Claims
- 1. A wireless communication system to emit radiation patterns in a sectored coverage area divided into at least two sectors, the wireless communication system being constructed and arranged such that a first radiation pattern is designated substantially for a first sector of the at least two sectors, and at least one other radiation pattern is designated substantially for at least one other sector of the at least two sectors, the wireless communication system comprising:
a sector distribution within the sectored coverage area based at least in part on a first desired signal level in the first sector due to the first radiation pattern and a first undesired interference level in the first sector due to the at least one other radiation pattern.
- 2. The system of claim 1, wherein the wireless communication system is constructed and arranged such that the first radiation pattern and the at least one other radiation pattern have a same frequency.
- 3. The system of claim 1, wherein the sector distribution is defined by at least one of respective sector widths of the at least two sectors, respective spatial profiles of the first radiation pattern and the at least one other radiation pattern, a proximity of the at least two sectors, and a total number of sectors in the sectored coverage area.
- 4. The system of claim 1, wherein:
the sector distribution is defined at least by respective sector widths of the at least two sectors; and the respective sector widths of the at least two sectors essentially are equal.
- 5. The system of claim 1, wherein:
the sector distribution is defined at least by respective spatial profiles of the first radiation pattern and the at least one other radiation pattern; and the respective spatial profiles of the first radiation pattern and the at least one other radiation pattern are substantially similar.
- 6. The system of claim 1, wherein:
the sector distribution is defined at least by a proximity of the at least two sectors; and the at least two sectors are contiguous sectors.
- 7. The system of claim 1, wherein the sector distribution is based at least in part on a ratio of the first desired signal level and the first undesired interference level in the first sector.
- 8. The system of claim 7, wherein the sector distribution is selected so as to maximize the ratio of the first desired signal level and the first undesired interference level in the first sector.
- 9. The system of claim 8, wherein:
the sector distribution is defined by at least one of respective sector widths of the at least two sectors, respective spatial profiles of the first radiation pattern and the at least one other radiation pattern, a proximity of the at least two sectors, and a total number of sectors in the sectored coverage area; and at least one of the respective sector widths of the at least two sectors, the spatial profiles of the first radiation pattern and the at least one other radiation pattern, the proximity of the at least two sectors, and the total number of sectors in the sectored coverage area is selected so as to maximize the ratio of the first desired signal level and the first undesired interference level in the first sector.
- 10. The system of claim 1, wherein:
the at least one other radiation pattern comprises at least two other radiation patterns; the undesired interference level in the first sector comprises a sum of undesired signal levels in the first sector due to the at least two other radiation patterns; and the sector distribution is based at least in part on the first desired signal level in the first sector and the sum of undesired signal levels in the first sector.
- 11. The system of claim 10, wherein the sector distribution is based at least in part on a ratio of the first desired signal level and the sum of undesired signal levels in the first sector.
- 12. The system of claim 11, wherein the sector distribution maximizes the ratio of the first desired signal level and the sum of undesired signal levels in the first sector.
- 13. The system of claim 12, wherein:
the sector distribution is defined by at least one of respective sector widths of the at least two sectors, respective spatial profiles of the first radiation pattern and the at least two other radiation patterns, a proximity of the at least two sectors, and a total number of sectors in the sectored coverage area; and at least one of the respective sector widths of the at least two sectors, the spatial profiles of the first radiation pattern and the at least two other radiation patterns, the proximity of the at least two sectors, and the total number of sectors in the sectored coverage area is selected so as to maximize the ratio of the first desired signal level and the sum of undesired signal levels in the first sector.
- 14. The system of claim 1, wherein the sector distribution is based at least in part on the first desired signal level in the first sector and the first undesired interference level in the first sector, at least one other desired signal level in the at least one other sector due to the at least one other radiation pattern, and at least one other undesired interference level in the at least one other sector due to at least the first radiation pattern.
- 15. A wireless communication system to emit radiation patterns in a sectored coverage area divided into at least two sectors, the wireless communication system being constructed and arranged such that a first radiation pattern is designated substantially for a first sector of the at least two sectors and at least one other radiation pattern is designated substantially for at least one other sector of the at least two sectors, the wireless communication system comprising:
a sector distribution defined by at least one of respective sector widths of the at least two sectors, respective spatial profiles of the first radiation pattern and the at least one other radiation pattern, a proximity of the at least two sectors, and a total number of sectors in the sectored coverage area, wherein at least one of the respective sector widths of the at least two sectors, the respective spatial profiles of the first radiation pattern and the at least one other radiation pattern, the proximity of the at least two sectors, and the total number of sectors in the sectored coverage area is selected so as to maximize a ratio of a first desired signal level in the first sector due to the first radiation pattern and at least one undesired signal level in the first sector due to the at least one other radiation pattern.
- 16. A wireless communication system to emit radiation patterns in a sectored coverage area divided into at least two sectors, the wireless communication system being constructed and arranged such that a first radiation pattern is designated substantially for a first sector of the at least two sectors, and at least one other radiation pattern is designated substantially for at least one other sector of the at least two sectors, the wireless communication system comprising:
a sector distribution within the sectored coverage area based at least in part on a first desired signal level in the first sector due to the first radiation pattern, a first undesired interference level in the first sector due to at least the one other radiation pattern, at least one other desired signal level in the at least one other sector due to the at least one other radiation pattern, and at least one other undesired interference level in the at least one other sector due to at least the first radiation pattern.
- 17. A method for determining a sector distribution of a wireless communication system that emits radiation patterns in a sectored coverage area divided into at least two sectors, the method comprising acts of:
a) designating a first radiation pattern substantially for a first sector of the at least two sectors; b) designating at least one other radiation pattern substantially for at least one other sector of the at least two sectors; and c) determining the sector distribution based at least in part on a first desired signal level in the first sector due to the first radiation pattern and a first undesired interference level in the first sector due to the at least one other radiation pattern.
- 18. The method of claim 17, wherein the act c) comprises acts of:
determining the first desired signal level in the first sector due to the first radiation pattern; and determining the first undesired interference level in the first sector due to the at least one other radiation pattern.
- 19. The method of claim 17, wherein the act b) comprises an act of:
designating at least one other radiation pattern substantially for at least one other sector of the at least two sectors, the first radiation pattern and the at least one other radiation pattern having a substantially same frequency.
- 20. The method of claim 17, wherein the act c) comprises an act of:
determining at least one of respective sector widths of the at least two sectors, respective spatial profiles of the first radiation pattern and the at least one other radiation pattern, a proximity of the at least two sectors, and a total number of sectors in the sectored coverage area.
- 21. The method of claim 17, wherein the act c) comprises an act of:
determining at least respective sector widths of the at least two sectors based at least in part on the first desired signal level in the first sector and the first undesired interference level in the first sector, wherein the respective sector widths are essentially equal.
- 22. The method of claim 17, wherein the act c) comprises an act of:
determining at least respective spatial profiles of the first radiation pattern and the at least one other radiation pattern, based at least in part on the first desired signal level in the first sector and the first undesired interference level in the first sector, wherein the respective spatial profiles are essentially similar.
- 23. The method of claim 17, wherein the act c) comprises:
determining the sector distribution based at least in part on the first desired signal level in the first sector and the first undesired interference level in the first sector, wherein the at least two sectors are contiguous sectors.
- 24. The method of claim 17, wherein the act c) comprises an act of:
c1) determining the sector distribution based at least in part on a ratio of the first desired signal level in the first sector and the first undesired interference level in the first sector.
- 25. The method of claim 24, wherein the act c1) comprises an act of:
c2) selecting the sector distribution so as to maximize the ratio of the first desired signal level in the first sector and the first undesired interference level in the first sector.
- 26. The method of claim 25, wherein the act c2) comprises an act of:
selecting at least one of respective sector widths of the at least two sectors, respective spatial profiles of the first radiation pattern and the at least one other radiation pattern, a proximity of the at least two sectors, and a total number of sectors so as maximize the ratio of the first desired signal level and the first undesired interference level in the first sector.
- 27. The method of claim 17, wherein:
the act b) comprises an act of designating at least two other radiation patterns; and the act c) comprises acts of:
c1) determining the first undesired interference level by determining a sum of undesired signal levels in the first sector due to the at least two other radiation patterns; and c2) determining the sector distribution based at least in part on the first desired signal level in the first sector and the sum of undesired signal levels in the first sector.
- 28. The method of claim 27, wherein the act c2) comprises an act of:
c3) determining the sector distribution based at least in part on a ratio of the first desired signal level in the first sector and the sum of undesired signal levels in the first sector.
- 29. The method of claim 28, wherein the act c3) comprises an act of:
c4) selecting the sector distribution so as to maximize the ratio of the first desired signal level in the first sector and the sum of undesired signal levels in the first sector.
- 30. The method of claim 29, wherein the act c4) comprises an act of:
selecting at least one of respective sector widths of the at least two sectors, respective spatial profiles of the first radiation pattern and the at least one other radiation pattern, a proximity of the at least two sectors, and a total number of sectors so as maximize the ratio of the first desired signal level and the sum of undesired signal levels in the first sector.
- 31. The method of claim 17, wherein the act c) comprises an act of:
determining the sector distribution based at least in part on the first desired signal level in the first sector and the first undesired interference level in the first sector, at least one other desired signal level in the at least one other sector due to the at least one other radiation pattern, and at least one other undesired interference level in the at least one other sector due to at least the first radiation pattern.
- 32. A method of determining a sector distribution of a wireless communication system that emits radiation patterns in a sectored coverage area divided into at least two sectors, the method comprising acts of:
a) designating a first radiation pattern substantially for a first sector of the at least two sectors; b) designating at least one other radiation pattern substantially for at least one other sector of the at least two sectors; and c) selecting at least one of respective sector widths of the at least two sectors, respective spatial profiles of the first radiation pattern and the at least one other radiation pattern, a proximity of the at least two sectors, and a total number of sectors so as to maximize a ratio of a first desired signal level in the first sector due to the first radiation pattern and at least one undesired signal level in the first sector due to the at least one other radiation pattern.
- 33. A method for determining a sector distribution of a wireless communication system that emits radiation patterns in a sectored coverage area divided into at least two sectors, the method comprising acts of:
a) designating a first radiation pattern substantially for a first sector of the at least two sectors; b) designating at least one other radiation pattern substantially for at least one other sector of the at least two sectors; and c) determining the sector distribution based at least in part on a first desired signal level in the first sector due to the first radiation pattern, a first undesired interference level in the first sector due to the at least one other radiation pattern, at least one other desired signal level in the at least one other sector due to the at least one other radiation pattern, and at least one other undesired interference level in the at least one other sector due to at least the first radiation pattern.
- 34. A method for determining a sector distribution of a wireless communication system that emits radiation patterns in a sectored coverage area divided into at least two sectors, the method comprising acts of:
designating radiation patterns substantially for respective sectors of the at least two sectors; determining a desired signal level in at least one sector of the at least two sectors due to a first radiation pattern designated substantially for the at least one sector; determining an undesired interference level in the at least one sector due to at least one other radiation pattern designated substantially for at least one other sector of the at least two sectors; evaluating a ratio of the desired signal level and the undesired interference level in the at least one sector; modifying the sector distribution; re-evaluating the ratio of the desired signal level and the undesired interference level in the at least one sector with the modified sector distribution; and repeating the acts of modifying the sector distribution and re-evaluating the ratio of desired signal level to the undesired interference level in the at least one sector to determine a substantially optimum sector distribution.
- 35. The method of claim 34, wherein in the act of modifying the sector distribution comprises an act of:
modifying respective sector widths of the at least two sectors.
- 36. The method of claim 34, wherein the act of modifying the sector distribution comprises an act of:
modifying respective spatial profiles of the radiation patterns designated substantially for respective sectors of the at least two sectors.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation of application Ser. No. 09/287,142, filed Apr. 6, 1999, entitled “Methods for Determining an Optimum Sector Distribution Within a Coverage Area of a Wireless Communication System,” which application is hereby incorporated herein by reference.
Continuations (1)
|
Number |
Date |
Country |
Parent |
09287142 |
Apr 1999 |
US |
Child |
09780291 |
Feb 2001 |
US |