DocumentCode
1351634
Title
Multispot diffusing configuration for wireless infrared access
Author
Jovkova, S.T. ; Kavehard, M.
Author_Institution
Dept. of Electr. Eng., Pennsylvania State Univ., University Park, PA
Volume
48
Issue
6
fYear
2000
fDate
6/1/2000 12:00:00 AM
Firstpage
970
Lastpage
978
Abstract
In order to combine the advantages and to overcome the drawbacks of a direct line-of-sight or a diffuse configuration for wireless infrared access, a multispot diffusing concept utilizing a holographic spot array generator is presented. Simulation results are presented and compared with those for a pure diffuse configuration in terms of link characteristics, when a single-element or a multibranch composite receiver is employed. The multispot transmitter ensures a more uniform signal power distribution. Improvements of about 2 dBo (optical decibels) can be achieved compared to a Lambertian pattern illumination. The increased power path loss at the edges of the communication cell is accompanied with a decrease in the delay spread resulting in an extension of the coverage range. Utilization of angle diversity detection improves the signal-to-noise ratio by more than 7 dB when selecting the best receiver branch and more than 10.5 dB in the case of maximal-ratio combining. Use of a multibeam transmitter and an angle diversity receiver reduces the likelihood of shadowing of the receiver due to an obstacle standing along the path between the receiver and the transmitter
Keywords
delays; diversity reception; holographic optical elements; optical beam splitters; optical links; optical receivers; optical transmitters; subscriber loops; Lambertian pattern illumination; angle diversity detection; angle diversity receiver; communication cell; coverage range; delay spread; holographic spot array generator; link characteristics; maximal-ratio combining; multibeam transmitter; multibranch composite receiver; multispot diffusing configuration; multispot transmitter; power path loss; shadowing reduction; signal-to-noise ratio; simulation results; single-element receiver; uniform signal power distribution; wireless infrared access; wireless local access; Delay; Diversity reception; Holographic optical components; Holography; Lighting; Optical losses; Optical receivers; Optical transmitters; Power distribution; Signal to noise ratio;
fLanguage
English
Journal_Title
Communications, IEEE Transactions on
Publisher
ieee
ISSN
0090-6778
Type
jour
DOI
10.1109/26.848558
Filename
848558
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