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Adaptive integration of the compressed algorithm of CS and NPC for the ECG signal compressed algorithm in VLSI implementation
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Adaptive integration of the compressed algorithm of CS and NPC for the ECG signal compressed algorithm in VLSI implementation

Yun-Hua Tseng, Yuan-Ho ChenChih-Wen Lu
Sensors (Switzerland), 卷.17(10), 2288
10/2017

摘要

Adaptive integrating compressed algorithm Compressed ratio Compressed sensing Electrocardiogram Near-precise compressed algorithm Signal-to-noise ratio Analytical Chemistry Atomic and Molecular Physics and Optics Biochemistry Instrumentation Electrical and Electronic Engineering
Compressed sensing (CS) is a promising approach to the compression and reconstruction of electrocardiogram (ECG) signals. It has been shown that following reconstruction, most of the changes between the original and reconstructed signals are distributed in the Q, R, and S waves (QRS) region. Furthermore, any increase in the compression ratio tends to increase the magnitude of the change. This paper presents a novel approach integrating the near-precise compressed (NPC) and CS algorithms. The simulation results presented notable improvements in signal-to-noise ratio (SNR) and compression ratio (CR). The efficacy of this approach was verified by fabricating a highly efficient low-cost chip using the Taiwan Semiconductor Manufacturing Company’s (TSMC) 0.18-μcm Complementary Metal-Oxide-Semiconductor (CMOS) technology. The proposed core has an operating frequency of 60 MHz and gate counts of 2.69 K.

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https://doi.org/10.3390/s17102288檢視
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