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首页> 外文期刊>IEEE Transactions on Biomedical Engineering >A Novel ECG Data Compression Method Based on Nonrecursive Discrete Periodized Wavelet Transform
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A Novel ECG Data Compression Method Based on Nonrecursive Discrete Periodized Wavelet Transform

机译:基于非递归离散周期小波变换的心电数据压缩新方法

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In this paper, a novel electrocardiogram (ECG) data compression method with full wavelet coefficients is proposed. Full wavelet coefficients involve a mean value in the termination level and the wavelet coefficients of all octaves. This new approach is based on the reversible round-off nonrecursive one-dimensional (1-D) discrete periodized wavelet transform (1-D NRDPWT), which performs overall stages decomposition with minimum register word length and resists truncation error propagation. A nonlinear word length reduction algorithm with high compression ratio (CR) is also developed. This algorithm supplies high and low octave coefficients with small and large decimal quantization scales, respectively. This quantization process can be performed without an extra divider. The two performance parameters, CR and percentage root mean square difference (PRD), are evaluated using the MIT-BIH arrhythmia database. Compared with the SPIHT scheme, the PRD is improved by 14.95% for 4lesCRles12 and 17.6% for 14lesCRles20
机译:本文提出了一种具有全小波系数的新型心电图数据压缩方法。全小波系数包括终止电平的平均值和所有八度音阶的小波系数。这种新方法基于可逆的舍入非递归一维(1-D)离散周期小波变换(1-D NRDPWT),该函数以最小的寄存器字长执行整体级分解,并抵抗截断误差的传播。还开发了一种具有高压缩比(CR)的非线性词长减少算法。该算法分别以小和大的十进制量化比例提供高和低八度音阶系数。无需额外的分频器即可执行此量化过程。使用MIT-BIH心律失常数据库评估两个性能参数CR和百分比均方根差(PRD)。与SPIHT方案相比,4lesCRles12的PRD提高了14.95%,14lesCRles20的PRD提高了17.6%

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