基于物联网的低功耗蓝牙远程患者监护节能和远程解决方案

IF 3.4 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC
Ridhima Verma;Sukriti Gautam;Navnoor Singh Bal;Suman Kumar;Nagham Saeed
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引用次数: 0

摘要

物联网(IoT)通过实现实时数据传输,彻底改变了远程患者监护(RPM)。传统的系统能耗高,范围有限,不适合长期监测。本文提出了一种新型可穿戴传感器节点,利用最新的蓝牙低功耗(BLE) 5.0特性,如远程通信和节能扩展广告。该系统集成了超低功耗ARM M33 MCU、用于活动跟踪的运动传感器和用于远程监控的云连接。物理层(PHY)模式决定了无线数据传输,对通信可靠性有很大影响。像丢包这样的挑战很常见,特别是在扩展范围内。典型的解决方案包括增加传输功率或实现重传策略,每一种都涉及能源问题。该系统率先评估了BLE模式- LE 1M和LE Coded phy -在实时临床环境中用于传感器数据传输的广播器的能耗和数据传输可靠性。实验结果表明,传统的LE 1M在减少84.92%的数据传输时间的同时,增加了丢包率(PLR)。相比之下,最新的LE编码PHY在高达300米的范围内将数据包丢包率降低到2%,但电池寿命降低了42.58%,仍然允许2.6年的预期寿命。为了解决功耗问题,我们提出了一种适应PHY模式的动态PHY切换算法(DPSA)。结果在物联网平台上进行了验证,为选择节能电子医疗信标的BLE PHY提供了见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
IoT-Enabled Energy-Efficient and Long-Range Solution for Remote Patient Monitoring Using Bluetooth Low Energy 5.x
The Internet of Things (IoT) has revolutionized Remote Patient Monitoring (RPM) by enabling real-time data transfer. Traditional systems suffer from high energy usage and limited range, making them less suitable for long-term monitoring. This paper presents a novel wearable sensor node leveraging latest Bluetooth Low Energy (BLE) 5.0 features, such as long-range communication and energy-efficient extended advertising. The system integrates an ultra-low-power ARM M33 MCU, a motion sensor for activity tracking, and cloud connectivity for remote monitoring. The Physical Layer (PHY) modes, which determine on-air data transfer, significantly impact communication reliability. Challenges like packet loss are common, especially at extended ranges. Typical solutions involve increasing transmit power or implementing retransmission strategies, each with energy implications. The proposed system pioneers the evaluation of BLE modes–LE 1M and LE Coded PHY–on energy consumption and data transfer reliability of a broadcaster for sensor data transmission in real-time clinical settings. Experimental results reveal that while the conventional LE 1M reduces data transfer time by 84.92%, it increases Packet Loss Rates (PLR). In contrast, the latest LE Coded PHY reduces packet loss to just 2% at ranges upto 300 m but decreases battery life by 42.58%, still allowing a projected 2.6-year lifespan. To address power consumption, we propose a Dynamic PHY Switching Algorithm (DPSA) that adapts PHY modes. Results are validated on an IoT platform, providing insights for selecting BLE PHY for energy-efficient e-healthcare beacons.
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CiteScore
5.70
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