Claims
- 1. A method of optimizing a system for transmitting a layered modulated signal, comprising the steps of:
defining the system in terms of a set of system parameters, including an optimal power separation S between a power of a first modulation layer and a power of a second modulation layer and a required system carrier-to-noise ratio (CNRS); determining an optimal power separation S to minimize the error rate of a lower layer modulated signal BERL; and selecting the remaining system parameters in the set of system parameters using the determined optimal power separation S.
- 2. The method of claim 1, wherein:
the layered modulation signal comprises an upper layer signal and a lower layer signal, and the step of selecting the remaining system parameters using the determined optimal power separation Px comprises the steps of:
determining a required CNR for the upper layer (CNRU) and a required CNR for the lower layer (CNRL) from a relationship between an upper layer coding rate CUL and CNRU, and a lower level coding rate CLL and CNRL; and determining a required system CNR (CNRs) from CNRU, CNRL, and S.
- 3. The method of claim 2, wherein the required CNRs is determined at least in part from the relations:
- 4. The method of claim 2, wherein CUL=CLL.
- 5. The method of claim 2, wherein CUL≠CLL and wherein the step of determining a required system CNR (CNRs) from CNRU, CNRL, and Px, comprises the steps of:
selecting a value for CNRU and a value for CNRL; and determining the required CNRs from a relationship between CNRs and CNRU, CNRL, and S.
- 6. The method of claim 5, wherein the required CNRs is determined at least in part from the relation:
- 7. The method of claim 1, wherein the error rate of a upper layer modulated signal BERU=γBERL, wherein γ<1, and wherein:
the method further comprises the step of determining an upper layer CNR compensation β required to produce an upper layer modulated signal error rate BERU defined at least in part by the relationship CNR*U=CNRU+β; and the step of selecting the remaining system parameters using the determined optimal power separation S comprises the steps of: determining the required system CNR, CNRs, at least in part from the determined optimal power separation, S, and a relation 1110log1010(CNRs+S)101+10S10+10CNRs10=10log1010CNRs101+10S10+β.
- 8. The method of claim 7, wherein the upper layer CNR compensation β is determined at least in part from a relationship between β and parameters including CNRU and γ.
- 9. The method of claim 8, wherein β is determined at least in part from a relationship between β and parameters further including CUL.
- 10. An apparatus for optimizing a system for transmitting a layered modulated signal, comprising:
means for defining the system in terms of system parameters, including an optimal power separation S between a power of a first modulation layer and a power of a second modulation layer and a required system carrier-to-noise ratio (CNRS); means for determining an optimal power separation S to minimize the error rate of a lower layer modulated signal BERL; and means for selecting the remaining system parameters using the determined optimal power separation S.
- 11. The apparatus of claim 10, wherein:
the layered modulation signal comprises an upper layer signal and a lower layer signal, and the means for selecting the remaining system parameters using the determined optimal power separation Px comprises:
means for determining a required CNR for the upper layer (CNRU) and a required CNR for the lower layer (CNRL) from a relationship between an upper layer coding rate CUL and CNRU, and a lower level coding rate CLL and CNRL; and means for determining a required system CNR (CNRs) from CNRU, CNRL, and S.
- 12. The apparatus of claim 11, wherein the required CNRs is determined at least in part from the relations:
- 13. The apparatus of claim 11, wherein CUL=CLL.
- 14. The apparatus of claim 11, wherein CUL≠CLL and wherein the means for determining a required system CNR (CNRs) from CNRU, CNRL, and Px, comprises:
means for selecting a value for CNRU and a value for CNRL; and means for determining the required CNRs from a relationship between CNRs and CNRU, CNRL, and S.
- 15. The apparatus of claim 11, wherein the required CNRs is determined at least in part from the relation:
- 16. The apparatus of claim 10, wherein the error rate of a upper layer modulated signal BERU=γBERL, wherein γ<1, and wherein:
the apparatus further comprises means for determining an upper layer CNR compensation β required to produce an upper layer modulated signal error rate BERU defined at least in part by the relationship CNR*U=CNRU+β; and the means for selecting the remaining system parameters using the determined optimal power separation S comprises:
means for determining the required system CNR, CNRs, at least in part from the determined optimal power separation, S, and a relation 1510log1010(CNRs+S)101+10S10+10CNRs10=10log1010CNRs101+10S10+β.
- 17. The apparatus of claim 7, wherein the upper layer CNR compensation β is determined at least in part from a relationship between β and parameters including CNRU and γ.
- 18. The apparatus of claim 8, wherein β is determined at least in part from a relationship between β and parameters further including CUL.
- 19. An system for transmitting a layered modulation signal characterized by a CNR of CNRs having an upper layer signal characterized and a lower layer signal, wherein a power of the upper layer signal is separated by a power of the lower layer signal by a power separation S, the apparatus defined by performing the steps of:
defining the system in terms of a set of system parameters, including an optimal power separation S between a power of a first modulation layer and a power of a second modulation layer and a required system carrier-to-noise ratio (CNRS); determining an optimal power separation S to minimize the error rate of a lower layer modulated signal BERL; and selecting the remaining system parameters in the set of system parameters using the determined optimal power separation S.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims benefit of U.S. Provisional Patent Application No. 60/421,293, entitled “AN OPTIMIZATION TECHNIQUE FOR LAYERED MODULATION,” by Weizheng Wang, Guangcai Zhou, Tung-Sheng Lin, Ernest C. Chen, Joseph Santoru, and William C. Lindsey, filed Oct. 25, 2002, which application is hereby incorporated by reference herein.
[0002] This application is also a continuation-in-part of the following co-pending and commonly assigned patent application(s), all of which applications are incorporated by reference herein:
[0003] Utility application Ser. No. 09/844,401, filed Apr. 27, 2001, by Ernest C. Chen, entitled “LAYERED MODULATION FOR DIGITAL SIGNALS,” attorneys' docket number PD-200181 (109.0051-US-01)
Provisional Applications (1)
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Number |
Date |
Country |
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60421293 |
Oct 2002 |
US |