CN1396730A - Method for realizing frequency synchronization in orthogonal FDM system - Google Patents

Method for realizing frequency synchronization in orthogonal FDM system Download PDF

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CN1396730A
CN1396730A CN 02136607 CN02136607A CN1396730A CN 1396730 A CN1396730 A CN 1396730A CN 02136607 CN02136607 CN 02136607 CN 02136607 A CN02136607 A CN 02136607A CN 1396730 A CN1396730 A CN 1396730A
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frequency
synchronization
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茅永峻
张海滨
蔡觉平
罗汉文
宋文涛
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Shanghai Jiaotong University
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Abstract

A method for realizing frequency synchronization in orthogonal FDM system features the combination of the fraction in orthogonal FDM system features the combination of the fraction multiplying synchronization with integer multiplying one, and includes such steps as frequency tracking before FFT, estimating fraction multiplying frequency shift, preliminary correcting, then capturing the frequency, estimating integer multiplying frequency shift, and fine frequency correction by discrete Fourier transformation and serial-parallel conversion. Its advantage is high synchronization precision.

Description

The synchronous implementation method of ofdm system medium frequency
Technical field:
The present invention relates to the synchronous implementation method of a kind of ofdm system medium frequency, be mainly used in cell mobile communication systems of new generation and WLAN (wireless local area network) and based on the wireless and line transmission system of ofdm system.
Background technology:
Utilizing the notion of parallel data transmission and frequency division multiplexing to propose mid-term nineteen sixties, is in order to make full use of under the situation of effective bandwidth, to utilize the subchannel that overlaps to avoid the use of high speed equalizer, opposing impulsive noise and multipath effect.Use in military communication, its feature is to be quadrature between subcarrier and the subcarrier.We are commonly referred to as ofdm system this system, are called for short ofdm system.
In ofdm system, owing to have mismatch between transmission and the reception oscillator, or have Doppler frequency shift at the mobile wireless passage, there are carrier frequency shift in transmitting terminal and receiving terminal.Carrier frequency shift is introduced inter-carrier interference, has reduced the orthogonality between the subcarrier, thereby has reduced the performance of whole system.Concerning the ofdm system of forming by a large amount of subcarriers, little many of the whole relatively channel width of subcarrier bandwidth.Therefore, a spot of frequency shift (FS) will cause the substantial reduction of signal to noise ratio.
Present frequency synchronization method can reduce following a few class: a) insert special synchronization blocks and realize Frequency Synchronization in the OFDM frame; B) realize Frequency Synchronization through the output analysis of fast fourier transform FFT to received signal; C) utilize the preceding protection time slot of FFT conversion to realize Frequency Synchronization;
First kind method is utilized special synchronization blocks estimated frequency skew, can obtain good result, but, this method will be inserted synchronization blocks, has reduced band efficiency, in this case, the quantity that requires synchronization blocks is much smaller than data bulk, also have some deficiency, lock in time is long, the algorithm complexity.
The second class methods availability of frequency spectrum height, but net synchronization capability is poor.
The 3rd class methods utilize the characteristic of signal in the ofdm system itself to come synchronously, and algorithm is simple comparatively speaking, but ratio of precision is lower.
For integer-times frequency synchronization, utilize the autocorrelation of pseudo random sequence PN to do frequency acquisition, exist capture range and catch contradiction between precision.
In the ofdm system, the method of general using increase in power is made integer-times frequency synchronization, promptly insert pilot tone at some subcarrier place of frequency domain, the performance number of these pilot tones is greater than the performance number of other subcarrier place data, and receiving terminal utilizes the characteristic that these pilot powers increase and the position of pilot tone to estimate normalization integer-times frequency offset value.This method can be estimated the integer-times frequency offset amount exactly, and its weak point is that estimation range is limited." Performance of OFDM Carrier and Sampling Frequency Synchronization onStationary and Mobile Channels ", IEEE, pp.18-19 proposes in June 2000 articles to divide frequency acquisition and tracking for three steps realized.The first step under maximum likelihood function ML criterion, utilizes protection to do frequency-tracking (it is synchronous to belong to coarse frequency) at interval; In second step, the method for utilizing pilot power to increase is done integer-times frequency synchronization (belonging to smart Frequency Synchronization); In the 3rd step, the cross correlation of the pilot tone of inserting in the symbol before and after utilizing is done further decimal overtones band synchronous (belonging to smart Frequency Synchronization).This algorithm can be realized frequency offset correction accurately, but this method is mainly used in DVB-T.And frequency acquisition algorithm relative complex.
Summary of the invention:
The objective of the invention is at the deficiencies in the prior art, a kind of new synchronous implementation method of ofdm system medium frequency is proposed, under the prerequisite that guarantees precision, can effectively improve the frequency acquisition scope, reduce the complexity of algorithm, when realizing, reduce the expense of FPGA door with programmable gate array (FPGA).
For realizing such purpose, in the technical scheme of the present invention, adopt the synchronous and integral multiple separated in synchronization of little several times, it is synchronous to do little several times earlier, does the synchronous method of integral multiple after the preliminary compensation.Integral multiple is not directly done the cross-correlation of signal synchronously and is estimated integer-times frequency offset in frequency domain, but pass through discrete Fourier transform (DFT), the cross-correlation of signal is converted into the product of signal, the serial signal of input is by the signal multiplication among a multiplier and the local ROM, like this computing cross-correlation of signal is converted into a multiplier data of storing among the serial signal of input and the local ROM are multiplied each other, dateout changes into parallel data by serial/parallel transducer, the parameter of the FFT that the corrected received device has itself, it is made into inverse-Fourier transform (IFFT), utilize the IFFT module that the parallel signal of serial/parallel transducer output is IFFT, compare the size of IFFT module output signal mould value, thereby obtain the integer frequency offset estimated value.Little several times utilize t8, the t9 of short training sequence, t10 to realize synchronously.Therefore, new frequency synchronization method can be estimated the skew of decimal overtones band earlier at FFT previous crops frequency-tracking, and working frequency is caught after preliminary frequency correction then, estimates integer-times frequency offset, and estimation range is at [32 Δ F, 31 Δ F].
Method concrete steps of the present invention are as follows:
1, it is synchronous to carry out the decimal overtones band earlier.Data after the frame synchronization that receives are divided into two-way, and one road signal is given multiplier, and one road signal is to N sampled data of delayer time-delay, the data of time-delay get conjugation and another circuit-switched data multiplies each other, do length again and be L displacement and, get its real part and imaginary part respectively, as the input signal of estimator.
The function of frame synchronization module is the starting position that provides the FFT window, take out the head (symbol begins wherefrom) of symbol, process frame synchronization provides the starting position of short training sequence t8, t9, t10 and long training sequence, and t8, t9, t10 represent the 8th, the 9th and the 10th short training sequence respectively.
2, according to the maximum likelihood function criterion, t8 is regarded as protection at interval, t9 and t10 regard data segment as, estimate decimal overtones band side-play amount by following formula. ϵ ^ = 1 2 π tan - 1 Σ k = θ - L + 1 θ Im { r ( k ) · r * ( k - N ) } Σ k = θ - L + 1 θ Re { r ( k ) · r * ( k - N ) } Estimable normalized frequency side-play amount
Figure A0213660700052
Wherein
Figure A0213660700053
Be normalization fractional part of frequency offset estimated value, θ is t8 last sampled value as Cyclic Prefix (CP), and L is the length of a short training sequence, the signal of r (k) for receiving, { .} *The expression conjugation.
3, normalization frequency offset estimating value
Figure A0213660700054
Be defeated by digital controlled oscillator NCO as input signal, the digital controlled oscillator basis The sine and the cosine signal of size output corresponding frequencies, the sinusoidal signal of output and cosine signal respectively with RAM in the two-way received signal of storing multiply each other, compensation receives the decimal overtones band side-play amount of data, plays thick synchronous effect.
4, carry out integer-times frequency synchronization again.With thick data in synchronization as the input data, as the input signal x of integer-times frequency synchronization module 1(n); Subcarrier to long training sequence is FFT, and the storage that obtains is in ROM; Remove the protection time slot in the long training sequence in the data that receive, remaining data utilize a multiplier in order with local ROM in signal x 2(n) multiply each other, export corresponding data.
5, from the serial/parallel conversion of data process of multiplier output, its output signal is defeated by the IFFT module as the input signal of IFFT, and the IFFT module can be obtained by the FFT module of this locality.
6, from the data of the IFFT output input value of device as a comparison, the mould value of comparing data, wherein the following target negative of the data of mould value maximum is normalization integer frequency offset estimated value N; The mould value can the Calais replaces by real and imaginary part being taken absolute value then mutually respectively.
The present invention has significant beneficial effect, adopt little several times synchronously and the method for integral multiple separated in synchronization, synchronous by doing integral multiple again after the preliminary compensation of do synchronously of little several times, the relevant product that is converted between the signal between the signal, only need a multiplier just can finish multiplying each other between the signal, reduce the capacity of required FPGA, and improved the scope of integer-times frequency synchronization.Little several times have been utilized t8, t9, the t10 of short training sequence synchronously, have guaranteed synchronous required precision.Decimal times synchronized algorithm and the combination of integral multiple algorithm make the present invention under the prerequisite that guarantees the traditional algorithm precision, have greatly improved the frequency acquisition scope.When realizing,, significantly reduced the expense of FPGA door the relevant product that is converted between the signal between the signal with FPGA.
The drawing explanation:
Fig. 1 realizes schematic diagram for OFDM Frequency Synchronization of the present invention.
Among the figure, the signal of c (k) for receiving, x2(n) be data among the local ROM, i.e. the DFT of long training sequence Transform data. Receiver is stored in the data that receive among the RAM signal sampling, simultaneously to data c (k) The time-delay N, to the time-delay data get conjugation, the data that obtain and c (k) multiply each other, on time shaft to L phase The result who takes advantage of does cumulative, gets respectively real part and imaginary part, estimates the fraction frequency offset value by estimator
Figure A0213660700061
Number Controlled oscillator NCO according to
Figure A0213660700062
The compensating signal of size output corresponding frequencies, with signal multiplication among the RAM, the compensation fraction frequency offset obtains a required sequence x of integer-times frequency synchronization1(n), under the control of long training sequence symbol head control signal, with data x among the local ROM2(n) multiply each other, its output valve process string/ And change the input value that (S/P) obtains IFFT, can obtain cross correlation value through the IFFT module, mould value maximum The argument value of correspondence be required value (being assumed to be m), its negative is that the normalization integer multiple frequency is estimated Value (m). The IFFT module can obtain by the FFT module in the ofdm system.
Embodiment:
Below by specific embodiment technical scheme of the present invention is further described.Embodiment:
The application of method of the present invention in 802.11a carried out frequency-tracking with the t8 in the short training sequence, t9 and t10 time period, and promptly the decimal overtones band is synchronous; Finish frequency acquisition with long training sequence, i.e. integer-times frequency synchronization.The decimal overtones band is synchronous:
Each Short Training symbol is to be become by 12 sub carrier group.Determine by following S sequence: S - 26,26 = ( 13 / 6 ) × { 0,0,1 + j , 0,0,0 , - 1 - j , 0 , 0 , 0 , 1 + j , 0 , 0 , 0 , - 1 - j , 0,0,0 , - 1 - j , 0,0,0,1+j, 0,0,0,0,0,0,0 ,-1-j, 0,0,0 ,-1-j, 0,0,0,1+j, 0,0,0,1+j, 0,0,0,1+j, 0,0,0,1+j, 0, the 0} factor Be for OFDM symbol average energy is equated.
Short training sequence is obtained by 64 FFT, because it has data every 4, equivalence is 16 FFT.In this case, two groups of data pitch of the scope of frequency-tracking and displacement and front and back are relevant.
Storage after the frame synchronization in RAM, is divided into two-way to data again, to 32 samplings of road signal lag wherein, the data of time-delay get conjugation and another circuit-switched data multiplies each other, do length again and be 16 displacement and, get its real part and imaginary part respectively, as the input signal of estimator.T8 is regarded as protection at interval, and t9 and t10 regard data segment as, estimate decimal overtones band side-play amount
Figure A0213660700073
The digital controlled oscillator basis
Figure A0213660700074
Size output corresponding compensation signal, compensation decimal overtones band side-play amount.Integer-times frequency synchronization:
Each long training symbol is to be become by 53 sub carrier group, is determined by following L sequence:
L -26,26={1,1,-1,-1,1,1,-1,1,-1,1,1,1,1,1,1,-1,-1,1,1,-1,1,-1,1,1,1,1,0,1,-1,-1,1,1,-1,1,-1,1,-1,-1,-1,-1,-1,1,1,-1,-1,1,-1,1,-1,1,1,1,1}
Do frequency acquisition with long training sequence, as Fig. 1.x 1(n) and x 2(n) multiply each other the data that obtain by serial/parallel conversion through multiplier, output valve is done 64 IFFT conversion,, obtain normalization integer frequency offset estimated value N at last from 64 data of IFFT output input value of device as a comparison.

Claims (1)

1, the synchronous implementation method of a kind of ofdm system medium frequency is characterized in that comprising following concrete steps:
1) data after the frame synchronization that receives are divided into two-way, one road signal is given multiplier, one road signal
To N sampled data of delayer time-delay, the data of time-delay get conjugation and another circuit-switched data multiplies each other,
Do length again and be L displacement and, get its real part and imaginary part respectively, as the input letter of estimator
Number;
2) according to the maximum likelihood function criterion, t8 is regarded as protection at interval, t9 and t10 regard data segment as,
Estimate decimal overtones band side-play amount
Figure A0213660700021
3) will Be defeated by digital controlled oscillator NCO as input signal, the digital controlled oscillator basis
Figure A0213660700023
Size output
The sine of corresponding frequencies and cosine signal, respectively with RAM in the two-way received signal of storing multiply each other,
Compensation receives the decimal overtones band side-play amount of data, plays thick synchronous effect;
4) with the input signal x of thick data in synchronization as the integer-times frequency synchronization module 1(n), the subcarrier of long training sequence is FFT, the storage that obtains is removed the protection time slot in the long training sequence in the data that receive in ROM, remaining data utilize a multiplier in order and
Signal x among the local ROM 2(n) multiply each other, export corresponding data;
5) from the serial/parallel conversion of data process of multiplier output, its output signal is imported the IFFT module;
6) from the data of the IFFT output input value of device as a comparison, the mould value of comparing data, wherein mould
The following target negative of the data that value is maximum is normalization integer frequency offset estimated value N.
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CN1327642C (en) * 2004-04-02 2007-07-18 清华大学 Frame synchronous circuit and method for eliminating time frequency deviation effect of orthogonal FDM
CN100361424C (en) * 2005-05-13 2008-01-09 北京航空航天大学 Data transmitting method in short-distance radio network
CN100373831C (en) * 2003-04-29 2008-03-05 电子科技大学 Method for separating user data from training sequence in multicarrier system
CN100463459C (en) * 2006-01-09 2009-02-18 北京北方烽火科技有限公司 WiMAX system base station receiving end timing and frequency deviation combined synchnonization method
CN1719818B (en) * 2005-07-08 2010-06-23 广州海格通信集团股份有限公司 Apparatus and method for processing sampling frequency deviation tracking signal in orthogonal frequency division multiplex system
CN101023611B (en) * 2004-09-18 2010-12-01 三星电子株式会社 Apparatus and method for frequency synchronization in OFDM system
CN101277290B (en) * 2007-03-26 2011-01-26 富士通株式会社 Method and apparatus for synchronization of orthogonal frequency division multiplexing system frequency
CN1738300B (en) * 2004-07-22 2011-02-09 三星电子株式会社 Method for estimating maximum likelihood frequency offset in mobile communication system
CN102098260A (en) * 2009-12-15 2011-06-15 索尼公司 Receiving apparatus and method, program, and receiving system
CN102104570A (en) * 2009-12-18 2011-06-22 上海华虹集成电路有限责任公司 Integer frequency offset estimation device and method in CMMB (China Mobile Multimedia Broadcasting) system
CN102148628A (en) * 2010-02-08 2011-08-10 北京泰美世纪科技有限公司 Method and device for synchronizing spread-spectrum weak signal
CN101252562B (en) * 2008-04-08 2011-09-21 西安电子科技大学 New OFDM system synchronization combining method
CN1898932B (en) * 2003-12-23 2011-11-16 英特尔公司 Method and apparatus for compensating i/q imbalance in receivers
CN101309248B (en) * 2007-05-16 2012-03-07 富士通株式会社 Frequency synchronizing method and apparatus suitable for OFDM communication system
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CN101374002B (en) * 2007-08-20 2012-11-14 中兴通讯股份有限公司 Method for constructing synchronous signal of OFDM system
CN101621493B (en) * 2009-07-23 2012-12-05 中国科学院微电子研究所 OFDM frequency offset estimation judgment method
CN107979555A (en) * 2016-10-24 2018-05-01 深圳超级数据链技术有限公司 Carrier synchronization method and device
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CN100373831C (en) * 2003-04-29 2008-03-05 电子科技大学 Method for separating user data from training sequence in multicarrier system
CN101888365B (en) * 2003-08-08 2012-06-20 英特尔公司 Multiple antenna multi-input multi-output transmission
CN1898932B (en) * 2003-12-23 2011-11-16 英特尔公司 Method and apparatus for compensating i/q imbalance in receivers
CN1327642C (en) * 2004-04-02 2007-07-18 清华大学 Frame synchronous circuit and method for eliminating time frequency deviation effect of orthogonal FDM
CN1738300B (en) * 2004-07-22 2011-02-09 三星电子株式会社 Method for estimating maximum likelihood frequency offset in mobile communication system
CN101023611B (en) * 2004-09-18 2010-12-01 三星电子株式会社 Apparatus and method for frequency synchronization in OFDM system
CN100361424C (en) * 2005-05-13 2008-01-09 北京航空航天大学 Data transmitting method in short-distance radio network
CN1719818B (en) * 2005-07-08 2010-06-23 广州海格通信集团股份有限公司 Apparatus and method for processing sampling frequency deviation tracking signal in orthogonal frequency division multiplex system
CN100463459C (en) * 2006-01-09 2009-02-18 北京北方烽火科技有限公司 WiMAX system base station receiving end timing and frequency deviation combined synchnonization method
CN101277290B (en) * 2007-03-26 2011-01-26 富士通株式会社 Method and apparatus for synchronization of orthogonal frequency division multiplexing system frequency
CN101309248B (en) * 2007-05-16 2012-03-07 富士通株式会社 Frequency synchronizing method and apparatus suitable for OFDM communication system
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CN101252562B (en) * 2008-04-08 2011-09-21 西安电子科技大学 New OFDM system synchronization combining method
CN101621493B (en) * 2009-07-23 2012-12-05 中国科学院微电子研究所 OFDM frequency offset estimation judgment method
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CN102104570B (en) * 2009-12-18 2013-08-28 上海华虹集成电路有限责任公司 Integer frequency offset estimation device and method in CMMB (China Mobile Multimedia Broadcasting) system
CN102104570A (en) * 2009-12-18 2011-06-22 上海华虹集成电路有限责任公司 Integer frequency offset estimation device and method in CMMB (China Mobile Multimedia Broadcasting) system
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