrogastrogram (Egg) Using Different Wavelet Transforms For Telemedicine

M. Gokul, S. Jothiraj, P. Murugesan, R. Monisha
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Abstract

Electrogastrogram (EGG) is the non-invasive graphical representation of stomach’s electrical activity for diagnosing stomach Disorders. EGG signal compression has an important role in Tele-diagnosis, Tele-prognosis and survival analysis of all stomach dysrhythmias, when the patient is geographically isolated. There are plenty of signal compression techniques available and proposed over years. Due to some drawbacks like high cost, signal loss and poor compression ratio leads the signal into inefficient at receiver’s end. The compression of digital EGG in telemedicine holds three major advantages like efficient & economic usage of storage data, reduction of the data transmission rate and good transmission bandwidth conversation. In this study EGG signals are tested with different wavelet transforms such as Biorthogonal, coiflet, Daubechies, Haar, reverse biorthogonal and symlet wavelet transforms using MATLAB software, in order to find best performance wavelet for telemedicine. The performance is mathematically analyzed using the values of Percent Root Mean Square Difference (PRD), Compression ratio (CR) and recovery ratio. The result of better compression performance in signal compression could definitely be a great asset in telemedicine field for transferring more quantities of Biological signals.
基于不同小波变换的远程医疗胃电图压缩性能分析
胃电图(EGG)是诊断胃疾病的非侵入性胃电活动的图形表示。当患者处于地理隔离状态时,EGG信号压缩在所有胃节律障碍的远程诊断、远程预后和生存分析中具有重要作用。多年来,有许多可用的和被提出的信号压缩技术。由于成本高、信号损耗大、压缩比差等缺点,导致信号在接收端效率低下。数字EGG在远程医疗中的压缩具有高效经济地利用存储数据、降低数据传输速率和良好的传输带宽会话三大优势。本研究利用MATLAB软件对EGG信号进行了双正交、coiflet、Daubechies、Haar、反向双正交、符号小波变换等不同的小波变换,以期找到最适合远程医疗的小波变换。使用百分比均方根差(PRD)、压缩比(CR)和回收率值对性能进行数学分析。在信号压缩中取得的更好的压缩性能,对于远程医疗领域传输更多的生物信号无疑是一笔宝贵的财富。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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