An Efficient Simulation Technology for Characterizing the Ultra-Wide Band Signal Propagation in a Wireless Body Area Network

2010 ◽  
Vol 24 (17-18) ◽  
pp. 2575-2588 ◽  
Author(s):  
V. P. Bui ◽  
X. C. Wei ◽  
E. P. Li
Author(s):  
Aysha Maryam Ali ◽  
Mohammed A. Al Ghamdi ◽  
Muhammad Munwar Iqbal ◽  
Shehzad Khalid ◽  
Hamza Aldabbas1 ◽  
...  

AbstractThe body area network is now the most challenging and most popular network for study and research. Communication about the body has undoubtedly taken its place due to a wide variety of applications in industry, health care, and everyday life in wireless network technologies. The body area network requires such smart antennas that can provide the best benefits and reduce interference with the same channel. The discovery of this type of antenna design is at the initiative of this research. In this work, to get a good variety, the emphasis is on examining different techniques. The ultra-wide band is designed, simulated, and manufactured because the ultra-wide band offers better performance compared to narrowband antennas. To analyze the specific absorption rate, we designed a multilayer model of human head and hand in the high-frequency structure simulator. In the final stage, we simulated our antennas designed with the head and hand model to calculate the results of the specific absorption rate. The analysis of the specific absorption rate for the head and hand was calculated by placing the antennas on the designed model.


2020 ◽  
pp. 2002-2017
Author(s):  
Danda B. Rawat ◽  
Sylvia Bhattacharya

Wireless Body Area Network (WBAN) is an emerging field of research which has been progressing rapidly in recent years. WBAN is a network utilized for continuous monitoring of physiological state of the subject, where the patient can perform his regular activities while his body parameters get measured continuously and are accessed by the physician remotely. This chapter provides a thorough survey of current WBAN technologies in the healthcare sector. Besides the recording of physiological parameters, discussions have been provided on remote data transmission to a server called Virtual Doctor Server (VDS). During this transmission, WBAN network uses various technologies namely Ultra Wide Band WBAN, Technology Enabled Medical Precision Observation 3.1 (TEMPO 3.1), J2ME and Bluetooth. Details of several existing WBAN related projects have been discussed along with their applications. The next section of the chapter deals with the use and design of medical sensors in WBAN. Performance comparison between WBAN and WSN (Wireless Sensor Network) has also been provided.


Author(s):  
Danda B. Rawat ◽  
Sylvia Bhattacharya

Wireless Body Area Network (WBAN) is an emerging field of research which has been progressing rapidly in recent years. WBAN is a network utilized for continuous monitoring of physiological state of the subject, where the patient can perform his regular activities while his body parameters get measured continuously and are accessed by the physician remotely. This chapter provides a thorough survey of current WBAN technologies in the healthcare sector. Besides the recording of physiological parameters, discussions have been provided on remote data transmission to a server called Virtual Doctor Server (VDS). During this transmission, WBAN network uses various technologies namely Ultra Wide Band WBAN, Technology Enabled Medical Precision Observation 3.1 (TEMPO 3.1), J2ME and Bluetooth. Details of several existing WBAN related projects have been discussed along with their applications. The next section of the chapter deals with the use and design of medical sensors in WBAN. Performance comparison between WBAN and WSN (Wireless Sensor Network) has also been provided.


Author(s):  
Shilpa Shinde ◽  
Santosh Sonavane

Background and objective: In the Wireless Body Area Network (WBAN) sensors are placed on the human body; which has various mobility patterns like seating, walking, standing and running. This mobility typically assisted with hand and leg movements on which most of the sensors are mounted. Previous studies were largely focused on simulations of WBAN mobility without focusing much on hand and leg movements. Thus for realistic studies on performance of the WBAN, it is important to consider hand and leg movements. Thus, an objective of this paper is to investigate an effect of the mobility patterns with hand movements on the throughput of the WBAN. Method: The IEEE 802.15.6 requirements are considered for WBAN design. The WBAN with star topology is used to connect three sensors and a hub. Three types of mobility viz. standing, walking and running with backward and forward hand movements is designed for simulation purpose. The throughput analysis is carried out with the three sets of simulations with standing, walking and running conditions with the speed of 0 m/s, 0.5 m/s and 3 m/s respectively. The data rate was increased from 250 Kb to 10000 Kb with AODV protocol. It is intended to investigate the effect of the hand movements and the mobility conditions on the throughput. Simulation results are analyzed with the aid of descriptive statistics. A comparative analysis between the simulated model and a mathematical model is also introduced to get more insight into the data. Results: Simulation studies showed that as the data rate is increased, throughput is also increased for all mobility conditions however, this increasing trend was discontinuous. In the standing (static) position, the throughput is found to be higher than mobility (dynamic) condition. It is found that, the throughput is better in the running condition than the walking condition. Average values of the throughput in case of the standing condition were more than that of the dynamic conditions. To validate these results, a mathematical model is created. In the mathematical model, a same trend is observed. Conclusion: Overall, it is concluded that the throughput is decreased due to mobility of the WBAN. It is understood that mathematical models have given more insight into the simulation data and confirmed the negative effect of the mobility conditions on throughput. In the future, it is proposed to investigate effect of interference on the designed network and compare the results.


Author(s):  
Suthisa Kesorn ◽  
Norakamon Wongsin ◽  
Thinnawat jangjing ◽  
Chatree Mahatthanajatuphat ◽  
Paitoon Rakluea

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