Content deleted Content added
No edit summary |
Moved See also above References per MOS:ORDER and other General fixes |
||
(22 intermediate revisions by 17 users not shown) | |||
Line 1:
{{multiple issues|
{{COI|date=
{{notability|date=March 2018}}
{{more footnotes|date=December 2021}}
{{citation style|date=July 2019}}}}
{{Use dmy dates|date=October 2017}}
'''Per-user unitary rate control''' ('''PU<sup>2</sup>RC''') is a multi-user [[MIMO]] (multiple-input and multiple-output) scheme. PU<sup>2</sup>RC uses both transmission pre-coding and multi-user scheduling. By doing that, the network capacity is further enhanced than the capacity of the single-user MIMO scheme.
* Background technologies: A single-user MIMO was initially developed to improve the spectral efficiency of point-to-point wireless transmission link. A multi-user MIMO was developed for cellular systems where the base station simultaneously communicates with multiple users.
* Principle: The concept of Per-User Unitary Rate Control (PU<sup>2</sup>RC) was proposed in
Recently, PU<sup>2</sup>RC has been adopted in the IEEE 802.16m system description documentation (SDD) and the concept of this scheme was included in 3GPP [[3GPP Long Term Evolution|LTE]] standard.
==Technology==
Per-
==Mathematical description==
The operation of PU<sup>2</sup>RC is mathematically described for the transmitter and receiver sides, respectively.
===Base
It is assumed that the base station employs <math>N_t</math> transmission antennas. The <math>N_t \times 1</math> transmission signal vector is given by
:<math>\mathbf{x} = \sum_{i=1}^K \mathbf{w}_i P_i s_i</math>
where <math>\mathbf{w}_i</math> is the <math>N_t \times 1</math> linear precoding vector. PU<sup>2</sup>RC generates <math>\mathbf{w}_i</math> based on the received finite channel status information, which is delivered to the base station from the user equipment (UE) through uplink feedback signaling. The feedback signal consists of index in a look-up table of a precoding codebook.
===Receiver
Every receiver has a receive antenna array with <math>N_r</math> elements. The receive signal vector at user <math>k (=1,2,\ldots,K)</math> is modeled as follows:
:<math>\mathbf{y}_k = \mathbf{H}_k\mathbf{x}+\mathbf{n}_k</math>
Line 28 ⟶ 31:
The figure illustrates the throughput advantage of PU<sup>2</sup>RC over the conventional single-user and no scheduling scheme, assuming that the codebook size is one, i.e., <math>(G=1)</math>. For larger codebook sizes the performance can be better than the performance of the unit-size codebook. Because of codebook-based multi-user scheduling, PU<sup>2</sup>RC outperforms the conventional single-user and no scheduling scheme when the number of users is larger than one. Note that the performance plotted in the figure for the two systems were obtained assuming linear receiver.
==See also==
* [[Multiple-input multiple-output communications]]
* [[Multi-user MIMO]] as the advanced MIMO communication technology
* [[Precoding]]
* [[Spatial multiplexing]]
==References==
* James S. Kim, K. B. Lee, et al., Mobile communication apparatus and method including base station and mobile station having multi-antenna, US PTO 7,324,480
* [http://mobile.snu.ac.kr/mcl_list/papers/journal/IEICEtcomm_200608_sjkim_hjkim_cspark_kblee.pdf S. J. Kim, H. J. Kim, C. S. Park, and K. B. Lee, "On the Performance of Multiuser MIMO Systems in WCDMA/HSDPA: Beamforming, Feedback and User Diversity," IEICE Transactions on Communications, vol. E98-B, no. 8, pp. 2161–2169, Aug. 2006.]
* 3GPP TSG RAN WG1#31 R1-030354,
* Samsung, SNU, [http://www.3gpp.org/ftp/tsg_ran/WG1_RL1/TSGR1_44/Docs/R1-060335.zip "Downlink MIMO for EUTRA," in 3GPP TSG RAN WG1 # 44/R1-060335]
* [http://mobile.snu.ac.kr/mcl_list/papers/conference/ew200504_sjkim_hjkim_kblee.pdf Multiuser MIMO Scheme for Enhanced 3GPP HSDPA]
* Kim, J.S., Hojin Kim, Yongxing Zhou, Jianjun Li,
* R. W. Heath, Jr., M. Airy, and A. J. Paulraj, "Multiuser Diversity for MIMO Wireless Systems with Linear Receivers," Proc. of the IEEE Asilomar Conf. on Signals, Systems, and Computers, pp. 1194 –1199, vol.2, Pacific Grove, California, 4–7 Nov 2001.
* A. Kogiantis and L. Ozarow, "Downlink best-effort packet data with multiple antennas," ICC'03, Volume 1, 11–15 May 2003 Page(s):715 – 719.
* K.K. Wong, R.D. Murch and K.B. Letaief, "Performance Enhancement of Multiuser MIMO Wireless Communication Systems," IEEE Transactions on Communications, Vol 50 No 12, Dec. 2002, pp 1960 –1970
* Further benefits of the revised definition of CQI for TxAA, 3GPP TSG-R1-030130, San Diego, 7–10 Jan.
==Further reading==
* [http://www.eurecom.fr/~gesbert/papers/TutorialMUMIMOv3.pdf D. Gesbert, M. Kountouris, R W. Heath Jr., C. B. Chae, T. Sälzer, From Single User to Multiuser Communications: Shifting the MIMO Paradigm]
* [http://www.ll.mit.edu/asap/asap_04/DAY1/14_PR_POOR.PDF V. Poor, Multiuser MIMO Systems]
*[https://web.archive.org/web/20110722145413/http://www.ieee.li/pdf/viewgraphs/wireless_mimo.pdf Dr. Jacob Sharony, "Introduction to Wireless MIMO – Theory and Applications", IEEE LI, 15 November 2006]
*[http://www.ll.mit.edu/publications/journal/pdf/vol15_no1/15_1mimo.pdf Daniel W. Bliss, Keith W. Forsythe, and Amanda M. Chan, MIMO Wireless Communication, VOLUME 15, NUMBER 1, 2005 LINCOLN LABORATORY JOURNAL]
[[Category:IEEE 802]]
[[Category:Information theory]]
|