TDD BASE STATION FOR CODE GROUP SYNCHRONIZATION
A time division duplex (TDD) base station having a code group out of N code groups includes circuitry configured to transmit a primary synchronization code along with a plurality of secondary synchronization codes. The plurality of synchronization codes are quadrature phase shift keying modulated and number less than (log2N)+1. The plurality of synchronization codes are used to identify the code group of the TDD base station.
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This application is a continuation of U.S. patent application Ser. No. 13/412,010 filed on Mar. 5, 2012, which is a continuation of U.S. patent application Ser. No. 12/499,918 filed on Jul. 9, 2009, which issued on Mar. 6, 2012 as U.S. Pat. No. 8,130,730, which is a continuation of U.S. patent application Ser. No. 11/505,575 filed on Aug. 17, 2006, which issued on Sep. 29, 2009 as U.S. Pat. No. 7,596,105, which is a continuation of U.S. patent application Ser. No. 10/695,276 filed on Oct. 28, 2003, which issued on Sep. 5, 2006 as U.S. Pat. No. 7,102,994, which is a continuation of U.S. patent application Ser. No. 09/576,363, filed May 22, 2000, which issued on Apr. 6, 2004 as U.S. Pat. No. 6,717,930, all of which are incorporated herein by reference as if fully set forth.
BACKGROUNDThis invention generally relates to spread spectrum Time Division Duplex (TDD) communication systems using Code Division Multiple Access (CDMA). More particularly, the present invention relates to cell search procedure of User Equipment (UE) within TDD/CDMA communication systems.
In addition to communicating over different frequency spectrums, TDD/CDMA systems carry multiple communications over the same spectrum. The multiple signals are distinguished by their respective code sequences (codes). Also, to more efficiently use the spectrum, TDD/CDMA systems as illustrated in
For a UE 321 to communicate with a base station 301, time and code synchronization is required.
One technique used to generate a PSC signal is to use two 16 hierarchical sequences, such as X1 and X2 in Equations 1 and 2.
X1=[1,1,−1,−1,1,−1,1,−1,−1,−1,−1,−1,1,1,1,−1] Equation 1
X2=[1,1,−1,−1,−1,−1,1,−1,1,1,−1,1,1,1,−1,1] Equation 2
Equation 3 illustrates one approach to generate a 256 hierarchal code, y(i), using X1 and X2.
y(i)=X1(i mod 16)×X2(i div 16),where i=0, . . . ,255 Equation 3
Using y(i), the PSC is generated such as by combining y(i) with the first row of length 256 Hadamarad matrix, h0, to produce Cp(i) as in Equation 4.
Cp(i)=y(i)×h0(i),where i=0, . . . ,255 Equation 4
Since the first row of the Hadamarad matrix is an all one sequence, Equation 4 reduces to Equation 5.
Cp(i)=y(i),where i=0, . . . ,255 Equation 5
The Cp(i) is used to produce a spread spectrum PSC signal suitable for transmission.
To prevent the base stations' communications from interfering with each other, each base station 301 to 307 sends its PSC signal with a unique time offset, toffset, from the time slot boundary 40. Differing time offsets are shown for time slot 42 in
To differentiate the different base stations 301 to 307 and cells 341 to 347, each base station 301 to 307 within the cluster is assigned a different group of codes (code group). One approach for assigning a toffset for a base station using an nth code group 44n, toffset,n is Equation 6.
toffset,n=n≅71Tc Equation 6
Tc is the chip duration and each slot has a duration of 2560 chips. As a result, the offset 42n for each sequential code group is spaced 71 chips.
Since initially the UE 321 and the base stations 301 to 307 are not time synchronized, the UE 321 searches through every chip in the frame 38 for PSC signals. To accomplish this search, received signals are inputted to a matched filter which is matched to the PSC signal's chip code. The PSC matched filter is used to search through all the chips of a frame to identify the PSC signal of the base station 301 having the strongest signal. This process is referred to as step-1 of cell search procedure.
After the UE 321 identifies the PSC signal of the strongest base station 301, the UE 321 needs to determine the time slot 361 to 36n in which that PSC and SSC signals are transmitted (referred to as the Physical Synchronization Channel (PSCH) time slot) and the code group used by the identified base station 301. This process is referred to as step-2 of cell search procedure. To indicate the code group assigned to the base station 301 and the PSCH time slot index, the base station 301 transmits signals having selected secondary synchronization codes (SSCs), step 48. The UE 321 receives these SSC signals, step 50, and identifies the base station's code group and PSCH time slot index based on which SSCs were received, step 52.
For a TDD system using 32 code groups and two possible PSCH time slots per frame, such as time slots K and K+8, one approach to identify the code group and PSCH time slot index is to send a signal having one of 64 SSCs. Each of the synchronization codes corresponds to one of the 32 code groups and two possible PSCH time slots. This approach adds complexity at the UE 321 requiring at least 64 matched filters and extensive processing. To identify the code group and PSCH time slot index, 17,344 real additions and 128 real multiplications are required in each PSCH time slot and 64 real additions are required for the decision.
An alternative approach for step-2 of cell search procedure uses 17 SSCs. These 17 SSCs are used to index the 32 code groups and two possible PSCH time slots per frame. To implement this approach, at least 17 matched filters are required. To identify the code group and time slot, 1,361 real additions and 34 real multiplications are required for each PSCH time slot. Additionally, 512 real additions are required for the decision.
It would be desirable to reduce the complexity required by a UE 321 to perform cell search procedure.
SUMMARYA time division duplex (TDD) user equipment (UE) is configured to synchronize to a TDD base station. The UE includes an antenna, a primary synchronization code matched filter, a first plurality of secondary synchronization code matched filters, a second plurality of secondary synchronization code matched filters, and a processor in communication with the first and second plurality of secondary synchronization code matched filters. The first plurality of secondary synchronization code matched filters determines secondary synchronization codes sent on a first carrier and the second plurality of secondary synchronization code matched filters determines secondary synchronization codes sent on a second carrier. The processor is configured to determine a code group assignment and selected timeslot based upon an analysis of the secondary synchronization codes sent on the first and second carriers.
The preferred embodiments will be described with reference to the drawing figures where like numerals represent like elements throughout.
One approach for detection of a PSC signal location in a frame is as follows. A selected number of positions in the received signal frame, such as forty, having the highest number of accumulated chip matches (i.e. maximum signal strength), are repeatedly correlated at the same positions in subsequent frames 38. Out of the selected locations, the one having the highest number of cumulative matches (i.e. the maximum signal strength) is identified as the location of the PSC signal.
For step-2 of the cell search procedure, the base station 301 generates SSC signals, SSC1 to SSCM, using SSC spread spectrum signal generators 681 to 68M. To reduce the complexity at the UE 321, a reduced number of SSCs are used. By reducing the SS Cs, the number of matched filters required at the UE 321 is reduced. Additionally, the reduced SSCs decreases the processing resources required to distinguish the different codes. The reduced SSCs also reduces the probability of incorrect detection of a code group number and PSCH time slot index (see
One approach to reduce the SSCs is shown in the flow chart of
M=log2(# of Code Groups×# of PSCH Time Slots per frame) Equation 7
The base station 301 generates, using SSC signal generators 681 to 68M, the SSC signals associated with the base station's code group and the number of PSCH time slots per frame. The SSC signals are combined with each other as well as the PSC signal by combiner 63. Subsequently, the combined signal is modulated by the modulator 62, passed through the isolator 60 and radiated by the antenna 58. The UE 321 receives the transmitted signal, passes it through the isolator 72 and demodulates the received signal using the demodulator 74. Using corresponding SSC1 to SSCM matched filters 781 to 78M, the processor 80 determines the binary code that SSCs are modulated. Based on the determined binary code, the base station's code group and PSCH time slot index in the frame is determined. To illustrate for a system using 32 code groups and two possible time slots per frame, such as slots K and K+8, the number of binary bits needed to modulate SSCs, M, is six (log2 64). In such a system, the six SSCs are modulated with six bits using binary phase shift keying (BPSK) modulation. The six SSCs are chosen among the 256 rows of Hadamarak matrix, H8. The Hadamarak matrix is generated sequentially, such as by Equations 8 and 9.
H0=(1) Equation 8
A particular code, Ck,n(i), where n is the code group number associated with a SSC is produced using Equation 10. The six rows of Hadamarak matrix, H8, are r(k)=[24, 40, 56, 104, 120, 136].
Ck,n(i)=bk,n×hr(k)(i)×y(i),where i=0,1, . . . ,255 and k=1, . . . ,6 Equation 10
The value of b2 to b6 are depicted in Table 1.
The value of b1,n is depicted in Table 2.
Each code corresponds to one SSC, SSC1 to SSC6. To distinguish the differing base stations' SSC signals from one another, each of the base stations' SSC signals has the same offset as its PSC signal. At the UE 321, the step-2 of the cell search procedure (i.e. code group number and PSCH slot order detection) is performed as follows. The received baseband signal is first correlated with Cp as per Equation 4 to obtain phase reference. This correlation is performed by PSC matched filter 76 in
Using six SSCs, for 32 code groups and two possible PSCH time slots, requires 653 real additions and 28 real multiplications at the UE 321 to identify the code group/PSCH time slot index. For the decision, no additions or multiplications are required. Accordingly, reducing the number of transmitted SSCs in the PSCH time slot reduces the processing at the UE 321.
Alternately, to reduce the number of SSCs even further quadrature phase shift keying (QPSK) modulation is used. To reduce the SSC number, each SSC signal is sent on either an In-phase (I) or Quadrature (Q) component of the PSCH. One extra bit of data associated with either using the I or Q carrier is used to distinguish the code group/PSCH time slots. As a result, the number of SSCs, M, required by Equation 6 is reduced by one.
For instance, to distinguish 32 code groups and two possible PSCH time slots, five SSCs (M=5) are required. The code groups are divided in half (code groups 1-16 and code groups 17-32). When the SSCs are transmitted on the I carrier, it restricts the code groups to the lower half (code groups 1-16) and when the SSCs are transmitted on the Q carrier, it restricts the code groups to the upper half (code groups 17-32). The five SS Cs distinguish between the remaining sixteen possible code groups and two possible PSCH time slots.
A simplified base station 301 and UE 321 using QPSK modulation are shown in
Idvar=|rx1|+|rx2|+ . . . +|rxm| Equation 11
|rxi| is the magnitude of the real component (I component) of the ith SSC matched filter output. Likewise, the Q matched filters 1021 to 102M are used by the processor 80 to determine whether any SSC signals were sent on the Q component of the PSCH. A decision variable, Qdvar, is obtained such as by using Equation 12.
Qdvar=|ix1|+|ix2|+ . . . +|ixM| Equation 12
|ixi| is the magnitude of the imaginary (Q component) of the ith SSC matched filter outputs.
If Idvar is greater than Qdvar, the SSC signals were transmitted on the I component. Otherwise, the SSC signals were transmitted on the Q component.
Another approach using QPSK modulation to reduce the number of SSC signals transmitted is depicted in
A simplified base station 301 and UE 321 implementing the reduced SSC approach is shown in
One approach to determining which of 32 code groups and two possible PSCH time slots is used by the base station 321 follows. After the processor 80 accumulates data from matched filters 11011 to 11024, the code group set, either SSC11 to SSC14 or SSC21 to SSC24, is determined using Equations 13 and 14.
var_set 1=|rx11|+|ix12|+ . . . +|rx14|+|ix14| Equation 13
var_set 2=|rx21|+|ix22|+ . . . +|rx24|+|ix24| Equation 14
The values, rx11 to rx24, are the number of accumulated matches for a respective SSC, SSC11 to SSC24, received in the I channel. Similarly, ix11 to ix24 are the number of accumulated matches for the Q channel for SSC11 to SSC24. Equations 13 and 14 require a total of 16 real additions. var_set 1 represents the total accumulations of the first SSC set, SSC11 to SSC14. var_set 2 represents the total accumulations of the second SSC set, SSC21 to SSC24. The processor 80 compares var_set 1 to var_set 2 and the larger of the two variables is presumed to be the SSC set transmitted by the base station 321.
To determine whether the SSCs were transmitted on the I or Q channel, Equations 15 and 16 are used.
var—I=|rxp1|+ . . . +|rxp4| Equation 15
var—Q=|ixp1|+ . . . +|ixp4| Equation 16
If var_set 1 is selected as being larger than var_set 2, the value of p is one. Conversely, if var_set 2 is larger, the value of p is two. var_I is the accumulated values for the selected set on the I carrier and var_Q is the accumulated values on the Q carrier. The larger of the two variables, var_I and var_Q, is presumed to be the channel that the selected set was transmitted over. By ordering the additions in Equations 13 and 14, the values of var_I and var_Q can be determined simultaneously with var_set 1 and var_set 2. Accordingly, determining whether the I or Q carrier was used requires no additional additions. As a result, using QPSK modulation and two SSC sets requires 803 real additions and 36 real multiplications in each time slot and 16 real additions for the decision.
The
Under the simulated conditions of
Claims
1. An integrated circuit (IC), implemented in a time division duplex (TDD) base station having a code group out of N code groups, the IC comprising:
- circuitry configured to output for transmission a primary synchronization code along with a plurality of secondary synchronization codes, the plurality of secondary synchronization codes being quadrature phase shift keying modulated and numbering less than (log2N)+1, and wherein the plurality of synchronization codes are used to identify the code group of the TDD base station.
2. The IC of claim 1 wherein N is equal to 32 code groups.
3. The IC of claim 2 wherein the 32 code groups are divided into two code group sets and a first of the code group sets has codes 1-16 and a second of the code group sets has codes 17-32.
4. The IC of claim 1 wherein the secondary synchronization codes are derived from a row of a Hadamard matrix.
5. The IC of claim 1 wherein the secondary synchronization signals are transmitted either on an in-phase or quadrature carrier.
6. An integrated circuit (IC), implemented in a time division duplex (TDD) user equipment (UE) configured to synchronize to a TDD base station, the IC comprising:
- circuitry configured to receive a signal from the TDD base station;
- circuitry configured to determine a primary synchronization code from the received signal;
- circuitry configured to determine a first plurality of secondary synchronization codes sent on a first carrier from the received signal, wherein the first plurality of secondary synchronization codes are quadrature phased shift keyed (QPSK) modulated and the first carrier is an in-phase (I) carrier;
- circuitry configured to determine a second plurality of secondary synchronization codes sent on a second carrier from the received signal, wherein the second plurality of secondary synchronization codes are QPSK modulated and the second carrier is a quadrature (Q) carrier; and
- circuitry configured to determine a code group assignment and selected timeslot based upon an analysis of the secondary synchronization codes sent on the first and second carriers.
7. The IC of claim 6 wherein each of the first and second plurality of secondary synchronization codes correspond to a row of a Hadamard matrix.
8. The IC of claim 6 wherein there are 32 code groups.
9. The IC of claim 8 wherein the first plurality of secondary synchronization codes is assigned to a first group of codes out of the 32 code groups and the second plurality of secondary synchronization codes is assigned to a second group of codes out of the 32 code groups.
10. The IC of claim 9 wherein the first plurality of secondary synchronization codes is assigned to a lower group and the second plurality of secondary synchronization codes is assigned to a higher group.
11. A time division duplex (TDD) system for synchronizing a TDD user equipment (UE) to a TDD base station, the system including a UE and a base station, the system comprising:
- the UE comprising: a receiver configured to receive a primary synchronization code along with a plurality of secondary synchronization codes from a TDD base station, the TDD base station associated with having a code group out of N code groups, the plurality of secondary synchronization codes numbering less than (log2N)+1 and the secondary synchronization codes being quadrature phase shift keying modulated; and a corresponding matched filter to each of the received secondary synchronization codes; and wherein the UE is configured to identify the code group of the TDD base station by the received plurality of secondary synchronization codes; and
- the base station comprising: an antenna and associated circuitry configured to transmit a primary synchronization code along with a plurality of secondary synchronization codes, the plurality of secondary synchronization codes being quadrature phase shift keying modulated and numbering less than (log2N)+1, and wherein the plurality of synchronization codes are used to identify the code group of the TDD base station.
12. The system of claim 11 wherein N is equal to 32 code groups.
13. The system of claim 12 wherein the 32 code groups are divided into two code group sets and a first of the code group sets has codes 1-16 and a second of the code group sets has codes 17-32.
14. The system of claim 11 wherein the secondary synchronization codes are derived from a row of a Hadamard matrix.
15. The system of claim 11 wherein the secondary synchronization signals are transmitted either on an in-phase or quadrature carrier.
Type: Application
Filed: Nov 4, 2013
Publication Date: Feb 27, 2014
Applicant: InterDigital Technology Corporation (Wilmington, DE)
Inventors: Nadir Sezgin (Brooklyn, NY), Fatih Ozluturk (Port Washington, NY)
Application Number: 14/070,824
International Classification: H04W 56/00 (20060101); H04L 5/14 (20060101);