A Statistical Lower UWB Channel Model for in Body Communications
Autor: | P. Thirumaraiselvan, K. Sakthidasan @ Sankaran, V. Beslin Geo, V. R. Prakash, N. Vasudevan |
---|---|
Rok vydání: | 2019 |
Předmět: |
Computer Networks and Communications
Wireless network business.industry Computer science 020206 networking & telecommunications Statistical model 02 engineering and technology Radio spectrum Noise Hardware and Architecture Body area network 0202 electrical engineering electronic engineering information engineering Electronic engineering Baseband Wireless 020201 artificial intelligence & image processing Transceiver business Software Information Systems |
Zdroj: | Mobile Networks and Applications. 24:1814-1820 |
ISSN: | 1572-8153 1383-469X |
DOI: | 10.1007/s11036-019-01384-7 |
Popis: | Applications of implantable micro-level wireless devices in the instantaneous collection and observation of body potentials of patients is becoming prominent nowadays. The license free radio band that is reserved internationally for industrial, scientific, and medical purposes (ISM) is being used currently for the above telemedicine applications. However, for short distance higher bit rate applications such as capsule endoscopy, the ultra-wide band (UWB) of frequencies is found as much suitable, since base band communication with less complex transceivers is possible due to its noise like behavior. But before developing any wireless network, it is necessary to characterize the radio channel accurately. In Body Area Network (BAN) with implantable low power and high data rate transceivers, on site measurement is not practically feasible. Therefore, easy to use statistical models that are derived from the measurement data are preferred. In this paper, authors introduce honey as an easily available and less expensive base, through a study of its dielectric properties, for preparing body mimicking liquid phantoms. In addition, this paper proposes an empirical in-body UWB channel model to determine the possible pathloss in the human abdominal region. The empirical pathloss data, which have been collected with the above liquid phantoms that mimic the biological tissues in lower UWB i.e. 3.1 GHz – 9 GHz frequency range are used to derive the proposed model. |
Databáze: | OpenAIRE |
Externí odkaz: |