WO2010067419A1 - 無線通信システム及び無線通信方法 - Google Patents
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. Transmission Power Control [TPC] or power classes
- H04W52/04—Transmission power control [TPC]
- H04W52/38—TPC being performed in particular situations
- H04W52/42—TPC being performed in particular situations in systems with time, space, frequency or polarisation diversity
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. Transmission Power Control [TPC] or power classes
- H04W52/04—Transmission power control [TPC]
- H04W52/18—TPC being performed according to specific parameters
- H04W52/24—TPC being performed according to specific parameters using SIR [Signal to Interference Ratio] or other wireless path parameters
- H04W52/241—TPC being performed according to specific parameters using SIR [Signal to Interference Ratio] or other wireless path parameters taking into account channel quality metrics, e.g. SIR, SNR, CIR or Eb/lo
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- the present invention relates to a wireless communication system and a wireless communication method, and more particularly to a wireless communication system and a wireless communication method in which a transmission side derives a transmission weight based on feedback information and performs precoding.
- Non-Patent Document 1 Multiple-Input Multiple-Output
- Non-Patent Document 2 G. J. Foschini, Bell Labs Tech. J, pp. 41-59, Autumn (1996) Andre Bourdoux, Nadia Khaled, VTC 2002-Fall.IEEE 56th pp. 171-174, 1 (2002)
- Non-Patent Document 1 discloses the MIMO technique
- Non-Patent Document 2 discloses the technique for performing transmission-side precoding.
- the frequency utilization efficiency can be improved when the transmitting side has knowledge of the channel than when the transmitting side does not have knowledge of the channel. This is realized by performing appropriate signal processing specialized for the channel based on the channel information obtained by the transmission side.
- the method of deriving the transmission weight specialized for the channel based on the channel information acquired by the transmission side and performing precoding is an effective means for improving the communication performance. If a difference occurs between the used channel and the channel during actual communication, the characteristics deteriorate. Therefore, in order to obtain the stability of the communication system and the effective frequency utilization efficiency improvement, it is necessary to suppress this deterioration. For example, when the channel changes every moment from the time when the weight is derived, the difference between the channel when the weight is derived and the true channel increases with time. As a method of avoiding the deterioration due to this, a method of predicting channel fluctuation, a method of increasing the frequency of feedback, and the like can be considered. However, increasing the frequency of feedback leads to a reduction in effective system throughput. In addition, a method for predicting channel variation may not be appropriate for some applications in terms of mounting difficulty and prediction accuracy.
- the present invention has been devised in view of such problems.
- a feedback loop is formed on the transmission side and the reception side, and the transmission side derives transmission weights based on the feedback information and performs precoding, weight derivation is performed.
- the purpose is to suppress the deterioration of characteristics when the time channel and the channel during communication are different.
- the wireless communication system of the present invention is a wireless communication system in which at least one transmitting wireless communication device and at least one receiving wireless communication device communicate with each other in a feedback loop,
- the transmission-side radio communication device derives a transmission weight including an optimal power distribution for the channel based on feedback of channel information from the reception-side radio communication device, performs communication using the weight, and Has a function of estimating the difference between the channel when the transmission weight is derived and the actual channel, and as the difference between the channel at the time of deriving the transmission weight and the actual channel increases, power distribution is derived as the transmission weight. It is characterized by asymptotically moving from the time value to equal distribution.
- the wireless communication method of the present invention is a wireless communication method using a wireless communication system in which at least one transmitting-side wireless communication device and at least one receiving-side wireless communication device perform communication in a feedback loop.
- the transmission-side radio communication device deriving a transmission weight including an optimal power distribution for the channel based on feedback of channel information from the reception-side radio communication device; and Using the transmitting-side radio communication device and the receiving-side radio communication device to communicate with each other, estimating the difference between the channel when the transmission weight is derived and the actual channel, and the transmission As the difference between the channel at the time of deriving the weight and the actual channel increases, the power distribution is equally distributed from the value at the time of deriving the transmission weight. And having a step of asymptotic with.
- a transmission side derives a transmission weight based on feedback information and performs precoding, it is possible to suppress deterioration in communication characteristics when a channel at the time of weight derivation is different from a true channel.
- FIG. 1 It is a figure showing the outline of the radio
- FIG. 5 is a diagram showing characteristic deterioration when a deviation occurs between a channel used for deriving a transmission weight and a channel during actual communication in a wireless communication system that performs precoding on the transmission side. It is a figure which shows the change of the time correlation coefficient of the channel accompanying a time change. It is a figure which shows the change method of the electric power allocation by the transmission side used with the radio
- 101-103 ... wireless communication device 201 ... wireless communication device (transmission side), 202 ... wireless communication device (receiving side), 301 ... transceiver 302 ... transmitting / receiving antenna, 303 ... analog front end, 304: Digital signal processing unit, 305 ... Transmission / reception signal control unit, 401: Digital signal processing unit, 402... A transmission signal generator, 403 ... transmission weight generation unit, 404... Received signal capturing unit, 405 ... Channel estimation / equalization unit, 406: Data restoration unit.
- the precoding on the transmission side can be divided into an operation for dividing a channel into effective plural streams and an operation for allocating appropriate power to the effective plural streams. This situation is shown in [Formula 1].
- X is a transmission signal after precoding
- S is a signal allocated to a stream formed after precoding
- P is a matrix for performing power distribution on the stream
- Wtx is a transmission weight not including power distribution.
- the present invention is a wireless communication system in which at least one wireless communication device on the transmission side communicates with at least one wireless communication device on the reception side in a feedback loop, and the wireless communication device estimates a channel state.
- a function that feeds back the estimated channel information, and a function that generates a transmission weight from the fed back channel information, and the wireless communication device detects a difference between the channel when the transmission weight is derived and the true channel. It has an estimation function, and the power distribution determined at the time of deriving weights is made asymptotically equal to the power distribution evenly in all streams according to the magnitude of the deviation between the channel at the time of deriving the estimated transmission weight and the true channel. It is characterized by.
- FIG. 1 is a diagram showing an outline of a wireless communication system according to the present invention.
- the wireless communication device 1 includes a plurality of antennas, and the wireless communication devices 2 and 3 include at least one antenna.
- the wireless communication device 1 has a function of improving communication performance with at least one wireless communication device using a transmission weight derived based on feedback information from the receiving side during data transmission.
- FIG. 2 is a diagram showing an outline of a wireless communication system that performs communication using a feedback loop.
- the configuration of the transceiver used in the system of FIG. 2 is shown in FIG. 3, and the digital signal processing unit used in the transceiver of FIG. 3 is shown in FIG.
- the transmitting-side wireless communication device 201 sends a feedback request, sound estimation for channel estimation, and transmission data to the receiving-side wireless communication device 202.
- transmission precoding can be used based on the channel information.
- the reception-side wireless communication device has a function of estimating a channel, and sends the obtained channel information as feedback information to the transmission-side wireless communication device.
- FIG. 5 shows a procedure for sending a feedback request from the transmission side and acquiring feedback information. Note that the number of wireless communication devices that perform communication using a feedback loop and the number of antennas included in the wireless communication device are not limited to those shown in FIGS.
- the transmission weight is divided into a matrix P for performing power distribution and another portion Wtx. Then, as the deviation between the channel and the true channel at the time of weight calculation increases, the power distribution is made asymptotically uniform in all streams.
- the average power of all streams is Ptotal / Ns where Ns is the number of transmission streams and Ptotal is the total transmission power.
- the present method corresponds to making the matrix P asymptotic to the unit matrix I as the shift between the channel and the true channel at the time of weight calculation increases.
- eigenmode transmission using the right singular vector of the channel matrix is known as an optimal transmission method.
- the right singular vector is used as a transmission weight that does not include power distribution, and power is distributed to a plurality of orthogonalized effective streams to achieve an optimal transmission capacity.
- a power distribution method a method using the water injection theorem is theoretically optimal. However, for implementation, a minimum error rate specification or simplified power distribution is used.
- the relationship between the received signal, transmission weight, channel, and transmission signal when performing eigenmode transmission is shown in [Formula 2].
- Y is a received signal
- H is a channel matrix
- V is a matrix in which the right singular vectors of channels referred to at the time of transmission weight derivation are arranged
- S is a signal assigned to a stream formed after precoding
- P is This is a matrix for distributing power to a stream.
- V which is a transmission weight not including power distribution
- V is a unitary matrix, so precoding with V does not contribute to channel capacity.
- the processing on the receiving side is simplified by orthogonalizing the streams on the transmitting side and sending them.
- channel capacity can be maximized and communication performance can be improved.
- the transmission weight in this case is a weight specific to the channel H ′ at the time of transmission weight derivation, and the characteristics deteriorate when a deviation occurs between the true channels H and H ′.
- FIG. 6 shows a comparison between the communication capacity when the transmission weight derivation channel is different from the true channel and the communication capacity when precoding is not performed.
- the magnitude of the deviation can be estimated using the statistical time correlation characteristic of the channel as an index. That is, by characterizing the time variation characteristic of the channel with the maximum Doppler frequency fd, it is possible to estimate the difference between H ′ and H from the time t that has elapsed since the transmission weight was derived.
- FIG. 7 shows how the channel time correlation coefficient fluctuates when the Jake's model is used.
- the horizontal axis represents the normalized Doppler frequency
- the vertical axis represents the absolute value of the correlation coefficient.
- fdtf 20 Hz
- the method of the present invention is used for this application, even if the channel information is updated at an arbitrary timing slower than 20 msec, the characteristics are not deteriorated as compared with the case without precoding.
- the rate of change of the power distribution is the follow-up time of AGC (automatic variable gain control), It must be sufficiently slower than the channel tracking time of the receiving system. If the maximum Doppler frequency fd is a very large value and if this method is used and significant deterioration occurs in received signal processing, the characteristic deterioration can be prevented by changing P in a rectangular manner. This is shown in FIG. In FIG. 8, the frame format is such that one pilot is inserted into 5 symbols.
- this wireless communication system performs channel estimation only in the pilot and demodulates the subsequent 4 data symbols using the result, and if P is changed linearly, the channel estimation error will be in the subsequent symbols. growing. Therefore, in an application where this estimation error cannot be tolerated, it is effective to change P in a rectangular manner in accordance with the pilot period.
- This method of changing P in a rectangular manner is particularly effective in a system that performs demodulation in block units such as OFDM (Orthogonal Frequency Division Multiplexing). For example, in OFDM, if an effective channel including a transmission weight changes in a time shorter than the OFDM symbol length, characteristic deterioration occurs. Therefore, it is desirable to change P in a time period that is an integral multiple of the OFDM symbol length. This is shown in FIG.
- the sample points in the frequency domain are referred to as subcarriers following the case of the multicarrier communication system.
- a method of frequently increasing the data communication efficiency by transmitting pilot signals at constant subcarrier intervals instead of transmitting pilot signals for all subcarriers is frequently used.
- channel information obtained using the pilot signal is only for some subcarriers, and interpolation is required to obtain channel information for the remaining subcarriers.
- the estimated shift of the channel H ′ from the new channel H becomes larger in the subcarriers that do not transmit pilot signals.
- the magnitude of this deviation increases with the distance ⁇ f from the subcarrier that sends the pilot.
- the magnitude ⁇ e of the difference between H ′ and H increases as the distance from the pilot subcarrier increases. Therefore, when power distribution is performed using the method of the present invention, as shown in FIG. 12, it is possible to suppress deterioration in characteristics of the wireless communication system by equalizing power distribution as ⁇ f increases. .
- the channel estimation error may increase at the end or center of the occupied frequency band in addition to the distance from the pilot subcarrier. When it is known that the channel estimation error becomes large in such a specific part, the power distribution in that part may be made more uniform to suppress deterioration.
- the subcarrier signal-to-noise ratio or the RMS (Root Mean Square) delay spread D obtained from the delay profile may be used. This is shown in [Formula 4].
- weights are derived sequentially using the steepest descent method or conjugate gradient method such as LMS (Least Mean Square) or RLS (Recursive Last Square), or when weights are derived by repeating unitary transformation
- LMS Least Mean Square
- RLS Recursive Last Square
- a transmission side derives a transmission weight based on feedback information and performs precoding, it is possible to suppress deterioration in communication characteristics when a channel at the time of weight derivation is different from a true channel.
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Abstract
Description
G. J. Foschini, Bell Labs Tech. J, pp. 41-59, Autumn (1996) Andre Bourdoux, Nadia Khaled, VTC 2002-Fall. IEEE 56th pp. 171-174, 1(2002)
201・・・無線通信機(送信側)、
202・・・無線通信機(受信側)、
301・・・送受信機、
302・・・送受信アンテナ、
303・・・アナログフロントエンド、
304・・・ディジタル信号処理部、
305・・・送受信信号制御部、
401・・・ディジタル信号処理部、
402・・・送信信号生成部、
403・・・送信ウェイト生成部、
404・・・受信信号捕捉部、
405・・・チャネル推定/等化部、
406・・・データ復元部。
Claims (14)
- 少なくとも一つの送信側の無線通信機と、少なくとも一つの受信側の無線通信機とがフィードバックループを成して互いに通信を行なう無線通信システムであって、
前記送信側の無線通信機は、前記受信側の無線通信機からのチャネル情報のフィードバックに基づいて、そのチャネルに最適な電力配分を含む送信ウェイトを導出し、そのウェイトを用いて通信を行ない、かつ、前記送信ウェイトを導出した際のチャネルと実際のチャネルとの違いを推定する機能を有し、
送信ウェイト導出時のチャネルと実際のチャネルとの違いが大きくなるにつれて、電力配分を前記送信ウェイト導出時の値から等分配へと漸近させる
ことを特徴とする無線通信システム。 - 請求項1において、
前記送信ウェイトは特異値展開を用いて得られる右特異ベクトルを用いた行列である
ことを特徴とする無線通信システム。 - 請求項1において、
前記電力配分は、注水定理およびBER最小規定を含む複数の基準のいずれか1つに基づいて実行される
ことを特徴とする無線通信システム。 - 請求項1において、
前記送信ウェイト導出時のチャネルと実際のチャネルの違いは、チャネルの時間変動であり、送信ウェイト導出時のチャネルと実際のチャネルの違いの大きさを推定する方法は最大ドップラ周波数を用いて表した時間相関特性に基づいて推定する方法である
ことを特徴とする無線通信システム。 - 請求項1において、
前記電力配分を送信ウェイト導出時の値から等分配へと漸近させる方法は時間を変数とする任意の関数と最大ドップラ周波数に基づいて決定される
ことを特徴とする無線通信システム。 - 請求項1において、
前記電力配分を送信ウェイト導出時の値から等分配へと漸近させる方法は、受信側が伝搬路の変動に追従するために送信されるパイロット信号の周期の整数倍で矩形的に変化する
ことを特徴とする無線通信システム。 - 請求項1において、
前記電力配分を送信ウェイト導出時の値から等分配へと漸近させる方法は、OFDMシンボル長の整数倍で矩形的に変化する
ことを特徴とする無線通信システム。 - 少なくとも一つの送信側の無線通信機と、少なくとも一つの受信側の無線通信機とがフィードバックループを成して通信を行なう無線通信システムを用いた無線通信方法であって、
前記送信側の無線通信機が前記受信側の無線通信機からのチャネル情報のフィードバックに基づいて、そのチャネルに最適な電力配分を含む送信ウェイトを導出するステップと、
前記送信ウェイトを用いて前記送信側の無線通信機と前記受信側の無線通信機とが互いに通信を行なうステップと、
前記送信ウェイトを導出した際のチャネルと実際のチャネルとの違いを推定するステップと、
前記送信ウェイト導出時のチャネルと実際のチャネルとの違いが大きくなるにつれて、電力配分を前記送信ウェイト導出時の値から等分配へと漸近させるステップと
を有することを特徴とする無線通信方法。 - 請求項8において、
前記送信ウェイトは特異値展開を用いて得られる右特異ベクトルを用いた行列である
ことを特徴とする無線通信方法。 - 請求項8において、
前記電力配分は、注水定理およびBER最小規定を含む複数の基準のいずれか1つに基づいて実行される
ことを特徴とする無線通信方法。 - 請求項8において、
前記送信ウェイト導出時のチャネルと実際のチャネルの違いは、チャネルの時間変動であり、送信ウェイト導出時のチャネルと実際のチャネルの違いの大きさを推定する方法は最大ドップラ周波数を用いて表した時間相関特性に基づいて推定する方法である
ことを特徴とする無線通信方法。 - 請求項8において、
前記電力配分を送信ウェイト導出時の値から等分配へと漸近させる方法は時間を変数とする任意の関数と最大ドップラ周波数に基づいて決定される
ことを特徴とする無線通信方法。 - 請求項8において、
前記電力配分を送信ウェイト導出時の値から等分配へと漸近させる方法は、受信側が伝搬路の変動に追従するために送信されるパイロット信号の周期の整数倍で矩形的に変化する
ことを特徴とする無線通信方法。 - 請求項8において、
前記電力配分を送信ウェイト導出時の値から等分配へと漸近させる方法は、OFDMシンボル長の整数倍で矩形的に変化する
ことを特徴とする無線通信方法。
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US11451275B2 (en) | 2004-04-02 | 2022-09-20 | Rearden, Llc | System and method for distributed antenna wireless communications |
Families Citing this family (4)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US8830918B2 (en) | 2009-03-16 | 2014-09-09 | Interdigital Patent Holdings, Inc. | Method and apparatus for performing uplink transmit diversity |
WO2012109529A1 (en) | 2011-02-11 | 2012-08-16 | Interdigital Patent Holdings, Inc. | Method and apparatus for uplink closed loop transmit diversity transmission initial access |
US8780838B2 (en) * | 2011-11-18 | 2014-07-15 | Vixs Systems, Inc. | Carrier tracking without pilots |
US9549406B1 (en) * | 2015-09-14 | 2017-01-17 | Elwha Llc | Automatically adjustable radiofrequency link |
Citations (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JP2006238215A (ja) * | 2005-02-25 | 2006-09-07 | Sony Corp | 無線通信装置及び無線通信方法 |
JP2007036403A (ja) * | 2005-07-22 | 2007-02-08 | Nippon Telegr & Teleph Corp <Ntt> | 空間多重送信装置および送信方法 |
Family Cites Families (9)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US7327795B2 (en) * | 2003-03-31 | 2008-02-05 | Vecima Networks Inc. | System and method for wireless communication systems |
US7242724B2 (en) * | 2003-07-16 | 2007-07-10 | Lucent Technologies Inc. | Method and apparatus for transmitting signals in a multi-antenna mobile communications system that compensates for channel variations |
KR101050603B1 (ko) * | 2004-06-23 | 2011-07-19 | 삼성전자주식회사 | 무선 통신 시스템에서 다중 안테나를 이용한 패킷 데이터송/수신 장치 및 방법 |
KR100705448B1 (ko) * | 2005-12-09 | 2007-04-09 | 한국전자통신연구원 | 다중 안테나로 구성된 ofdm에서 채널 정보 및 코드북을이용한 송신 전력 할당 방법 및 장치 |
US7702029B2 (en) * | 2006-10-02 | 2010-04-20 | Freescale Semiconductor, Inc. | MIMO precoding enabling spatial multiplexing, power allocation and adaptive modulation and coding |
US7965783B2 (en) * | 2007-01-08 | 2011-06-21 | Cisco Technology, Inc. | Method and system for transmitting data streams via a beamformed MIMO channel |
JP4856195B2 (ja) * | 2007-01-11 | 2012-01-18 | 株式会社日立製作所 | 無線通信装置および無線通信方法 |
JP5138974B2 (ja) * | 2007-04-27 | 2013-02-06 | 株式会社日立製作所 | Mimo無線通信システム、mimo無線通信装置、および、無線通信方法 |
US8718165B2 (en) * | 2007-06-14 | 2014-05-06 | Telefonaktiebolaget L M Ericsson (Publ) | Method and apparatus for controlling multi-antenna transmission in a wireless communication network |
-
2008
- 2008-12-09 WO PCT/JP2008/072320 patent/WO2010067419A1/ja active Application Filing
- 2008-12-09 US US13/133,398 patent/US8184724B2/en not_active Expired - Fee Related
- 2008-12-09 JP JP2010541912A patent/JP5149971B2/ja not_active Expired - Fee Related
Patent Citations (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JP2006238215A (ja) * | 2005-02-25 | 2006-09-07 | Sony Corp | 無線通信装置及び無線通信方法 |
JP2007036403A (ja) * | 2005-07-22 | 2007-02-08 | Nippon Telegr & Teleph Corp <Ntt> | 空間多重送信装置および送信方法 |
Non-Patent Citations (1)
Title |
---|
TAKAHIKO TSUTSUMI ET AL.: "E-SDM Hoshiki ni Okeru Channel Hendo Hosho ni Kansuru Kento", THE INSTITUTE OF ELECTRONICS, INFORMATION AND COMMUNICATION ENGINEERS SOGO TAIKAI KOEN RONBUNSHU, 3 March 2003 (2003-03-03) * |
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Also Published As
Publication number | Publication date |
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JPWO2010067419A1 (ja) | 2012-05-17 |
JP5149971B2 (ja) | 2013-02-20 |
US20110243203A1 (en) | 2011-10-06 |
US8184724B2 (en) | 2012-05-22 |
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