This application claims the benefit, under 35 U.S.C. §365 of International Application PCT/CN2007/000183 , filed Jan. 18, 2007, which was published in accordance with PCT Article 21(2) on Jul. 31, 2008 in English.
The present invention relates to digital signal receiving technology, and more particularly to a method for symbol synchronization of received digital signal and a digital signal receiving apparatus using the same method.
Synchronization is one crucial subject for digital signal receiving system, which includes symbol timing, frequency synchronization and sample clock synchronization in OFDM system. For the symbol timing which determines the Fast Fourier Transform (FFT) placement location, the proper selection of this location has a major performance impact on all post FFT algorithms. Therefore, it is desirable to achieve good timing early in the acquisition.
In some current systems, e.g. the Orthogonal Frequency Division Multiplexing (OFDM) system, the received signal generally has frame structure as illustrated in
Conventionally, the symbol timing determination is to calculate the correlation value of the received signal with the received signal delayed by one symbol, detect the peak of the correlation value, and obtain the timing, which is used as the indication for FFT processing initiation for the received signal.
The conventional estimation algorithm is to search maximum correlation peak, which is corresponding to timing position. The basic principle of these algorithms is shift auto-correlation. Since the cyclic prefix i.e. the guard interval is a copy of an end portion of the effective symbol, their correlation has a big correlation peak value. A conventional method of searching the correlation peak can be represented in the following equation:
Where, is rl,n is nth received sample of lth symbol, rl,n+N is its N samples delay, nr is starting position of searching, Ng is guard interval length, nε is estimated symbol timing position, and Λr(nr) is likelihood function of received signal at the time nr.
This method is valid under AWGN, ETSI-Rayleigh/Ricean, ETSI-Ricean and some moderately dispersive channel. But in long path channel such as Single Frequency Network (SFN) channel, especially two-path channel whose first arrived path is not the strongest one and the strongest path is far away from the first path, even its channel delay over a guard interval, the conventional estimation algorithm gives a little effort. It only estimates position of average peak or maximum peak, as the result, symbol timing error of the receiver is very big. If the conventional method is used, the first path will be ignored, and Inter-Symbol Interference (ISI) will be generated. Therefore, it is desirable to search the first path in order to avoid ISI and make channel estimation module “see” all Channel Impulse Response (CIR).
There are many studies focus on how to detect the fastest timing in order to achieve good timing as earlier as possible. The synchronization in strong SFN channel can be achieved by using a double correlation method which will find the middle point of the impulse response of channel. As the result, the first useful path is still discarded. If the distance of two path reaches guard interval or even larger, the error will be larger. Moreover the double correlation method needs more memory resource than the single correlation.
EP patent application EP1005204 discloses a symbol synchronization error reduction method aiming to solve the above mentioned problem by selecting a fastest timing among timings detected in a timing detection step during a predetermined time. With reference to
As described above, this invention aims to provide a digital signal reception apparatus which improves the accuracy for the symbol synchronization acquisition and reduces the error possibility under multipath environment. However, it's still methodologically complicated, so that the memory resource needs for the computation is high.
Therefore, it is desirable to develop an improved method for symbol synchronization of the digital signal reception, which overcomes drawbacks of the prior arts.
The present invention provides an improved symbol synchronization method for digital signal reception and a digital signal reception apparatus using this method.
According to one aspect of the present invention, a method for symbol synchronization of received digital signal in a multi-path environment is provided, wherein the method comprises steps of correlating the received digital signal with the received signal delayed by one symbol so as to obtain a first correlation result as a combined effort of a strongest path and other paths; searching a maximum correlation value and its position of the first correlation result; characterized by removing substantially effect of the strongest path from the first correlation result of the preceding step so as to obtain a second correlation result which exhibits contribution of a fastest path; searching a maximum correlation value and its position corresponding to the fastest path contribution after the removing step; determining symbol synchronization timing of the detected fastest path through repeating of preceding steps.
According to another aspect of the present invention, a digital signal reception apparatus for receiving digital signal in a multi-path environment, including a correlation unit for correlating the received digital signal with the received signal delayed by one symbol, in that it comprises a symbol timing detecting unit, which determines symbol synchronization timing of a fastest path through substantially removing the effect of a strongest path, and a Fourier transform unit for performing Fourier transform processing on the received signal using the determined symbol synchronization timing of the fastest path. Wherein the symbol timing detecting unit comprises a first comparator for searching a maximum correlation value and its position; a subtracter for removing substantially effect of the strongest path; and a second comparator for searching a maximum correlation value and its position after the effect of the strongest path is removed, so as to determine the symbol synchronization timing of the fastest path.
Since the strongest path affection is removed, the fastest path can be detected efficiently in a simple algorithm, advantageously, the timing of the fastest path is used in the symbol synchronization under the multi-path environment, therefore the symbol timing error of the receiver is reduced, and Inter-Symbol Interference (ISI) will be avoided.
The present invention provides an improved symbol synchronization method for digital signal reception and a digital signal reception apparatus using this method. The gist of the invention is to use the fastest symbol synchronization timing for initiation of processing the FFT, characterized by the way of removing the effect of the strongest path. Embodiments of the present invention will now be described with reference to accompanying drawings.
Considering one channel model which comprises two paths and the first arrived path may not be the strongest one, the main idea of the invention is to remove the effect of the strongest path, and use a threshold as an estimation standard. With reference to
According to the invention, the affection of the maximum peak to the first peak can be estimated in a way similar to linear variety. The correlation result is just like a triangle curve, and the top of the triangle curve is the correlation peak, i.e. the maximum correlation value, which is regarded as the contribution of the strongest path or common contribution of all paths.
Since only the position before the maximum peak is considered, nr must be lower than a. Then the correlation value for the first arrived path can be calculated by removing the effort of the strongest arrived path:
Λr′(nr)=Λr(nr)−y(nr). (3)
Where, Λr′(nr) is estimated correlation value resulted from the first arrived path, and Λr(nr) is correlation value resulted from the first arrived path and the strongest path.
Next step is to search the maximum correlation value after the effect of the strongest path is removed, if the detected Λr′(nr(max)) is over a predefined threshold, the position of the first path is successfully determined as the fastest symbol synchronization timing.
It should be noted that the maximum peak which can be watched on the correlation result of equation 1, as referred in
The main estimation procedures of the present invention are illustrated in accordance with
Λr′(nr)=Λr(nr)−y(nr)
Afterwards, in Step 404, the maximum correlation value without the effect of the strongest path is searched again, so as to find the peak value of Λr′(nr′(max)) through one symbol duration, and record its position nr′(max) which corresponds to the fastest arrival path. In Step 405, the result of the search is compared with a predefined threshold to determine whether the detected result is reliable and valid, and determine the position of the peak corresponding to the fastest path. If the Λr′(nr′(max)) is over the predefined threshold, then the estimated correlation value is successfully determined as it corresponds to a position of the fastest path, and the success time of the determination will add one. If the success times reach a preset value, the output of final determined position is the average result of all nr′(max) as in Step 407, hence the timing search procedure is accomplish, else go to Step 402. If the Λr′(nr′(max)) is below the predefined threshold, that is to say that the search of Step 404 fails, then the ratio μ will be decreased, i.e. μnext=μcurrent−w, e.g. w=0.05, and then go back to Step 402.
With reference to
The present invention is not limited to the above described embodiments, various variations and modifications may be possible without departing from the scope of the present invention.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/CN2007/000183 | 1/18/2007 | WO | 00 | 7/13/2009 |
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WO2008/089592 | 7/31/2008 | WO | A |
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