The present invention relates to a wireless communication system using MIMO (Multi-Input Multi-Output) in mobile communication, and particularly relates to a system for increasing data transmission rate and data transmission capacity on a cell end.
In recent years, there is a rapid increase in a rate and a capacity of packet data traffic in a mobile communication cellular system, particularly in downlink. This makes it necessary to develop a wireless transmission method for realizing high efficiency and large capacity. A method of providing high speed transmission using adaptive modulation or using multilevel modulation preferentially for a terminal user near a base station and present in good propagation environment has been developed and worked (see, for example, Non-patent Document 1).
There is also conventionally known a method of preventing crosstalk in a CDMA (Code Division Multiple Access) system by transmitting same signals using the same code from two base stations using soft handover at the time of a handover from a cell 1 to a cell 2 (see, for example, Patent Document 1).
Moreover, there is proposed an MBMS method for improving characteristics by similarly transmitting the same data from two base stations corresponding to two cells, respectively, and selectively receiving the data (see, for example, Non-Patent Document 2).
Furthermore, there is proposed a MIMO method for realizing high efficiency propagation in multipath environment by transmitting different information to respective transmitting antennas between a transmitter including a plurality of antennas and a receiver including a plurality of antennas (see, for example, Patent Document 2).
There is further proposed transmission diversity in a cellular wireless communication system (see, for example, Patent Document 3). A system proposed performs transmission diversity by allocating different orthogonal codes to a first base station and a second base station, respectively.
Japanese Patent Application Laid-Open (JP-A) No. 6-169485
JP-A-2005-176376
JP-A-2004-64240
[Non-Patent Document 1]
Umesh, Moon, Ishii, and Nakamura, “Selective Combining for W-CDMA Multimedia Broadcast Multicast Service (MBMS)”, IEICE Conference, B-5-148, 2004 March
3GPP, “Physical Layer Aspects of UTRA High Speed Downlink Packet Access”, Chapter 6.2 (page 12), TR25-848
The adaptive modulation has the following problem. High speed transmission is ensured for a user terminal near a base station and present in good propagation environment using multilevel modulation or the like, but not for a user terminal in a bad propagation line state such as a user terminal located on a cell end far from a base station.
It is an object of the present invention to provide a MIMO wireless communication system and a MIMO wireless communication method by a plurality of base stations and a mobile station capable of relaxing a reduction in a transmission rate on a cell end far from each base station and capable of ensuring a high transmission rate for the mobile station irrespectively of a distance of the mobile station from each base station.
To solve the problem, a first system according to the present invention includes: a plurality of base stations each of which includes a transmission data selecting unit selecting wireless transmission data from among data transmitted from a network and to be communicated with a single mobile station in a MIMO transmission or reception state (MIMO handover); and a mobile station that includes a MIMO channel separating unit separating signals using transmission line characteristics of the respective base stations during the MIMO handover; a data demodulating unit demodulating and decoding the signals from the respective base stations after causing the MIMO channel separating unit to operate to separate the signals from the respective base stations received via respective antennas; and a MIMO data combining unit combining the signals of the plurality of base station, wherein the mobile station or each of the base stations includes a transmission line state estimating unit estimating a transmission line state between the mobile station and each of the base stations, and the mobile station or each of the base stations includes a control unit determining whether to perform the MIMO handover based on the estimated transmission line state.
Furthermore, a second system according to the present invention includes: a radio network controller including a transmission data distributing unit distributing data transmitted from a network and to be communicated with a single mobile station to a plurality of communicable base stations in a MIMO handover state; the plurality of base stations controlled by the radio network controller; and a mobile station that includes a MIMO channel separating unit separating signals using transmission line characteristics of the respective base stations during the MIMO handover; a data demodulating unit demodulating and decoding the signals from the respective base stations after causing the MIMO channel separating unit to operate to separate the signals from the respective base stations received via respective antennas; and a MIMO data combining unit combining the signals of the plurality of base station, wherein the mobile station or each of the base stations includes a transmission line state estimating unit estimating a transmission line state between the mobile station and each of the base stations, and the radio network controller includes a control unit determining whether to perform the MIMO handover based on the estimated transmission line state.
According to the present invention, it is possible to relax a reduction in transmission rate on a cell end far from each base station and ensure high transmission rate for the mobile station irrespectively of a distance of the mobile station from each base station. It is also possible to realize transmission with higher efficiency by performing MIMO handover.
11, 41, 61, 101, 301, 501 first base station
12, 42, 62, 113, 313, 513 second base station
21,51,71,91, 121,321, 521 mobile station
31, 347 radio network controller
63 third base station
64 fourth base station
81 base station
82 first sector antenna
83 second sector antenna
84 third sector antenna
85 first sector
86 second sector
86 third sector
102, 302, 502 base station network communication unit
103, 503 transmission data selecting unit
104, 304, 504 base station channel coding unit
105, 305, 505 base station modulating unit
106, 306, 506 base station transmitting unit
107, 307, 507 base station control unit
108, 308, 508 first base station transmitting antenna
109, 309, 509 first base station receiving antenna
110, 310, 510 base station receiving unit
111, 311, 511 base station demodulating unit
112, 312, 512 base station channel decoding unit
113, 313, 513 base station demodulating unit
114, 314, 514 second base station transmitting antenna
115, 315, 515 radio wave from first base station to first antenna
116, 316, 516 radio wave from second base station to first antenna
117, 317, 517 radio wave from first base station to second antenna
118, 318, 518 radio wave from second base station to second antenna
119, 319, 519 upstream signal
120, 320, 520 transmission line
121, 321, 521 mobile station
122, 322, 522 first receiving antenna
123, 323, 523 second receiving antenna
124, 324, 524 first antenna receiving unit
125, 325, 525 second antenna receiving unit
126, 326, 526 MIMO channel separating unit
127, 327, 527 transmission line quality estimating unit
128, 328, 528 first base station data demodulating unit
129, 329, 529 mobile station demodulating unit
130, 330, 530 mobile station channel decoding unit
131, 331, 531 second base station data demodulating unit
132, 332, 532 mobile station demodulating unit
133, 333 mobile station channel decoding unit
134, 334, 534 MIMO data combining unit
135, 335, 535 data output processing unit 135
136, 336, 536 mobile station control unit
137, 138, 337, 338, 537, 538 external output device
139, 140, 339, 340, 539, 540 external input device
141, 341, 541 data coding unit
142, 342, 542 mobile station channel coding unit
143, 343, 543 mobile station modulating unit
144, 344, 545 mobile station transmitting unit
145, 345, 545 mobile station transmitting antenna
146, 346, 546 second base station receiving antenna
348 control station network communication unit
349 data distributing unit
350 control station control unit
351 data combining unit
Best modes for carrying out the present invention will be described hereinafter with reference to the drawings.
Referring to
While the second base station operates similarly to the first base station, transmission data selecting units of the respective base stations select different data so as to transmit all data as a whole. The second base station may be either different from or the same as the first base station in a data rate and a modulation method such as QPSK or 16 QAM, depending on a transmission line state. The second base station is the same as the first base station in a modulation method such as CDMA or OFDM. If the modulation method is the CDMA, the second base station has the same spreading code as that of the first base station. If the modulation method is the OFDM, the second base station has the same frequency band (performs the same MIMO transmission) as that of the first base station. The second base station transmits a coded and modulated signal from a second base station transmitting antenna 114. At this time, a frequency band of the transmission signal from the first base station is the same as that from the second base station, so that the first and second base station transmit the signals simultaneously.
After these signals are transmitted via a transmission line 120 and influenced by the transmission line 120, the mobile station 121 receives a combined wave of a signal 115 from the first base station and a signal 116 from the second base station via a first receiving antenna 122 and a first antenna receiving unit 124 including an AD converter and the like, and also receives a combined wave of a signal 117 from the first base station and a signal 118 from the second base station via a second receiving antenna 123 and a second antenna receiving unit 125 (see
During a MIMO handover, a mobile station control unit 136 controls a MIMO channel separating unit 126 that separates the signals using respective transmission line characteristics or the like to operate. The MIMO channel separating unit 126 separates the signals received via the respective antennas and transmitted from the respective base stations, and eliminates the influence of the propagation lines from the separated signals. In a first base station data demodulating unit 128, a mobile station demodulating unit 129 subjects the signal from the first base station to demodulation such as multilevel modulation, CDMA or OFDM, and a mobile station channel decoding unit 130 performs code decoding. Further, in a second base station data demodulating unit 131, a mobile station demodulating unit 132 subjects the signal from the second base station to similar demodulation, and a mobile station channel decoding unit 133 decodes the demodulated signal. A MIMO data combining unit 134 constituted by a buffer and the like combines these signals, a data output processing unit 135 performs an image processing, a voice processing and the like on the combined signal, and the resultant signal is output from external output devices 137 and 138.
Moreover, the mobile station control unit 136 controls a transmission line quality estimating unit 127 to estimate a transmission line state between each of the base stations and the mobile station such as a signal-to-noise ratio (SNR), a pilot power, a delay spread representing a multipath state, and a path delay, to determine whether to perform a MIMO handover, and to request each of the base stations to transmit data to the mobile station. Further, the mobile station control unit adds a control signal, e.g., ACK or NACK, representing whether reception of reception data is normally completed, to an upstream signal.
Input signals from external input devices 139 and 140 are subjected to voice coding, an image processing, and the like by a data coding unit 141, coded by a mobile station channel coding unit 142, subjected to modulation such as multilevel modulation, CDMA or OFDM by a mobile station modulating unit 143, and transmitted by a mobile station transmitting unit including a DA converter and the like and a mobile station transmitting antenna 145.
In the first embodiment, it is assumed that the transmission line state between the first base station and the mobile station is better than that between the second base station and the mobile station. In this case, in the first base station, a first base station receiving antenna 109 and a base station receiving unit 110 that includes an AD converter and the like receive an upstream signal 119, a base station demodulating unit 111 performs demodulation such as multilevel modulation, CDMA or OFDM, on the upstream signal 119, a base station channel decoding unit 112 performs channel decoding on the demodulated upstream signal, and the resultant signal is transmitted to the network from the base station network communication unit 102. Further, the base station control unit 107 exercises a control such as retransmission of a downstream data signal using a control signal included in the upstream signal. Likewise, in the second base station, a second base station receiving antenna 146 receives an upstream signal. However, in the second base station, the base station control unit 107 exercises a control to retransmit a downstream signal using an upstream control signal but does not perform an upstream data signal processing.
If only the first base station transmits data to this mobile station in a non-MIMO handover state, then the base station control unit of the first base station controls the transmission data selecting unit to select all data on this mobile station, and the signal is transmitted after being coded and modulated. However, the base station control unit of the second base station does not control the transmission data control unit to select data on this mobile station, and the second base station does not hold a data communication with this mobile station.
The mobile station receives the signal only from the first base station. The mobile station can, therefore, perform reception diversity using the first and second antennas or reduce power consumption by using only the first antenna and the first antenna receiving unit and stopping the second antenna and the second antenna receiving unit. Alternatively, the transmission line quality estimating unit can be located in each of the first and second base stations.
While the mobile station control unit makes a determination as to whether to perform the MIMO handover in the first embodiment, the base station control units can make such determinations.
The mobile station control unit measures the signal-to-noise ratio (SNR) representing the propagation line quality between the mobile station and each of M peripheral base stations, the delay spread representing the spread of the propagation line and the like (S101). The mobile station control unit notifies each of the base stations of a measurement result and transmits an inquiry to each of the base stations (S102). Each base station control unit exercises a control to select adaptive modulation corresponding to its transmission line quality, and notifies the mobile station of a modulation method and a communicable data rate DataRate (i) (i=1, 2, . . . M) (S103). The mobile station rearranges the data rates in a descending order of values or rearranges the data rates while adding priorities to the respective base stations in a descending order, and creates a matrix BTS_max(j) of the maximum data rate DataRate_max(j) and the base station related to the maximum data rate DataRate_max(j) (S104).
The mobile station control unit determines whether the maximum data rate DataRate_max(1) is higher than a preset data rate expected value DataRateExpect (S105). If the maximum data rate DataRate_max(1) is higher, the mobile station control unit decides to communicate only with the base station (BTS_max(1)) communicable at the maximum data rate (S111). If the maximum data rate DataRate_max(1) is not higher, then the mobile station control unit adds possible data rates of the respective base stations in descending order, calculates the number k of base stations satisfying the data rate expected value (S106, S107, and S109), and decides to hold MIMO handover communication with top k base stations (S110). However, if the number k exceeds the number N of MIMO antennas owned by the mobile station, the mobile station control unit decides to hold MIMO handover communication with top N base stations (S108 and S112).
The “priorities of the base stations” herein are often dynamic ones depending on whether or not the measured transmission line qualities and temporal changes in possible data rates notified by the respective base stations are improving. Furthermore, the priorities often include those set fixedly depending on the base stations or the mobile station such as capacities of the respective base stations or designation of the mobile station user under contract.
Moreover, the processing can be accelerated by mobile station's determination based on the measured propagation line qualities without inquires about possible data rates to the respective base stations. With this method, the mobile station control unit makes determinations, notifies the respective base stations of the determinations using control signals, and starts communication. Alternatively, the mobile station can estimate the propagation line qualities and notify the respective base stations of the estimated propagation line qualities, and the base stations can make determinations while communication with one another. Alternatively, if the radio network controller mediates, the control station control unit can make this determination. In another alternative, each base station can estimate the propagation line quality using an upstream signal pilot.
Operation performed by the transmission data selecting unit (“103” of
In case of (a) in
With this method, the individual base stations can communicate with data senders in the network independently. This can avoid complicating communication process in the network.
In case of (b) in
Moreover, it is obvious to distribute all the data to a single base station in a communication with the single base station having a good propagation line quality.
Referring to
While the second base station operates similarly to the first base station, an amount of data distributed to the second base station may be either the same as or different from that distributed to the first base station depending on the transmission line state. The second base station may be either the same as or different from the first base station in a data rate and a modulation method such as QPSK or 16 QAM, depending on the transmission line state. The second base station is the same as the first base station in a modulation method such as CDMA or OFDM. If the modulation method is the CDMA, the second base station has the same spreading code as that of the first base station. If the modulation method is the OFDM, the second base station has the same frequency band (performs the same MIMO transmission) as that of the first base station. The second base station transmits a coded and modulated signal from a second base station transmitting antenna 314. At this time, a frequency band of the transmission signal from the first base station is the same as that from the second base station, so that the first and second base station transmit the signals simultaneously.
After these signals are transmitted via a transmission line 320 and influenced by the transmission line 320, the mobile station 321 receives a combined wave of a signal 315 from the first base station and a signal 316 from the second base station via a first receiving antenna 322 and a first antenna receiving unit 324 including an AD converter and the like, and also receives a combined wave of a signal 317 from the first base station and a signal 318 from the second base station via a second receiving antenna 323 and a second antenna receiving unit 325 (see
During a MIMO handover, a mobile station control unit 336 controls a MIMO channel separating unit 326 constituted by MMSE, QR separation or the like to operate. The MIMO channel separating unit 326 separates the signals received via the respective antennas and transmitted from the respective base stations, and eliminates the influence of the propagation line from the separated signals. In a first base station data demodulating unit 328, a mobile station demodulating unit 329 subjects the signal from the first base station to demodulation such as multilevel modulation, CDMA or OFDM, and a mobile station channel decoding unit 330 performs code decoding. Likewise, in a second base station data demodulating unit 331, a mobile station demodulating unit 332 subjects the signal from the second base station to similar demodulation, and a mobile station channel decoding unit 333 decodes the demodulated signal. A MIMO data combining unit 334 constituted by a buffer and the like combines these signals, a data output processing unit 335 performs an image processing, a voice processing and the like on the combined signal, and the resultant signal is output from external output devices 337 and 338.
Moreover, the mobile station control unit 336 controls a transmission line quality estimating unit 327 to estimate a transmission line state between each of the first and second base stations and the mobile station such as a signal-to-noise ratio (SNR), a delay spread representing a multipath state, and to notify each of the base stations of estimation results. Further, the mobile station control unit adds a control signal, e.g., ACK or NACK, representing whether reception of reception data is normally completed, to an upstream signal.
Input signals from external input devices 339 and 340 are subjected to voice coding, an image processing, and the like by a data coding unit 341, coded by a mobile station channel coding unit 342, subjected to modulation such as multilevel modulation, CDMA or OFDM by a mobile station modulating unit 343, and transmitted by a mobile station transmitting unit including a DA converter and the like and a mobile station transmitting antenna 345.
In the first base station, a first base station receiving antenna 309 and a base station receiving unit 310 that includes an AD converter and the like receive an upstream signal 319, a base station demodulating unit 313 performs demodulation such as multilevel modulation, CDMA or OFDM, on the upstream signal 319, a base station channel decoding unit 312 performs channel decoding on the demodulated upstream signal, and the resultant signal is transmitted to the radio network controller from the base station network communication unit. Further, the base station control unit 307 exercises a control such as retransmission of a downstream signal using a control signal included in the upstream signal. Likewise, in the second base station, a second base station receiving antenna 346 receives and signal processes an upstream signal, and data transmission and retransmission control for transmitting or retransmitting data to the radio network controller is exerted. In the radio network controller, the data combining unit 351 selectively combines these pieces of data according to the transmission line states and the combined data is transmitted to the network from the control station network communication unit.
In a non-MIMO handover state, the control station control unit controls the data distributing unit to transmit data only to the first base station. Therefore, the first base station transmits data to the mobile station but the second base station does not communicate data with the mobile station.
The mobile station receives the signal only from the first base station. The mobile station can, therefore, perform reception diversity using the first and second antennas or reduce power consumption by using only the first antenna and the first antenna receiving unit and stopping the second antenna and the second antenna receiving unit. Alternatively, the transmission line quality estimating unit can be located in each of the first and second base stations.
Furthermore, an upstream data signal processing in the base station having a bad transmission line state can be stopped.
(a) in
(b) in
With this method, each base station needs to modulate and code even non-transmitted data, and the base station needs to buffer pre-decoded data if data transmission from each base station has a delay, thus making processing complicated. Nevertheless, characteristics are often improved by the difference in transmission line characteristics between each base station and the mobile station and the effect of codes. This improved method will be described in a third embodiment below.
Referring to
While the second base station operates similarly to the first base station, transmission data selecting units of the respective base stations select different data so as to transmit all data as a whole. Further, the coded and modulated signal is transmitted from a second base station transmitting antenna 514.
After these signals are transmitted via a transmission line 520 and influenced by the transmission line 520, the mobile station 521 receives a combined wave of a signal 515 from the first base station and a signal 516 from the second base station via a first receiving antenna 522 and a first antenna receiving unit 524 including an AD converter and the like, and also receives a combined wave of a signal 517 from the first base station and a signal 518 from the second base station via a second receiving antenna 523 and a second antenna receiving unit 525 (see
During a MIMO handover, a mobile station control unit 536 controls a MIMO channel separating unit 526 constituted by MMSE, QR separation or the like to operate. The MIMO channel separating unit 526 separates the signals received via the respective antennas and transmitted from the respective base stations, and eliminates the influence of the propagation lines from the separated signals. In a first base station data demodulating unit 528, a mobile station demodulating unit 529 subjects the signal from the first base station to demodulation such as multilevel modulation, CDMA or OFDM. Further, in a second base station data demodulating unit 531, a mobile station demodulating unit 532 subjects the signal from the second base station to similar demodulation. A MIMO data combining unit 534 constituted by buffer and the like combines these signals, a mobile station channel decoding unit 530 performs channel decoding, a data output processing unit 535 performs an image processing, a voice processing and the like on the combined signal, and the resultant signal is output from external output devices 537 and 538.
A transmission line quality estimating unit 527, external input devices 539 and 540, a data coding unit 541, a mobile station channel coding unit 542, a mobile station modulating unit 543, a mobile station transmitting antenna 545, an upstream signal 519, a first base station receiving antenna 509, a base station receiving unit 510, a base station demodulating unit 511, a base station channel decoding unit 512, and a second base station receiving antenna 546 operate similarly to those shown in
In this manner, even if the system is originally MIMO system, the MIMO handover can be applied to the system.
Priorities of the base stations herein can be obtained by adding information as to whether or not the measured transmission line qualities and temporal changes of the transmission line qualities are improving. Alternatively, the priorities can be obtained based on data rates at which the respective base station can communicate instead of the transmission line quality. Furthermore, the priorities often include those set fixedly depending on the base stations or the mobile station such as capacities of the respective base stations or designation of the mobile station user under contract.
It is obvious that the radio network controller can perform such data holding, if the radio network controller is present. Furthermore, the control unit may be included in the mobile station, the radio network controller, or each base station.
In the mobile station, a transmission line quality estimating unit detects transmission line qualities between a plurality of sector antennas and the mobile station, respectively, and notifies the base station of the transmission line qualities. The mobile station performs MIMO transmission or reception according to an instruction from the base station.
The base station selects one of modulation methods and possible data rates of the first to third sector antennas in response to the notification of the transmission line qualities from the mobile station, selects a combination of sectors necessary to satisfy a data rate expected value for the mobile station, notifies the mobile station of the modulation method, the possible data rate, and the combination of sectors, and performs MIMO transmission or reception.
Alternatively, the base station includes the transmission line quality estimating unit.
The intra-cell MIMO handover as shown in the sixth embodiment can be combined with the MIMO handover (inter-cell MIMO handover) among the base stations according to the first to fifth embodiments.
In a wireless communication system including a plurality of base stations constituting a plurality of sectors and a base station, each base station selects a combination of base stations and sectors so as to obtain a desired transmission data rate from a plurality of sector antennas of a plurality of base stations, distributes data addressed to the single mobile station, and transmits the data by MIMO. The mobile station receives signals from a plurality of sector antennas of a plurality of base stations by MIMO.
In this case, if the intra-cell MIMO handover is easier than the inter-cell MIMO handover and the both handovers are possible and equal in effect, such a selection method of selecting the intra-cell MIMO handover can be executed.
Number | Date | Country | Kind |
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2005-294962 | Oct 2005 | JP | national |