Title :
A Dynamic Compression Scheme for Energy-Efficient Real-Time Wireless Electrocardiogram Biosensors
Author :
Kan Luo ; Jianqing Li ; Jianfeng Wu
Author_Institution :
Sch. of Instrum. Sci. & Eng., Southeast Univ., Nanjing, China
Abstract :
Wireless body sensor networks enabled electrocardiogram (ECG) biosensors are a novel solution for patient-centric telecardiology. With this solution, the prevention and early diagnosis of cardiovascular diseases can be effectively improved. However, the energy efficiency of the present wireless ECG biosensors still needs to be improved. In this paper, a dynamic compression scheme is proposed to deal with the challenge of ultralow power and real-time wireless ECG application. This compression scheme consists of a digital integrate-and-fire sampler and a lossless entropy encoder, which can reduce airtime over energy-hungry wireless links and improve the energy efficiency of the biosensors. The efficiency improvement is evidenced by the experiments using the MIT-BIH arrhythmia database in MICAz node. The lifetime of dc-implemented MICAz node can be extended up to 76.60% with high signal recovery quality. This scheme is also compared with the digital wavelet transform-based and compressed sensing-based compression schemes. All experimental results indicate that the proposed scheme has high-energy efficiency, low computational complexity, less resource consumption, and rapid time response.
Keywords :
biomedical equipment; body sensor networks; cardiovascular system; compressed sensing; diseases; electrocardiography; medical disorders; medical signal processing; telemedicine; wavelet transforms; ECG biosensors; MIT-BIH arrhythmia database; cardiovascular diseases; compressed sensing-based compression schemes; dc-implemented MICAz node lifetime; digital wavelet transform-based compression schemes; digital-integrate-fire sampler; dynamic compression scheme; energy-efficient real-time wireless electrocardiogram biosensors; energy-hungry wireless links; entropy encoder; high signal recovery quality; low computational complexity; patient diagnosis; patient-centric telecardiology; real-time wireless ECG application; ultralow power wireless ECG application; wireless body sensor networks; Base stations; Biosensors; Electrocardiography; Real-time systems; Wireless communication; Wireless sensor networks; Ambulatory ECG monitoring; compression; energy-efficiency; integrate-and-fire (IF); wireless ECG biosensor; wireless ECG biosensor.; wireless body sensor networks (WBSNs);
Journal_Title :
Instrumentation and Measurement, IEEE Transactions on
DOI :
10.1109/TIM.2014.2308063