Claims
- 1. A spatial domain matched filtering method, comprising the steps of:
receiving array digital signals; performing a weighting calculation for the array digital signals and weighting vectors of NB set to obtain a digital beam output signal SBi(n) of NB set; evaluating power value PSBi(n) of the digital beam output signal within a correlation time period: PSBi(n)=αPSBi(n)SBi*(n)+(1−αP)SBi(n−1)SBi*(n−1) normalizing the beam output signal SBi(n) to obtain a power normalized digital beam output signal 10S~Bi(n)=SBi(n)PSBi(n), wherein, prefix “*” indicates a complex conjugation calculation, αP is a constant, 0<αP<1; correlating the power normalized digital beam output signal {tilde over (S)}Bi(n) with a reference signal and evaluating a correlation coefficient Coeffi reflecting energy of an expected signal in each beam, evaluating equation being: 11Coeffi(k)=1N∑n=1N &LeftDoubleBracketingBar;S~B i(n)s*(n)&RightDoubleBracketingBar;2Coeffi(k)=Coeffi(k)+αCoeffi(k−1) wherein prefix “*” indicates a complex conjugation calculation, s(n) is the reference signal; N is a total amount of sample points, a product of N with sample time is smaller than coherent time; Coeffi(k) indicates correlation coefficient reflecting the energy of the expected signal energy in an ith beam, obtained by accumulating a kth correlation parameter; and α is a constant; and comparing obtained correlation coefficients Coeffi(k) reflecting the energy of the expected signal in the respective beams to obtain a maximum correlation coefficient Coeffmax, and outputting the digital beam output signal SBi(n) corresponding to the maximum correlation coefficient Coeffmax.
- 2. The spatial domain matched filtering method as recited in claim 1, wherein a is in a range of 0.5<α<1.
- 3. An array receiver, comprising:
an antenna array having a plurality of antennas; an array digital signal generating module coupled to the antenna array for converting analog signals received by the antenna array into digital signals; a digital baseband spatial domain matched filtering module coupled to the array digital signal generation module for forming at least one signal beam on each channel for the digital signals of the array digital signal generation module; a digital receiver module coupled to the digital baseband spatial domain matched filtering module for receiving at least one signal beam formed on each channel by the digital baseband spatial domain matched filtering module, and combining the digital signals over a time domain; wherein the digital baseband spatial domain matched filtering module comprises:
a digital baseband spatial domain matched filter set for receiving the digital signals, weighting the digital signals with weighted vectors of NB set, and outputting digital beam output signals SBi(n) of the NB set; a multiplexer for forming the digital beam output signals SBi(n) of the NB set outputted by the digital baseband spatial domain matched filter set into digital beams corresponding to the respective channels; a multi-beam selection module for receiving the digital beams outputted by the multiplexer, normalizing the digital beam output signals SBi(n), and evaluating power value PSBi(n) of the digital beam output signals within a correlation time period: PSBi(n)=αPSBi(n)SBi*(n)+(1−αP)SBi(n−1)SBi*(n−1) normalizing the digital beam output signals SBi(n) to obtain power normalized digital beam output signal 12S~B i(n)=SBi(n)PSBi(n); wherein, prefix “*” indicates a complex conjugation calculation, αP is a constant, 0<α<1; correlating the power normalized digital beam output signals {tilde over (S)}Bi(n) with a reference signal and evaluating a correlation coefficient Coeffi reflecting energy of an expected signal in each beam and outputting a selection instruction to select one of the digital beam output signals SBi(n) corresponding to a maximum correlation coefficient; an evaluation equation being: 13Coeffi(k)=1N∑n=1N &LeftDoubleBracketingBar;S~B i(n)s*(n)&RightDoubleBracketingBar;2Coeffi(k)=Coeffi(k)+αCoeffi(k−1) wherein, prefix “*” indicates a complex conjugation calculation, s(n) is the reference signal; N is a total amount of sample points, a product of N with sample time is smaller than coherent time, Coeffi(k) indicates correlation coefficient reflecting the energy of the expected signal in an ith beam, obtained by accumulating a kth correlation parameter, and α is a constant; a digital switching matrix coupled to the multiplexer and the multi-beam selection module, respectively, for receiving the selection instruction outputted by the multi-beam selection module and outputting the digital beam output signal corresponding to the maximum correlation coefficient.
- 4. The array receiver as recited in claim 3, wherein α is in a range of 0.5<α<1.
Priority Claims (1)
Number |
Date |
Country |
Kind |
00133919.2 |
Nov 2000 |
CN |
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CROSS-REFERENCE TO RELATED APPLICATION
[0001] This utility patent application is a continuation application and claims priority of the PCT International Patent Application, serial number PCT/CN01/00693, filed on May 8, 2001, which claims the priority of the Chinese patent application, serial number CN 00133919.2, filed on Nov. 15, 2000; subject matter of which are incorporated herewith by reference.
Continuations (1)
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Number |
Date |
Country |
Parent |
PCT/CN01/00693 |
May 2001 |
US |
Child |
10439219 |
May 2003 |
US |