Claims
- 1. A method for communicating between half-duplex nodes and a base station, where each half-duplex node is configured to transmit on an uplink channel and receive on a downlink channel in a frequency division duplexing (“FDD”) manner, the method comprising:
transmitting modulated data from a base station to a first half-duplex node during a first time frame on a first channel; transmitting modulated data from a second half-duplex node to the base station during the first time frame on a second channel; transmitting modulated data from the base station to the second half-duplex node during a second time frame on the first channel, wherein the first time frame precedes the second time frame; and transmitting modulated data from the first half-duplex node to the base station during the second time frame on the second channel.
- 2. The method of claim 1, wherein transmitting modulated data to the first half-duplex node is performed by a first half-duplex modem and transmitting modulated data to the second half-duplex node is performed by a second half-duplex modem, wherein the base station includes the first and second half-duplex modems.
- 3. The method of claim 2, wherein the modulated data transmitted by the first half-duplex node is received by the first half-duplex modem and wherein the modulated data transmitted by the second half-duplex node is received by the second half-duplex modem.
- 4. The method of claim 3, further comprising transmitting modulated data from a third half-duplex modem to a third half-duplex node during the first time frame on a third channel;
transmitting modulated data from a fourth half-duplex node to a fourth halfduplex modem during the first time frame on a fourth channel; transmitting modulated data from the fourth half-duplex modem to the fourth half-duplex node during the second time frame on the third channel; and transmitting modulated data from the third half-duplex node to the third half-duplex modem during the second time frame on the fourth channel.
- 5. The method of claim 4, wherein the first channel and the third channel span a similar frequency band but have different polarizations.
- 6. The method of claim 5, wherein the second channel and the fourth channel span a similar frequency band but have different polarizations.
- 7. The method of claim 4, further comprising co-locating the first half-duplex modem, the second half-duplex modem, the third half-duplex modem, and the fourth halfduplex modem at the base station to synchronize the modems.
- 8. The method of claim 7, further comprising forming a cell coverage area for the base station from a first sector, a second sector, a third sector, and a fourth sector, wherein the first half-duplex node is located in the first sector, the second half-duplex node is located in the second sector, the third half-duplex node is located in the third sector, and the fourth half-duplex node is located in the fourth sector.
- 9. The method of claim 8, wherein the first sector is located adjacent to the second and fourth sectors and the second sector is located adjacent to the first and third sectors, all within the cell coverage area.
- 10. The method of claim 9, further comprising deploying a second base station along with its associated second cell coverage area, wherein the second cell is located adjacent to the first cell and utilizes the first channel, the second channel, the third channel, and the fourth channel to communicate with nodes in a mirror image of the first cell, the mirror image.
- 11. The method of claim 10, wherein the second cell coverage area is formed by rotating the first cell coverage area along an axis of the first cell that separates the first and second sectors from the third and fourth sectors, such that the resultant second cell coverage area is positioned such that the first sector of the first cell coverage area is adjacent to a first sector of the second cell coverage area and the second sector of the first cell coverage area is adjacent to the second sector of the second cell coverage area.
- 12. The method of claim 11, further comprising deploying a third base station along with its associated third cell coverage area, wherein the third cell is located adjacent to the second cell and utilizes the first channel, the second channel, the third channel, and the fourth channel to communicate with nodes in a mirror image of the second cell.
- 13. The method of claim 12, wherein the third cell coverage area is formed by rotating the second cell coverage area along an axis of the second cell that separates the first and fourth sectors from the second and third sectors, such that the resultant third cell coverage area is positioned such that the first sector of the second cell coverage area is adjacent to a first sector of the third cell coverage area and the fourth sector of the second cell coverage area is adjacent to the fourth sector of the third cell coverage area.
- 14. The method of claim 13, further comprising deploying a fourth base station along with its associated fourth cell coverage area, wherein the fourth cell is located adjacent to the third cell and utilizes the first channel, the second channel, the third channel, and the fourth channel to communicate with nodes in a mirror image of the third cell.
- 15. The method of claim 14, wherein the fourth cell coverage area is formed by rotating the third cell coverage area along an axis of the third cell that separates the first and second sectors from the third and fourth sectors, such that the resultant fourth cell coverage area is positioned such that the first sector of the third cell coverage area is adjacent to a first sector of the fourth cell coverage area and the second sector of the third cell coverage area is adjacent to the second sector of the fourth cell coverage area.
- 16. The method of claim 4, further comprising forming a first logical channel between the first half-duplex modem and the first half-duplex node from the first and second channels and forming a second logical channel between the second half-duplex modem and the second half-duplex node from the first and second channels.
- 17. The method of claim 16, further comprising forming a third logical channel between the third half-duplex modem and the third half-duplex node from the third and fourth channels and forming a fourth logical channel between the fourth half-duplex modem and the fourth half-duplex node from the first and second channels.
- 18. The method of claim 1, further comprising configuring the first half-duplex node to operate in a frequency division half-duplex fashion and configuring the second half-duplex node to operate in a frequency division half-duplex manner.
- 19. The method of claim 1, further comprising configuring the base station to transmit and receive in a frequency division half-duplex manner with the first half-duplex node and the second half-duplex node.
- 20. The method of claim 2, wherein the first half-duplex modem and the second half-duplex modem are connected to a full-duplex outdoor unit, the full-duplex outdoor unit being configured to simultaneously transmit modulated data to and receive modulated data from the first half-duplex node and the second half-duplex node.
- 21. The method of claim 20, wherein the full-duplex outdoor unit is connected to a smart antenna, the smart antenna being configured to simultaneously transmit to the first half-duplex node and receive from the second half-duplex node during the first time frame and configured to simultaneously receive from the first half-duplex node and transmit to the second half-duplex node during the second time frame.
- 22. The method of claim 1, wherein transmitting modulated data to the first half-duplex node and transmitting modulated data to the second half-duplex node is performed by a full-duplex modem.
- 23. The method of claim 22, wherein the full-duplex modem is connected to a full-duplex outdoor unit, the full-duplex outdoor unit being configured to simultaneously transmit modulated data to and receive modulated data from the first half-duplex node and the second half-duplex node.
- 24. The method of claim 23, wherein the full-duplex outdoor unit is connected to a smart antenna, the smart antenna being configured to simultaneously transmit to the first half-duplex node and receive from the second half-duplex node during the first time frame and configured to simultaneously receive from the first half-duplex node and transmit to the second half-duplex node during the second time frame.
- 25. The method of claim 24, further comprising transmitting modulated data from a second full-duplex modem to a third half-duplex node during the first time frame on a third channel;
transmitting modulated data from a fourth half-duplex node to the second fullduplex modem during the first time frame on a fourth channel; transmitting modulated data from the second full-duplex modem to the fourth half-duplex node during the second time frame on the third channel; and transmitting modulated data from the third half-duplex node to the second full-duplex modem during the second time frame on the fourth channel.
- 26. The method of claim 25, wherein the second full-duplex modem is connected to a second full-duplex outdoor unit, the second full-duplex outdoor unit being configured to simultaneously transmit modulated data to and receive modulated data from the third halfduplex node and the fourth half-duplex node.
- 27. The method of claim 26, wherein the second full-duplex outdoor unit is connected to a second smart antenna, the second smart antenna being configured to simultaneously transmit to the third half-duplex node and receive from the fourth half-duplex node during the first time frame and configured to simultaneously receive from the third half-duplex node and transmit to the fourth half-duplex node during the second time frame.
- 28. The method of claim 27, wherein the first channel and the third channel span a similar frequency band but have different polarizations.
- 29. The method of claim 28, wherein the second channel and the fourth channel span a similar frequency band but have different polarizations.
- 30. The method of claim 25, further comprising co-locating the full-duplex modem and the second full half-duplex modem at the base station to synchronize the modems.
- 31. The method of claim 30, further comprising forming a cell coverage area for the base station from a first, a second, a third, and a fourth sector, wherein the first half-duplex node is located in a first sector, the second half-duplex node is located in a second sector, the third half-duplex node is located in a third sector, and the fourth half-duplex node is located in a fourth sector.
- 32. The method of claim 31, wherein the first sector is located adjacent to the second and fourth sectors and the second sector is located adjacent to the first and third sectors, all within the cell coverage area.
- 33. The method of claim 32, further comprising deploying a second base station along with its associated second cell coverage area, wherein the second cell is located adjacent to the first cell and utilizes the first channel, the second channel, the third channel, and the fourth channel to communicate with nodes in a mirror image of the first cell, the mirror image.
- 34. The method of claim 33, wherein the second cell coverage area is formed by rotating the first cell coverage area along an axis of the first cell that separates the first and second sectors from the third and fourth sectors, such that the resultant second cell coverage area is positioned such that the first sector of the first cell coverage area is adjacent to a first sector of the second cell coverage area and the second sector of the first cell coverage area is adjacent to the second sector of the second cell coverage area.
- 35. The method of claim 34, further comprising deploying a third base station along with its associated third cell coverage area, wherein the third cell is located adjacent to the second cell and utilizes the first channel, the second channel, the third channel, and the fourth channel to communicate with nodes in a mirror image of the second cell.
- 36. The method of claim 35, wherein the third cell coverage area is formed by rotating the second cell coverage area along an axis of the second cell that separates the first and fourth sectors from the second and third sectors, such that the resultant third cell coverage area is positioned such that the first sector of the second cell coverage area is adjacent to a first sector of the third cell coverage area and the fourth sector of the second cell coverage area is adjacent to the fourth sector of the third cell coverage area.
- 37. The method of claim 36, further comprising deploying a fourth base station along with its associated fourth cell coverage area, wherein the fourth cell is located adjacent to the third cell and utilizes the first channel, the second channel, the third channel, and the fourth channel to communicate with nodes in a mirror image of the third cell.
- 38. The method of claim 37, wherein the fourth cell coverage area is formed by rotating the third cell coverage area along an axis of the third cell that separates the first and second sectors from the third and fourth sectors, such that the resultant fourth cell coverage area is positioned such that the first sector of the third cell coverage area is adjacent to a first sector of the fourth cell coverage area and the second sector of the third cell coverage area is adjacent to the second sector of the fourth cell coverage area.
- 39. The method of claim 25, further comprising forming a first logical channel between the full-duplex modem and the first half-duplex node from the first and second channels and forming a second logical channel between the full-duplex modem and the second half-duplex node from the first and second channels.
- 40. The method of claim 39, further comprising forming a third logical channel between the second full-duplex modem and the third half-duplex node from the third and fourth channels and forming a fourth logical channel between the second full-duplex modem and the fourth half-duplex node from the first and second channels.
- 41. A wireless communication system configured to transmit and receive over channels between half-duplex nodes and a base station in a frequency division duplexing (“FDD”) manner, the system comprising:
a first node comprising
a first modem, and a first outdoor unit coupled to the first modem and configured to alternate between transmitting modulated data over a first channel and receiving modulated data over a second channel; a second node comprising
a second modem, and a second outdoor unit coupled to the second modem and configured to alternate in transmitting modulated data over the first channel and receiving modulated data over the second channel, and a base station comprising
a first half-duplex base station modem configured to modulate and demodulate data transmitted to and received from the first outdoor unit; a first half-duplex base station outdoor unit coupled to the first half-duplex base station modem and configured to transmit modulated data to the first outdoor unit over the second channel and receive modulated data from the first outdoor unit over the first channel; a second half-duplex base station modem configured to modulate and demodulate data transmitted to and received from the second outdoor unit; and a second half-duplex base station outdoor unit coupled to the second half-duplex base station modem and configured to transmit modulated data to the second outdoor unit over the second channel and receive modulated data from the second outdoor unit over the first channel.
- 42. The system of claim 41, wherein the first node uplinks during a second time frame on the first channel and receives a downlink on the first channel during a second time frame and wherein the second node uplinks during the first time frame on the first channel and receives a downlink on the second channel during the second time frame.
- 43. The system of claim 42, wherein the first node is configured to operate in a frequency division half-duplex fashion and the second node is configured to operate in a frequency division half-duplex fashion.
- 44. The system of claim 42, further comprising a third node comprising
a third modem, and a third outdoor unit coupled to the third modem and configured to alternate between transmitting modulated data over a third channel and receiving modulated data over a fourth channel; a fourth node comprising a fourth modem, and a fourth outdoor unit coupled to the fourth modem and configured to alternate in transmitting modulated data over the third channel and receiving modulated data over the fourth channel; and the base station further comprising a third half-duplex base station modem configured to modulate and demodulate data transmitted to and received from the third outdoor unit; a third half-duplex base station outdoor unit coupled to the third half-duplex base station modem and configured to transmit modulated data to the third outdoor unit over the fourth channel and receive modulated data from the third outdoor unit over the third channel; a fourth half-duplex base station modem configured to modulate and demodulate data transmitted to and received from the fourth outdoor unit; and a fourth half-duplex base station outdoor unit coupled to the fourth half-duplex base station modem and configured to transmit modulated data to the fourth outdoor unit over the fourth channel and receive modulated data from the fourth outdoor unit over the third channel.
- 45. The system of claim 44, wherein the third node uplinks during the second time frame on the third channel and receives a downlink on the fourth channel during the first time frame and wherein the fourth node uplinks during a first time frame on the third channel and receives a downlink on the fourth channel during the second time frame.
- 46. The system of claim 45, wherein the first channel and the third channel span a similar frequency band but have different polarizations.
- 47. The system of claim 46, wherein the second channel and the fourth channel span a similar frequency band but have different polarizations.
- 48. The system of claim 45, wherein the first node is located in a first sector, the second node is located in a second sector, the third node is located in a third sector, the fourth node is located in a fourth sector, wherein the first sector, the second sector, the third sector, and the fourth sector form a cell coverage area of the base station.
- 49. The system of claim 48, wherein the first sector is located adjacent to the second and fourth sectors and the second sector is located adjacent to the first and third sectors, all within the cell coverage area.
- 50. The system of claim 49, further comprising a second base station along with its associated second cell coverage area, wherein the second cell is located adjacent to the first cell and utilizes the first channel, the second channel, the third channel, and the fourth channel to communicate with nodes in a mirror image of the first cell.
- 51. The system of claim 50, wherein the second cell coverage area is formed by rotating the first cell coverage area along an axis of the first cell that separates the first and second sectors from the third and fourth sectors, such that the resultant second cell coverage area is positioned such that the first sector of the first cell coverage area is adjacent to a first sector of the second cell coverage area and the second sector of the first cell coverage area is adjacent to the second sector of the second cell coverage area.
- 52. The system of claim 51, further comprising a third base station along with its associated third cell coverage area, wherein the third cell is located adjacent to the second cell and utilizes the first channel, the second channel, the third channel, and the fourth channel to communicate with nodes in a mirror image of the second cell.
- 53. The system of claim 52, wherein the third cell coverage area is formed by rotating the second cell coverage area along an axis of the second cell that separates the first and fourth sectors from the second and third sectors, such that the resultant third cell coverage area is positioned such that the first sector of the second cell coverage area is adjacent to a first sector of the third cell coverage area and the fourth sector of the second cell coverage area is adjacent to the fourth sector of the third cell coverage area.
- 54. The system of claim 53, further comprising a fourth base station along with its associated fourth cell coverage area, wherein the fourth cell is located adjacent to the third cell and utilizes the first channel, the second channel, the third channel, and the fourth channel to communicate with nodes in a mirror image of the third cell.
- 55. The system of claim 54, wherein the fourth cell coverage area is formed by rotating the third cell coverage area along an axis of the third cell that separates the first and second sectors from the third and fourth sectors, such that the resultant fourth cell coverage area is positioned such that the first sector of the third cell coverage area is adjacent to a first sector of the fourth cell coverage area and the second sector of the third cell coverage area is adjacent to the second sector of the fourth cell coverage area.
- 56. The system of claim 42, wherein the first and second channels form a first logical channel between the first half-duplex base station modem and the first node and also form a second logical channel between the second half-duplex base station modem and the second node.
- 57. The system of claim 45, wherein the third and fourth channels form a third logical channel between the third half-duplex base station modem and the third node and also form a fourth logical channel between the fourth half-duplex base station modem and the fourth node.
- 58. The system of claim 42, further comprising configuring the base station to transmit and receive in a frequency division half-duplex manner with each of the first node and the second node.
- 59. The system of claim 42, wherein the first half-duplex base station outdoor unit and the second half-duplex base station outdoor unit are configured to form a full-duplex outdoor unit, the full-duplex outdoor unit being configured to simultaneously transmit modulated data to and receive modulated data from the first node and the second node.
- 60. The system of claim 59, wherein the full-duplex outdoor unit is connected to a smart antenna, the smart antenna being configured to simultaneously transmit to the first node and receive from the second node during the first time frame and configured to simultaneously receive from the first half-duplex node and transmit to the second half-duplex node during the second time frame.
- 61. The system of claim 42, wherein the first and second half-duplex base station outdoor units each include a frequency division millimeter-wave band frequency synthesizer configured to transmit modulated data on the second channel and receive modulated data on the first channel.
- 62. The system of claim 41, wherein the first and second outdoor units each include an intermediate frequency module configured to upconvert the modulated data from the first and second modems, respectively, and down convert the received modulated data.
- 63. The system of claim 62, wherein the first and second outdoor units each include a radio frequency module configured to upconvert the modulated data from the intermediate frequency module and down convert the received modulated data.
- 64. The system of claim 63, wherein the radio frequency module includes a millimeter-wave band frequency synthesizer configured to transmit modulated data on the first channel and receive modulated data on the second channel.
- 65. A wireless communication system configured to transmit and receive between half-duplex nodes and half-duplex base stations in a frequency division duplexing (“FDD”) manner, the system comprising:
a first half-duplex node configured to transmit modulated data over a first channel and configured to receive modulated data over a second channel; a second half-duplex node configured to transmit modulated data over the first channel and configured to receive modulated data over the second channel such that the first and second half-duplex nodes are synchronized to transmit while the other is receiving and receive while the other is transmitting; a first half-duplex base station configured to transmit modulated data to the first half-duplex node over the second channel and to receive modulated data from the first half-duplex node over the first channel; and a second half-duplex base station configured to transmit modulated data to the second half-duplex node over the second channel and to receive modulated data from the first half-duplex node over the first channel.
- 66. The system of claim 65, wherein the first half-duplex node and the second half-duplex node are synchronized by timing signals received from the first and second halfduplex base stations.
- 67. The system of claim 65, wherein the first and second half-duplex base stations are synchronized using a wired line.
- 68. A time division duplexing wireless communication system including half-duplex modem/outdoor units and a full-duplex modem/outdoor unit, the system comprising:
a first half-duplex modem/outdoor unit and a second half-duplex modem/outdoor unit, both configured to alternate in transmitting modulated data over a first channel and receiving modulated data over a second channel; and a full-duplex modem/outdoor unit configured to alternate between simultaneously transmitting modulated data to the first half-duplex modem/outdoor unit over the second channel while receiving modulated data from the second half-duplex modem/outdoor unit over the first channel and simultaneously transmitting modulated data to the first half-duplex modem/outdoor unit over the second channel while receiving modulated data from the second half-duplex modem/outdoor unit over the first channel.
- 69. The system of claim 68, wherein the half-duplex modem/outdoor units each include a millimeter-wave band frequency synthesizer configured to offset transmitted modulated data to the first channel and offset received modulated data to the second channel in a frequency division duplexing (“FDD”) manner.
- 70. The system of claim 68, further including an antenna communicating with the full-duplex modem/outdoor unit and configured to switch between transmitting the modulated data to each of the half-duplex modem/outdoor units and configured to switch between receiving the modulated data from each of the half-duplex modem/outdoor units.
- 71. A time division duplexing wireless communication system including a first and a second modem/outdoor units where uplink transmissions of even frames and odd frames of data occur on a first channel and downlink transmissions of even frames and odd frames of data occur on a second channel, the system comprising:
a first half-duplex modem/outdoor unit configured to transmit even frames of data on a first channel and receive odd frames of data on a second channel; a second half-duplex modem/outdoor unit configured to transmit odd frames of data on a first channel and receive even frames of data on a second channel; and a frequency division full-duplex base station configured to transmit odd frames of data to the first modem/outdoor unit and even frames of data to the second modem/outdoor unit both on a second channel and configured to receive even frames of data from the first modem/outdoor unit and odd frames of data from the second modem/outdoor unit both on a first channel.
- 72. The system of claim 71, wherein the frequency division full-duplex base station is connected to a smart antenna, the smart antenna being configured to simultaneously transmit to the first half-duplex modem/outdoor unit and receive from the second half-duplex modem/outdoor unit during the first time frame and configured to simultaneously receive from the first half-duplex modem/outdoor unit and transmit to the second half-duplex modem/outdoor unit during the second time frame.
- 73. A method for minimizing co-channel interference between adjacent sectors of different cells in a frequency division duplexing wireless communication system which includes a first base station and an associated first half-duplex node and a second base station and an associated second half-duplex node where each cell includes four sectors and where the adjacent sectors use the same channel for uplink transmissions, the method comprising:
transmitting modulated data from a first half-duplex node in a first cell to an associated first base station during an even frame of an uplink; transmitting modulated data from a second half-duplex node to an associated second base station during an odd frame of the uplink, the second half-duplex node being located in a second cell and adjacent to the first half-duplex node; receiving modulated data from the first half-duplex node at the first base station during the even frame; and receiving modulated data from the second half-duplex node at the second base station during the odd frame.
- 74. A node apparatus configured for use in a wireless communication system in a frequency division duplexing (“FDD”) manner to communicate with a base station, the apparatus comprising:
a half-duplex modem configured to alternate in demodulating incoming data and modulating outgoing data; and an outdoor unit coupled to the half-duplex modem, the outdoor unit comprising;
an intermediate frequency module configured to alternate between up converting the outgoing data from the half-duplex modem and down converting the incoming data, a radio frequency module coupled to the intermediate frequency module and configured to alternate between up converting the outgoing data received from the intermediate frequency module and down converting the incoming data received from a base station, and a millimeter-wave band frequency synthesizer coupled to the radio frequency module and configured to alternate between transmitting the outgoing data over a first channel and receiving the incoming data over a second channel.
- 75. A node apparatus configured for use in a wireless communication system in a frequency division duplexing (“FDD”) manner to communicate with a base station, the apparatus comprising:
an antenna configured to alternate between receiving an incoming signal on a first radio frequency and transmitting an outgoing signal on a second radio frequency; a radio frequency (“RF”) module in communication with the antenna and configured to alternate between down converting the incoming signal to an intermediate frequency and up converting the outgoing signal to the second radio frequency; a first switch connected to the RF module and configured to select between routing the incoming signal away from the RF module and routing the outgoing signal to the RF module; an intermediate frequency (“IF”) module coupled to the first switch and configured to alternate between down converting the incoming signal from the intermediate frequency to a base band frequency and up converting the outgoing signal from the base band frequency to the intermediate frequency; a second switch coupled to the IF module and configured to select between routing the incoming signal away from the IF module and routing the outgoing signal to the IF module; and a modem in communication with the second switch and configured to alternate between demodulating the incoming signal at the base band frequency and modulating the outgoing signal at the base band frequency.
- 76. The system of claim 75, wherein the RF module includes a duplexer configured to switch between the first radio frequency and the second radio frequency, an RF down conversion module configured to down convert the incoming signal to the intermediate frequency, and an RF up conversion module configured to up convert the outgoing signal to the second radio frequency.
- 77. The system of claim 76, wherein the RF module includes a millimeter-wave band frequency synthesizer configured to offset the first radio frequency from the second radio frequency.
- 78. The system of claim 75, wherein the IF module includes an IF down conversion module configured to down convert the incoming signal to the base band frequency, an IF up conversion module configured to up convert the outgoing signal to the intermediate frequency.
- 79. A base station configured for transmitting downlink data during a first set of frames on a first channel and configured for receiving uplink data during a second set of frames on a second channel, the base station comprising:
an antenna configured to downlink and uplink modulated data; a modem coupled to the antenna and configured to modulate the uplink data and demodulate the downlink data; and a processor configured to transmit the downlink data during a first set of frames on a first channel, the first set of frames including a first subset of the first set of frames and a second subset of the first set of frames such that during the first subset of the first set of frames downlink data is transmitted to a first node and during the second subset of the first set of frames downlink data is transmitted to a second node, the processor configured to receive the uplink data during a second set of frames on a second channel, the second set of frames including a first subset of the second set of frames and a second subset of the second set of frames such that during the first subset of the second set of frames uplink data is received from the second node at the base station and the second subset of the second set of frames is used to uplink data from the first node to the base station.
- 80. A system configured for transmitting uplink data from nodes to base stations during even and odd frames of time, each base station being associated with a sector, each node within each sector uplinks data to the base station associated with its sector using the same channel, the system comprising:
a first set of nodes in a first sector; a first base station configured to receive uplink data from the first set of nodes during an odd time frame on a channel; a second set of nodes in a second sector, the second sector being located adjacent to the first sector; and a second base station configured to receive uplink data from the second set of nodes during an even time frame on the channel.
- 81. A method for communicating between half-duplex nodes and half-duplex base stations, where each half-duplex node is configured to transmit on an uplink channel and receive on a downlink channel in a frequency division duplexing (“FDD”) manner, the method comprising:
downlinking modulated data during a first time frame on a first channel; uplinking modulated data during the first time frame on a second channel; downlinking modulated data during a second time frame on the first channel, wherein the first time frame precedes the second time frame; and uplinking modulated data during the second time frame on the second channel.
- 82. A wireless communication system configured to transmit and receive over channels between half-duplex nodes and a base station in a frequency division duplexing (“FDD”) manner to reduce co-channel interference, the system comprising:
a first node comprising
a first modem, and a first outdoor unit coupled to the first modem and configured to alternate between transmitting modulated data over a first channel and receiving modulated data over a second channel; a second node comprising
a second modem, and a second outdoor unit coupled to the second modem and configured to alternate in transmitting modulated data over the first channel and receiving modulated data over the second channel, and a base station comprising
a first half-duplex base station modem configured to modulate and demodulate data transmitted to and received from the first outdoor unit; a first half-duplex base station outdoor unit coupled to the first half-duplex base station modem and configured to transmit modulated data to the first outdoor unit over the second channel and receive modulated data from the first outdoor unit over the first channel; a second half-duplex base station modem configured to modulate and demodulate data transmitted to and received from the second outdoor unit; and a second half-duplex base station outdoor unit coupled to the second half-duplex base station modem and configured to transmit modulated data to the second outdoor unit over the second channel and receive modulated data from the second outdoor unit over the first channel.
- 83. The system of claim 82, wherein the first node uplinks during a second time frame on the first channel and receives a downlink on the second channel during a first time frame and wherein the second node uplinks during the first time frame on the first channel and receives a downlink on the second channel during the second time frame.
- 84. The system of claim 83, wherein the first half-duplex node and the first outdoor unit are configured to operate in a frequency division half-duplex fashion and the second node and the second outdoor unit are configured to operate in a frequency division half-duplex fashion.
- 85. The system of claim 84, further comprising a third node comprising
a third modem, and a third outdoor unit coupled to the third modem and configured to alternate between transmitting modulated data over a third channel and receiving modulated data over a fourth channel; a fourth node comprising a fourth modem, and a fourth outdoor unit coupled to the fourth modem and configured to alternate in transmitting modulated data over the third channel and receiving modulated data over the fourth channel; and the base station further comprising a third half-duplex base station modem configured to modulate and demodulate data transmitted to and received from the third outdoor unit; a third half-duplex base station outdoor unit coupled to the third halfduplex base station modem and configured to transmit modulated data to the third outdoor unit over the fourth channel and receive modulated data from the third outdoor unit over the third channel; a fourth half-duplex base station modem configured to modulate and demodulate data transmitted to and received from the fourth outdoor unit; and a fourth half-duplex base station outdoor unit coupled to the fourth half-duplex base station modem and configured to transmit modulated data to the fourth outdoor unit over the fourth channel and receive modulated data from the fourth outdoor unit over the third channel.
- 86. The system of claim 85, wherein the third node uplinks during the second time frame on the third channel and receives a downlink on the fourth channel during the first time frame and wherein the fourth node uplinks during the first time frame on the third channel and receives a downlink on the fourth channel during the second time frame.
- 87. The system of claim 86, wherein the first channel and the third channel span a similar frequency band but have different polarizations.
- 88. The system of claim 87, wherein the second channel and the fourth channel span a similar frequency band but have different polarizations.
- 89. The system of claim 85, wherein the first node is located in a first sector, the second node is located in a second sector, the third node is located in a third sector, the fourth node is located in a fourth sector, wherein the first sector, the second sector, the third sector, and the fourth sector form a cell coverage area of the base station.
- 90. The system of claim 89, wherein the first sector is located adjacent to the second and fourth sectors and the second sector is located adjacent to the first and third sectors, all within the cell.
- 91. The system of claim 90, further comprising a second base station and its associated second cell coverage area, wherein the second cell is located adjacent to the first cell and is configured to utilize the first channel, the second channel, the third channel, and the fourth channel as used in the first cell except that the channels in the first sector of the first cell are used in the third sector of the second cell, the channels in the third sector of the first cell are used in the first sector of the second cell, the channels in the second sector of the first cell are used in the fourth sector of the second cell, and the channels in the fourth sector of the first cell are used in the second sector of the second cell.
- 92. The system of claim 91, further comprising a third base station and its associated third cell coverage area, wherein the third cell is located adjacent to the second cell and on a diagonal with the first cell, the third cell configured to utilizes the first channel, the second channel, the third channel, and the fourth channel as in the first cell except that the channels in the first sector of the first cell are used in the third sector of the third cell, the channels in the third sector of the first cell are used in the first sector of the third cell, the channels in the second sector of the first cell are used in the forth sector of the third cell, and the channels in the fourth sector of the first cell are used in the second sector of the third cell.
- 93. The system of claim 92, further comprising a fourth base station and its associated fourth cell coverage area, wherein the fourth cell is located adjacent to the third cell and on a diagonal with the second cell, the fourth cell utilizes the first channel, the second channel, the third channel, and the fourth channel except that the channels in the first sector of the third cell are used in the third sector of the fourth cell, the channels in the third sector of the third cell are used in the first sector of the fourth cell, the channels in the second sector of the third cell are used in the fourth sector of the fourth cell, and the channels in the fourth sector of the third cell are used in the second sector of the fourth.
- 94. The system of claim 83, wherein the first and second channels form a first logical channel between the first half-duplex base station modem and the first node and also form a second logical channel between the second half-duplex base station modem and the second node.
- 95. The system of claim 86, wherein the third and fourth channels form a third logical channel between the third half-duplex base station modem and the third node and also form a fourth logical channel between the fourth half-duplex base station modem and the fourth node.
- 96. The system of claim 83, wherein the first and second half-duplex base station outdoor units each include a frequency division millimeter-wave band frequency synthesizer configured to transmit modulated data on the second channel and receive modulated data on the first channel.
- 97. The system of claim 83, wherein the first and second outdoor units each include an intermediate frequency module configured to upconvert the modulated data from the first and second modems and down convert the received modulated data.
- 98. The system of claim 97, wherein the first and second outdoor units each include a radio frequency module configured to upconvert the modulated data from the intermediate frequency module and down convert the received modulated data from the base station modem.
- 99. The system of claim 98, wherein the radio frequency module includes a millimeter-wave band frequency synthesizer configured to transmit modulated data on the first channel and receive modulated data on the second channel.
- 100. A method for communicating between half-duplex nodes and a base station, where each half-duplex node is configured to transmit on an uplink channel and receive on a downlink channel in a frequency division duplexing (“FDD”) manner to reduce co-channel interference, the method comprising:
transmitting modulated data from a base station to a first half-duplex node during a first time frame on a first channel; transmitting modulated data from a second half-duplex node to the base station during the first time frame on a second channel; transmitting modulated data from the base station to the second half-duplex node during a second time frame on the first channel, wherein the first time frame precedes the second time frame; and transmitting modulated data from the first half-duplex node to the base station during the second time frame on the second channel.
- 101. The method of claim 100, wherein transmitting modulated data to the first half-duplex node is performed by a first half-duplex modem and transmitting modulated data to the second half-duplex node is performed by a second half-duplex modem, wherein the first and second half-duplex modems are located at the base station.
- 102. The method of claim 101, wherein the modulated data transmitted by the first half-duplex node is received by the first half-duplex modem and wherein the modulated data transmitted by the second half-duplex node is received by the second half-duplex modem.
- 103. The method of claim 102, further comprising transmitting modulated data from a third half-duplex modem to a third half-duplex node during the first time frame on a third channel;
transmitting modulated data from a fourth half-duplex node to a fourth half-duplex modem during the first time frame on a fourth channel; transmitting modulated data from the fourth half-duplex modem to the fourth half-duplex node during the second time frame on the third channel; and transmitting modulated data from the third half-duplex node to the third half-duplex modem during the second time frame on the fourth channel.
- 104. The method of claim 103, wherein the first channel and the third channel span a similar frequency band but have different polarizations.
- 105. The method of claim 104, wherein the second channel and the fourth channel span a similar frequency band but have different polarizations.
- 106. The method of claim 103, wherein the first half-duplex modem, the second half-duplex modem, the third half-duplex modem, and the fourth half-duplex modem are colocated at the base station.
- 107. The method of claim 106, wherein the first half-duplex node is located in a first sector, the second half-duplex node is located in a second sector, the third half-duplex node is located in a third sector, the fourth half-duplex node is located in a fourth sector, wherein the first sector, the second sector, the third sector, and the fourth sector form a cell coverage area of the base station.
- 108. The method of claim 107, wherein the first sector is located adjacent to the second and fourth sectors and the second sector is located adjacent to the first and third sectors, all within the cell coverage area.
- 109. The method of claim 108, further comprising deploying a second base station and its associated second cell coverage area, wherein the second cell is located adjacent to the first cell and is configured to utilize the first channel, the second channel, the third channel, and the fourth channel as used in the first cell except that the channels in the first sector of the first cell are used in the third sector of the second cell, the channels in the third sector of the first cell are used in the first sector of the second cell, the channels in the second sector of the first cell are used in the fourth sector of the second cell, and the channels in the fourth sector of the first cell are used in the second sector of the second cell.
- 110. The method of claim 109, further comprising deploying a third base station and its associated third cell coverage area, wherein the third cell is located adjacent to the second cell and on a diagonal with the first cell, the third cell configured to utilizes the first channel, the second channel, the third channel, and the fourth channel as in the first cell except that the channels in the first sector of the first cell are used in the third sector of the third cell, the channels in the third sector of the first cell are used in the first sector of the third cell, the channels in the second sector of the first cell are used in the fourth sector of the third cell, and the channels in the fourth sector of the first cell are used in the second sector of the third cell.
- 111. The method of claim 110, further comprising deploying a fourth base station and its associated fourth cell coverage area, wherein the fourth cell is located adjacent to the third cell and on a diagonal with the second cell, the fourth cell utilizes the first channel, the second channel, the third channel, and the fourth channel except that the channels in the first sector of the third cell are used in the third sector of the fourth cell, the channels in the third sector of the third cell are used in the first sector of the fourth cell, the channels in the second sector of the third cell are used in the fourth sector of the fourth cell, and the channels in the fourth sector of the third cell are used in the second sector of the fourth.
- 112. The method of claim 100, wherein the first and second channels form a first logical channel between the first half-duplex modem and the first half-duplex node and also form a second logical channel between the second half-duplex modem and the second half-duplex node.
- 113. The method of claim 103, wherein the third and fourth channels form a third logical channel between the third half-duplex modem and the third half-duplex node and also form a fourth logical channel between the fourth half-duplex modem and the fourth half-duplex node.
- 114. The method of claim 100, further comprising connecting the first half-duplex modem and the second half-duplex modem to a full-duplex outdoor unit, the full-duplex outdoor unit being configured to simultaneously transmit modulated data to and receive modulated data from the first half-duplex node and the second half-duplex node.
- 115. The method of claim 114, further comprising connecting the full-duplex outdoor unit to a smart antenna, the smart antenna being configured to simultaneously transmit to the first half-duplex node and receive from the second half-duplex node during the first time frame and configured to simultaneously receive from the first half-duplex node and transmit to the second half-duplex node during the second time frame.
RELATED APPLICATIONS
[0001] This application claims priority to provisional application serial No. 60/233,757, filed Sep. 14, 2000, titled “FIBERLESS-DEVELOPING A SHORT TERM FREQUENCY DIVISION DUPLEX SOLUTION” which is hereby incorporated by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60233757 |
Sep 2000 |
US |