CN1372395A - Method and device for correcting signal single-noise ratio estimate value in communication system - Google Patents

Method and device for correcting signal single-noise ratio estimate value in communication system Download PDF

Info

Publication number
CN1372395A
CN1372395A CN01110883A CN01110883A CN1372395A CN 1372395 A CN1372395 A CN 1372395A CN 01110883 A CN01110883 A CN 01110883A CN 01110883 A CN01110883 A CN 01110883A CN 1372395 A CN1372395 A CN 1372395A
Authority
CN
China
Prior art keywords
signal
value
noise ratio
sequence
snr
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.)
Granted
Application number
CN01110883A
Other languages
Chinese (zh)
Other versions
CN1148910C (en
Inventor
李春旭
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Datang Mobile Communications Equipment Co Ltd
Original Assignee
Datang Mobile Communications Equipment Co Ltd
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Application filed by Datang Mobile Communications Equipment Co Ltd filed Critical Datang Mobile Communications Equipment Co Ltd
Priority to CNB011108835A priority Critical patent/CN1148910C/en
Publication of CN1372395A publication Critical patent/CN1372395A/en
Application granted granted Critical
Publication of CN1148910C publication Critical patent/CN1148910C/en
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

Links

Images

Landscapes

  • Noise Elimination (AREA)

Abstract

This invention provides a method of correcting the estimating value of signal noise ratio of the signal on signal channel in communication system containing the following procedures to estimate signal noise ratio to the signal of the said channel from the receiver output according to the troditional method to generate the estimation value of signal-noise ratio of generate the estimation value of the channel quality factor according to the response parameter of the said channel calculated by the receiver to correct the estimation value of the signal-noise ratio according to proceduune a to get the correct value of the channel signal noise ratio.

Description

The method and apparatus of the signal-to-noise ratio (SNR) estimation value of correction signal in communication system
The present invention relates to communication system, particularly, relate to the method and apparatus of the signal-to-noise ratio (SNR) estimation value of the signal on the correction channel in communication system.
In code division multiple access (CDMA) service system, because the nonorthogonality of pseudo noise (PN) sign indicating number makes cdma system interference-limited.Based on this consideration, in order to obtain than time division multiple access (TDMA) system more performance (bigger power system capacity, better communication quality etc.), cdma system needs accurate power controls, so that effectively overcome problems such as near-far interference, shadow effect and Rayleigh rapid fading.
In existing C DMA system,, generally adopt exterior ring power control and inner loop power control way of combining for realizing accurate power control.Inner loop power control shows as closed-loop structure, the base station is the signal to noise ratio of period measurement up link with the time slot, if measured value greater than threshold value (being provided by exterior ring power control), then produces corresponding power control command and reduces transmitting power by down link notice travelling carriage; Otherwise the notice travelling carriage increases transmitting power.Equally, travelling carriage is the signal to noise ratio of period measurement down link with the time slot, if measured value then produces corresponding power control command and reduces transmitting power by the up link informing base station greater than threshold value (being provided by exterior ring power control); Otherwise informing base station increases transmitting power.
The effect of inner loop power control depends on the estimated accuracy of SIR.
Fig. 1 a illustrates a kind of block diagram of traditional signal-to-noise ratio (SNR) estimation device.In device as shown in Figure 1a, calculate the estimated value of signal to noise ratio (SIR) according to following steps: 1. the local known pilot bits that in multiplier 12, will be scheduled to (for example, ± 1 sequence) and RAKE receiver 11 receive from the pilot bits (x in the baseband signal of a certain channel i) correspondence multiplies each other, and obtains a sequence (x i'); In average squarer 13 to the sequence (x of multiplier 12 output i') average square as signal power
Figure A0111088300051
In variance estimator 14 to sequence (x from multiplier 12 i') ask variance, behind the single order recursive filtering of single order recursion filter 15, as noise average power as instantaneous noise power
Figure A0111088300052
4. in SIR estimator 16, above-mentioned signal power compared with noise average power and obtain SIR estimated value (SIR ').
More than be actually devious about the estimation of SIR.Because the imperfection of RAKE receiver 11, it can not offset the influence of Rayleigh channel fully, thereby the pilot bits signal composition of its output always exists than macrorelief.When adopting above method to estimate SIR, a part of signal energy is included into noise component as multiplicative noise, thereby makes the valuation of SIR always less than the true signal to noise ratio of signal.The size of estimated bias depends on the abominable degree of channel.
Below by the mathematical analysis that above-mentioned traditional SIR method of estimation is carried out the existing defective of traditional SIR method of estimation is described.
The pilot bits corresponding in the signal of the channel of i time slot that is received by RAKE receiver can be expressed as:
x i(t)=s i(t)+n i(t) (1)
S in the following formula i(t) be the signal composition, be actually baseband signal ± 1, pass through the response behind the RAKE receiver channel compensation again through Rayleigh channel.Show the signal component s in the pilot signal of RAKE receiver output as Fig. 2 a i(t).Because the RAKE receiver influence that can not offset Rayleigh channel fully, thereby the signal composition of its output can not be regular ± A (A is a constant), but because the multiplicative noise that channel itself is produced causes signal component S i(t) near fluctuation (shown in Fig. 2 a) ± A.N in the formula (1) i(t) be noise component, comprise that multiple access disturbs and thermal noise (that is common alleged white noise).
Local reference pilot bit (± 1) is scheduled to, in the multiplier 12 in Fig. 1 a with x i(t) draw after multiplying each other with it: x i ′ ( t ) = | s i ( t ) | + n i ′ ( t ) - - - ( 2 )
Wherein, the result after Fig. 2 b illustrates the signal component of RAKE receiver output and local reference bits sequence and multiplies each other, i.e. sequence | s i(t) |.
Then in the average squarer 13 of Fig. 1 a to the product x of multiplier 12 output i(t) average square as signal power
Figure A0111088300062
, specifically be calculated as follows: P ^ si = ( Σ j = 1 N | s ij | / N ) 2 - - - ( 3 )
N is the number of pilot bits in the following formula.
Secondly, the product x that in the variance estimator 14 in Fig. 1 a multiplier 12 is exported i(t) ask variance, as instantaneous noise power: var ( x i ′ ) ≈ 1 N Σ j = 1 N ( x ij ′ - Σ j = 1 N x ij ′ / N ) 2 - - - ( 4 )
In the single order recursion filter 15 in Fig. 1 a the value of variance estimator 14 outputs is carried out the single order recursive filtering, as noise power
Figure A0111088300072
P ^ ni = ( 1 - λ ) var ( x i ′ ) + λvar ( x i - 1 ′ ) - - - ( 5 )
λ is the coefficient of forgeing of single order recursion filter in the following formula.
Obtain SIR estimated value (SIR ') according to signal power and noise power in the last SIR estimator 16 in Fig. 1 a, as follows: SI R ′ = P ^ si / P ^ ni - - - ( 6 )
Estimate the step of SIR in the conventional method that Here it is.Now this estimated value SIR ' and real signal to noise ratio SIR are made comparisons.
In fact and be not equal at first, we investigate real signal power, and it
Figure A0111088300075
, formula as follows: P si = Σ j = 1 N s ij 2 / N - - - ( 7 )
We can find to investigate following formula, only exist | s Ij|=A or s IjDuring=± A, P SiJust with
Figure A0111088300077
Equate;
Real noise power is as follows:
P ni=(1-λ)var(n i)+λvar(n i-1) (8)
N ' iBe actually n iWith the product of local reference pilot bit, it remains white Gaussian noise, and its statistical property does not change, so have: var ( n i ) = var ( n i ′ ) = [ Σ j = 1 N ( n ′ ij - n ′ ij ‾ ) 2 ] / N - - - ( 9 )
Therefore,
P ni=(1-λ)var(n’ i)+λvar(n’ i-1) (10)
Because,
Figure A0111088300079
Be n ' IjAssembly average, for white Gaussian noise, assembly average
Figure A01110883000710
Be zero, so formula (9) can be write as: var ( n ′ i ) = [ Σ j = 1 N ( n ij - n ij ‾ ) 2 ] / N = Σ j = 1 N n ′ 2 ij / N - - - ( 11 )
Because x ' i(t)=| s i(t) |+n ' i(t), have var ( x i ′ ) = [ Σ j = 1 N ( | s ij | + n ij ′ - ( | s ij | + n ij ′ ‾ ) ) 2 ] / N = [ Σ j = 1 N ( | s ij | + n ij ′ - ( | s ij | ‾ + n ij ′ ‾ ) ) 2 ] / N = [ Σ j = 1 N ( | s ij | + n ij ′ - | s ij | ‾ ) 2 ] / N - - - ( 12 )
Obviously, have only and work as | s Ij|=A or s IjDuring=± A, var (x ' i) just equal var (n ' i), thereby P ni = ( 1 - λ ) var ( n i ) + λvar ( n i - 1 ) = ( 1 - λ ) var ( n ′ i ) + λvar ( n i - 1 ) = ( 1 - λ ) var ( x i ′ ) + λvar ( x i - 1 ′ ) = P ni ^
If, | s Ij| ≠ A or s Ij≠ ± A, then, P ni = ( 1 - λ ) var ( n i ) + λvar ( n i - 1 ) = ( 1 - λ ) var ( n ′ i ) + λvar ( n i - 1 ) ≠ ( 1 - λ ) var ( x i ′ ) + λvar ( x i - 1 ′ ) = P ni ^
In sum, have only and work as | s Ij|=A or s IjDuring=± A, SIR=P Si/ P NiJust equal But | s Ij|=A or s Ij=± A is actually impossible realization, because the influence of the impossible full remuneration Rayleigh channel of RAKE receiver.Adopt diversity technique (RAKE diversity, transmit diversity, receive diversity) can reduce signal fluctuation to a certain extent.In any case but signal fluctuation always exists, and adopt as above method to estimate SIR (as shown in Figure 1a), owing to during according to the estimated value of equation (3) signal calculated power, removed the relief part in the signal component, that is, and the multiplicative noise part, thus make
Figure A0111088300089
But according to equation (5) calculating noise power the time, again multiplicative noise is included into noise component and calculates, therefore
Figure A01110883000810
Thereby, make SIR ' always less than the true signal to noise ratio SIR of signal.
Fig. 1 b shows the block diagram of the traditional signal-to-noise ratio (SNR) estimation device of another kind.In the device shown in Fig. 1 b, calculate the estimated value SIR ' of signal to noise ratio according to following steps: 1. the local known pilot bits that in multiplier 12, will be scheduled to and RAKE receiver 11 receive from the pilot bits (x in the baseband signal of a certain channel i) correspondence multiplies each other, and obtains a sequence (x i'); In average squarer 13 to the sequence (x of multiplier 12 output i') average square, draw mean-square value A; 3. in hard decision device 21, the data bit in the signal of RAKE receiver output is made hard decision, and the sequence that in multiplier 22 judgement is drawn and former data bit multiply each other, in average squarer 23, it is averaged square then, draw average square value B; 4. declare in the averager 24 with A and B weighted average, as signal power in weighting
Figure A0111088300091
In variance estimator 14 to sequence (x from multiplier 12 i') ask variance, behind the single order recursive filtering of single order recursion filter 15, as noise average power as instantaneous noise power
Figure A0111088300092
6. in SIR estimator 16, above-mentioned signal power compared with noise average power and obtain SIR estimated value (SIR ').
As seen, owing to sequence of calculation x in average squarer 13 iRemoved the multiplicative noise in the signal component during average of ' (t) square, and in variance estimator 14 sequence of calculation x iDuring the variance of ' (t) multiplicative noise in the signal component is added as noise section, so that the signal-to-noise ratio (SNR) estimation value SIR ' that calculates according to this method less than the actual value SIR of signal to noise ratio.
The object of the present invention is to provide a kind of method of the signal-to-noise ratio (SNR) estimation value at the signal of communication system lieutenant colonel on the channel.
The invention provides a kind of method that is used in the signal-to-noise ratio (SNR) estimation value of the signal of communication system lieutenant colonel on a certain channel, described method comprises the following steps: that the signal from described channel that a. exports receiver according to conventional method carries out signal-to-noise ratio (SNR) estimation, and produces the signal-to-noise ratio (SNR) estimation value; B. according to the response parameter of the described channel that calculates by described receiver, produce channel quality factor estimated value; C. proofread and correct the signal-to-noise ratio (SNR) estimation value that draws according to step a with described channel quality factor estimated value, thereby draw the signal to noise ratio corrected value of signal.
In said method, the response parameter of described channel comprises the real part composition (h of channel response Ic) and the imaginary part composition (h of described channel response Id), they have reflected the influence of described channel to the amplitude and the phase place of signal.And described channel quality factor is greater than 1 and along with | h Id| increase and increase progressively, and the signal to noise ratio corrected value behind described channel quality factor correcting satisfies the restriction of communication system to signal to noise ratio.
In the method for the invention, described tradition comprises the pilot bits (x of the described signal that comprises the following steps: that d1. receives described receiver i) multiply each other with reference to ratio with predefined this locality, draw sequence (x i'), e1. is to sequence x iThe ' square value of averaging draws the estimated value of signal power
Figure A0111088300093
F1. to sequence x iThe ' variance of square value of averaging, and make the single order recurrence and handle, draw the estimated value of noise power Utilize the estimated value of signal power with g1. Estimated value with noise power Draw signal-to-noise ratio (SNR) estimation value SIR ' to the signal on the described channel.Perhaps, described tradition comprises and comprises the following steps: that d2. is with the pilot bits sequence (x in the described signal of described receiver output i) multiply each other with predefined local reference bits sequence, draw sequence (x i'); E2. to described sequence x iThe ' square value (A) of averaging; F2. the sequence of data bits in the described signal of described receiver output is made hard decision, and the sequence that will obtain after will adjudicating and original described sequence of data bits multiply each other, then the long-pending square value of averaging (B) that multiplication is obtained; G2. with mean-square value (A) and mean-square value (B) weighted average, as the signal power estimated value
Figure A0111088300103
H2. to the described sequence xi ' variance of square value of averaging, and make the single order recurrence and handle, as the estimated value of noise power I2. utilize the estimated value of signal power Estimated value with noise power
Figure A0111088300106
Draw signal-to-noise ratio (SNR) estimation value SIR ' to the signal on the described channel.
The present invention also provides a kind of device that is used in the signal-to-noise ratio (SNR) estimation value of the signal of communication system lieutenant colonel on the channel, and described device comprises: receiver is used to receive the signal from described channel; Signal-to-noise ratio (SNR) estimation value generator is used for carrying out signal-to-noise ratio (SNR) estimation according to the signal from described channel that conventional method is exported described receiver, and produces the signal-to-noise ratio (SNR) estimation value; Channel quality factor estimator according to the response parameter of the described channel that is calculated by described receiver, produces channel quality factor estimated value; Signal-to-noise ratio (SNR) estimation value adjuster is proofreaied and correct the signal-to-noise ratio (SNR) estimation value that is produced by described signal-to-noise ratio (SNR) estimation value generator with described channel quality factor estimated value, compares corrected value thereby draw interchannel noise.
In device of the present invention, described signal-to-noise ratio (SNR) estimation value generator comprises: the pilot bits (xi) of the described signal that described receiver is received multiplies each other with reference to ratio with predefined this locality, draw the device of sequence (xi '), to the sequence xi ' square value of averaging, draw the estimated value of signal power Device; To the average device of variance of square value of sequence xi '; Described variance is made the single order recurrence handle, draw the estimated value of noise power Device; With the estimated value of utilizing signal power
Figure A0111088300109
Estimated value with noise power Draw device to the signal-to-noise ratio (SNR) estimation value SIR ' of the signal on the described channel.Perhaps, described signal-to-noise ratio (SNR) estimation value generator comprises: the pilot bits sequence (xi) in the described signal of described receiver output is multiplied each other with predefined local reference bits sequence, draw the device of sequence (xi '); To the average device of square value (A) of described sequence xi '; Sequence of data bits in the described signal of described receiver output is made the device of hard decision; The device that the sequence that obtains after the judgement and original described sequence of data bits are multiplied each other; The device of the long-pending square value of averaging (B) that above-mentioned multiplication is obtained; With mean-square value (A) and mean-square value (B) weighted average, as the signal power estimated value Device; To the average device of variance of square value of described sequence xi '; Above-mentioned variance is made the single order recurrence handle, as the estimated value of noise power Device; Utilize the estimated value of signal power Estimated value with noise power
Figure A0111088300114
Draw device to the signal-to-noise ratio (SNR) estimation value SIR ' of the signal on the described channel.
As seen, owing to can reflecting the channel quality factor estimated value of bad channel degree, usefulness proofreaies and correct the signal-to-noise ratio (SNR) estimation value of answering the bad channel degree to change, thereby can reduce the SIR estimated bias that signal fluctuation causes effectively, make the estimated accuracy of SIR be significantly improved, thereby improved the effect of cdma system inner loop power control.
Fig. 1 a illustrates a kind of block diagram of traditional signal-to-noise ratio (SNR) estimation device.
Fig. 1 b illustrates the block diagram of the traditional signal-to-noise ratio (SNR) estimation device of another kind.
Fig. 2 a shows the signal component s in the pilot signal of RAKE receiver output i(t).
Result after Fig. 2 b illustrates the signal component of RAKE receiver output and local reference bits sequence and multiplies each other, i.e. sequence | s i(t) |.
Fig. 3 a illustrates according to one embodiment of present invention, the device block diagram that utilizes the channel quality factor that the estimated value of signal to noise ratio is proofreaied and correct.
Fig. 3 b illustrates according to another embodiment of the invention, the device block diagram that utilizes the channel quality factor that the estimated value of signal to noise ratio is proofreaied and correct.
Below, with reference to accompanying drawing, for those skilled in the art that, from the detailed description to method and apparatus of the present invention, above-mentioned and other purposes of the present invention, feature and advantage will be apparent.Wherein, same numeral is done corresponding expression in the accompanying drawings.
By top analysis to traditional SIR estimated value generator as seen, the estimated value of signal to noise ratio
Figure A0111088300115
Figure A0111088300116
Obviously, the size of SIR estimated bias depends on the abominable degree of channel, and when channel condition was comparatively good, RAKE receiver can compensate its influence basically, and the output signal composition rises and falls less, that is, multiplicative noise is less, thereby the SIR estimated bias is less; When channel condition was comparatively abominable, RAKE receiver can not compensate its influence to a great extent, the big rise and fall of output signal composition, that is and, multiplicative noise is bigger, thus the SIR estimated bias is bigger.
This shows that estimated bias and the channel condition of SIR have direct relation.Imagination if the SIR valuation is interrelated with the channel condition of corresponding time slot, just can effectively be revised the estimated bias of SIR thus.
The response of the rayleigh fading channel of i time slot can be done following expression (the supposition channel is stable a time slots):
h i=h ic+jh id (13)
Wherein, h iBe the response of Rayleigh channel,
h IcIt is the real part of channel response; With
h IdBe the imaginary part of channel response,
Wherein, h IcAnd h IdAffect the amplitude and the phase place of signal together.
Ideally, promptly under the Gaussian channel condition, | h Id|=0; And under the Rayleigh channel situation, | h Id| greater than zero and progressively increase, that is, be directly proportional with the multiplicative noise of channel along with the increase of bad channel degree.
Here, we introduce the physical quantity β of channel quality factor by name, and it is the function greater than 1, and along with | h Id| increase and increase progressively.
For example, the quality factor β of channel can be expressed as, β = 1 + f ( | h id / h ic | ) - - - ( 14 )
Wherein, f (x) is a correction function, monotonic increase and f (0)=0.For example,
Figure A0111088300122
Or
Figure A0111088300123
The channel quality factor can reflect the abominable degree of channel, when channel condition is good, that is, | h Id| when very little, β ≈ 1; When channel condition is bad, that is, | h Id| when big, β is greater than 1 and increase along with channel degradation.With the estimated value to SIR proofread and correct, correcting value meter is shown: SIR ′ = β · SIR ′ = [ 1 + f ( | h id / h ic | ) ] P ^ si P ^ ni
As seen, since channel quality factor β greater than 1 and along with the reflection bad channel degree (that is multiplicative noise size) parameter | h Id| increase and increase progressively, thereby when channel condition was better, the estimated value SIR ' and the actual value deviation of signal to noise ratio were less, and this moment channel quality factor β ≈ 1, make calibrated signal to noise ratio SIR ≈ SIR '; And when the condition of channel was abominable, the estimated value SIR ' of signal to noise ratio and the deviation of actual value are big, and (that is, SIR ' was abominable more along with channel condition, more less than actual value), and this moment channel quality factor β>1, and increase along with the increase of abominable degree, this moment SIR=β *SIR '>SIR ', thereby the better deviation that must compensate the signal-to-noise ratio (SNR) estimation value.
Certainly, the quality factor β of channel also can have other method for expressing,
As β=f (| h Id/ h Ic|), wherein
Figure A0111088300131
Wherein, α 1Value to function f (X) is revised, and α 2Adjust tg -1The variation slope of function.As seen, if the channel quality factor greater than 1 and along with | h Id| increase and increase progressively, and the value of the signal to noise ratio SIR after quality factor are proofreaied and correct satisfies the restriction of communication system to signal to noise ratio, just can the fine estimated value that must compensate signal to noise ratio.
Describe the detailed process that realizes that signal-to-noise ratio (SNR) estimation value of the present invention is proofreaied and correct in detail below with reference to Fig. 3 a and 3b.
Fig. 3 a illustrates according to a described example of the present invention, the device block diagram that utilizes the channel quality factor that the estimated value of signal to noise ratio is proofreaied and correct.
At first, in SIR estimated value generator 100, according to conventional method to RAKE receiver output from carrying out signal-to-noise ratio (SNR) estimation with the baseband signal of a certain channel, and produce signal-to-noise ratio (SNR) estimation value, SIR '.Its concrete steps with reference to the detailed description of the explanation of Fig. 1 a, just no longer repeat at this in the above.
Secondly, in channel quality factor estimator 31, according to the response parameter (h of the described channel of exporting by RAKE receiver IdAnd h Ic), the estimated value of generation channel quality factor β.Certainly, the concrete functional form of channel quality factor can be decided according to concrete application.
At last, in SIR estimated value adjuster 32, proofread and correct the SIR estimated value of exporting by SIR estimator 16, compare corrected value thereby draw interchannel noise with described channel quality factor estimated value.
Fig. 3 b illustrates according to another described example of the present invention, the device block diagram that utilizes the channel quality factor that the estimated value of signal to noise ratio is proofreaied and correct.The difference of the device shown in it and Fig. 3 a is that the SIR estimated value generator 200 that it adopts is the SIR estimator generators with reference to another kind of conventional method (as Fig. 1 b).
Certainly, device of the present invention also can adopt other traditional SIR estimator generators.
As seen, owing to can reflecting the channel quality factor estimated value of bad channel degree, usefulness proofreaies and correct the signal-to-noise ratio (SNR) estimation value of answering the bad channel degree to change, thereby can reduce the SIR estimated bias that signal fluctuation causes effectively, make the estimated accuracy of SIR be significantly improved, thereby improved the effect of cdma system inner loop power control.
Be the description to preferred embodiment of the present invention above, those skilled in the art that should be understood that the various corrections of embodiments of the invention and variation all drops on design of the present invention and claims are stated in the limited range.

Claims (11)

1. method that is used in the signal-to-noise ratio (SNR) estimation value of the signal of communication system lieutenant colonel on the channel, described method comprises the following steps:
A. the signal of receiver being exported according to conventional method from described channel carries out signal-to-noise ratio (SNR) estimation, and produces the signal-to-noise ratio (SNR) estimation value;
B. according to the response parameter of the described channel that calculates by described receiver, produce channel quality factor estimated value;
C. proofread and correct the signal-to-noise ratio (SNR) estimation value that draws according to step a with described channel quality factor estimated value, thereby draw the signal to noise ratio corrected value of signal.
2. the method for claim 1 is characterized in that, the response parameter of described channel comprises the real part composition (h of channel response Ic) and the imaginary part composition (h of described channel response Id), they have reflected the influence of described channel to the amplitude and the phase place of signal.
3. method as claimed in claim 2 is characterized in that, described channel quality factor is greater than 1 and along with | h Id| increase and the function that increases progressively.
4. method as claimed in claim 3 is characterized in that, the described signal to noise ratio corrected value behind described channel quality factor correcting satisfies the restriction of communication system to signal to noise ratio.
5. method as claimed in claim 3 is characterized in that, described channel quality factor is as follows:
β=1+f[|h id/h ic|],
F[|h wherein Id/ h Ic|] be correction function, monotonic increase and f (0)=0.
6. method as claimed in claim 5 is characterized in that, described channel quality factor can be
Figure A0111088300021
Or
Figure A0111088300022
7. the method for claim 1 is characterized in that, described conventional method comprises the following steps:
D1. pilot bits (the x of the described signal that described receiver is received i) multiply each other with reference to ratio with predefined this locality, draw sequence (x i'),
E1. to sequence x iThe ' square value of averaging draws the estimated value of signal power
Figure A0111088300023
F1. to sequence x iThe ' variance of square value of averaging, and make the single order recurrence and handle, draw the estimated value of noise power
Figure A0111088300031
With
G1. utilize the estimated value of signal power
Figure A0111088300032
Estimated value with noise power Draw signal-to-noise ratio (SNR) estimation value SIR ' to the signal on the described channel.
8. the method for claim 1 is characterized in that, described conventional method comprises the following steps:
D2. with the pilot bits sequence (x in the described signal of described receiver output i) multiply each other with predefined local reference bits sequence, draw sequence (x i');
E2. to described sequence x iThe ' square value (A) of averaging;
F2. the sequence of data bits in the described signal of described receiver output is made hard decision, and the sequence that will obtain after will adjudicating and original described sequence of data bits multiply each other, then the long-pending square value of averaging (B) that multiplication is obtained;
G2. with described mean-square value (A) and described mean-square value (B) weighted average, as the signal power estimated value
H2. to described sequence x iThe ' variance of square value of averaging, and make the single order recurrence and handle, as the estimated value of noise power
Figure A0111088300035
I2. utilize the estimated value of signal power
Figure A0111088300036
Estimated value with noise power
Figure A0111088300037
Draw signal-to-noise ratio (SNR) estimation value SIR ' to the signal on the described channel.
9. device that is used for the signal-to-noise ratio (SNR) estimation value of the signal on the communication system correction channel, described device comprises:
Receiver is used to receive the signal from described channel;
Signal-to-noise ratio (SNR) estimation value generator is used for carrying out signal-to-noise ratio (SNR) estimation according to the signal from described channel that conventional method is exported receiver, and produces the signal-to-noise ratio (SNR) estimation value;
Channel quality factor estimator according to the response parameter of the described channel that is calculated by described receiver, produces channel quality factor estimated value;
Signal-to-noise ratio (SNR) estimation value adjuster is proofreaied and correct the signal-to-noise ratio (SNR) estimation value that is produced by described signal-to-noise ratio (SNR) estimation value generator with described channel quality factor estimated value, thereby draws the signal to noise ratio corrected value of signal.
10. device as claimed in claim 9 is characterized in that, described signal-to-noise ratio (SNR) estimation value generator comprises:
Pilot bits (the x of the described signal that described receiver is received i) multiply each other with reference to ratio with predefined this locality, draw sequence (x iDevice '),
To sequence x iThe ' square value of averaging draws the estimated value of signal power Device;
To sequence x iThe average device of variance of square value of ';
Described variance is made the single order recurrence handle, draw the estimated value of noise power
Figure A0111088300042
Device; With
Utilize the estimated value of signal power
Figure A0111088300043
Estimated value with noise power
Figure A0111088300044
Draw device to the signal-to-noise ratio (SNR) estimation value SIR ' of the signal on the described channel.
11. device as claimed in claim 9 is characterized in that, described signal-to-noise ratio (SNR) estimation value generator comprises:
With the pilot bits sequence (x in the described signal of described receiver output i) multiply each other with predefined local reference bits sequence, draw sequence (x iDevice ');
To described sequence x iThe average device of square value (A) of ';
Sequence of data bits in the described signal of described receiver output is made the device of hard decision;
The device that the sequence that obtains after the judgement and original described sequence of data bits are multiplied each other;
The device of the long-pending square value of averaging (B) that above-mentioned multiplication is obtained;
With described mean-square value (A) and described mean-square value (B) weighted average, as the signal power estimated value Device;
To described sequence x iThe average device of variance of square value of ';
Described variance is made the single order recurrence handle, as the estimated value of noise power
Figure A0111088300046
Device;
Utilize the estimated value of signal power Estimated value with noise power
Figure A0111088300048
Draw device to the signal-to-noise ratio (SNR) estimation value SIR ' of the signal on the described channel.
CNB011108835A 2001-02-28 2001-02-28 Method and device for correcting signal single-noise ratio estimate value in communication system Expired - Lifetime CN1148910C (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CNB011108835A CN1148910C (en) 2001-02-28 2001-02-28 Method and device for correcting signal single-noise ratio estimate value in communication system

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CNB011108835A CN1148910C (en) 2001-02-28 2001-02-28 Method and device for correcting signal single-noise ratio estimate value in communication system

Publications (2)

Publication Number Publication Date
CN1372395A true CN1372395A (en) 2002-10-02
CN1148910C CN1148910C (en) 2004-05-05

Family

ID=4658850

Family Applications (1)

Application Number Title Priority Date Filing Date
CNB011108835A Expired - Lifetime CN1148910C (en) 2001-02-28 2001-02-28 Method and device for correcting signal single-noise ratio estimate value in communication system

Country Status (1)

Country Link
CN (1) CN1148910C (en)

Cited By (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN100448183C (en) * 2004-06-07 2008-12-31 东南大学 Online S/N ratio estimation of calibrated average for Rayleigh channel
CN101459450A (en) * 2007-12-14 2009-06-17 华为技术有限公司 Method and device for acquiring signal-noise ratio
CN101640572A (en) * 2008-07-18 2010-02-03 俊茂微电子(上海)有限公司 Method and apparatus for signal/noise ratio measurement and communication equipment
CN101138170B (en) * 2005-02-21 2013-04-17 日本电气株式会社 Method and system for measuring signal quality parameter
CN103166722A (en) * 2013-02-27 2013-06-19 北京福星晓程电子科技股份有限公司 Estimation method of noise energy
CN108271205A (en) * 2016-12-31 2018-07-10 普天信息技术有限公司 A kind of inner-loop power control evaluation method and device
CN110832817A (en) * 2017-04-11 2020-02-21 弗劳恩霍夫应用研究促进协会 Transmitter, receiver and corresponding method

Cited By (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN100448183C (en) * 2004-06-07 2008-12-31 东南大学 Online S/N ratio estimation of calibrated average for Rayleigh channel
CN101138170B (en) * 2005-02-21 2013-04-17 日本电气株式会社 Method and system for measuring signal quality parameter
CN101459450A (en) * 2007-12-14 2009-06-17 华为技术有限公司 Method and device for acquiring signal-noise ratio
CN101459450B (en) * 2007-12-14 2013-04-17 华为技术有限公司 Method and device for acquiring signal-noise ratio
CN101640572A (en) * 2008-07-18 2010-02-03 俊茂微电子(上海)有限公司 Method and apparatus for signal/noise ratio measurement and communication equipment
CN101640572B (en) * 2008-07-18 2015-01-28 美满电子科技(上海)有限公司 Method and apparatus for signal/noise ratio measurement and communication equipment
CN103166722A (en) * 2013-02-27 2013-06-19 北京福星晓程电子科技股份有限公司 Estimation method of noise energy
CN108271205A (en) * 2016-12-31 2018-07-10 普天信息技术有限公司 A kind of inner-loop power control evaluation method and device
CN110832817A (en) * 2017-04-11 2020-02-21 弗劳恩霍夫应用研究促进协会 Transmitter, receiver and corresponding method
CN110832817B (en) * 2017-04-11 2022-06-03 弗劳恩霍夫应用研究促进协会 Transmitter, receiver and corresponding method

Also Published As

Publication number Publication date
CN1148910C (en) 2004-05-05

Similar Documents

Publication Publication Date Title
US7376210B2 (en) Apparatus and method for performing adaptive channel estimation in a mobile communication system
CN1054718C (en) Diversity receiver
CN1187927C (en) Wireless receiver of estimating interference power
CN1231082C (en) Antenna weighting estimating method, and mobile communication terminal
CN1208983C (en) Receiver device of mobile radio communication unit using speed estimater
US20030016740A1 (en) Method of estimating a signal-to-interferenceratio (SINR)
US8054905B2 (en) Method of measuring transmit quality in a closed loop diversity communication system
CN1449604A (en) Downlink power control for multiple downlink time slots in tdd communication systems
CN102484542A (en) Load estimation in wireless communication
CN1196846A (en) Method and apparatus for power control in communication system
CN1649283A (en) Radio receiving apparatus and method
CN1711709A (en) Method and apparatus for determining signal-to-interference ratio with reduced bias effect
CN1148910C (en) Method and device for correcting signal single-noise ratio estimate value in communication system
CN1643807A (en) Method and device for estimating signal interference ratio
CN1630997A (en) A method and an apparatus for Eb/Nt estimation for forward power control in spread spectrum communications systems
CN1210892C (en) Radio receiving apparatus and radio receiving method
CN1199372C (en) Syntesis receiving method and synthesis receiver
CN1159874C (en) SIR estimating method and device for WCDMA system
CN1625075A (en) Noise variance estionating method and device for radio communication system
CN1531784A (en) Power change estimation for communication system
CN1154275C (en) Power control method for CDMA communication system
CN1219369C (en) Method for calculating mixed services capacity of WCDMA system
KR20050092409A (en) Method and apparatus for network management using perceived signal to noise and interference indicator
CN1585289A (en) Method for compensating frequency offset in wireless mobile communication system
CN1239033C (en) Discrete Fourier transform based space-time combined inspecting device and method for radio transmission

Legal Events

Date Code Title Description
C10 Entry into substantive examination
SE01 Entry into force of request for substantive examination
C06 Publication
PB01 Publication
C10 Entry into substantive examination
SE01 Entry into force of request for substantive examination
C14 Grant of patent or utility model
GR01 Patent grant
PC01 Cancellation of the registration of the contract for pledge of patent right

Date of registration: 20070510

Pledge (preservation): Pledge

PE01 Entry into force of the registration of the contract for pledge of patent right

Effective date of registration: 20070510

Pledge (preservation): Pledge

PC01 Cancellation of the registration of the contract for pledge of patent right

Date of cancellation: 20100413

Granted publication date: 20040505

Pledgee: National Development Bank

Pledgor: Datang Mobile Communications Equipment Co|Shanghai Datang Mobile Communications Equipment Co|Telecom Research Institute of science and technology

Registration number: 2007110000354

CX01 Expiry of patent term
CX01 Expiry of patent term

Granted publication date: 20040505