USRE40825E1 - Method and arrangement for timing the diversity weight changes in a cellular radio system - Google Patents

Method and arrangement for timing the diversity weight changes in a cellular radio system Download PDF

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USRE40825E1
USRE40825E1 US11/486,361 US48636106A USRE40825E US RE40825 E1 USRE40825 E1 US RE40825E1 US 48636106 A US48636106 A US 48636106A US RE40825 E USRE40825 E US RE40825E
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Prior art keywords
response timing
timing mode
change
antenna weights
feedback bit
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Hannu Hakkinen
Kari Pehkonen
Esa Malkamaki
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Sisvel International SA
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Nokia Oyj
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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/02Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
    • H04B7/04Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
    • H04B7/08Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the receiving station
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/02Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
    • H04B7/04Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
    • H04B7/06Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station
    • H04B7/0613Diversity 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
    • H04B7/0615Diversity 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 weighted versions of same signal
    • H04B7/0619Diversity 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 weighted versions of same signal using feedback from receiving side
    • H04B7/0621Feedback content
    • H04B7/0634Antenna weights or vector/matrix coefficients
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/02Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
    • H04B7/04Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
    • H04B7/06Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station
    • H04B7/0613Diversity 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
    • H04B7/0615Diversity 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 weighted versions of same signal
    • H04B7/0619Diversity 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 weighted versions of same signal using feedback from receiving side
    • H04B7/0636Feedback format
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/02Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
    • H04B7/04Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
    • H04B7/08Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the receiving station
    • H04B7/0837Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the receiving station using pre-detection combining
    • H04B7/0842Weighted combining
    • H04B7/086Weighted combining using weights depending on external parameters, e.g. direction of arrival [DOA], predetermined weights or beamforming
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W56/00Synchronisation arrangements

Definitions

  • the invention concerns generally the field of controlling transmission power and phase in a radio link between a base transceiver station and a mobile terminal. Especially the invention concerns the timing factors that are related to the effecting of changes is transmission power and phase.
  • Spatial diversity in a cellular radio system means that the communication connection between a portable terminal and a base transceiver station or BTS goes through at least two antennas at the BTS simultaneously.
  • the relative transmission power and phase directed through the different antennas must be carefully balanced.
  • the relative transmission power levels and phases of the different antennas may be represented by certain complex weights which are determined by a controller unit within the BTS or other fixed parts of the network.
  • a number of downlink diversity schemes have been proposed to the standard that is to define the WCDMA or Wideband Code Division Multiple Access part of a proposed third generation digital cellular telecommunications system. It is known to set up a so-called closed loop TX diversity scheme, i.e. to make a portable terminal or UE (User Equipment) to transmit feedback information in the uplink direction and to utilize this feedback information in the UTRAN or UMTS Terrestrial Radio Access Network (where UMTS comes from Universal Mobile Telecommunication System) to adjust the antenna weights. Communication errors may cause the feedback loop not to work properly, which in turn may cause the UTRAN to put different antenna weights in use than what the UE actually requested. In order to recover from such an error condition the UE may optionally utilize so-called verification of the antenna weights. The aim of verification is to check, whether proper antenna weights are in use at a specific base station.
  • the verification algorithms are known as such and do not fall within the scope of the present patent application.
  • the UE in order in the known verification methods to work properly the UE must know exactly the moment when the BTS changes the antenna weights.
  • the proposals that are known at the priority date of the present patent application suggest that since the downlink transmission consists of consecutive frames of constant duration and predefined temporal structure, all changes in downlink transmission power (and hence also in antenna weights) should take place at a certain moment which is defined in relation to the known parts of the frame.
  • all downlink frames comprise a certain pilot field, the changes in downlink transmission power should always be effected at the beginning of the pilot field. This is implicitly assumed to mean the beginning of the immediately next pilot field that is in turn to be transmitted after the moment when the feedback information was received at the UTRAN.
  • FIG. 1 illustrates some timing considerations that relate to the above-explained known arrangement.
  • Line 101 is a train of downlink transmission slots as they appear at a base station, and line 102 is the same train of downlink transmission slots as they appear at UE.
  • Line 103 is a train of uplink transmission slots as they appear at a UE, and line 104 is the same train of uplink transmission slots as they appear at a base station.
  • the finite propagation velocity of radio waves causes there to be a propagation delay D: a receiving station sees the same train of transmission slots by the amount of D later than the transmitting station.
  • the relation in time between uplink and downlink slot borders is fixed to achieve certain synchronization.
  • Each uplink transmission slot (or certain predefined uplink transmission slots) in FIG. 1 comprises a field for feedback bits
  • each downlink transmission slot (or certain predefined uplink transmission slots) comprises a pilot field.
  • the propagation delay causes the BS to receive the feedback bits by the amount of D later than the moment when the UE transmitted them. It is clear that the longer is the propagation delay D, the less time the UTRAN, which the BS belongs to, has to react upon the feedback bits and to effect the requested change in antenna weights.
  • the length of the propagation delay is directly proportional to the distance between the UE and the BS, so especially in large cells it may happen that it becomes physically impossible to effect the changes in the antenna weights before the transmission of the pilot field 106 is already going on.
  • Another obvious solution would be to allow the UTRAN to effect the changes in antenna weights at the beginning of the first pilot field that comes after the necessary processing has been completed, regardless of whether it is the next pilot field after the reception of the feedback bits or not. This leaves it on the responsibility of the UE to deduce, which pilot field is the first one where the changes are effective. Although the UE may have a good estimate of the length of the current propagation delay, leaving the exact moment of effecting the changes half undefined causes uncertainty and may give rise to serious errors in the power control arrangement.
  • the objects of the invention are achieved by defining a number of modes for the base station for responding to feedback bits in uplink slots that concern changes in antenna weights, and by signaling to the UE which mode is currently in use.
  • the length of the propagation delay between the base station and the UE is determined at the very beginning of establishing the communication connection therebetween, and thereafter it is constantly monitored in order to preserve the correct synchronization between uplink and downlink slots and frames.
  • the base station or other controlling entity within the fixed parts of the network may use the known value of the propagation delay to constantly or regularly estimate, how much time it would need to react to such feedback bits from the UE that constitute a request for changing antenna weights.
  • a response timing mode is then selected from a number of predefined modes. Each mode means a specified delay (in number of frames) it will take for the base station to effect the changes in antenna weights after it has received the corresponding feedback bits from the UE.
  • the selected mode is signalled to the UE so that it will know exactly, before transmitting any feedback bits that would cause changes in antenna weights, at which point of the downlink transmission stream such requested changes will take place.
  • An advantageous way of implementing the signalling is to add a new information element to an existing signalling message that characterizes other aspects related to transmission diversity mode.
  • the number of bits required for the new information element depends on the number of defined response timing modes. If only two modes are defined, the size of the new information element may be a single bit.
  • FIG. 1 illustrates some known timing aspects
  • FIG. 2 illustrates some timing aspects of a method according to the invention
  • FIG. 3 illustrates schematically a signalling message for signalling a response timing mode
  • FIG. 4 illustrates schematically a base station according to an embodiment of the invention
  • FIG. 5 illustrates schematically a UE according to an embodiment of the invention.
  • FIG. 2 illustrates the relative timing of uplink and downlink slots at a base station and a UE.
  • Line 201 is a train of downlink transmission slots as they appear at a base station, and line 202 is the same train of downlink transmission slots as they appear at a UE.
  • Line 203 is a train of uplink transmission slots as they appear at a UE, and line 204 is the same train of uplink transmission slots as they appear at a base station.
  • the duration in time of each slot in both uplink and downlink direction is called a time slot and its length is 2560 chips.
  • the time slots are numbered and the synchronization between uplink and downlink has been determined so that from the moment when the UE receives the beginning of a certain i:th downlink time slot to the moment when the UE begins transmitting in a corresponding i:th uplink time slot there are 1024 chips.
  • the exemplary slot structure shown in FIG. 2 refers to the known DPCCH (Dedicated Physical Control CHannel) both in the downlink and uplink direction.
  • DPCCH Dedicated Physical Control CHannel
  • the downlink slot consists of a TFCI field (Transport Format Combination Indicator) 205 , a first data field 206 , a TPC field (Transmit Power Control) 207 , a second data field 208 and a pilot field 209 .
  • the data fields are related to a different channel than the DPCCH.
  • the uplink DPCCH slot consists of a pilot field 210 , a TFCI field 211 , an FBI field (Feedback Information) 212 and a TPC field 213 .
  • the uplink DPCCH slot of which only the last two fields is shown in FIG. 2 is associated with the (i ⁇ 1):th uplink time slot, and the two downlink DPCCH slots which are shown in FIG. 2 in their entirety are associated with the i:th and (i+1):th downlink time slot respectively.
  • the feedback bits that may potentially cause a UTRAN to change antenna weights at the base station are located in the FBI field 212 of the uplink DPCCH slot.
  • Arrow 220 refers to a first feedback response timing mode at the UTRAN where the reception of such feedback bits in the (i ⁇ 1):th uplink time slot causes the antenna weights to be changed at the beginning of the pilot field in the i:th downlink time slot.
  • Arrow 221 refers to a second feedback response timing mode at the UTRAN where the reception of such feedback bits in the (i ⁇ 1):th uplink time slot that cause a UTRAN to change antenna weights causes the antenna weights to be changed at the beginning of the pilot field in the (i+1):th downlink time slot.
  • T 2560 - 1024 - N pilot 2 ⁇ SF + N TPC ⁇ 256 ( 1 ) which gives the time in the unit of chips.
  • the so-called D bit is the one which is decisive in determining, whether or not the UTRAN should change the antenna weights.
  • the other bit type is the S bit which relates to SSDT (Site Selection Diversity TPC) and does not involve similar time-critical aspects. If the S bit is present, there is only one TPC bit in field 213 . If there is no S bit, there are two TPC bits. If we define that the D bit is always transmitted first, the time marginal T increases by 256 chips. However, this addition is not enough to ensure that the changes in antenna weights are ready before the immediately following downlink pilot field.
  • two response timing modes which are those illustrated by arrows 220 and 221 in FIG. 2 .
  • the UTRAN knows the propagation delay between a base station and a UE, it is easy to deduct the (two-way) propagation delay from the result given by formula (I) and to check, whether the remaining time is enough to effect the processing required to put a certain requested set of antenna weights into use.
  • it is most advantageous to store a threshold value for the propagation delay so that for all base station—UE connections where the propagation delay is less than the threshold value, the first response timing mode (arrow 220 ) is selected and for those connections where the propagation delay is equal to or larger than the threshold value, the second response timing mode (arrow 221 ) is selected.
  • mapping table where a set of threshold values divides the range of potentially occurring propagation delays into bins. Each bin corresponds to a certain response timing mode. For each base station—UE connection it is checked, into which bin the propagation delay falls, and the corresponding response timing mode is selected.
  • FIG. 3 illustrates schematically a signalling message 301 the other structure of which is beyond the scope of this invention.
  • an indicator bit the value of which is either 0 or 1, corresponding to the first response timing mode (arrow 220 in FIG. 2 ) or the second response timing mode (arrow 221 in FIG. 2 ) respectively.
  • FIG. 4 illustrates schematically a base station which can be used to implement the present invention.
  • the two antennas 401 and 402 are coupled to a duplexing block 403 which separates received signals from transmitted signals. Received signals are directed into a receiver 404 which converts them into digital bit streams on baseband frequency.
  • a demultiplexer 405 separates received payload data from received control information, of which the former is directed through another multiplexer/demultiplexer 406 into a network transmission unit 407 and the latter is directed to the control parts of which especially the propagation delay unit 408 is shown. It associates each communication connection with a certain measured propagation delay.
  • the information about the propagation delays is used in block 409 where a corresponding response timing mode is selected.
  • the selection result is directed on one hand to the signalling messages composition block 410 where the corresponding indicator value is selected and inserted to those signalling messages that contain the FB Mode Transmit Diversity signalling indicator.
  • the response timing mode selection result is coupled to the actual antenna weight implementing block 411 .
  • the information to be transmitted to the UE is assembled in the multiplexer 412 and converted into radio frequency in the transmitter 413 .
  • FIG. 5 illustrates schematically a user equipment device which can be used to implement the present invention.
  • the antenna 501 is coupled to a duplexing block 502 which separates received signals from transmitted signals. Received signals are directed into a receiver/demultiplexer 503 which converts them into digital bit streams on baseband frequency and performs other known duties of portable terminal receivers. Among other it implements the antenna verification function. Payload data is directed into a downlink user interface part 505 which conceptually covers all such separate devices which are used to present information to the user. Of the control parts of the UE there is especially shown a channel estimation unit 506 which produces the results on which the setting and verification of antenna weights is based.
  • the eventual need for antenna weight verification is reported to the signalling messages composition block 508 which sets the FBI bit in a subsequent uplink signalling message accordingly.
  • the uplink user interface block 510 houses all such components that are required to convert user inputs into transmittable form.
  • the transmitter block 511 takes care of all transmissions.
  • a downlink signaling analyzer block 504 which detects, among others, the value of the response timing mode indicator from the downlink signaling messages and informs the channel estimation unit about the mode which is in use. This way the channel estimation unit knows the exact moment when the antenna weights will change and is able to react properly to the changes.
  • the selection of response timing mode is made dynamically for each connection.
  • the selection may be based on cell size or processing capacityt: e.g. in large cells or in the cells of base stations with limited processing capacity the slower response timing mode could be always used.
  • the invention does not limit the point within a slot or frame which is chosen to be the changing point of antenna weights. Although it is advantageous to select it to be the same as the point of changing transmission power (i.e. the beginning of the pilot field), it is also possible to define some other point as the changing point.

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Abstract

A method and an arrangement are provided for timing a change of diversity weights in a radio connection between a base station and a terminal. A response timing mode is selected from a number of predefined response timing modes. The terminal is informed about the selected response timing mode. An initiation is received from the terminal and it is responded to the initiation by changing certain diversity weights so that the exact moment of time for effecting the change is determined by the selected response timing mode.

Description

TECHNOLOGICAL FIELD
The invention concerns generally the field of controlling transmission power and phase in a radio link between a base transceiver station and a mobile terminal. Especially the invention concerns the timing factors that are related to the effecting of changes is transmission power and phase.
BACKGROUND OF THE INVENTION
Spatial diversity in a cellular radio system means that the communication connection between a portable terminal and a base transceiver station or BTS goes through at least two antennas at the BTS simultaneously. In order to take full advantage of spatial diversity in the downlink direction, the relative transmission power and phase directed through the different antennas must be carefully balanced. The relative transmission power levels and phases of the different antennas may be represented by certain complex weights which are determined by a controller unit within the BTS or other fixed parts of the network.
A number of downlink diversity schemes have been proposed to the standard that is to define the WCDMA or Wideband Code Division Multiple Access part of a proposed third generation digital cellular telecommunications system. It is known to set up a so-called closed loop TX diversity scheme, i.e. to make a portable terminal or UE (User Equipment) to transmit feedback information in the uplink direction and to utilize this feedback information in the UTRAN or UMTS Terrestrial Radio Access Network (where UMTS comes from Universal Mobile Telecommunication System) to adjust the antenna weights. Communication errors may cause the feedback loop not to work properly, which in turn may cause the UTRAN to put different antenna weights in use than what the UE actually requested. In order to recover from such an error condition the UE may optionally utilize so-called verification of the antenna weights. The aim of verification is to check, whether proper antenna weights are in use at a specific base station.
The verification algorithms are known as such and do not fall within the scope of the present patent application. However, in order in the known verification methods to work properly the UE must know exactly the moment when the BTS changes the antenna weights. The proposals that are known at the priority date of the present patent application suggest that since the downlink transmission consists of consecutive frames of constant duration and predefined temporal structure, all changes in downlink transmission power (and hence also in antenna weights) should take place at a certain moment which is defined in relation to the known parts of the frame. Especially it has been proposed that since all downlink frames comprise a certain pilot field, the changes in downlink transmission power should always be effected at the beginning of the pilot field. This is implicitly assumed to mean the beginning of the immediately next pilot field that is in turn to be transmitted after the moment when the feedback information was received at the UTRAN.
FIG. 1 illustrates some timing considerations that relate to the above-explained known arrangement. Line 101 is a train of downlink transmission slots as they appear at a base station, and line 102 is the same train of downlink transmission slots as they appear at UE. Line 103 is a train of uplink transmission slots as they appear at a UE, and line 104 is the same train of uplink transmission slots as they appear at a base station. The finite propagation velocity of radio waves causes there to be a propagation delay D: a receiving station sees the same train of transmission slots by the amount of D later than the transmitting station. The relation in time between uplink and downlink slot borders is fixed to achieve certain synchronization.
Each uplink transmission slot (or certain predefined uplink transmission slots) in FIG. 1 comprises a field for feedback bits, and each downlink transmission slot (or certain predefined uplink transmission slots) comprises a pilot field. Let us assume that the UE transmits, in field 105, certain feedback bits which the BS should interprete as a request for changing antenna weights at the beginning of the next pilot field, which is field 106. The propagation delay causes the BS to receive the feedback bits by the amount of D later than the moment when the UE transmitted them. It is clear that the longer is the propagation delay D, the less time the UTRAN, which the BS belongs to, has to react upon the feedback bits and to effect the requested change in antenna weights. The length of the propagation delay is directly proportional to the distance between the UE and the BS, so especially in large cells it may happen that it becomes physically impossible to effect the changes in the antenna weights before the transmission of the pilot field 106 is already going on.
An obvious solution which would enable the UTRAN to always have enough time to process the feedback bits and effect the requested changes would be to define that the changes become effective not at the beginning of the next pilot field but at the beginning of the P:th pilot field after the reception of the feedback bits in the uplink direction, where P>1. However, in most small cells (and even in large cells if the UE is located in the central part of the cell) such additional delay in transmission control is completely unnecessary and may have serious adverse effects on system stability: the performance of CDMA systems is known to be heavily dependent on effective control in transmission power and phase.
Another obvious solution would be to allow the UTRAN to effect the changes in antenna weights at the beginning of the first pilot field that comes after the necessary processing has been completed, regardless of whether it is the next pilot field after the reception of the feedback bits or not. This leaves it on the responsibility of the UE to deduce, which pilot field is the first one where the changes are effective. Although the UE may have a good estimate of the length of the current propagation delay, leaving the exact moment of effecting the changes half undefined causes uncertainty and may give rise to serious errors in the power control arrangement.
SUMMARY OF THE INVENTION
It is an object of the present invention to provide a method and an arrangement for timing the changes in the antenna weights without unnecessary delay but with a completely deterministic way.
The objects of the invention are achieved by defining a number of modes for the base station for responding to feedback bits in uplink slots that concern changes in antenna weights, and by signaling to the UE which mode is currently in use.
The method according to the invention is characterized in that it comprises the steps of
    • selecting a response timing mode from a number of predefined response timing modes
    • informing the terminal about the selected response timing mode
    • receiving an initiation from the terminal and
    • responding to said initiation by changing certain diversity weights so that the exact moment of time for effecting the change is determined by said selected response timing mode.
The invention also applies to an arrangement that is characterized in that it comprises
    • means for selecting a response timing mode from a number of predefined response timing modes
    • means for informing the terminal about the selected response timing mode
    • means for receiving an initiation from the terminal and
    • means for responding to said initiation by changing certain diversity weights so that the exact moment of time for effecting the change is determined by said selected response timing mode.
The length of the propagation delay between the base station and the UE is determined at the very beginning of establishing the communication connection therebetween, and thereafter it is constantly monitored in order to preserve the correct synchronization between uplink and downlink slots and frames. The base station or other controlling entity within the fixed parts of the network may use the known value of the propagation delay to constantly or regularly estimate, how much time it would need to react to such feedback bits from the UE that constitute a request for changing antenna weights. A response timing mode is then selected from a number of predefined modes. Each mode means a specified delay (in number of frames) it will take for the base station to effect the changes in antenna weights after it has received the corresponding feedback bits from the UE. The selected mode is signalled to the UE so that it will know exactly, before transmitting any feedback bits that would cause changes in antenna weights, at which point of the downlink transmission stream such requested changes will take place.
An advantageous way of implementing the signalling is to add a new information element to an existing signalling message that characterizes other aspects related to transmission diversity mode. The number of bits required for the new information element depends on the number of defined response timing modes. If only two modes are defined, the size of the new information element may be a single bit.
BRIEF DESCRIPTION OF DRAWINGS
The novel features which are considered as characteristic of the invention are set forth in particular in the appended Claims. The invention itself, however, both as to its construction and its method of operation, together with additional objects and advantages thereof, will be best understood from the following description of specific embodiments when read in connection with the accompanying drawings.
FIG. 1 illustrates some known timing aspects,
FIG. 2 illustrates some timing aspects of a method according to the invention,
FIG. 3 illustrates schematically a signalling message for signalling a response timing mode
FIG. 4 illustrates schematically a base station according to an embodiment of the invention and
FIG. 5 illustrates schematically a UE according to an embodiment of the invention.
DETAILED DESCRIPTION OF THE INVENTION
FIG. 2 illustrates the relative timing of uplink and downlink slots at a base station and a UE. Line 201 is a train of downlink transmission slots as they appear at a base station, and line 202 is the same train of downlink transmission slots as they appear at a UE. Line 203 is a train of uplink transmission slots as they appear at a UE, and line 204 is the same train of uplink transmission slots as they appear at a base station. The duration in time of each slot in both uplink and downlink direction is called a time slot and its length is 2560 chips. The time slots are numbered and the synchronization between uplink and downlink has been determined so that from the moment when the UE receives the beginning of a certain i:th downlink time slot to the moment when the UE begins transmitting in a corresponding i:th uplink time slot there are 1024 chips.
The exemplary slot structure shown in FIG. 2 refers to the known DPCCH (Dedicated Physical Control CHannel) both in the downlink and uplink direction.
The downlink slot consists of a TFCI field (Transport Format Combination Indicator) 205, a first data field 206, a TPC field (Transmit Power Control) 207, a second data field 208 and a pilot field 209. The data fields are related to a different channel than the DPCCH. The uplink DPCCH slot consists of a pilot field 210, a TFCI field 211, an FBI field (Feedback Information) 212 and a TPC field 213. The uplink DPCCH slot of which only the last two fields is shown in FIG. 2 is associated with the (i−1):th uplink time slot, and the two downlink DPCCH slots which are shown in FIG. 2 in their entirety are associated with the i:th and (i+1):th downlink time slot respectively.
The feedback bits that may potentially cause a UTRAN to change antenna weights at the base station are located in the FBI field 212 of the uplink DPCCH slot. Arrow 220 refers to a first feedback response timing mode at the UTRAN where the reception of such feedback bits in the (i−1):th uplink time slot causes the antenna weights to be changed at the beginning of the pilot field in the i:th downlink time slot. Arrow 221 refers to a second feedback response timing mode at the UTRAN where the reception of such feedback bits in the (i−1):th uplink time slot that cause a UTRAN to change antenna weights causes the antenna weights to be changed at the beginning of the pilot field in the (i+1):th downlink time slot.
We may briefly analyze some exemplary timing considerations on the basis of the slot structure shown in FIG. 2. The number Npilot of downlink pilot bits in field 209 may be e.g. four if a spreading factor SF=512 is used, and eight if a spreading factor SF=256 is used. In a worst case the number NTPC of uplink TPC bits in field 213 is only one. We may calculate the time T which is available for propagation delays and processing of the feedback information at the UTRAN from the formula T = 2560 - 1024 - N pilot 2 SF + N TPC · 256 ( 1 )
which gives the time in the unit of chips. The division of Npilot by 2 comes from the fact that the pilot bits are QPSK-modulated (Quadrature Phase Shift Keying) which means that the number of chips is only half of the number of bits. Placing Npilot=4 and SF=512 (or equally Npilot=8 and SF=256) and NTPC=1 gives T=768 chips which corresponds to approximately 200 μs. It is known that certain alternative settings may be used in determining the number of bits in the fields of DPCCH slots; in a slightly more advantageous case we might have Npilot=4, SF=256 and NTPC=2 which results in T=1536 chips or approximately 400 μs.
Actually it would be possible to slightly increase the time marginal available for processing and propagation delay by choosing the mutual order of the bits in the FBI field 212 in the most optimal way. There are two types of bits that may appear in the FBI field. The so-called D bit is the one which is decisive in determining, whether or not the UTRAN should change the antenna weights. The other bit type is the S bit which relates to SSDT (Site Selection Diversity TPC) and does not involve similar time-critical aspects. If the S bit is present, there is only one TPC bit in field 213. If there is no S bit, there are two TPC bits. If we define that the D bit is always transmitted first, the time marginal T increases by 256 chips. However, this addition is not enough to ensure that the changes in antenna weights are ready before the immediately following downlink pilot field.
Above we already mentioned the definition of at least two different response timing modes. In general we may define that according to the present invention there are M distinct response timing modes for a base station which are defined so that when the feedback bits are received in the j:th uplink time slot, response timing mode k means that the changes in antenna weigths are effected at the beginning of the pilot field in the j+k):th downlink time slot where k=1, 2, . . . , M and the positive integer M is at least two. If the numbering of the time slot is cyclic with a cycle C, it is most unambiguous to define the downlink time slot number that corresponds to the k:th response timing mode as j+k) mod C, where “mod” is the modulus operator.
As the most straightforward case we may consider the definition of two response timing modes which are those illustrated by arrows 220 and 221 in FIG. 2. When the UTRAN knows the propagation delay between a base station and a UE, it is easy to deduct the (two-way) propagation delay from the result given by formula (I) and to check, whether the remaining time is enough to effect the processing required to put a certain requested set of antenna weights into use. In practice it is most advantageous to store a threshold value for the propagation delay so that for all base station—UE connections where the propagation delay is less than the threshold value, the first response timing mode (arrow 220) is selected and for those connections where the propagation delay is equal to or larger than the threshold value, the second response timing mode (arrow 221) is selected.
If there are more than two defined response timing modes, it is most advantageous to set up a mapping table where a set of threshold values divides the range of potentially occurring propagation delays into bins. Each bin corresponds to a certain response timing mode. For each base station—UE connection it is checked, into which bin the propagation delay falls, and the corresponding response timing mode is selected.
Next we will describe the signaling of the selection of response timing mode to the UE. It is known to use a certain downlink signaling message to transmit to the UE certain indicators that describe the transmit diversity mode which is used at the base station. In the framework of UMTS this indicator is known as the FB Mode Transmit Diversity signaling indicator. According to an advantageous embodiment of the invention a further information element is added therein to indicate the response timing mode selected for the base station. FIG. 3 illustrates schematically a signalling message 301 the other structure of which is beyond the scope of this invention. At a certain field 302 there appears an indicator bit the value of which is either 0 or 1, corresponding to the first response timing mode (arrow 220 in FIG. 2) or the second response timing mode (arrow 221 in FIG. 2) respectively. Naturally if several response timing modes are defined, more bits must be allocated to the response timing mode indicator.
FIG. 4 illustrates schematically a base station which can be used to implement the present invention. The two antennas 401 and 402 are coupled to a duplexing block 403 which separates received signals from transmitted signals. Received signals are directed into a receiver 404 which converts them into digital bit streams on baseband frequency. A demultiplexer 405 separates received payload data from received control information, of which the former is directed through another multiplexer/demultiplexer 406 into a network transmission unit 407 and the latter is directed to the control parts of which especially the propagation delay unit 408 is shown. It associates each communication connection with a certain measured propagation delay.
The information about the propagation delays is used in block 409 where a corresponding response timing mode is selected. The selection result is directed on one hand to the signalling messages composition block 410 where the corresponding indicator value is selected and inserted to those signalling messages that contain the FB Mode Transmit Diversity signalling indicator. On the other hand the response timing mode selection result is coupled to the actual antenna weight implementing block 411. The information to be transmitted to the UE is assembled in the multiplexer 412 and converted into radio frequency in the transmitter 413.
FIG. 5 illustrates schematically a user equipment device which can be used to implement the present invention. The antenna 501 is coupled to a duplexing block 502 which separates received signals from transmitted signals. Received signals are directed into a receiver/demultiplexer 503 which converts them into digital bit streams on baseband frequency and performs other known duties of portable terminal receivers. Among other it implements the antenna verification function. Payload data is directed into a downlink user interface part 505 which conceptually covers all such separate devices which are used to present information to the user. Of the control parts of the UE there is especially shown a channel estimation unit 506 which produces the results on which the setting and verification of antenna weights is based. The eventual need for antenna weight verification is reported to the signalling messages composition block 508 which sets the FBI bit in a subsequent uplink signalling message accordingly. The uplink user interface block 510 houses all such components that are required to convert user inputs into transmittable form. The transmitter block 511 takes care of all transmissions.
From the receiver/demultiplexer 503 there is also a connection to a downlink signaling analyzer block 504 which detects, among others, the value of the response timing mode indicator from the downlink signaling messages and informs the channel estimation unit about the mode which is in use. This way the channel estimation unit knows the exact moment when the antenna weights will change and is able to react properly to the changes.
In the foregoing we have assumed that the selection of response timing mode is made dynamically for each connection. In some similar embodiments of the invention the selection may be based on cell size or processing capacityt: e.g. in large cells or in the cells of base stations with limited processing capacity the slower response timing mode could be always used.
The invention does not limit the point within a slot or frame which is chosen to be the changing point of antenna weights. Although it is advantageous to select it to be the same as the point of changing transmission power (i.e. the beginning of the pilot field), it is also possible to define some other point as the changing point.

Claims (55)

1. A method for timing a change of diversity weights in a radio connection between a base station and a terminal, comprisingthe steps of :
selecting a response timing mode from a number of predefined response timing modes,
informing the terminal about the selected response timing mode,
receiving an initiation from the terminal, and
responding to said initiation by changing certain diversity weights so that the exact moment of time for effecting the change is determined by said selected response timing mode.
2. A method according to claim 1, wherein the step of selecting a response timing mode comprisesthe substeps of :
measuring a propagation delay between the base station and the terminal and
mapping the measured propagation delay into a certain response timing mode.
3. A method according to claim 1, wherein the step of selecting a response timing mode comprises the substep of selecting a response timing mode based on the cell size of the base station.
4. A method according to claim 1, wherein the step of selecting a response timing mode comprises the substep of selecting a response timing mode based on the processing capacity of the base station.
5. A method according to claim 1, wherein the steps of receiving an initiation from the terminal and responding to said initiation by changing certain diversity weights comprise the substeps of comprises:
receiving said initiation from the terminal in a certain j:th time slot and
effecting the change of diversity weigths weights in either the j+1) (j+1) mod M:th time slot or the (j+2) mod M:th time slot depending on which of of two predefined response timing modes has been selected, where M is the length of the cycle in a cyclic numbering scheme of time slots.
6. An arrangement for timing a change of diversity weights in a radio connection between a base station and a terminal, comprising:
means for selecting a response timing mode from a number of predefined response timing modes,
means for informing the terminal about the selected response timing mode,
means for receiving an initiation from the terminal and
means for responding to said initiation by changing certain diversity weights so that the exact moment of time for effecting the change is determined by said selected response timing mode.
7. An apparatus comprising:
a first communicator section configured to transmit at least one feedback bit for causing a change in one or more antenna weights; and
a second communicator section configured to receive an indication of a response timing mode wherein, the response timing mode indicates at which point of a downlink transmission stream the change in the one or more antenna weights is effected.
8. The apparatus of claim 7, wherein the first communicator section is further configured to transmit the at least one feedback bit so that the at least one feedback bit is received in a j:th uplink time slot, and wherein the response timing mode indicates that the change in the one or more antenna weights is effected in a (j+k) mod C:th downlink time slot.
9. The apparatus of claim 7, wherein the first communicator section is further configured to transmit the at least one feedback bit in a feedback information field of an uplink dedicated physical control channel slot.
10. The apparatus of claim 9, wherein the first communicator section is further configured to transmit a D bit in the feedback information field of the uplink dedicated physical control channel slot.
11. An apparatus comprising:
a first communicator section configured to transmit at least one feedback bit in a feedback information field of an uplink dedicated control channel slot, wherein the at least one feedback bit causes a change in one or more antenna weights; and
a second communicator section configured to receive an indication of a response timing mode, wherein the response timing mode indicates a point in time when the change in the one or more antenna weights is effected.
12. The apparatus of claim 11, wherein the response timing mode indicates in which of at least one pilot field of a downlink dedicated physical control channel slot the change in the one or more antenna weights is effected.
13. The apparatus of claim 11, wherein the first communicator section is further configured to transmit the at least one feedback bit so that the at least one feedback bit is received in a j:th uplink time slot, and wherein the response timing mode indicates that the change in the one or more antenna weights is effected in a (j+k) mod C:th downlink time slot.
14. An apparatus comprising:
a downlink signaling analyzer configured to detect a response timing mode; and
a channel estimation unit configured to receive an indication of the detected response timing mode from the downlink signaling analyzer and to determine a moment in time when a change in one or more antenna weights is effected based at least in part on the detected response timing mode.
15. The apparatus of claim 14, further comprising:
a signaling messages composition unit in communication with the channel estimation unit, the signaling messages composition unit being configured to transmit at least one feedback bit for causing the change in the one or more antenna weights.
16. The apparatus of claim 15, wherein the signaling messages composition unit is further configured to transmit the at least one feedback bit so that the at least one feedback bit is received in a j:th uplink time slot, and wherein the detected response timing mode indicates that the change in the one or more antenna weights is effected in a (j+k) mod C:th downlink time slot.
17. The apparatus of claim 15, wherein the signaling messages composition unit is further configured to transmit the at least one feedback bit in a feedback information field of an uplink dedicated physical control channel slot.
18. The apparatus of claim 17, wherein the signaling messages composition unit is further configured to transmit a D bit in the feedback information field of the uplink dedicated physical control channel slot.
19. An apparatus comprising:
a detection unit configured to detect a response timing mode; and
a determining unit configured to determine a moment in time when a change in one or more antenna weights is effected based at least in part on the detected response timing mode.
20. The apparatus of claim 19, wherein the apparatus further comprises a communicator section configured to transmit at least one feedback bit for causing the change in the one or more antenna weights.
21. The apparatus of claim 20, wherein the communicator section is further configured to transmit the at least one feedback bit so that the at least one feedback bit is received in a j:th uplink time slot, and wherein the detected response timing mode indicates that the change in the one or more antenna weights is effected in a (j+k) mod C:th downlink time slot.
22. The apparatus of claim 20, wherein the communicator section is further configured to transmit the at least one feedback bit in a feedback information field of an uplink dedicated physical control channel slot.
23. The apparatus of claim 22, wherein the communicator section is further configured to transmit a D bit in the feedback information field of the uplink dedicated physical control channel slot.
24. A network element comprising:
a user equipment device configured to transmit at least one feedback bit for causing a change in one or more antenna weights and to receive an indication of a response timing mode;
wherein, the response timing mode indicates at which point of a downlink transmission stream the change in the one or more antenna weights is effected.
25. The network element of claim 24, wherein the user equipment device is further configured to transmit the at least one feedback bit so that the at least one feedback bit is received in a j:th uplink time slot, and wherein the response timing mode indicates that the change in the one or more antenna weights is effected in a (j+k) mod C:th downlink time slot.
26. The network element of claim 24, wherein the user equipment device is further configured to transmit the at least one feedback bit in a feedback information field of an uplink dedicated physical control channel slot.
27. The network element of claim 26, wherein the user equipment device is further configured to transmit a D bit in the feedback information field of the uplink dedicated physical control channel slot.
28. A network element comprising:
a user equipment device configured to transmit at least one feedback bit in a feedback information field of an uplink dedicated control channel slot, wherein the at least one feedback bit causes a change in one or more antenna weights, the user equipment device also configured to receive an indication of a response timing mode, wherein the response timing mode indicates a point in time when the change in the one or more antenna weights is effected.
29. The network element of claim 28, wherein the response timing mode indicates in which of at least one pilot field of a downlink dedicated physical control channel slot the change in the one or more antenna weights is effected.
30. The network element of claim 28, wherein the user equipment device is configured to transmit the at least one feedback bit so that the at least one feedback bit is received in a j:th uplink time slot, and wherein the response timing mode indicates that the change in the one or more antenna weights is effected in a (j+k) mod C:th downlink time slot.
31. A network element comprising:
a user equipment device configured to detect a response timing mode and to determine a moment in time when a change in one or more antenna weights is effected based at least in part on the detected response timing mode.
32. The network element of claim 31, wherein the user equipment device is further configured to transmit at least one feedback bit for causing the change in the one or more antenna weights.
33. The network element of claim 32, wherein the user equipment device is further configured to transmit the at least one feedback bit so that the at least one feedback bit is received in a j:th uplink time slot, and wherein the detected response timing mode indicates that the change in the one or more antenna weights is effected in a (j+k) mod C:th downlink time slot.
34. The network element of claim 32, wherein the user equipment device is further configured to transmit the at least one feedback bit in a feedback information field of an uplink dedicated physical control channel slot.
35. The network element of claim 32, wherein the user equipment device is further configured to transmit a D bit in the feedback information field of the uplink dedicated physical control channel slot.
36. The apparatus of claim 24, wherein the apparatus comprises a network element.
37. The apparatus of claim 28, wherein the apparatus comprises a network element.
38. The apparatus of claim 31, wherein the apparatus comprises a network element.
39. A method comprising:
transmitting at least one feedback bit for causing a change in one or more antenna weights; and
receiving an indication of a response timing mode, wherein the response timing mode indicates at which point of a downlink transmission stream the change in the one or more antenna weights is effected.
40. The method of claim 39 further comprising transmitting the at least one feedback bit so that the at least one feedback bit is received in a j:th uplink time slot, and wherein the response timing mode indicates that the change in the one or more antenna weights is effected in a (j+k) mod C:th downlink time slot.
41. The method of claim 39, further comprising transmitting the at least one feedback bit in a feedback information field of an uplink dedicated physical control channel slot.
42. The method of claim 41, further comprising transmitting a D bit in the feedback information field of the uplink dedicated physical control channel slot.
43. A method comprising:
transmitting at least one feedback bit in a feedback information field of an uplink dedicated control channel slot, wherein the at least one feedback bit causes a change in one or more antenna weights; and
receiving an indication of a response timing mode, wherein the response timing mode indicates a point in time when the change in the one or more antenna weights is effected.
44. The method of claim 43 wherein the response timing mode indicates in which of at least one pilot field of a downlink dedicated physical control channel slot the change in the one or more antenna weights is effected.
45. The method of claim 43 further comprising transmitting the at least one feedback bit so that the at least one feedback bit is received in a j:th uplink time slot, and wherein the response timing mode indicates that the change in the one or more antenna weights is effected in a (j+k) mod C:thj downlink time slot.
46. A method comprising:
detecting a response timing mode; and
determining a moment in time when a change in one or more antenna weights is effected based at least in part on the detected response timing mode.
47. The method of claim 46 further comprising transmitting at least one feedback bit for causing the change in the one or mre antenna weights.
48. The method of claim 47 further comprising transmitting the at least one feedback bit so that the at least one feedback bit is received in a j:th uplink time slot, and wherein the detected response timing mode indicates that the change in the one or more antenna weights is effected in a (j+k) mod C:th downlink time slot.
49. The method of claim 47 further comprising transmitting the at least one feedback bit in a feedback information field of an uplink dedicated physical control channel slot.
50. The method of claim 49 further comprising transmitting a D bit in the feedback information field of the uplink dedicated physical control channel slot.
51. An apparatus comprising:
a response timing mode selection unit for selecting a response timing mode from a number of predefined response timing modes;
a message signaling unit configured to transmit information about the selected response timing mode;
a propagation delay unit configured to detect a request to change diversity weights in a radio connection; and
an antenna weight setting unit for responding to the request by changing certain diversity weights so that the exact moment of time for effecting the change is determined by the selected response timing mode.
52. The apparatus of claim 51 wherein the response timing mode selection unit is further configured to measure a propagation delay between a base station and a terminal, and map the measured propagation delay into a certain response timing mode.
53. The apparatus of claim 51 wherein the response timing mode selection unit is further configured to select a response timing mode based on the cell size of a base station.
54. The apparatus of claim 51 wherein the response timing mode selection unit is further configured to select a response timing mode based on the processing capacity of a base station.
55. The apparatus of claim 51 wherein the apparatus is further confugred to:
detect the request in a certain j:th time slot; and
effect the change of diversity weights in either the (j+1) mod M:th time slot or the (j+2) mod M:th time slot depending on which of two predefined response timing modes has been selected, where M is the length of the cycle in a cyclic numbering scheme of time slots.
US11/486,361 1999-10-08 2006-07-13 Method and arrangement for timing the diversity weight changes in a cellular radio system Expired - Lifetime USRE40825E1 (en)

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Families Citing this family (14)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE10123611A1 (en) 2001-05-15 2002-11-21 Siemens Ag Method for operating a cellular radio communications system with assigned stations uses a base station switched between operating states with/without closed loop antenna diversity to send a downlink signal to a subscriber station.
GB2376567B (en) * 2001-06-12 2005-07-20 Mobisphere Ltd Improvements in or relating to smart antenna arrays
JP2003087161A (en) 2001-09-06 2003-03-20 Ntt Docomo Inc Base radio station and method for controlling radio communication
US7046978B2 (en) * 2002-02-08 2006-05-16 Qualcomm, Inc. Method and apparatus for transmit pre-correction in wireless communications
US7010055B2 (en) * 2002-06-27 2006-03-07 Motorola, Inc. System implementing closed loop transmit diversity and method thereof
KR100571862B1 (en) * 2003-02-17 2006-04-17 삼성전자주식회사 Wireless communication system and method including multiple antennae
KR100575930B1 (en) * 2003-05-16 2006-05-02 삼성전자주식회사 Method and apparatus for mode transition of transmit diversity in mobile communication system using transmit diversity
JP4336760B2 (en) * 2004-01-14 2009-09-30 日本電気株式会社 Diversity receiver and antenna switching control method
US7558242B1 (en) * 2005-03-28 2009-07-07 Hazenson Michael Boris Method of building flexible and effective transmission systems for two-way communications
JP4594822B2 (en) 2005-08-09 2010-12-08 株式会社エヌ・ティ・ティ・ドコモ Reception apparatus and communication control method in mobile communication system
US7796717B2 (en) * 2005-11-02 2010-09-14 Magnolia Brandband Inc. Modifying a signal according to a diversity parameter adjustment
US7864724B2 (en) * 2006-05-05 2011-01-04 Nokia Corporation Enhanced UE out-of-sync behavior with gated uplink DPCCH or gated downlink F-DPCH or DPCCH transmission
US20070259682A1 (en) * 2006-05-08 2007-11-08 Jorma Kaikkonen Enhanced uplink power control with gated uplink of control information
JP5359254B2 (en) 2008-12-19 2013-12-04 富士通株式会社 Transmission power control information setting method

Citations (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5634199A (en) 1993-04-14 1997-05-27 Stanford University Method of subspace beamforming using adaptive transmitting antennas with feedback
EP0793360A2 (en) 1996-02-27 1997-09-03 Lucent Technologies Inc. Antenna array with processing delay as a multiple of the time slot duration
WO1997034387A1 (en) 1996-03-15 1997-09-18 Motorola Inc. Method and apparatus for power control in a communication system
US5781845A (en) 1996-12-03 1998-07-14 The Aerospace Corporation Adaptive transmitting antenna
US5973638A (en) 1998-01-30 1999-10-26 Micronetics Wireless, Inc. Smart antenna channel simulator and test system
US5999826A (en) 1996-05-17 1999-12-07 Motorola, Inc. Devices for transmitter path weights and methods therefor
EP0999658A2 (en) 1998-11-06 2000-05-10 Lucent Technologies Inc. Space-time diversity for wireless systems
EP1001557A2 (en) 1998-11-10 2000-05-17 Matsushita Electric Industrial Co., Ltd. Base station apparatus and radio communication method with path diversity
US6463295B1 (en) * 1996-10-11 2002-10-08 Arraycomm, Inc. Power control with signal quality estimation for smart antenna communication systems
US6694155B1 (en) * 1999-09-24 2004-02-17 National University Of Singapore Downlink beamforming method
US6831943B1 (en) * 1999-08-13 2004-12-14 Texas Instruments Incorporated Code division multiple access wireless system with closed loop mode using ninety degree phase rotation and beamformer verification

Patent Citations (13)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5634199A (en) 1993-04-14 1997-05-27 Stanford University Method of subspace beamforming using adaptive transmitting antennas with feedback
EP0793360A2 (en) 1996-02-27 1997-09-03 Lucent Technologies Inc. Antenna array with processing delay as a multiple of the time slot duration
US5887037A (en) 1996-02-27 1999-03-23 Lucent Technologies Inc. Introducing processing delay as a multiple of the time slot duration
WO1997034387A1 (en) 1996-03-15 1997-09-18 Motorola Inc. Method and apparatus for power control in a communication system
US5751763A (en) 1996-03-15 1998-05-12 Motorola, Inc. Method and apparatus for power control in a communication system
US5999826A (en) 1996-05-17 1999-12-07 Motorola, Inc. Devices for transmitter path weights and methods therefor
US6463295B1 (en) * 1996-10-11 2002-10-08 Arraycomm, Inc. Power control with signal quality estimation for smart antenna communication systems
US5781845A (en) 1996-12-03 1998-07-14 The Aerospace Corporation Adaptive transmitting antenna
US5973638A (en) 1998-01-30 1999-10-26 Micronetics Wireless, Inc. Smart antenna channel simulator and test system
EP0999658A2 (en) 1998-11-06 2000-05-10 Lucent Technologies Inc. Space-time diversity for wireless systems
EP1001557A2 (en) 1998-11-10 2000-05-17 Matsushita Electric Industrial Co., Ltd. Base station apparatus and radio communication method with path diversity
US6831943B1 (en) * 1999-08-13 2004-12-14 Texas Instruments Incorporated Code division multiple access wireless system with closed loop mode using ninety degree phase rotation and beamformer verification
US6694155B1 (en) * 1999-09-24 2004-02-17 National University Of Singapore Downlink beamforming method

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
Japanese Publication No. JP10190537 dated Jul. 21, 1998.

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