WO2008124535A2 - Uplink multiple-input-multiple-output (mimo) and cooperative mimo transmissions - Google Patents
Uplink multiple-input-multiple-output (mimo) and cooperative mimo transmissions Download PDFInfo
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- WO2008124535A2 WO2008124535A2 PCT/US2008/059307 US2008059307W WO2008124535A2 WO 2008124535 A2 WO2008124535 A2 WO 2008124535A2 US 2008059307 W US2008059307 W US 2008059307W WO 2008124535 A2 WO2008124535 A2 WO 2008124535A2
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- H04B7/00—Radio transmission systems, i.e. using radiation field
- H04B7/02—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
- H04B7/022—Site diversity; Macro-diversity
- H04B7/024—Co-operative use of antennas of several sites, e.g. in co-ordinated multipoint or co-operative multiple-input multiple-output [MIMO] systems
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- H04B7/02—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
- H04B7/022—Site diversity; Macro-diversity
- H04B7/026—Co-operative diversity, e.g. using fixed or mobile stations as relays
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- H04B7/04—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
- H04B7/0404—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas the mobile station comprising multiple antennas, e.g. to provide uplink diversity
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- H04B7/0413—MIMO systems
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- H04B7/0456—Selection of precoding matrices or codebooks, e.g. using matrices antenna weighting
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- H04B7/06—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station
- H04B7/0602—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using antenna switching
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- H04B7/0613—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission
- H04B7/0667—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of delayed versions of same signal
- H04B7/0669—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of delayed versions of same signal using different channel coding between antennas
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- H04B7/0613—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission
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- H04B7/0686—Hybrid systems, i.e. switching and simultaneous transmission
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- H04B7/0697—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using spatial multiplexing
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- H04L25/03006—Arrangements for removing intersymbol interference
- H04L2025/0335—Arrangements for removing intersymbol interference characterised by the type of transmission
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Definitions
- the present invention relates generally to IEEE 802.16 wireless metropolitan networks (WMAN) and the wireless stations (e.g., subscriber station (SS), mobile station (MS), or relay station (RS)) of such a network. More particularly, the present invention relates to uplink multiple-input-multiple-output (MIMO) transmissions or cooperative MIMO transmissions for wireless stations each with more than two transmission antennae.
- WMAN wireless metropolitan networks
- SS subscriber station
- MS mobile station
- RS relay station
- MIMO uplink multiple-input-multiple-output
- MIMO and cooperative MIMO techniques enhance system performance in a wireless communication system (e.g., a cellular network or an IEEE 802.16 network) by exploiting spatial domain freedom and signal processing techniques.
- MIMO and Cooperative MIMO techniques are described, for example, in the article "From theory to practice: an overview of MIMO space-time coded wireless systems," by D. Gesbert, M. Shafi, and D. S. Shiu, IEEEJ. Select. Areas Commun., vol.21, no.3, pp.281-302, April 2003.
- Certain wireless network standards e.g., IEEE 802.16-2004 1 and IEEE 802.16e 2 .
- Other emerging wireless network standards e.g., IEEE 802.16j 3 and IEEE 802.16m 4
- MIMO and cooperative MIMO techniques to improve system performance e.g., high data rate or low BER (bit-error-rate)).
- MIMO techniques are classified into many types, including 1) Spatial multiplexing; 2)
- a MIMO coding matrix is defined which specifies the signals to be transmitted by different antennae at different times and frequency resource.
- the Cooperative MIMO technique is a variation of the MIMO techniques.
- a cooperative MIMO technique multiple wireless stations act as different antennae of a conventional MIMO transmitter to form an antenna array which transmits data simultaneously to a BS.
- the cooperative MIMO technique provides higher uplink spectrum efficiency.
- the effectiveness of a MIMO technique is related to the number of transmission antennae.
- the MIMO coding matrices are defined for different number of transmission antennae, so that a wireless station having only two transmission antennae cannot use STFC matrices defined for a wireless station with three or four antennae under that standard.
- the number of allowed antennae is different.
- the number of supported transmission antennae of a wireless station is one or two.
- Figure 1 shows an exemplary uplink transmission under the IEEE 802.16-2004 standard or the IEEE 802.16e network standard. Under the IEEE 802.16-2004 and IEEE 802.16e standards, uplink transmission is carried out using the following steps:
- a wireless station negotiates with a base station (BS) regarding the uplink MIMO/cooperative MIMO capabilities that may be used in its transmissions;
- the WS sends a request to the BS for uplink transmission when the WS has
- the BS determines the uplink MIMO/cooperative MIMO method (e.g., stream number, STFC matrix, antenna grouping method, and precoding matrix) to be used by the WS, according to the BS 's measurement of its channel, the bandwidth requests of the wireless stations, and other parameters;
- the uplink MIMO/cooperative MIMO method e.g., stream number, STFC matrix, antenna grouping method, and precoding matrix
- the BS informs the WS of the resource allocated to the uplink transmission and the MIMO/cooperative MIMO method for the uplink transmission to be used by the WS;
- the WS maps data symbols and pilot symbols to the allocated resource, according to pre-defined data mapping rules and pilot patterns indicated in the IE, and performs the MIMO/cooperative MIMO transmissions using the allocated resource;
- the BS performs channel estimation and signal detection to detect the received data.
- the MIMO/cooperative MIMO capabilities refer to such capabilities as supported STFC matrices, antenna selection ability, antenna grouping ability, precoding ability, vertical coding ability, or horizontal coding ability.
- subscriber station basic capability request (“SBC-REQ”) and subscriber station basic capability response (“SBC-RSP”) messages are used by a WS and a BS to negotiate the uplink MIMO/cooperative MIMO capabilities.
- FIG. 2 shows the conventional type length value (TLV) field of SBC-REQ and SBC-RSP messages under the IEEE 802.16-2004 and IEEE 802.16e standards.
- Figure 2 shows that the supported uplink MIMO/cooperative MIMO capabilities are: 1) space time transmit diversity (STTD) using two antennae, 2) spatial multiplexing (SM) with vertical coding using two antennae, and 3) single antenna cooperative SM. Therefore, the SBC-REQ and SBC-RSP messages under IEEE 802.16-2004 and IEEE 802.16e standards do not support a WS having more than two antennae.
- STTD space time transmit diversity
- SM spatial multiplexing
- MIMO uplink basic IE (“MIMO UL BasicJE")
- MIMO uplink enhanced IE (“MIMO UL Enhanced lE”
- MIMO UL Enhanced IE encompasses more functions than MIMO UL Basic IE
- the following detailed description uses MIMO_UL_Enhanced_IE to illustrate the present invention.
- Figure 3 shows the format for a MIMO_UL_Enhanced_IE.
- the Matrix_Indicator (MI) field specifies the MIMO method to be used for uplink transmission.
- the MI field specifies an STTD matrix. For a WS with a single antenna, the MI field is ignored.
- the Pilot Pattern Indicator (PI) field specifies a pilot pattern to be used by a WS in an uplink transmission.
- PI Pilot Pattern Indicator
- a WS uses the MIMO coding matrix specified in the IE to perform MIMO encoding, and to map the coded data symbols to the allocated resource with a proper pilot pattern.
- the uplink basic resource unit is named a "tile," one example of which is shown in Figure 4.
- a tile includes 12 subcarriers, four of which encode pilot symbols (i.e., the other eight subcarriers used for encoding data symbols).
- the tile is over three OFDMA symbols in the time domain and over four subcarries in the frequency domain.
- a WS maps the coded data symbols to the tile.
- Figures 5 and 6 show the data mapping rules for 2-antenna STTD under the IEEE 802.16- 2004 standard and the IEEE 802.16e standard, respectively.
- the frequency axis has a higher priority than time axis, (i.e. the coded data symbol first maps to the subcarriers within the tile and then to different OFDM symbols within the tile).
- the pilot patterns used by a WS in the IEEE 802.16-2004 standard and the IEEE 802.16e standard are determined according to:
- pilot pattern A or pilot pattern B of Figure 5 For a WS with one antenna, either pilot pattern A or pilot pattern B of Figure 5 is adopted; the BS determines the pilot pattern to be used by the WS; and
- antenna 1 uses pilot pattern A and antenna 2 uses pilot pattern B (pilot patterns A and B are shown in Figure5); or, (ii) antenna 1 uses pilot pattern C and antenna 2 uses pilot pattern D (pilot patterns C and D are shown in Figure 6); the BS determines the pilot patterns to be used by the WS.
- the data mapping rules and pilot mapping rules under the IEEE 802.16- 2004 and the IEEE 802.16e standards support data and pilot mapping rules for
- MIMO/cooperative MIMO methods for one or two antennae.
- No data mapping and pilot mapping rules are provided to support a WS with more than two antennae.
- step (e) above the BS performs channel estimation and proper signal detection according the uplink MIMO/cooperative MIMO method to detect the signals of WS's in the allocated resource.
- the IEEE 802.16-2004 and IEEE 802.16e standards cannot support uplink MIMO/cooperative MIMO transmissions for a WS with more than two antennae.
- WS 's with three or four antennae have become common place.
- a relay station (RS) in an IEEE 802.16j network typically has three or four antennae (see, e.g., IEEE 802.16J-06/015, "Harmonized Contribution on 802.16j (Mobile Multihop Relay) Usage Models").
- a mobile station may also have three or four antennae.
- current IEEE 802.16- 2004 and IEEE 802.16e standards do not support WS's with three or four antennae, and no implementation is known for uplink MIMO/cooperative MIMO transmissions for a WS with three or four antennae.
- such an implementation is required by the IEEE 802.16j and IEEE 802.16m standards, for example.
- MIMO transmissions for a wireless station with three or four antennas for a wireless station with three or four antennas.
- a method for MIMO uplink communications between a base station and a wireless station.
- the method includes: (a) negotiating between the base station and the wireless station uplink MIMO/cooperative MIMO capabilities, using a message exchange protocol in which a message exchanged comprises a field for specifying uplink MIMO/cooperative MIMO capabilities; (b) the base station receiving a request from the wireless station for data transmission; (c) the base station sending the wireless station an allocated resource and an uplink MIMO/cooperative MIMO method for uplink transmission; (e) the wireless station mapping data symbols to the allocated resource with proper pilot pattern; and (f) the base station detecting the data symbols from the channel.
- the capabilities include spatial multiplexing, space-time-frequency coding, precoding, transmit antenna selection and transmit antenna grouping, vertical coding and horizontal coding.
- uplink precoding vectors and matrices may be provided for wireless stations with two or more antennas.
- the uplink MIMO/cooperative MIMO method includes STFC matrices, SM matrices, and precoding vectors or matrices.
- the allocated resource and the uplink MIMO/cooperative MIMO method may be specified in the reserved bits in MIMO_UL_Enhanced_IE under an IEEE wireless network standard, modified to support wireless stations with more than two antennae.
- the allocated resource and the uplink MIMO/cooperative MIMO method may be specified in a new information element that support wireless stations with more than two antennae.
- the uplink MIMO/cooperative MIMO method may include precoding, antenna grouping and antenna selection matrices.
- more than one MIMO coding matrix may map data symbols to a tile.
- the subcarriers of symbols in the tile are divided into two non-overlapping groups, and the MIMO coding matrices are each associated with a different one of the two non-overlapping groups.
- Figure 1 shows an exemplary uplink transmission under the IEEE 802.16-2004 standard or the IEEE 802.16e network standard.
- FIG. 2 shows the type length value (TLV) field of SBC-REQ and SBC-RSP messages under the IEEE 802.16e standard.
- Figure 3 shows the format of a MIMO_UL_Enhanced_IE.
- Figure 4 shows one example of the uplink basic resource unit "tile.”
- Figure 5 shows the data mapping rules for 2-antenna STTD under the IEEE 802.16- 2004 standard.
- Figure 6 shows the data mapping rules for 2-antenna STTD under the IEEE 802.16e standard.
- Figure 7 shows an exemplary uplink transmission in an IEEE 802.16j network having a wireless station (e.g., a relay station) with three or four antennae, in accordance with one embodiment of the present invention.
- a wireless station e.g., a relay station
- FIG. 8 shows an exemplary uplink transmission in an IEEE 802.16m network (or another wireless network), in which wireless stations with 1-4 antennae are supported, in accordance with one embodiment of the present invention.
- Figure 9 illustrates a procedure for uplink MIMO/cooperative MIMO transmissions, in accordance with one embodiment of the present invention.
- FIG. 10 shows a TLV field defined for SBC-REQ and SBC-RSP messages; the TLV field specifies the MIMO/cooperative MIMO capabilities for a WS having three or four antennae, in accordance with one embodiment of the present invention.
- Figure 11 shows one implementation of a modified MIMO_UL_Enhanced_IE, according to one embodiment of the present invention.
- Figure 12 shows an exemplary MIMO coding matrix mapping table for a WS with three antennae.
- Figure 13 shows an exemplary MIMO coding matrix mapping table for a WS with four antennae.
- Figure 14 shows one exemplary MIMO uplink IE, according to one embodiment of the present invention.
- Figure 15 illustrates overhead reduction achieved by merging the MIMO coding matrix of antenna selection for a 4-antenna WS, with the MIMO coding matrix of spatial multiplexing of a 3 -antenna WS .
- Figure 16 summarizes the supported uplink MIMO/cooperative MIMO methods in the MIMO_UL_Extended_IE of Figure 14.
- Figure 17 shows a cooperative MIMO transmission example that may be supported by the MIMOJJL ExtendedJE in an IEEE 802.16j network.
- Figure 18 shows a cooperative MIMO transmission example, according to one embodiment of the present invention.
- Figure 19 shows one exemplary data mapping rule governing two MIMO coding matrices, in accordance with one embodiment of the present invention.
- the present invention provides, in a wireless network, support for WS 's with more than two antennae.
- Figure 7 shows an exemplary uplink transmission in an IEEE 802.16j network having a WS (e.g., a relay station) with three or four antennae, in accordance with one embodiment of the present invention.
- Figure 8 shows an exemplary uplink transmission in an IEEE 802.16m network (or another wireless network), in which wireless stations with 1-4 antennae are supported, in accordance with one embodiment of the present invention.
- the present invention provides new functions, such as:
- FIG. 9 illustrates a procedure for uplink MIMO/cooperative MIMO transmissions, in accordance with one embodiment of the present invention.
- a WS having three or four antennae negotiates with a BS for uplink MIMO/cooperative MIMO capabilities, using SBC-REQ and SBC-RSP messages, similar to those defined for the IEEE 802.16-2004 and the IEEE 802.16e standards, but including the TLV field shown in Figure 10.
- Figure 10 shows a TLV field defined for SBC-REQ and SBC-RSP messages which specifies the MIMO/cooperative MIMO capabilities for a WS having three or four antennae.
- the TLV field specifies MIMO/cooperative MIMO capabilities including (a) STFC matrices for vertical coding and horizontal coding, (b) antennas selection, (c) antenna grouping, (d) precoding; and (e) MIMO/cooperative capabilities.
- a set bit i.e., bit value ' 1 '
- a reset bit i.e., bit value O'
- bit #11 is set by the WS to inform the BS that the WS can support an uplink codebook-based precoding.
- MIMO coding matrices for uplink MIMO/cooperative MIMO transmissions defined for a WS with three or four antennas. Therefore, new MIMO coding matrices may be developed. Alternatively, the MIMO coding matrices defined for downlink transmissions under the IEEE 802.16e standard may be used. In one embodiment of the present invention, MIMO coding matrices defined for downlink transmissions under the IEEE 802.16e standard are used. For example, for SM, the MIMO coding matrices for a WS with three or four antennae are:
- the MIMO coding matrices for a WS with three antennas are:
- the MIMO coding matrices for a WS with four antennae are:
- the MIMO coding matrices for a WS with two antennas are:
- the MIMO coding matrices for a WS with three antennae are:
- the MIMO coding matrices for a WS with four antennae are
- the WS sends a request to the BS for uplink transmission when the WS has data to be transmitted.
- the BS determines the uplink MIMO/cooperative MIMO method (e.g., stream number, STFC matrix, antenna grouping method, and precoding matrix) to be used by the WS, according to the BS's measurement of its channel, the bandwidth requests of the wireless stations, and other parameters.
- the uplink MIMO/cooperative MIMO method e.g., stream number, STFC matrix, antenna grouping method, and precoding matrix
- the BS may use either one of two methods to inform the WS with more than two antennae of the allocated resource and the MIMO/cooperative MIMO method for uplink transmissions.
- the first method uses reserved bits in the MIMO_UL_Enhanced_IE message to specify that: 1) the message addresses a WS with more than two antennae; and 2) an uplink MIMO/cooperative MIMO method using MIMO coding matrices defined for three or four antennas.
- Figure 11 shows one implementation of a MIMO_UL_Enhanced_IE, according to one embodiment of the present invention. As shown in Figure 11, a Matrix Indicator RS field is defined relevant to a WS having three or four antennae.
- the Matrix_Indicator_RS field specifies the MIMO coding matrix mapping tables for a WS with three or four antennae.
- Figures 12 and 13 show respectively exemplary MIMO coding matrix mapping tables for WS 's with three antennae and four antennae.
- a WS with three antennae refers to the MIMO coding matrix mapping table of Figure 12 to determine that STFC matrix C for uplink MIMO transmissions is specified.
- a WS with four antennae refers to the MIMO coding matrix mapping table of Figure 13 to determine that STFC matrix B4 for uplink MIMO transmissions is specified. Since each WS is identified by a different Connection Identifier (CID), the BS can select the proper MIMO coding matrix mapping table for the WS. As shown in Figure 12, for example, the specification "Cw" denotes also antenna selection.
- Cl -one stream denotes that only the first antenna is used
- C2-one stream denotes that only the second antenna is used
- C3-one stream denotes that only the third antenna is used
- Cl -two streams denotes that both the second and the third antennae are used
- C2-two streams denotes that both the first and the third antennas are used
- C3-two streams denotes that both the first and the second antennae are used.
- the advantages of using the reserved bits of the TLV field include compatibility and low overhead. Under this scheme, uplink MIMO/cooperative MIMO transmission methods are extended to a WS with three or four antennae without requiring modification by existing WS' s. Also, no additional overhead is introduced in the communication protocol. However, because the number of reserved bits in the TLV is limited, the number of supported MIMO/cooperative MIMO methods using this scheme is necessary limited (i.e., not all MIMO/cooperative MIMO methods can be supported under this scheme). For example, the exemplary coding matrix mapping tables of Figures 12 and 13 do not support precoding.
- the BS may use a second method which uses a new MIMO uplink IE for a WS having more than two antennae.
- Figure 14 shows one exemplary MIMO uplink IE ("MIMO_UL_Extended_IE"), according to one embodiment of the present invention.
- MIMO_UL_Extended_IE MIMO uplink IE
- a WS is first categorized according to the number of antennae to be used in the transmission, even if the actual number of antennae in the WS is greater.
- the antenna selection overhead is merged with the spatial multiplexing matrix, when a small number of antennae are used, resulting in a reduced total overhead.
- Figure 15 illustrates an example of overhead reduction in merging the MIMO coding matrix of antenna selection for a 4-antenna WS, and the MIMO coding matrix of spatial multiplexing of a 3-antenna WS.
- the antenna selection and the spatial multiplexing matrices can share one index.
- the MIMO UL Extended lE of Figure 14 supports uplink MIMO/cooperative MIMO transmission for WS 's with three or four antennae, provides high flexibility and can supports a large number of MIMO coding schemes, including STFC, antenna selection and grouping, and precoding.
- Figure 16 summarizes the supported uplink MIMO/cooperative
- the channel for WS 1 is line-of-sight (LOS), but can only support one data stream
- the channel for WS 2 is non-line-of-sight (NLOS), but can possible support one, two or three streams.
- the BS first measures the channel for WS 2 to obtain the number of streams that may be supported by the channel.
- the BS can then specify for WS 1 and WS 2 cooperative MIMO transmissions using any of the C(1,1), C(1, 2) and C(1, 3) configurations.
- Such channel-aware cooperative MIMO transmissions improves greatly uplink spectrum efficiency.
- MIMO_UL_Extended_IE provides high flexibility and allows a large number of MIMO/cooperative MIMO methods to be supported, including SM, STFC, precoding, and antenna selection and antenna grouping. This method also provides good compatibility, as uplink MIMO/cooperative MIMO methods for WS 's with three or four antennae are supported without requiring modification by existing WS 's. Compare to using reserved bits in the TVL field, the present method has a larger overhead.
- new data mapping rule for MIMO coding matrices are defined for three or four antennae.
- pilot patterns are defined for used in uplink MIMO/cooperative MIMO transmissions by WS 's with different number of antennae.
- the WS first checks the Antenna lndicator field in the MIMO UL Extended lE to acquire the specified number of antennae to be used. Then, for a WS using one antenna, one of the pilot patterns (i.e. any of pilot patterns A, B, C or D) may be used.
- the BS determines the pilot pattern to be used by the WS and specifies that pilot pattern in the IE. For a WS using 2 antennae, there are two choices.
- the BS determines the pilot pattern to be used by the WS and indicates the pilot pattern in the IE.
- the first antenna may use pilot pattern A
- the second antenna may use pilot pattern B
- the third antenna may use pilot pattern C
- the fourth antenna may use pilot pattern D.
- pilot pattern assignment for cooperative MIMO transmissions under the present invention is flexible.
- cooperative MIMO transmission of four 1 -antenna WS 's is not supported because each 1 -antenna WS can only use only pilot pattern A or pilot pattern B.
- the pilot pattern assignment under the present invention is not restricted in this regard.
- Figure 18 shows a cooperative MIMO transmission example, according to one embodiment of the present invention.
- a fixed WS e.g., RS
- pilot pattern assignment under IEEE 802.16e restricts the uplink spectrum efficiency.
- pilot pattern assign rule discussed above cooperative MIMO transmissions are enabled, and thus uplink spectrum efficiency is significantly improved.
- a data mapping rule map coded data symbols to a tile.
- the coded data symbols occupy four subcarriers for both 3-antenna MIMO coding matrices and 4-antenna MIMO coding matrices.
- mapping rules can be developed such that the coded data symbols in the tile may be divided into two groups of data symbols, with each group corresponding to the data symbols output from a MIMO coding matrix.
- Figure 19 shows one example of a data mapping rule governing two MIMO coding matrices, in accordance with one embodiment of the present invention. As shown in Figure 19, the output symbols of a first MIMO coding matrix are mapped to subcarriers 1, 3, 7, 5 and the output symbols of a second MIMO coding matrix are mapped to subcarriers 2, 4, 8, 6.
- the exemplary mapping rule of Figure 19 has at least two advantages. First, the MIMO coded symbols are distributed evenly, so that spatial-time-frequency diversity gain can be maximized in a fast-changing channel, in terms of both time domain and frequency domain performance. Second, since the output symbols of the two MIMO coding matrices have the same mapping pattern, each MIMO coding matrix would have similar performance characteristics. Thus, balance performance of the two MIMO coding matrices may be achieved.
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JP2010502301A JP5320386B2 (en) | 2007-04-04 | 2008-04-03 | Uplink multiple input multiple output (MIMO) and collaborative MIMO transmission |
EP08733110.4A EP2132946A4 (en) | 2007-04-04 | 2008-04-03 | Uplink multiple-input-multiple-output (mimo) and cooperative mimo transmissions |
KR1020097020368A KR101128758B1 (en) | 2007-04-04 | 2008-04-03 | Uplink multiple-input-multiple-output mimo and cooperative mimo transmissions |
CN2008800063963A CN102017446A (en) | 2007-04-04 | 2008-04-03 | Uplink multiple-input-multiple-output (MIMO) and cooperative MIMO transmissions |
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US11/930,600 | 2007-10-31 | ||
US11/930,600 US7965785B2 (en) | 2007-04-04 | 2007-10-31 | Uplink multiple-input-multiple-output (MIMO) and cooperative MIMO transmissions |
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KR20090126278A (en) | 2009-12-08 |
KR101128758B1 (en) | 2012-04-12 |
EP2132946A4 (en) | 2014-06-11 |
US20080247488A1 (en) | 2008-10-09 |
JP2010524350A (en) | 2010-07-15 |
EP2132946A2 (en) | 2009-12-16 |
CN102017446A (en) | 2011-04-13 |
US7965785B2 (en) | 2011-06-21 |
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WO2008124535A3 (en) | 2010-02-18 |
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