CN101179538A - Receiver for receiving code field orthogonal pilot signal and receiving method thereof - Google Patents
Receiver for receiving code field orthogonal pilot signal and receiving method thereof Download PDFInfo
- Publication number
- CN101179538A CN101179538A CNA2006101380840A CN200610138084A CN101179538A CN 101179538 A CN101179538 A CN 101179538A CN A2006101380840 A CNA2006101380840 A CN A2006101380840A CN 200610138084 A CN200610138084 A CN 200610138084A CN 101179538 A CN101179538 A CN 101179538A
- Authority
- CN
- China
- Prior art keywords
- module
- signal
- domain
- pilot signal
- time
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Withdrawn
Links
- 238000000034 method Methods 0.000 title claims abstract description 20
- 238000000354 decomposition reaction Methods 0.000 claims abstract description 5
- 230000004044 response Effects 0.000 claims description 27
- 238000013507 mapping Methods 0.000 claims description 15
- 238000006243 chemical reaction Methods 0.000 claims description 13
- 230000005540 biological transmission Effects 0.000 claims description 5
- 239000000284 extract Substances 0.000 claims description 5
- 238000012545 processing Methods 0.000 claims description 3
- 238000006073 displacement reaction Methods 0.000 claims description 2
- 230000008030 elimination Effects 0.000 abstract 3
- 238000003379 elimination reaction Methods 0.000 abstract 3
- 238000012549 training Methods 0.000 description 11
- 238000010586 diagram Methods 0.000 description 10
- 125000004122 cyclic group Chemical group 0.000 description 7
- 238000013461 design Methods 0.000 description 6
- 238000004891 communication Methods 0.000 description 5
- 238000005516 engineering process Methods 0.000 description 5
- 238000001228 spectrum Methods 0.000 description 4
- 230000008569 process Effects 0.000 description 3
- 230000021615 conjugation Effects 0.000 description 2
- 239000013256 coordination polymer Substances 0.000 description 2
- 238000003672 processing method Methods 0.000 description 2
- 230000017105 transposition Effects 0.000 description 2
- 238000007476 Maximum Likelihood Methods 0.000 description 1
- 108010076504 Protein Sorting Signals Proteins 0.000 description 1
- 230000003044 adaptive effect Effects 0.000 description 1
- 238000013459 approach Methods 0.000 description 1
- 230000009286 beneficial effect Effects 0.000 description 1
- 230000008901 benefit Effects 0.000 description 1
- 230000001427 coherent effect Effects 0.000 description 1
- 238000001514 detection method Methods 0.000 description 1
- 230000000694 effects Effects 0.000 description 1
- 238000009432 framing Methods 0.000 description 1
- 230000006870 function Effects 0.000 description 1
- 230000007274 generation of a signal involved in cell-cell signaling Effects 0.000 description 1
- 238000004519 manufacturing process Methods 0.000 description 1
- 230000005039 memory span Effects 0.000 description 1
- 238000010295 mobile communication Methods 0.000 description 1
- 230000007480 spreading Effects 0.000 description 1
- 230000009897 systematic effect Effects 0.000 description 1
Images
Landscapes
- Noise Elimination (AREA)
Abstract
The invention discloses a receiver used for receiving a pilot signal of a code domain orthogonality, which includes a receiving antenna, a frame decomposition module, a DFT-S OFDM demodulation module and a channel estimation interference elimination module. The receiving antenna is used for receiving a wireless signal of a time domain which contains the pilot signal of the code domain orthogonality; the frame decomposition module is used for carrying out a sub-frame decomposition to the pilot signal of the time domain received by the antenna and obtaining the pilot signal of the time domain in the code domain orthogonality separated from the sub-frame signal; the DFT-S OFDM demodulation module is used for demodulating the received time domain pilot signal and transmitting the modulated pilot signal to the channel estimation interference elimination module; and the channel estimation interference elimination module is used for removing a multi-user interference and a multi-path interference and outputting a time domain of the user or frequency domain channel responding. The invention also discloses a method for receiving channel estimation of the pilot signal of the code domain orthogonality.
Description
Technical field
The present invention relates to a kind of data communication technology, specifically, the pilot signal that relates to a kind of receiver of pilot signal of receiving code field orthogonal and sign indicating number territory quadrature is carried out the method for reseptance of channel estimating.
Background technology
In radio communication, be vital to obtaining of channel information, the wireless communication system of the practical application channel estimation technique that will adopt certain form without exception almost.Adaptive channel equalizer utilizes channel information to resist the influence of ISI; Diversity technique is utilized channel estimating, realizes the receiver with receive channel signal optimum Match; Maximum Likelihood Detection makes the receiving terminal mistake minimize by channel estimating.The another one important benefit of channel estimating is that it makes correlation demodulation become possibility.Therefore the channel estimating important ring that in any one wireless communication system, all is absolutely necessary.
Channel estimating is divided into blind Channel Estimation and pilot channel estimation.Because the blind Channel Estimation complexity is high and systematic function is lost, and remains the preferred practical plan of current most systems based on the non-blind Channel Estimation of pilot tone.The long speed that can influence communication of the pilot data that inserts too shortly can not effectively estimate channel parameter again, so the optimal design of pilot tone just seems most important.
The design of channel estimating mainly contains two problems: the one, and the selection of pilot frequency information, because the time variation of wireless channel needs receiver constantly channel to be followed the tracks of, so pilot signal also must constantly transmit; The 2nd, existing lower complexity has the design of the channel estimator of good pilot tracking capability again.
Future mobile communications is to the requirement of up link: as support scalable bandwidth, and moderate PAPR/CM guarantees the orthogonality of uplink etc.Under these required, single carrier transmission scheme SC-FDMA had lower PAPR, can improve the validity of power and increase coverage, became to obtain numerous supports, the most promising technology in the current uplink scheme.SC-FDMA can be divided into the IFDMA of time domain generation and the DFT-SOFDM that frequency domain generates according to the difference of the method for signal generation.Because up DFT-S OFDM technology and descending OFDM scheme have similar structure, so up-downgoing can shared a lot of parameters, so DFT-S OFDM becomes physical-layer techniques the most promising in the uplink.
In the DFT-S ofdm system, the design of pilot tone and corresponding channel estimation scheme mainly comprise based on the pilot design scheme of frequency domain quadrature with based on the pilot design scheme of sign indicating number territory quadrature.Frequency domain orthogonal guide frequency scheme is that multi-user's pilot frequency sequence frequency division multiplexing and multiplex mode is identical with data block, different user subcarrier quadrature on frequency domain.Sign indicating number territory orthogonal guide frequency scheme is meant the pilot frequency sequence that utilizes the pilot frequency sequence orthogonality to distinguish different user, and carries out channel estimating according to this, and the different user subcarrier is quadrature on the sign indicating number territory.The orthogonality of sign indicating number sequence not only makes the pilot tone of different user distinguish mutually, and makes it present the trend of white noiseization, has reduced interference each other.Enough satisfy in code length under the prerequisite of demand of the number of users that same subframe dispatches simultaneously, a sign indicating number sequence can adopt any orthogonal code, as orthogonal codes such as CAZAC sign indicating number, PN sign indicating number, OVSF, Hadamard.
In the frequency domain orthogonal guide frequency scheme, because the complete quadrature of pilot tone between the different user of same sub-district, so the number of users in same sub-district is more for a long time, performance is better relatively, but more serious in the co-channel interference of cell edge.
Summary of the invention
The technical problem that this aspect solved provides a kind of receiver of pilot signal of receiving code field orthogonal, can finish the complete estimation to single user and multi-user's channel impulse response.
Technical scheme is as follows:
The receiver of the pilot signal of receiving code field orthogonal comprises reception antenna, frame decomposing module, DFT-SOFDM demodulation module, channel estimating interference cancellation module;
Wherein reception antenna receives the time domain wireless signal that contains yard pilot signal of territory quadrature;
The frame decomposing module, the time-domain signal that reception antenna is received carries out the subframe decomposition, the time-domain pilot signal of the sign indicating number territory quadrature that obtains separating from the subframe signal;
DFT-S OFDM demodulation module carries out demodulation to the time-domain pilot signal that receives, and the pilot signal after the demodulation sends to the channel estimating interference cancellation module;
The channel estimating interference cancellation module is removed multi-user interference and multipath and is disturbed, output user's time domain or domain channel response.
Preferably, described DFT-S OFDM demodulation module comprises N point FFT module, subcarrier inverse mapping module and M point IDFT module; Wherein,
N point FFT module is converted to frequency-region signal with time-domain signal, sends to subcarrier inverse mapping module;
Subcarrier inverse mapping module is carried out the inverse mapping of the subcarrier that N point subcarrier orders to M, and the frequency domain despreading of finishing is to received signal handled, and extracts the frequency domain information on the receiving sequence, sends to M point IDFT module;
M point IDFT module is carried out M point IDFT conversion, obtains time domain sequences signal and transmission.
Preferably, described channel estimating interference cancellation module comprises:
M point target user CAZAC sequence generator is used to generate one group of CAZAC checking sequence, sends to circular shift module;
Circular shift module is shifted to the CAZAC checking sequence, sends to the inner product summation module;
The inner product summation module is made inner product operation to CAZAC checking sequence and pilot tone time domain sequences after the displacement, obtains the time domain impulse response in each footpath of channel, sends to M point EFT conversion module;
M point DFT conversion module is done the FFT conversion to the time domain impulse response, obtains frequency domain response.
The pilot signal that another technical problem solved by the invention provides a kind of yard territory quadrature is carried out the method for reseptance of channel estimating, can finish the complete estimation to single user and multi-user's channel impulse response.
Technical scheme is as follows:
The method of reseptance that the pilot signal of sign indicating number territory quadrature is carried out channel estimating comprises the steps:
(1) reception contains yard time-domain signal of the pilot signal of territory quadrature;
(2) time-domain signal is carried out subframe and decompose, obtain yard time-domain pilot signal of territory quadrature;
(3) carry out DFT-S OFDM demodulation;
(4) remove multi-user interference and multipath and disturb, output user's time domain or domain channel response.
The pilot signal of sign indicating number according to claim 4 territory quadrature is carried out the method for reseptance of channel estimating, it is characterized in that step (2) is specially:
The time-domain signal that the frame decomposing module receives reception antenna carries out subframe and decomposes, and obtains the Short Block that separates in the subframe signal.
The pilot signal of sign indicating number according to claim 4 territory quadrature is carried out the method for reseptance of channel estimating, it is characterized in that step (3) is specially:
(31) Short Block is gone circulation prefix processing;
(32) N point FFT module is converted to frequency-region signal with time-domain signal;
(33) N does the subcarrier inverse mapping to M point sub-carrier block, and frequency-region signal is to received signal done despreading and handled, and extracts the frequency domain information of receiving sequence, and the frequency domain information of this receiving sequence sends to the channel estimating interference cancellation module.
Sign indicating number territory orthogonal guide frequency scheme adopts CAZAC sequence not of the same clan in different sub-districts, compares with frequency domain orthogonal guide frequency scheme, can reduce the co-channel interference of potential interference, the especially cell edge of minizone greatly.In addition, sign indicating number territory orthogonal guide frequency scheme is compared with frequency domain orthogonal guide frequency scheme, because each user's pilot energy all will be distributed on all subcarriers of channel, therefore can estimate the impulse response of whole frequency domain channel, not only can obtain frequency diversity gain and spreading gain, can also be used in combination easily based on the frequency domain dispatching of CQI (Channel Quality Indicator) with based on numerous technology such as SFBC/STBC of many antennas.
Technical solution of the present invention can be finished the complete estimation to the channel impulse response of single user and multi-user's number, is beneficial to carry out to received signal in signal detector balanced and or in the scheduling of channel quality.Simultaneously, can also improve the interference free performance and the complexity performance of channel estimating.
Description of drawings
Fig. 1-A is the code field pilot channel estimating system block diagram of single user system;
Fig. 1-B is the code field pilot channel estimating system block diagram of multi-user system;
Fig. 2 is the subframe structure block diagram of DFT-S ofdm system;
Fig. 3 is a CAZAC cyclic shift schematic diagram;
Fig. 4 is the structured flowchart of CAZAC pilot frequency sequence maker;
Fig. 5 is the structured flowchart of DFT-S OFDM modulation module;
Fig. 6 is the structured flowchart of DFT-S OFDM demodulation module;
Fig. 7-A is the disposed of in its entirety block diagram of interference eliminated;
Fig. 7-B multi-user interference is eliminated theory diagram;
Fig. 7-C multipath interference eliminated block diagram;
Embodiment
With reference to the accompanying drawings, the preferred embodiments of the present invention are described in detail.
Fig. 1-A is the code field pilot channel estimating system block diagram of single user system; Fig. 1-B is the code field pilot channel estimating system block diagram of multi-user system.
Shown in Fig. 1-A and Fig. 1-B, the first half is the transmitter of the pilot signal of transmitting code field orthogonal, and the latter half is the receiver of the pilot signal of receiving code field orthogonal.
Fig. 2 is the subframe structure block diagram of DFT-S ofdm system.
As shown in Figure 2, in the DFT-S ofdm system, a complete frame structure comprises the subframe of 20 0.5ms, each subframe is made up of 6 Long Block and 2 Short Block, wherein, ShortBlock is used for transmission of reference signals, and Long Block is used for transmitting user data.
The transmitter of the pilot signal of transmitting code field orthogonal comprises training sequence maker, DFT-S OFDM modulation module, becomes frame module, transmitting antenna.
The training sequence maker at first generates the pilot frequency sequence that M is ordered, and the pilot frequency sequence that M is ordered is sent into DFT-S OFDM modulation module and modulated then, and the pilot tone after the modulation send the framing module combinations to become a subframe, exports transmitting antenna to and transmits.
The receiver of the pilot signal of receiving code field orthogonal comprises frame decomposing module, DFT-S OFDM demodulation module, channel estimating interference cancellation module.
Reception antenna receives the time domain wireless signal that contains yard pilot signal of territory quadrature, the frame decomposing module is at first carried out the subframe operation splitting to the time-domain signal that reception antenna receives, the time-domain pilot signal of the sign indicating number territory quadrature that obtains from the subframe signal, separating, by DFT-S OFDM demodulation module it is carried out demodulation DFT-S OFDM then, pilot signal after the demodulation removes multi-user interference by the channel estimating interference cancellation module and multipath disturbs, output user's time domain or domain channel response.
The rudimentary algorithm of receiving terminal estimation multipath channel is considered single user situation.The pilot signal of unique user can be expressed as at receiving terminal through behind the multipath transmisstion:
r=s
1h
1+s
2h
2+…+s
ph
p
Wherein, r represents received signal sequence, s
jBe the corresponding circulation CAZAC sequence of each multipath equivalence, h
jBe the channel time domain impulse response of each multipath correspondence, p represents multipath number.
To equation two ends while premultiplication s
j *(s
jConjugate transpose), be zero characteristic according to the circulation autocorrelation of CAZAC sequence.
So, can obtain each impulse response directly of time domain channel
According to the time domain impulse response and the corresponding time-delay thereof of each bar multipath, it is made the frequency domain response that Fourier transform can obtain multipath channel.
Consider multi-user's situation, a plurality of users' transmission information can be expressed as r=s at receiving terminal after by multipath transmisstion
1,1h
1,1+ s
1,2h
1,2+ ... + s
1, ph
1, p+ ... + s
I, 1h
I, 1+ s
I, 2h
I, 2+ ... + s
I, ph
I, p+
Wherein, first i of following target represents the different user numbering.Similar with single user code territory orthogonal pilot channels estimation scheme, equation two ends premultiplication s
I, j(s
I, jThe Hermitian transposition), be again zero characteristic according to the circulation autocorrelation of CAZAC sequence, and the low their cross correlation of CAZAC sequence not of the same clan, can obtain the impulse response in each footpath of time domain channel
As shown in Figure 3, the training sequence maker generates the CAZAC pilot frequency sequence that M is ordered, and the create-rule of this CAZAC sequence is as follows:
1, the user of different districts uses CAZAC pilot frequency sequence not of the same clan.
Has good accurate orthogonality between CAZAC sequence not of the same clan, in order to minimize the interference among multiple users that belongs to different districts.
2, the user in the same sub-district uses CAZAC pilot frequency sequence of the same clan as far as possible.
The CAZAC sequence has desirable circulation autocorrelation, in order to minimize the interference between different user in the single subdistrict.
3, when the multi-user's number in the same sub-district during, can consider to use CAZAC pilot frequency sequence not of the same clan greater than CAZAC number of pilot sequences of the same clan.
Length is N
GThe generation expression formula of CAZAC sequence as follows:
S
u=(a
u(0)b,a
u(1)b,…,a
u(N
G-1)b)
Wherein, b is that amplitude is 1 multiple scalar factor.Simultaneously
Wherein, u=1 ..., N
GThe-1st, family's sequence number of CAZAC sequence, k=0,1 ... N
G-1, q is an arbitrary integer.
CAZAC sequence not of the same clan can embody by the different sequence number u of family, can see, because the value of u is a lot, so this system can support a lot of sub-districts.
With reference to shown in Figure 4, the cyclic shift process is described in detail.For the CAZAC sequence with gang, the multi-user's number that can support is limited.Maximum number of user
Wherein, m=N
G=M, n=N, under the 5M bandwidth condition, M=151, N=256, CP=31 can get N
UEmax=8.Calculate if take 50 subcarriers, support 6 users altogether according to every user's data information, therefore, can be with the every cyclic shift of original M position CAZAC sequence
Be dispensed to a user behind the position, as the pilot tone training sequence.
Because the CAZAC sequence is to the specific (special) requirements of sequence length, M need get prime number just can guarantee good orthogonality.Therefore, when regulation pilot tone among the Short Block takies sub-carrier number and is non-prime number, the nearest prime number of desirable distance regulation sub-carrier number in the reality.But the concrete value table of comparisons one, for example, under the 5M bandwidth condition, to take sub-carrier number be 150 points to the regulation pilot tone among the Short Block, actual desirable M=151.
Table one is the actual carrier number that takies among the SB
| Bandwidth | 1.25MHz | 2.5MH z | 5MHz | 10MH z | 15MH z | 20MH z |
| IFFT size (N) | 64 | 128 | 256 | 512 | 768 | 1024 |
| Regulation takies sub-carrier number | 37 | 75 | 150 | 300 | 450 | 600 |
| The actual sub-carrier number (M) that takies | 37 | 73 | 151 | 293 | 449 | 601 |
As shown in Figure 5, the internal structure and the processing method of DFT-S OFDM modulation module have been disclosed.After generating the pilot tone training sequence, at first, to doing M point DFT or FFT conversion, time domain sequences is converted to frequency domain by M point modular converter.Then, finish the subcarrier mapping that M point subcarrier is ordered to N in the frequency domain to N subcarrier mapping block, come down to the spread spectrum on the frequency domain by M.Concrete grammar can adopt the centralized mapping method, promptly to the terminal null value of inserting of M point sequence signal, obtains the spread-spectrum signal that N is ordered.
After finishing frequency domain spread spectrum, need do the conversion of frequency domain-time domain, promptly, frequency domain training sequence is converted to time-domain training sequence by N point IFFT module to frequency-region signal.
Add Cyclic Prefix and form a Short Block before time-domain training sequence, the effective information of guard signal is eliminated intersymbol interference.Cyclic Prefix is duplicating of training sequence tail portion, is attached to the training sequence front end, and length is equal to or greater than the maximum delay of channel, though signal by the time channel that looses, also can guarantee the orthogonality between subchannel, avoid intersymbol interference (ISI).Here getting circulating prefix-length is 31 points.
Under multi-user's situation, be 6 such as number of users, be τ each user's relative time delay
1, τ
2..., τ
6, be without loss of generality, make and satisfy 0 ≡ τ its relative time delay
1=min{ τ
1, τ
2..., τ
6}≤τ
2≤ ... ≤ τ
6≡ max{ τ
1, τ
2..., τ
6Establish
Wherein
The nearest integer of distance alpha between expression zero and the real number α.For user i, establishing its multipath channel memory span is L
i(with chip period T
cBe the interval).It is L that time domain pilot training sequence behind the spread spectrum is added length
gCyclic Prefix, L wherein
gSatisfy L
g〉=max{ α
1, α
2..., α
6}+max{L
i}-1, the Short Block pilot signal that obtains adding behind the Cyclic Prefix is s
i(k), that is:
Wherein, M
g=L
g+ N.Here establish L
gLess than N.
s
i(k) be the pilot signal that Short Block sends in subframe of user i.
Becoming the effect of frame module is that 2 Short Block and 6 Long Block that will generate according to defined frame structure are combined into a subframe, export transmitting antenna to and transmit.The frame decomposing module is at first carried out the subframe operation splitting to the time-domain signal that reception antenna receives, and obtains the Short Block that separates from the subframe signal.
As shown in Figure 6, describe the internal structure and the processing method of DFT-S OFDM demodulation module, at first a Short Block has been gone circulation prefix processing.
c(k-L
g)=r(k) L
g<k≤M
g
Wherein, L
gFor circulating prefix-length and less than N, M
g=L
g+ N.
By N point FFT module time-domain signal is converted to frequency-region signal, obtains C (k), k=1 ..., N.
Do the subcarrier inverse mapping that N point subcarrier is ordered to M through the subcarrier mapping block, the frequency domain despreading of finishing is to received signal handled, and the effective frequency domain information on the receiving sequence is extracted out.Concrete grammar can adopt centralized approach, is about to N point sequence signal end and gives up near the noise of null value, thereby obtain the effective frequency domain sequence signal R that M is ordered
Eff
R
eff(k)=C(k)k=1,…,M
With R
EffDo M point IDFT conversion through M point IDFT module, obtain effective time domain sequences signal r
Eff, give next step channel estimating interference eliminated.
Shown in Fig. 7-A, the disposed of in its entirety of interference eliminated comprises relevant and goes to be disturbed.
The conjugation of coherent reference pilot frequency sequence and the inner product of receiving sequence are handled, and go to disturb to comprise that removal multi-user interference and multipath disturb two steps.
Shown in Fig. 7-B, in the channel estimating interference cancellation module, at first at receiving terminal according to different user, generate one group and comprise the long CAZAC checking sequence of ordering for M of M.This group CAZAC checking sequence is to be made M cyclic shift and obtained the method for the similar transmitter generation of production method pilot frequency sequence by the effective pilot tone time domain sequences of targeted customer's CAZAC.For example under the bandwidth of 5M, promptly
1≤j≤151 wherein, when j=0, e
I, 0(k)=a
i(k).
With e
I, jGet after the conjugation and pilot tone time domain sequences r
Eff(the pilot tone time domain sequences is produced by the M point IDFT conversion of DFT-S OFDM demodulation module) makes inner product operation, i.e. premultiplication e
I, j(e
I, jThe Hermitian transposition), obtain
So, can obtain each time domain impulse response directly of channel
Each user τ in relative time delay
iSatisfy 0 ≡ τ
1=min{ τ
1, τ
2..., τ
6}≤τ
2≤ ... ≤ τ
6≡ max{ τ
1, τ
2..., τ
6, and
That is, according to the corresponding α that counts of maximum multipath time delay
i, and each footpath impulse response h of gained channel
I, j
As described in Fig. 7-C, extract the effective value of above-mentioned impulse response sequence front end, the minimum of rear end wherein is used as noise and zero setting is eliminated.This process is exactly the multipath channel interference cancellation process, for example: at the TU3 channel model, 6 footpaths, maximum multipath time-delay 18 points of counting, in this channel, desirable time domain impulse response sequence preceding 20 as effective value, with other zero setting.Obtain
Wherein, j
EffThe effective diameter number of expression impulse response sequence.
Claims (6)
1. the receiver of the pilot signal of a receiving code field orthogonal comprises reception antenna, it is characterized in that, also comprises frame decomposing module, DFT-S OFDM demodulation module, channel estimating interference cancellation module; Wherein,
Reception antenna receives the time domain wireless signal that contains yard pilot signal of territory quadrature;
The frame decomposing module, the time-domain signal that reception antenna is received carries out the subframe decomposition, the time-domain pilot signal of the sign indicating number territory quadrature that obtains separating from the subframe signal;
DFT-S OFDM demodulation module carries out demodulation to the time-domain pilot signal that receives, and the pilot signal after the demodulation sends to the channel estimating interference cancellation module;
The channel estimating interference cancellation module is removed multi-user interference and multipath and is disturbed, output user's time domain or domain channel response.
2. the receiver of the pilot signal of receiving code field orthogonal according to claim 1 is characterized in that, described DFT-S OFDM demodulation module comprises N point FFT module, subcarrier inverse mapping module and M point IDFT module; Wherein,
N point FFT module is converted to frequency-region signal with time-domain signal, sends to subcarrier inverse mapping module;
Subcarrier inverse mapping module is carried out the inverse mapping of the subcarrier that N point subcarrier orders to M, and the frequency domain despreading of finishing is to received signal handled, and extracts the frequency domain information on the receiving sequence, sends to M point IDFT module;
M point IDFT module is carried out M point IDFT conversion, obtains time domain sequences signal and transmission.
3. the receiver of the pilot signal of receiving code field orthogonal according to claim 1 is characterized in that, described channel estimating interference cancellation module comprises:
M point target user CAZAC sequence generator is used to generate one group of CAZAC checking sequence, sends to circular shift module;
Circular shift module is shifted to the CAZAC checking sequence, sends to the inner product summation module;
The inner product summation module is made inner product operation to CAZAC checking sequence and pilot tone time domain sequences after the displacement, obtains the time domain impulse response in each footpath of channel, sends to M point EFT conversion module;
M point DFT conversion module is done the FFT conversion to the time domain impulse response, obtains frequency domain response.
4. the pilot signal of a sign indicating number territory quadrature is carried out the method for reseptance of channel estimating, comprises the steps:
(1) reception contains yard time-domain signal of the pilot signal of territory quadrature;
(2) time-domain signal is carried out subframe and decompose, obtain yard time-domain pilot signal of territory quadrature;
(3) carry out DFT-S OFDM demodulation;
(4) remove multi-user interference and multipath and disturb, output user's time domain or domain channel response.
5. the pilot signal of sign indicating number according to claim 4 territory quadrature is carried out the method for reseptance of channel estimating, it is characterized in that step (2) is specially:
The time-domain signal that the frame decomposing module receives reception antenna carries out subframe and decomposes, and obtains the Short Block that separates in the subframe signal.
6. the pilot signal of sign indicating number according to claim 4 territory quadrature is carried out the method for reseptance of channel estimating, it is characterized in that step (3) is specially:
(31) Short Block is gone circulation prefix processing;
(32) N point FFT module is converted to frequency-region signal with time-domain signal;
(33) N does the subcarrier inverse mapping to M point sub-carrier block, and frequency-region signal is to received signal done despreading and handled, and extracts the frequency domain information of receiving sequence, and the frequency domain information of this receiving sequence sends to the channel estimating interference cancellation module.
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CNA2006101380840A CN101179538A (en) | 2006-11-07 | 2006-11-07 | Receiver for receiving code field orthogonal pilot signal and receiving method thereof |
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CNA2006101380840A CN101179538A (en) | 2006-11-07 | 2006-11-07 | Receiver for receiving code field orthogonal pilot signal and receiving method thereof |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| CN101179538A true CN101179538A (en) | 2008-05-14 |
Family
ID=39405627
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| CNA2006101380840A Withdrawn CN101179538A (en) | 2006-11-07 | 2006-11-07 | Receiver for receiving code field orthogonal pilot signal and receiving method thereof |
Country Status (1)
| Country | Link |
|---|---|
| CN (1) | CN101179538A (en) |
Cited By (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2011157210A1 (en) * | 2010-06-18 | 2011-12-22 | 中兴通讯股份有限公司 | Method and device for channel estimating in orthogonal frequency division multiplexing system |
| CN102474375A (en) * | 2009-07-17 | 2012-05-23 | Lg电子株式会社 | Method and apparatus for transmitting downlink reference signal |
| CN107230335A (en) * | 2017-05-27 | 2017-10-03 | 南京泛和电力自动化有限公司 | Communication means and system for the live managing and control system of photovoltaic generation |
-
2006
- 2006-11-07 CN CNA2006101380840A patent/CN101179538A/en not_active Withdrawn
Cited By (6)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN102474375A (en) * | 2009-07-17 | 2012-05-23 | Lg电子株式会社 | Method and apparatus for transmitting downlink reference signal |
| US8982848B2 (en) | 2009-07-17 | 2015-03-17 | Lg Electronics Inc. | Method and apparatus for transmitting downlink reference signal |
| CN102474375B (en) * | 2009-07-17 | 2015-11-25 | Lg电子株式会社 | Send the method and apparatus of downlink reference signal |
| WO2011157210A1 (en) * | 2010-06-18 | 2011-12-22 | 中兴通讯股份有限公司 | Method and device for channel estimating in orthogonal frequency division multiplexing system |
| CN107230335A (en) * | 2017-05-27 | 2017-10-03 | 南京泛和电力自动化有限公司 | Communication means and system for the live managing and control system of photovoltaic generation |
| CN107230335B (en) * | 2017-05-27 | 2021-02-23 | 夏德华 | Communication method and system for photovoltaic power generation field control system |
Similar Documents
| Publication | Publication Date | Title |
|---|---|---|
| CN101179539A (en) | Simplified receiver for receiving code field orthogonal pilot signal and receiving method thereof | |
| CN101233710B (en) | Sending device, receiving device, mobile communication system and synchronization channel sending method | |
| CN101166166A (en) | Pilot channel estimating system and estimating method for uplink multi-user code domain | |
| CN101163124B (en) | Method of implementing multi-input multi-output orthogonal frequency division multiplexing system time synchronization | |
| JP2007300383A (en) | MIMO-OFDM transmitter | |
| CN101494528A (en) | Training sequence design and channel estimation method of transmission diversity block transmission system | |
| CN101515917A (en) | Multi-user wireless communication system based on both-way trunk and method thereof | |
| CN101958865A (en) | Method for generating demodulating reference signal and device thereof | |
| CN101179540A (en) | Uplink multi-user code field pilot channel estimating system | |
| CN101388872B (en) | Data signal modulation, demodulation method, transceiver and transceiving system | |
| CN106656441A (en) | Method and device for improving reliability of communication between vehicles | |
| CN101283535B (en) | Multi-pilot frequency generation method and detection method in multi-antenna communication system | |
| CN101841507B (en) | Method and device for generating primary synchronous channel sequence and multi-antenna transmitting method of primary synchronous channel sequence | |
| CN101001235A (en) | A Weak Energy Parallel PN Sequence Time Synchronization and Frequency Synchronization Method | |
| KR101029768B1 (en) | Apparatus and method for demodulating control signals | |
| CN101222459B (en) | Pilot frequency insertion and channel estimation method of frequency domain equalization system | |
| CN101217300A (en) | Channel Estimation Method for Transmit Diversity Systems | |
| US9729356B1 (en) | Channel estimation with co-channel pilots suppression | |
| CN101179538A (en) | Receiver for receiving code field orthogonal pilot signal and receiving method thereof | |
| CN101179541A (en) | Uplink multi-user code field pilot channel estimating method | |
| CN101686213A (en) | Frequency domain channel estimation method and system | |
| CN101232481B (en) | Signal channel estimating method and corresponding sending and receiving device | |
| CN102457463A (en) | Frequency offset estimation method and device | |
| CN101179546A (en) | Transmitter of transmitting code field orthogonal pilot signal and transmitting method thereof | |
| CN1635725B (en) | A Synchronization Method in Orthogonal Frequency Division Multiplexing System |
Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| C06 | Publication | ||
| PB01 | Publication | ||
| C10 | Entry into substantive examination | ||
| SE01 | Entry into force of request for substantive examination | ||
| C04 | Withdrawal of patent application after publication (patent law 2001) | ||
| WW01 | Invention patent application withdrawn after publication |