Path Loss Model with Multiple-Antenna and Doppler Shift for High Speed Railroad Communication 


Vol. 39,  No. 8, pp. 437-444, Aug.  2014


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  Abstract

In this paper, we propose a path loss model with the multiple antennas and doppler shift for high speed railroad communication. Path loss model is very important in order to design consider diverse characteristic in high-speed train communication. Currently wireless communication systems use the multiple antennas in order to improve the channel capacity or diversity gain. However, until recently, many researches on path loss model only consider geographical environment between the transmitter and the receiver. There is no study about path loss model considering diversity effect and doppler shift. In order to make average residuals considering doppler shift we use tuned free space path loss model which is utilized for measurement results at high speed railroad. The environment of high speed rail is mostly at viaduct and flatland over than 50 percent. And in order to make average residuals considering multiple antenna we use theoretical estimation of diversity gain with MRC scheme. proposed model predict loss of received signal by estimating average residuals between diversity effect and doppler shift.

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  Cite this article

[IEEE Style]

H. Park, K. Yoon, H. Ryu, "Path Loss Model with Multiple-Antenna and Doppler Shift for High Speed Railroad Communication," The Journal of Korean Institute of Communications and Information Sciences, vol. 39, no. 8, pp. 437-444, 2014. DOI: .

[ACM Style]

Hae-gyu Park, Kee-Hoo Yoon, and Heung-Gyoon Ryu. 2014. Path Loss Model with Multiple-Antenna and Doppler Shift for High Speed Railroad Communication. The Journal of Korean Institute of Communications and Information Sciences, 39, 8, (2014), 437-444. DOI: .

[KICS Style]

Hae-gyu Park, Kee-Hoo Yoon, Heung-Gyoon Ryu, "Path Loss Model with Multiple-Antenna and Doppler Shift for High Speed Railroad Communication," The Journal of Korean Institute of Communications and Information Sciences, vol. 39, no. 8, pp. 437-444, 8. 2014.