Claims
- 1. A method for estimating a spreading factor in a receiver of a variable spreading factor CDMA system, comprising:
inputting a received signal into a plurality of matched filters, each matched filter having a unique spreading factor, de-spreading the received signal with a spreading code corresponding to the spreading factor and outputting a plurality of de-spread signals; calculating a mean power for each of the plurality of output de-spread signals; and estimating a spreading factor of the received signal based on the calculated mean power.
- 2. The method according to claim 1, wherein the step of estimating a spreading factor of the received signal based on the calculated mean power, comprises:
determining a maximum mean power, and finding the matched filter that corresponds to the maximum mean power; and outputting the spreading factor of the matched filter that corresponds to the maximum mean power as the estimated spreading factor.
- 3. A method for estimating a spreading factor in a receiver of a variable spreading factor CDMA system, comprising:
inputting a received signal into a plurality of matched filters, each matched filter having a unique spreading factor and de-spreading the received signal with a spreading code corresponding to the spreading factor, and outputting a plurality of de-spread signals; calculating an absolute amplitude for each of the plurality of de-spread signals; calculating a matched filter integrand, MFAIX, for each of the plurality of de-spread signals; calculating a matched filter difference, MFDX, for each pair of adjacent matched filters; and estimating a spreading factor of the received signal based on the matched filter difference, MFDX.
- 4. The method according to claim 3, wherein the step of calculating a matched filter integrand for each of the plurality of matched filters comprises:
integrating the absolute amplitude of the output of each of the plurality of matched filters as a function of time, for the time period equal to an estimation period.
- 5. The method according to claim 3, wherein the step of calculating the matched filter difference, MFDX comprises:
computingMFDx=|MFAIx−MFAIx+1| for x≧1.
- 6. The method according to claim 3, wherein the step of estimating a spreading factor of the received signal based on the matched filter difference, MFDX, comprises:
determining which matched filter difference is the maximum; and finding the matched filter that corresponds to the maximum matched filter difference; and outputting the spreading factor of the matched filter that corresponds to the maximum matched filter difference as the estimated spreading factor.
- 7. A method for determining whether a zero rate transmission has occurred in a wide band code division multiple access communications system, comprising:
calculating a first threshold value; calculating a likelihood ratio; comparing the first threshold value to the likelihood ratio; and determining a non-zero rate transmission has occurred if the likelihood ratio is greater than or equal to the first threshold value, or determining that a zero rate transmission has occurred if the likelihood ratio is less than the first threshold value.
- 8. The method of claim 7, wherein the step of calculating the first threshold factor comprises:
calculating the ratio of the probability that no data transmission has occurred to the probability that data transmission has occurred.
- 9. The method of claim 7, wherein the step of calculating the likelihood ratio comprises:
calculating the ratio of the value of the probability density function of a data transmission occurring at the value of r to the value of the probability density function of no data transmission occurring at the value of r.
- 10. The method of claim 8, wherein the step of calculating the ratio of the probability that no data transmission has occurred to the probability that data transmission has occurred comprises:
setting the probability that no data transmission has occurred to a first fixed value; setting the probability that data transmission has occurred to a second fixed value; and calculating the ratio of the first fixed value to the second fixed value as the first threshold factor.
- 11. The method of claim 8, wherein the step of calculating the ratio of the probability that no data transmission has occurred to the probability that data transmission has occurred comprises:
setting the probability that no data transmission has occurred to a third value determined empirically; setting the probability that data transmission has occurred to a fourth value determined empirically; and calculating the ratio of the third fixed value to the fourth fixed value as the first threshold factor.
- 12. A method for determining whether a zero rate transmission has occurred in a wide band code division multiple access communications system, comprising:
calculating a second threshold value, λ2; calculating a first test statistic, T1(r); comparing the second threshold value to the first test statistic; and determining a non-zero rate transmission has occurred if the first test statistic is greater than or equal to the second threshold value, or determining that a zero rate transmission has occurred if the first test statistic is less than the second threshold value.
- 13. The method of claim 12, wherein the step of calculating the second threshold factor comprises:
calculating a first threshold factor, λ; and calculating the second threshold factor, λ2, according to the following equation: 31λ2=[ln λ-N2ln(σo2σs2+σo2)][σs22σo2(σs2+σo2)]
- 14. The method of claim 12, wherein the step of calculating the first test statistic, T1(r), comprises:
calculating the first test statistic, T1(r), according to the following equation: 32T1(r)=∑n=0N-1r2[n]
- 15. The method of claim 12, wherein the step of calculating the second threshold factor, λ2, comprises:
determining an interference strength signal I, a signal to interference ratio signal SIR, and a first threshold factor λ; and calculating the second threshold factor, λ2, according to the following equation: 33λ2=2I(S I R+1)S I R[ln λ-N2ln(1S I R+1)]
- 16. The method of claim 12, wherein the step of wherein the step of calculating the first test statistic, T1(r), comprises:
equating the first test statistic, T1(r), to an energy signal EXM, determined from the outputs of a plurality of matched filters of the wide band code division multiple access receiver.
- 17. A method for determining whether a zero rate transmission has occurred in a wide band code division multiple access communications system, comprising:
calculating a third threshold value, λ3; calculating a second test statistic, T2(r); comparing the third threshold value to the second test statistic; and determining a non-zero rate transmission has occurred if the second test statistic is greater than or equal to the third threshold value, or determining that a zero rate transmission has occurred if the second test statistic is less than the third threshold value.
- 18. The method of claim 17, wherein the step of calculating the third threshold factor comprises:
calculating the third threshold factor, λ3, according to the following equation: 34λ3=QRv2-1(PFA)
- 19. The method of claim 17, wherein the step of calculating the second test statistic, T2(r), comprises:
calculating the second test statistic, T2(r), according to the following equation: 35T2(r)=∑n=0N-1r2[n]σo2
- 20. The method of claim 17, wherein the step of wherein the step of calculating the second test statistic, T2(r), comprises:
determining an energy signal, EXM, of an output of a plurality of matched filters of the wide band code division multiple access receiver, and an interference strength signal, I; and calculating the ratio of the energy signal EXM to the interference strength signal I, as the second test statistic, T2(r).
- 21. A spreading factor detector, for use in a wideband code division multiple access communications system, comprising:
a de-scrambler, with an input connected to a received baseband signal, and a real signal output, and an imaginary signal output; a SIR processor, with an input connected to the imaginary signal output, and a plurality of SIR processor outputs; a plurality of matched filters, each matched filter having an input connected to the real signal output, and a matched filter output; a non-zero rate spreading factor detector having a plurality of inputs connected to the plurality of matched filter outputs, and a plurality of non-zero rate spreading factor detector outputs; and a zero rate spreading factor detector having a plurality of inputs connected to the plurality of non-zero rate spreading factor detector outputs and the plurality of SIR processor outputs, and an estimated spreading factor output signal.
PRIORITY INFORMATION
[0001] The present application claims priority under 35 U.S.C. §119(e) to U.S. Provisional application No. 60/223,032, filed on Aug. 4, 2000, the entire contents of which are herein expressly incorporated by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60223032 |
Aug 2000 |
US |