Title :
A physical model of the wireless infrared communication channel
Author :
Jungnickel, Volker ; Pohl, Volker ; Nönnig, Stephan ; Von Helmolt, Clemens
Author_Institution :
Heinrich-Hertz-Inst. fur Nachrichtentech. Berlin GmbH, Germany
fDate :
4/1/2002 12:00:00 AM
Abstract :
A simple analytical model of the wireless infrared communication channel in indoor environments is presented. The infrared signal is modeled as the combination of a diffuse component and a line-of-sight (LOS) or direct component. For the diffuse component alone, the properties of the channel are found using Ulbricht´s integrating sphere. When a LOS component is also present, the transfer function depends upon the Rician factor K given by the ratio of the electrical power in the LOS and diffuse signals after the detector. For small K, the transfer function shows notches down to low frequencies, but due to the nature of light never for zero frequency. We confirm that a K-factor ⩾13 dB is required also in infrared wireless links in order to support distortionless data transmission beyond 100 Mbit/s. Increasing the directivity at the receiver and/or at the transmitter improves the effective value of K. Here, we show that a moderate directivity will be sufficient for high-speed infrared communication in typical indoor scenarios
Keywords :
multipath channels; optical links; optical transfer function; K-factor; LOS component; Rician factor; Ulbricht´s integrating sphere; data transmission; diffuse component; direct component; directivity; electrical power; high-speed infrared communication; indoor environments; infrared links; line-of-sight component; transfer function; wireless infrared communication channel; Analytical models; Data communication; Detectors; Frequency; Indoor environments; Optical fiber communication; Rician channels; Signal detection; Transfer functions; Wireless communication;
Journal_Title :
Selected Areas in Communications, IEEE Journal on