Evaluation of a 433 MHz Band Body Sensor Network for Biomedical Applications

被引:20
作者
Kim, Saim [1 ]
Brendle, Christian [1 ]
Lee, Hyun-Young [1 ]
Walter, Marian [1 ]
Gloeggler, Sigrid [2 ]
Krueger, Stefan [2 ]
Leonhardt, Steffen [1 ]
机构
[1] Rhein Westfal TH Aachen, Chair Med Informat Technol, D-52074 Aachen, Germany
[2] Univ Hosp Aachen, Dept Cardiol Pneumol Angiol & Intens Care, D-52074 Aachen, Germany
关键词
Body Sensor Network (BSN); 433 MHz ISM band; wireless transmission; sensors; performance evaluation; communication; healthcare; packet loss rate; WIRELESS; HEALTH; SYSTEM; DESIGN;
D O I
10.3390/s130100898
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Body sensor networks (BSN) are an important research topic due to various advantages over conventional measurement equipment. One main advantage is the feasibility to deploy a BSN system for 24/7 health monitoring applications. The requirements for such an application are miniaturization of the network nodes and the use of wireless data transmission technologies to ensure wearability and ease of use. Therefore, the reliability of such a system depends on the quality of the wireless data transmission. At present, most BSNs use ZigBee or other IEEE 802.15.4 based transmission technologies. Here, we evaluated the performance of a wireless transmission system of a novel BSN for biomedical applications in the 433 MHz ISM band, called Integrated Posture and Activity NEtwork by Medit Aachen (IPANEMA) BSN. The 433 MHz ISM band is used mostly by implanted sensors and thus allows easy integration of such into the BSN. Multiple measurement scenarios have been assessed, including varying antenna orientations, transmission distances and the number of network participants. The mean packet loss rate (PLR) was 0.63% for a single slave, which is comparable to IEEE 802.15.4 BSNs in the proximity of Bluetooth orWiFi networks. Secondly, an enhanced version is evaluated during on-body measurements with five slaves. The mean PLR results show a comparable good performance for measurements on a treadmill (2.5%), an outdoor track (3.4%) and in a climate chamber (1.5%).
引用
收藏
页码:898 / 917
页数:20
相关论文
共 48 条
[1]   UWB on-body radio propagation and system modelling for wireless body-centric networks [J].
Alomainy, A ;
Hao, Y ;
Hu, X ;
Parini, CG ;
Hall, PS .
IEE PROCEEDINGS-COMMUNICATIONS, 2006, 153 (01) :107-114
[2]   Numerical and Experimental Evaluation of a Compact Sensor Antenna for Healthcare Devices [J].
Alomainy, Akram ;
Hao, Yang ;
Pasveer, Frank .
IEEE TRANSACTIONS ON BIOMEDICAL CIRCUITS AND SYSTEMS, 2007, 1 (04) :242-249
[3]  
[Anonymous], EUROHEALTH
[4]   Wireless connectivity for health and sports monitoring: a review [J].
Armstrong, S. .
BRITISH JOURNAL OF SPORTS MEDICINE, 2007, 41 (05) :285-289
[5]   Affinity-based turbidity sensor for glucose monitoring by optical coherence tomography: Toward the development of an Implantable sensor [J].
Ballerstadt, Ralph ;
Kholodnykh, Alexander ;
Evans, Colton ;
Boretsky, Adam ;
Motamedi, Massoud ;
Gowda, Ashok ;
McNichols, Roger .
ANALYTICAL CHEMISTRY, 2007, 79 (18) :6965-6974
[6]  
Beute J., 2006, P P DES AUT TEST EUR, V1, P1
[7]  
Cavalcanti D, 2007, IFMBE PROC, V13, P9
[8]  
Colas J., 2010, P IEEE EMBS 32 ANN I
[9]  
CrossbowTechnology, 2004, MICA2 DAT
[10]  
Dhamdhere A, 2010, C LOCAL COMPUT NETW, P938, DOI 10.1109/LCN.2010.5735838