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GB2410396A - Pilot signal manipulation in transmit diversity communications - Google Patents

Pilot signal manipulation in transmit diversity communications Download PDF

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Publication number
GB2410396A
GB2410396A GB0401235A GB0401235A GB2410396A GB 2410396 A GB2410396 A GB 2410396A GB 0401235 A GB0401235 A GB 0401235A GB 0401235 A GB0401235 A GB 0401235A GB 2410396 A GB2410396 A GB 2410396A
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United Kingdom
Prior art keywords
pilot
signal
antenna
channel
pseudo
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Withdrawn
Application number
GB0401235A
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GB0401235D0 (en
Inventor
Carlo Luschi
Moritz Harteneck
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Aeroflex Cambridge Ltd
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Ubinetics Ltd
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Publication date
Application filed by Ubinetics Ltd filed Critical Ubinetics Ltd
Priority to GB0401235A priority Critical patent/GB2410396A/en
Publication of GB0401235D0 publication Critical patent/GB0401235D0/en
Priority to EP05701951A priority patent/EP1714402A1/en
Priority to PCT/GB2005/000186 priority patent/WO2005071863A1/en
Publication of GB2410396A publication Critical patent/GB2410396A/en
Withdrawn legal-status Critical Current

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Classifications

    • 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
    • H04B7/0667Diversity 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
    • H04B7/0669Diversity 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
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received
    • H04L1/02Arrangements for detecting or preventing errors in the information received by diversity reception
    • H04L1/06Arrangements for detecting or preventing errors in the information received by diversity reception using space diversity
    • H04L1/0618Space-time coding
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B17/00Monitoring; Testing
    • H04B17/30Monitoring; Testing of propagation channels
    • H04B17/309Measuring or estimating channel quality parameters
    • H04B17/336Signal-to-interference ratio [SIR] or carrier-to-interference ratio [CIR]
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L27/00Modulated-carrier systems
    • H04L27/26Systems using multi-frequency codes
    • H04L27/2601Multicarrier modulation systems
    • H04L27/2602Signal structure
    • H04L27/261Details of reference signals
    • H04L27/2613Structure of the reference signals
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. Transmission Power Control [TPC] or power classes
    • H04W52/04Transmission power control [TPC]
    • H04W52/38TPC being performed in particular situations
    • H04W52/42TPC being performed in particular situations in systems with time, space, frequency or polarisation diversity

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  • Engineering & Computer Science (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Signal Processing (AREA)
  • Mobile Radio Communication Systems (AREA)

Abstract

A method of producing a pseudo pilot signal from a pair of orthogonal pilot signals sent in a pilot channel from a pair of antennae that are also transmitting a transmit diversity encoded data signal to a single-antenna receiver, the method comprising acquiring a pair of samples on the pilot channel through the receiver antenna and combining the pilot channel samples with channel estimate values derived for the pilot signals to produce one or more values of the pseudo pilot signal. The invention extends also to apparatus for performing the method.

Description

1 2410396 r 1 04884GB
PILOT SIGNAL MANIPULATION IN TRANSMIT DIVERSITY
COMMUNICATIONS
The invention relates to transmit diversity wireless communications schemes.
In a transmit diversity scheme, several transmitting antennas are used simultaneously to convey a signal to a receiver. In simple cases, the receiver will have a single reception antenna.
The current standards for UM 1 S require user equipment (UE), such as mobile telephones, to receive and process correctly signals that have been sent to the UE with transmit diversity. A discussion of the transmit diversity schemes that are currently included in UNITS can be found in "introduction to 3G Mobile Communications" by Juha Korhonen, published by Artech House, MA, USA, at pages 89-93. These transmit diversity schemes can be of the open-loop, space time block coding transmit diversity (STTD) variety or the closed loop type. These forms of transmit diversity encoding will now be described by reference to a data signal, comprising a series of symbols, So, S', S2 Sn, that is destined for transmission from a node B (a basestation) via a pair of antennae to a single-antenna receiver.
In STTD encoding, consecutive pairs of symbols are treated as blocks. Consider the block comprising symbols SO and So. At a time to, one of the transmit antennae transmits SO and the other transmit antenna sends -S., the asterisk denoting the complex conjugate throughout this text. At a time t', one symbol period later than to, the antenna that sent So now sends S' and the other antenna now sends SO* . At the receiver, the symbols Ro and Rat are acquired during the symbol periods that correspond, respectively, to to and t'. In mathematical terms: Ro = pi So -P2 5 +No (1 R. = p, -S. + p2 -So +N, where No and N' are additional noise terms and pi and p2 are complex numbers describing the propagation environment between the receiver and, respectively, the transmit antenna that sent SO and S and the transmit antenna that sent - SO and S O. The receiver therefore acquires a stream of received symbols, Ro, R', R2,....Rn, and directs the stream to an STTD decoder, where the received symbols are handled in pairs corresponding to the transmit blocks. Consider the transmit block So and SO and the corresponding receive block Ro and Rat. The receive block is manipulated by the STTD decoder to produce two consecutive output symbols Do and DO using: A * A * A * A * A * A * Do = pl Ro + P2R, = (PI P. + p2 p2)So + P. No + P2N, Dl = p, R. - P2 Ro = (P. P. + P2P2)Sl - p2No + Pl N. which consist of the data symbols SO and SO plus additional noise. Terms Pl and P2 are estimates of the complex numbers p' and p2 obtained by measurements performed on pilot signals sent from the transmit antennae to the receiver. These pilot signals will be discussed in more detail later.
In the closed-loop transmit diversity scheme, the stream of symbols So Sn is sent from one of the transmit antennae and the same stream multiplied by a complex gain w is sent from the other transmit antenna. The value of w is known by the UE and, for closed loop mode 1, has a modulus of 1. Considering a given symbol, S. the corresponding symbol acquired by the receive antenna at the UE is R. where: R= pi S+P2 W S+N=(p +P2 W) S+N= p S+N (3) where N is the additional noise term, p = p, + pow and pi and p2 are complex numbers describing the propagation environment between the receiver and, respectively, the transmit antenna that sends symbol S and the transmit antenna that sends symbol w.S.
The UE passes the receive sample R to a decoder, where a corresponding output symbol D is produced using: D (Pi + P2W)R = (P; + P2W XPI + P2W)S + (P; + p2W* = P*PS + pin (4) which consists of the data symbol S plus additional noise. Terms p' end P2 are estimates of the complex numbers pi and p2 obtained by measurements performed on pilot signals sent from the transmit antennae to the receiver. These pilot signals will be discussed in more detail later.
A 3GPP - compliant UE receiver needs to measure the signal to interference ratio (SIR) of the channels that it receives. This information can be returned to the node B that is transmitting to the UE through these channels to allow the node B to perform power control on these channels. Pilot bits are time-multiplexed into 3GPP Release 99 DPCH channels and a UE provided with knowledge of these pilot bits can directly estimate the SIR of such DPCH channels. However, some channels, for example HSDPA data channels, do not contain multiplexed pilot bits and their SIRs need to be estimated by adjusting an SIR measured for a pilot channel to take account of the difference in spreading factors between the pilot channel and the channels whose SIRs are to be estimated.
However, where one of the two transmit diversity schemes described above is employed, there are problems associated with attempting to use SIR information from the pair of pilot signals as a basis for estimating the SIR of a transmit diversity encoded data signal, as will now be discussed.
In both of the two transmit diversity schemes described above, the pilot signals, one from each of the transmit antennae, are sent in the same pilot channel but are arranged to be orthogonal to one another to facilitate the derivation of the estimates p' end P2 or, as the case may be, the estimate p. It can be said that the pilot signals use their orthogonality as a form of transmit diversity encoding to protect against interference between them, whereas the data channel transmissions use encoding according to equation (2) or, as the case may be, (4). This difference in the transmit diversity encoding employed in the pilot and data channels means that SIR information from the pilot signal cannot be adapted in the same way as in the absence of transmit diversity.
One aim of the invention is to provide a way of manipulating information received through the pilot channel in a scheme of one the two types discussed above to render that information suitable for making calculations such as the estimation of the SIR of the accompanying data channel.
According to one aspect, the invention provides a method of producing a pseudo pilot signal from a pair of orthogonal pilot signals sent in a pilot channel from a pair of antennae that are also transmitting a transmit diversity encoded data signal to a single-antenna receiver, the method comprising acquiring a pair of samples on the pilot channel through the receiver antenna and combining the pilot channel samples with channel estimate values derived for the pilot signals to produce one or more values of the pseudo pilot signal.
The invention also consists in apparatus for producing a pseudo pilot signal from a pair of orthogonal pilot signals sent in a pilot channel from a pair of antennae that are also transmitting a transmit diversity encoded data signal to a single-antenna receiver, the apparatus comprising sampling means for acquiring a pair of samples on the pilot channel through the receiver antenna and processing means for combining the pilot channel samples with channel estimate values derived for the pilot signals to produce one or more values of the pseudo pilot signal.
In certain embodiments the pilot signals comprise a first pilot signal comprising a repeated symbol and a second pilot signal comprising the same symbol alternated with its complex conjugate.
If one regards the acquired pilot channel samples as Ro and Rat and the channel estimates for the first and second pilot signals as p, and P2 respectively, then, in preferred embodiments, the process of forming the products of the pilot channel samples and the channel estimates follows one of the following calculations: (P2 Ro+P, R,)+j (P2 Ro+p, R.) (Pi Ro-P2 R,)+ j (p, Ro-P2 R.) PI (Ro +RI)+ P2(Ro -Rl) (P2 - RI + p, Ro)+ i (P2 R. + pl Ro) (p, RI -P2 Ro)+ j (P. RI -P2 Ro) P. (Ro + R. )+ P2 (R. - Ro) (P. + P2 W)(Ro + Rl + w(Ro - R. )) where w is a complex value known to the receiver.
In some embodiments, an open-loop STTD scheme is used to encode the data signal. In such embodiments, the STTD scheme may transmit two symbols a and b from one of the antennae and, at the same time, send symbols -b and a from the other antenna.
In some embodiments, a closed-loop transmit diversity scheme is used to encode the data signal. In such embodiments, the transmit diversity scheme may be arranged to send, for each symbol and simultaneously from the antennae, a symbol of the data signal from one antenna and the same symbol scaled by a complex gain value from the other antenna.
The pseudo pilot signal developed by the invention can be used to estimate the SIR of a transmit diversity encoded data signal that accompanies the pilot signals.
The invention also relates to a radio unit, such as a mobile telephone, that is arranged to derive a pseudo pilot signal according to the invention.
From another perspective, the invention also relates to a program for causing data processing apparatus to perform the process of pseudo pilot signal generation according to the invention. Such a program can be conveyed by a suitable carrier, e.g. a type of ROM.
By way of example only, certain embodiments of the invention will now be described with reference to the accompanying drawing, Figure 1, which is a block diagram illustrating a radio link between a node B and a UE in a UMTS network. The drawing shows only the key elements involved in generating and manipulating a pseudo pilot signal.
A node B 10 is arranged to transmit a transmit diversity encoded data signal via two antennae I and 2 to a UE 12. The UE 12 has a single antenna 14 through which it acquires signals from both antennae I and 2. Each of antennae 1 and 2 sends its own pilot signal and a part of the encoded data signal to the UE 12. The pilot signals are mutually orthogonal.
The pilot signal from antenna I has the form: A A A A A A A A A A...
and the pilot signal from antenna 2 has the form: A -A -A A A -A -A A A A...
The value of the symbol A is I +j.
The signal acquired by the UE 12 on antenna 14 is demodulated at RF section 16 and converted into a train of digital samples by analogue to digital conversion (ADC) unit 18.
This digital signal is then processed by a suite of processing and memory resources to recover and exploit the data contained in the transmit diversity encoded data signal. These resources implement, inter alla, a transmit diversity decoder 20, a channel estimator 22, a pseudo pilot creator 24 and an SIR estimator 26.
The transmit diversity decoder 20 decodes the transmit diversity encoded data signal using an appropriate algorithm. For example, if STTD encoding is used, then decoder 20 applies equation (2). The decoded data signal is then put to its intended use within the UK.
The channel estimator 22 isolates the orthogonal pilot signals and uses them to estimate the properties of the propagation environment between antennae 1 and 2 and antenna 14. The channel estimator produces complex values pi and P2 which are complex numbers describing the propagation environment between antennae I and 2 respectively and antenna 14. The values p, and P2 are updated periodically using the relation Rn = Pn So where In is the complex number describing the propagation environment between antenna n and antenna 14 when antenna n sent symbol S., and antenna 14 correspondingly received symbol Rn The pseudo pilot creator 24, as will be described in more detail later creates a pseudo pilot signal from the symbols acquired from antenna 14.
The SIR calculator 26 deduces from the pseudo pilot signal an SIR value for the decoded data signal.
Examples of pseudo pilot signal creation will now be given for both of the STTD and closed-loop transmit diversity schemes that were described in the introduction.
Open-loop STTD Coding If Ro and R' are two consecutive symbols received on the pilot channel, then either: Ro = pi A + P2 A + No (5 R' = pi A - P2 A + N. or: Rt, = p, - P2 A + No (6 Ri = p, Ä+P2 Ä+Ni where No and Nil are additional noise terms.
If the timing is such that equation (5) is appropriate, then two consecutive output samples Do and D' can be calculated from: Do = (P2 Ro + P. R1)+ / (P2 Ro + p, R. ) (7 Dl = (Pl Ro - P2 R. )+ J (P. Ro - P2 R. r This calculation is performed by the pseudo pilot creator 24 which is so-called because Do and Do can be said to be the consecutive symbols that would be received if a pilot signal of the form AAAA....A were sent using the S1TD encoding scheme that is applied to the data signal. Using the relation j.A = A, equation (7) can be rearranged into: Do = 2(p, p' + P2P2)A + p2No + P'N, + .i p2\o + i piN, Di = 2(p pi + P2P2)A + P. N<, p2N, + j - p,No - i P2\,* ( ) It will be apparent that the transmitted pseudo pilot signal symbol A has been scaled in equation (8) by a coefficient 2(p,.pi +P2*.P2). By contrast, it will be seen that the transmitted data symbols S and S2 appear in equation (2) scaled by a coefficient (P. P, + P2.P2) . (hat is to say, the scaling in amplitude of the wanted signal in equations (I) and (2) is a factor of 2 lower than the scaling of the amplitude of the pseudo pilot signal in equations (7) and (8).
One can perform a similar comparison of the noise terms of equation (2) with these of equation (8) and demonstrate that the noise power in equation (2) is a factor of 2 lower than the noise power in the pseudo pilot signal of equation (8). In short, the noise terms in each line of equation (8) comprise four product values, each product value being the product of a noise value and a channel estimate. In equation (2), on the other hand, only two such product values appear in each line. As these product values are incoherent, their total power is given by the sum of the power values of the individual product values. Also, the power contained in each of these product values is broadly the same, so the noise power is equation (8) is approximately double the noise power in equation (2).
Thus, the SIR calculator 26 can use the scaling 1actors discussed above to calculate the SIR of the STTD encoded data signal. That is to say, the signal power from equation (8) is reduced by a factor of 4 and the noise power by a factor of 2 when using the signal and noise power values of the pilot signal to deduce an SIR for the data signal. Alternatively stated, the SIR of equation (8) can be halved to yield an SIR for the data signal.
It should be noted that the pseudo pilot signal creator 24 can use the following equation instead of equation (7): D = p, (Ro + R. ) + P2 (Ro R. ) (9) This calculation produces output symbols of a pseudo pilot signal that has the same signal amplitude and noise power relationships with the decoded data signal as equation (7).
However, equation (9) only produces one output pseudo pilot symbols per pair of consecutive symbols acquired from the pilot channel. The symbols produced by the pseudo pilot creator 24 can be used as described above to produce an SIR value for the STTD encoded data signal.
If the timing is such that equation (6) is appropriate then equation (7) is replaced by: Do =(P2 R. + p, Ro)+i-(P2 R. + p; Ro)* (10 D' = (p; R. - P2 Ro)+ j (P. R. - P2 Ro) equation (8) is replaced by: Do = 2(pp, + P2P2)A + P2N' + PI No + j P2N, + j p,No 1 1 Di = 2(p,p, + P2P2)A + p, N. - p2No + i p,N, - j p2Ne* ( ) and equation (9) is replaced by: D = p, (Ro + R,)+ p2(R, - Ro) (12) Again, it is seen that the pseudo pilot symbol A in equations (10) and (12) has been scaled by a coefficient that is twice the size of the coefficient that scales the STTD decoded data signal symbols SO and SO in equation (2) and that the noise power in equations (10) and (12)is twice as great as the noise power in equation (2). As before, the pseudo pilot output samples that are produced can be used by the SIR calculator 26 to estimate an SIR for the STTD encoded data signal.
Closed-loop Coding It is assumed that closed loop mode I is used such that |w| = 1.
If Ro and R' are two consecutive symbols received on the pilot channel, then we have the same possibilities as before. That is to say, either: Ro =Pi A+ p2 A+N Rt = p' A-P2 A+N, or: Ro = p' A-P2Ä+No (6 R,=P' A+P2 A+N, If the timing is such that equation (5) is appropriate, then one can calculate one output sample D using: D= p (Ro +R' +W(Ro -Ri)) (13) This calculation is performed by the pseudo pilot creator 24 which is socalled because D can be said to be the symbol that would be received if a pilot signal of the form AAAA...A were sent using the closed-loop encoding scheme of equation (3). It should be noted that equation (13) can be rearranged as: D=2-p p A+p (I+w)No+p (I-w)N' (14) It will be apparent that the transmitted pseudo pilot symbol A has been scaled in equation (14) by a coefficient 2p p. By contrast, it will be seen that the transmitted data symbol S appears in equation (4) scaled by a coefficient p p. That is to say, the scaling of the amplitude of the wanted signal in equations (3) and (4) is a factor of 2 lower than the scaling ofthe amplitude of the wanted signal in equations (13) and (14).
One can perform a similar comparison of the noise terms of equation (4) with those of equation (14). In equation (4), the noise term is p'N and in equation (14) the noise term is p {(1 + w)No + (1 + w)N' } so the power of the equation (14) noise term is a factor of 2(1 + |W| 2) layer than the power of the noise term in equation (4). Since w has a modulus of I for close loop mode I transmission, this factor is 4 here.
Thus, the SIR calculator 26 can use the scaling factors described above to estimate the SIR of the closed-loop encoded data signal.
If the timing is such that equation (6) is appropriate, then equation ( 13) is replaced by: D = p (Ro + R. + W(R, - Ro)) (15) and equation (14) is replaced by: D=2 p p A+p (1-W)No+p (l+w)N' (16) Once more, it will be seen that the pseudo pilot signal symbol A in equation (16) has been scaled by a coefficient that is twice the size of the coefficient that scales the data signal symbol S in equation (4) and that the noise power in equation ( 16) is a factor of 4 greater than the noise power in equation (4). The pseudo pilot signal output symbols that are produced can therefore be used in the manner previously described to deduce an SIR value for the closed-loop encoded data signal.

Claims (17)

  1. A method of producing a pseudo pilot signal from a pair of orthogonal pilot signals sent in a pilot channel from a pair of antennae that are also transmitting a transmit diversity encoded data signal to a singleantenna receiver, the method comprising acquiring a pair of samples on the pilot channel through the receiver antenna and combining the pilot channel samples with channel estimate values derived for the pilot signals to produce one or more values of the pseudo pilot signal.
  2. 2. A method according to claim 1, wherein the pair of pilot signals comprise a first pilot signal comprising a repeated symbol and a second pilot signal comprising the same symbol alternated with its complex conjugate.
  3. 3. A method according to claim 1 or 2, wherein the acquired pilot channel samples are Ro and Rat, the channel estimates for the first and second pilot signals are p, and P2 respectively and the process of combining the pilot channel samples and the channel estimates follows one of the following calculations: (P2 Ro + p, R,)+.i (P2 Ro +P, R.) (P. Ro - P2 R')+ j (P. Ro - P2 R. ) P. (Ro + R. )+ P2 (Ro - R. ) (P2 R. + p, Ro)+ i (P2 R. + p, Ro) (p, R. - P2 Ro)+ j (P' R. - P2 Ro) P. (Ro +R,)+P2(R, -Ro) (P. + P2 W)(Ro + R. + W(Rt, - R. )) where w is a complex value known to the receiver.
  4. 4. A method according to claim 1, 2 or 3, wherein the data signal is STTD encoded according to a scheme in which two symbols So and So are transmitted consecutively from the first antenna and at the same time symbols - So and SO are sent consecutively from the second antenna.
  5. 5. A method according to claim 1, 2 or 3, wherein the data signal is encoded according to a closed-loop scheme in which a symbol S is transmitted on the first antenna and a symbol w.S is transmitted on the second antenna at the same time, where w is a complex gain known to the receiver.
  6. 6. A method of estimating an SIR for a transmit diversity encoded data signal, comprising producing pseudo pilot signal values using any one of claims 1 to 5, calculating the SIR of the pseudo pilot signal and scaling the SIR result to provide an estimate of the SIR of the data signal.
  7. 7. A method according to claim 6, wherein the SIR measured for the pseudo pilot channel is scaled to take into account differences in the signal and noise powers between the data and pseudo pilot signals.
  8. 8. Apparatus for producing a pseudo pilot signal from a pair of orthogonal pilot signals sent in a pilot channel from a pair of antennae that are also transmitting a transmit diversity encoded data signal to a single-antenna receiver, the apparatus comprising sampling means for acquiring a pair of samples on the pilot channel through the receiver antenna and processing means for combining the pilot channel samples with channel estimate values derived for the pilot signals to produce one or more values of the pseudo pilot signal.
  9. 9. Apparatus according to claim 8, wherein the apparatus is configured to operate with the first pilot signal in the form of a repeated symbol and the second pilot signal in the form of the symbol alternated with its complex conjugate.
  10. 10. Apparatus according to claim 8 or 9, wherein the acquired pilot channel samples are Ro and R', the channel estimates for the first and second pilot signals are p'and P2 respectively and the processing means is configured to combine the pilot channel samples and the channel estimates according to one of the following calculations: (P2 Ro + p, Ri)+ j - (p2 Ro + p, R. ) (P. Ro - P2 R. )+ j (p, Ro - P2 R. ) P. (Ro + R. ) + p2 (Ro - R. ) (P2 R. + p, Ro)+ j (P2 R, + p, Ro) (p' R. - P2 Ro)+ i (P. R. - P2 Ro) P. (Ro + R. )+ P2 (R. - Ro) (pi + p2W)(Ro + R. + W(Ro - R. )) where w is a complex value known to the receiver.
  11. Apparatus according to claim 8, 9 or 10, wherein the data signal is STTD encoded according to a scheme in which two symbols SO and S are transmitted consecutively from the first antenna and at the same time symbols - S; and SO are sent consecutively from the second antenna.
  12. 12. Apparatus according to claim 8, 9 or 10, wherein the data signal is encoded according to a closed-loop scheme in which a symbol S is transmitted on the first antenna and a symbol w.S is transmitted on the second antenna at the same time, where w is a complex gain known to the receiver.
  13. 13. Apparatus for estimating an SIR for a transmit diversity encoded data signal, comprising pseudo pilot signal production apparatus according to any one of claims 8 to 12 and calculating means for calculating the SIR of the pseudo pilot signal and scaling the SIR result to provide an SIR estimate for the data signal.
  14. 14. Apparatus according to claim 13, when dependent upon claim 12, wherein the calculating means is configured to scale the SIR determined for the pseudo pilot signal to take into account differences in the signal and noise powers between the data and pseudo pilot signals
  15. 15. A program for causing data processing apparatus to perform a method according to any one of claims I to 7.
  16. 16. A method of producing a pseudo pilot signal from a pair of orthogonal pilot signals sent in a pilot channel from a pair of antennae that are also transmitting a transmit diversity encoded data signal to a singleantenna receiver, the method being substantially as hereinbefore described with reference to Figure 1.
  17. 17. Apparatus for producing a pseudo pilot signal from a pair of orthogonal pilot signals sent in a pilot channel from a pair of antennae that are also transmitting a transmit diversity encoded data signal to a single-antenna receiver, the apparatus being substantially as hereinbefore described with reference to Figure 1.
GB0401235A 2004-01-20 2004-01-20 Pilot signal manipulation in transmit diversity communications Withdrawn GB2410396A (en)

Priority Applications (3)

Application Number Priority Date Filing Date Title
GB0401235A GB2410396A (en) 2004-01-20 2004-01-20 Pilot signal manipulation in transmit diversity communications
EP05701951A EP1714402A1 (en) 2004-01-20 2005-01-20 Pilot signal manipulation in transmit diversity communications
PCT/GB2005/000186 WO2005071863A1 (en) 2004-01-20 2005-01-20 Pilot signal manipulation in transmit diversity communications

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GB0401235A GB2410396A (en) 2004-01-20 2004-01-20 Pilot signal manipulation in transmit diversity communications

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GB2410396A true GB2410396A (en) 2005-07-27

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CN101877610A (en) * 2010-06-21 2010-11-03 中兴通讯股份有限公司 Method and device for realizing pilot beacon

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