IP Library Granted Patent US 7,899,002
Granted Patent B2
US 7,899,002 · App. 12/540,873 · Granted Mar 1, 2011

Satellite/terrestrial wireless communications systems and methods using disparate channel separation codes

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Quick Facts
Patent No.
US 7,899,002
App. No.
12/540,873
Granted
Mar 1, 2011
Kind
B2
Abstract

A wireless communications system includes a space-based component (SBC) and an ancillary terrestrial component (ATC) configured to communicate with radioterminals using a common satellite service link frequency band and respective first and second different sets of channel separation codes. The first and second sets of channel separation codes may include, for example, respective sets of scrambling codes, respective sets of frequency assignment codes, respective sets of channel assignment codes, respective sets of sub-channel assignment codes and/or respective sets of spreading codes.

Claims (85)

1. A wireless communications system comprising an ancillary terrestrial component (ATC) that is associated with a space based component (SBC) and is configured to communicate with first radioterminals using first frequencies of a satellite frequency band while the SBC communicates with second radioterminals using second frequencies of the satellite frequency band, wherein the ATC is further configured to communicate with the first radioterminals using an OFDM/OFDMA air interface protocol and a first set of channel separation codes that differs from a second set of channel separation codes that is used by the SBC to communicate with the second radioterminals.

2. A system according to claim 1 , wherein the SBC and the ATC communicate with radioterminals using respective first and second different air interface protocols.

3. A system according to claim 1 , wherein the first and second sets of channel separation codes comprise respective sets of scrambling codes, respective sets of frequency assignment codes, respective sets of channel assignment codes, respective sets of sub-channel assignment codes and/or respective sets of spreading codes.

4. A system according to claim 1 , wherein the first and second sets of channel separation codes comprise respective different sets of spreading codes, respective different sets of frequency assignment codes, respective different sets of channel assignment codes and/or respective different sets of sub-channel assignment codes.

5. A system according to claim 1 , wherein the first and second sets of channel separation codes comprise respective different sets of Walsh codes, respective different sets of OFDM/OFDMA frequency assignment codes, respective different sets of OFDM/OFDMA channel assignment codes and/or respective different sets of OFDM/OFDMA sub-channel assignment codes.

6. A system according to claim 1 , wherein the first and second sets of channel separation codes comprise respective different first and second sets of code phases of the same code.

7. A system according to claim 6 , wherein the first and/or second sets of code phases are functions of first and/or second radioterminal identifiers.

8. A system according to claim 1 , wherein the first and second sets of channel separation codes comprise respective first and second sets of long codes and/or short codes.

9. A system according to claim 1 , wherein the SBC and the ATC employ the same chip rate, wherein the SBC employs a symbol period that is an integer multiple of a symbol period used by the ATC, wherein the first set of channel separation codes comprises a first set of spreading codes having a first length, wherein the second set of channel separation codes comprises a second set of spreading codes having a second length, and wherein the second length is an integer multiple of the first length.

10. A system according to claim 1 , wherein the first and/or second sets of channel separation codes are functions of at least one radioterminal identifier.

11. A system according to claim 1 , wherein the SBC and/or the ATC are operative to generate the respective first and second sets of channel separation codes responsive to at least one radioterminal identifier.

12. A system according to claim 1 wherein the SBC is configured to communicate with radioterminals using a FDD air interface protocol and wherein the ATC is configured to communicate with the radioterminals using a TDD air interface protocol.

13. A system according to claim 12 wherein the TDD and/or the FDD air interface protocol is an OFDM and/or OFDMA air interface protocol.

14. A system according to claim 1 , wherein the SBC communicates with radioterminals using a first sub-band of the satellite frequency band, and wherein the ATC communicates with the radioterminals using a second sub-band of the satellite frequency band.

15. A system according to claim 14 , wherein the first and second sub-bands do not overlap.

16. A system according to claim 14 , wherein the first and second sub-bands at least partially overlap.

17. A method of operating a wireless communications system comprising an ancillary terrestrial component (ATC) that is associated with a space based component (SBC), the method comprising:

communicating between the ATC and first radioterminals using an OFDM/OFDMA air interface protocol and first frequencies of a satellite frequency band while the SBC communicates with second radioterminals using second frequencies of the satellite frequency band; and

communicating between the ATC and the first radioterminals using a first set of channel separation codes that differs from a second set of channel separation codes that is used by the SBC to communicate with the second radioterminals.

18. A method according to claim 17 :

wherein communicating between the ATC and the first radioterminals using a first set of channel separation codes that differs from a second set of channel separation codes that is used by the SBC to communicate with the second radioterminals comprises communicating between the first radioterminals and the ATC using an air interface protocol that is different from an air interface protocol that is used by the second radioterminals to communicate with the SBC.

19. A method according to claim 17 , wherein the first and second sets of channel separation codes comprise respective sets of scrambling codes, respective sets of frequency assignment codes, respective sets of channel assignment codes, respective sets of sub-channel assignment codes and/or respective sets of spreading codes.

20. A method according to claim 17 , wherein the first and second sets of channel separation codes comprise respective different sets of spreading codes, respective different sets of frequency assignment codes, respective different sets of channel assignment codes, and/or respective different sets of sub-channel assignment codes.

21. A method according to claim 17 , wherein the first and second sets of channel separation codes comprise respective different sets of Walsh codes, respective different sets of OFDM/OFDMA frequency assignment codes, respective different sets of channel assignment codes, and/or respective different sets of sub-channel assignment codes.

22. A method according to claim 17 , wherein the first and second sets of channel separation codes comprise respective different first and second sets of code phases of the same code.

23. A method according to claim 22 , wherein the first and/or second sets of code phases are functions of first and/or second radioterminal identifiers.

24. A method according to claim 17 , wherein the first and second sets of channel separation codes comprise respective first and second sets of long codes and/or short codes.

25. A method according to claim 17 , further comprising using the same chip rate for communications between the SBC and the second radioterminals and for communications between the ATC and the first radioterminals, wherein communications between the second radioterminals and the SBC employ a symbol period that is an integer multiple of a symbol period used for communications between the first radioterminals and the ATC, wherein the first set of channel separation codes comprises a first set of spreading codes having a first length, wherein the second set of channel separation codes comprises a second set of spreading codes having a second length, and wherein the second length is an integer multiple of the first length.

26. A method according to claim 25 , wherein the first and second sub-bands at least partially overlap.

27. A method according to claim 17 , further comprising generating and/or selecting codes from the first and/or second sets of channel separation codes responsive to at least one radioterminal identifier.

28. A method according to claim 17 :

wherein communicating between the ATC and first radioterminals using first frequencies of a satellite frequency band while the SBC communicates with second radioterminals using second frequencies of the satellite frequency band comprises the ATC using a first sub-band of the of the satellite frequency band while the SBC is using a second sub-band of the satellite frequency band.

29. A method according to claim 28 , wherein the first and second sub-bands do not overlap.

30. A radioterminal comprising:

a radio transceiver configured to communicate with a space-based component (SBC) of a mobile satellite communications system using first frequencies of a satellite frequency band and to communicate with an ancillary terrestrial component (ATC) of the mobile satellite communications system using second frequencies of the satellite frequency band, wherein the radio transceiver is further configured to use an OFDM/OFDMA air interface protocol to communicate with the ATC and respective different first and second channel separation codes to communicate with the SBC and the ATC.

31. A radioterminal according to claim 30 , wherein the radio transceiver is further configured to communicate with the SBC using a first air interface protocol and to communicate with the ATC using a second air interface protocol that is different than the first air interface protocol.

32. A radioterminal according to claim 30 , wherein the first and second channel separation codes comprise respective scrambling codes, respective frequency assignment codes, respective channel assignment codes, respective sub-channel assignment codes and/or respective spreading codes.

33. A radioterminal according to claim 30 , wherein the first and second channel separation codes comprise respective different spreading codes, respective different frequency assignment codes, respective different channel assignment codes and/or respective different sub-channel assignment codes.

34. A radioterminal according to claim 30 , wherein the first and second channel separation codes comprise respective different Walsh codes, respective different OFDM/OFDMA frequency assignment codes, respective different OFDM/OFDMA channel assignment codes, and/or respective different OFDM/OFDMA sub-channel assignment codes.

35. A radioterminal according to claim 30 , wherein the first and second channel separation codes comprise respective first and second code phases of the same code.

36. A radioterminal according to claim 35 , comprising a code generator configured to generate a code responsive to first and/or second identifiers for the radioterminal.

37. A radioterminal according to claim 30 , wherein the radio transceiver uses the same chip rate when communicating with the SBC and the ATC, wherein the radio transceiver employs a symbol period when communicating with the SBC that is an integer multiple of a symbol period used when the radioterminal is communicating with the ATC, wherein the first channel separation code comprises a first spreading code having a first length, wherein the second channel separation code comprises a second spreading code having a second length, and wherein the first length is an integer multiple of the second length.

38. A radioterminal according to claim 30 , wherein the first and/or second channel separation codes are functions of at least one radioterminal identifier.

39. A radioterminal according to claim 30 , wherein the radioterminal is operative to generate and/or select a code responsive to at least one radioterminal identifier.

40. A radioterminal according to claim 30 , wherein the radioterminal is configured to communicate with the ATC using a TDD air interface protocol and wherein the radioterminal is further configured to communicate with the SBC using a FDD air interface protocol.

41. A radioterminal according to claim 40 , wherein the TDD and/or the FDD air interface protocol is an OFDM and/or an OFDMA air interface protocol.

42. A radioterminal according to claim 30 , wherein the radioterminal communicates with the SBC using a first sub-band of a satellite service link frequency band, and wherein the radioterminal communicates with the ATC using a second sub-band of the satellite service link frequency band.

43. A space-based component (SBC) of a wireless communications system, the SBC configured to communicate with first radioterminals using first frequencies of a satellite frequency band, second frequencies of which are used by an ancillary terrestrial component (ATC) to communicate with second radioterminals using an OFDM/OFDMA air interface protocol, the SBC using a first set of channel separation codes to communicate with the first radioterminals that is different than a second set of channel separation codes used by the ATC to communicate with the second radioterminals.

44. An SBC according to claim 43 , wherein the SBC is configured to communicate with radioterminals using a first air interface protocol that is different than a second air interface protocol used by the ATC.

45. An SBC according to claim 43 , wherein the first and second sets of channel separation codes comprise respective sets of scrambling codes, respective sets of frequency assignment codes, respective sets of channel assignment codes, respective sets of sub-channel assignment codes and/or respective sets of spreading codes.

46. An SBC according to claim 43 , wherein the first and second sets of channel separation codes comprise respective different sets of spreading codes, respective different sets of frequency assignment codes, respective different sets of channel assignment codes, and/or respective different sets of sub-channel assignment codes.

47. An SBC according to claim 43 , wherein the first and second sets of channel separation codes comprise respective different sets of Walsh codes, respective different sets of OFDM/OFDMA frequency assignment codes, respective different sets of OFDM/OFDMA channel assignment codes and/or respective different sets of OFDM/OFDMA sub-channel assignment codes.

48. An SBC according to claim 43 , wherein the first and second sets of channel separation codes comprise respective different first and second sets of code phases of the same code.

49. An SBC according to claim 48 , wherein the first and/or second sets of code phases are functions of first and/or second radioterminal identifiers.

50. An SBC according to claim 43 , wherein the first and second sets of channel separation codes comprise respective first and second sets of long codes, frequency, channel and/or sub-channel assignment codes and/or short codes.

51. An SBC according to claim 43 , wherein the SBC and the ATC employ the same chip rate, wherein the SBC employs a symbol period that is an integer multiple of a symbol period used by the ATC, wherein the first set of channel separation codes comprises a first set of spreading codes having a first length, wherein the second set of channel separation codes comprises a second set of spreading codes having a second length, and wherein the first length is an integer multiple of the second length.

52. An SBC according to claim 43 , wherein the first set of channel separation codes are functions of at least one radioterminal identifier.

53. An SBC according to claim 43 , wherein the SBC is operative to generate the first set of channel separation codes responsive to at least one radioterminal identifier.

54. A method of operating a radioterminal, the method comprising:

communicating with a space-based component (SBC) of a mobile satellite communications system using first frequencies of a satellite frequency band;

communicating with an ancillary terrestrial component (ATC) of the mobile satellite communications system using second frequencies of the satellite frequency band and using an OFDM/OFDMA air interface protocol; and

using respective different first and second channel separation codes to communicate with the SBC and the ATC.

55. A method according to claim 54 further comprising:

communicating with the SBC using a first air interface protocol; and

communicating with the ATC using a second air interface protocol that is different than the first air interface protocol.

56. A method according to claim 54 , wherein the first and second channel separation codes comprise respective scrambling codes, respective frequency assignment codes, respective channel assignment codes, respective sub-channel assignment codes and/or respective spreading codes.

57. A method according to claim 54 , wherein the first and second channel separation codes comprise respective different spreading codes, respective different frequency assignment codes, respective different channel assignment codes and/or respective different sub-channel assignment codes.

58. A method according to claim 54 , wherein the first and second channel separation codes comprise respective different Walsh codes, respective different OFDM/OFDMA frequency assignment codes, respective different OFDM/OFDMA channel assignment codes, and/or respective different OFDM/OFDMA sub-channel assignment codes.

59. A method according to claim 54 , wherein the first and second channel separation codes comprise respective first and second code phases of the same code.

60. A method according to claim 59 , further comprising:

generating a code responsive to first and/or second identifiers for the radioterminal.

61. A method according to claim 54 , further comprising:

using the same chip rate when communicating with the SBC and the ATC; and

employing a symbol period when communicating with the SBC that is an integer multiple of a symbol period used when communicating with the ATC;

wherein the first channel separation code comprises a first spreading code having a first length, wherein the second channel separation code comprises a second spreading code having a second length, and wherein the first length is an integer multiple of the second length.

62. A method according to claim 54 , wherein the first and/or second channel separation codes are functions of at least one radioterminal identifier.

63. A method according to claim 54 , further comprising:

generating and/or selecting a code responsive to at least one radioterminal identifier.

64. A method according to claim 54 , further comprising:

communicating with the ATC using a TDD air interface protocol; and

communicating with the SBC using a FDD air interface protocol.

65. A method according to claim 64 , wherein the TDD and/or the FDD air interface protocol is an OFDM and/or an OFDMA air interface protocol.

66. A method according to claim 54 , further comprising:

communicating with the SBC using a first sub-band of a satellite service link frequency band; and

communicating with the ATC using a second sub-band of the satellite service link frequency band.

Assignments (18)
ASSIGNMENT OF AND AMENDMENT TO INTELLECTUAL PROPERTY SECURITY AGREEMENTS Recorded Dec 13, 2024
From: U.S. BANK NATIONAL ASSOCIATION; LIGADO NETWORKS LLC; ATC TECHNOLOGIES, LLC
To: U.S. BANK TRUST COMPANY, NATIONAL ASSOCIATION, AS SUCCESSOR COLLATERAL AGENT
Reel/Frame 069631/0485 →
U.S. ASSIGNMENT OF AND AMENDMENT TO INTELLECTUAL PROPERTY SECURITY AGREEMENTS Recorded Mar 3, 2023
From: U.S. BANK NATIONAL ASSOCIATION, AS EXISTING COLLATERAL AGENT
To: U.S. BANK TRUST COMPANY, NATIONAL ASSOCIATION, AS SUCCESSOR COLLATERAL AGENT
Reel/Frame 062952/0826 →
SECURITY INTEREST Recorded Dec 28, 2022
From: ATC TECHNOLOGIES, LLC
To: U.S. BANK NATIONAL ASSOCIATION
Reel/Frame 062230/0806 →
SECOND LIEN PATENT SECURITY AGREEMENT Recorded Oct 30, 2020
From: ATC TECHNOLOGIES, LLC
To: U.S. BANK NATIONAL ASSOCIATION, AS COLLATERAL TRUSTEE
Reel/Frame 054262/0207 →
FIRST LIEN PATENT SECURITY AGREEMENT Recorded Oct 30, 2020
From: ATC TECHNOLOGIES, LLC
To: U.S. BANK NATIONAL ASSOCIATION, AS COLLATERAL TRUSTEE
Reel/Frame 054262/0295 →
U.S. ASSIGNMENT OF AND AMENDMENT TO INTELLECTUAL PROPERTY SECURITY AGREEMENT Recorded Oct 26, 2020
From: JEFFERIES FINANCE LLC; LIGADO NETWORKS LLC; ATC TECHNOLOGIES, LLC
To: U.S. BANK NATIONAL ASSOCIATION
Reel/Frame 054298/0001 →
RELEASE OF SECURITY INTEREST Recorded Oct 26, 2020
From: JEFFERIES FINANCE LLC
To: ATC TECHNOLOGIES, LLC
Reel/Frame 054297/0444 →
RELEASE OF SECURITY INTEREST Recorded Oct 26, 2020
From: CORTLAND CAPITAL MARKET SERVICES LLC
To: LIGADO NETWORKS LLC; ATC TECHNOLOGIES, LLC
Reel/Frame 054297/0724 →
ASSIGNMENT OF SECURITY INTEREST Recorded Oct 22, 2020
From: CREDIT SUISSE AG, CAYMAN ISLANDS BRANCH
To: CORTLAND CAPITAL MARKET SERVICES LLC
Reel/Frame 054214/0165 →
SECURITY INTEREST Recorded Sep 11, 2020
From: ATC TECHNOLOGIES, LLC
To: JEFFERIES FINANCE LLC
Reel/Frame 053755/0916 →
SECURITY AGREEMENT (FIRST LIEN) Recorded Jan 22, 2016
From: ATC TECHNOLOGIES, LLC
To: CREDIT SUISSE AG, CAYMAN ISLANDS BRANCH
Reel/Frame 037573/0939 →
SECURITY AGREEMENT (SECOND LIEN) Recorded Jan 22, 2016
From: ATC TECHNOLOGIES, LLC
To: JEFFERIES FINANCE LLC
Reel/Frame 037573/0963 →
SECURITY AGREEMENT Recorded Jun 14, 2011
From: LIGHTSQUARED LP; ATC TECHNOLOGIES, LLC; LIGHTSQUARED INC. OF VIRGINIA; LIGHTSQUARED SUBSIDIARY LLC
To: WILMINGTON TRUST FSB, AS COLLATERAL TRUSTEE
Reel/Frame 026438/0603 →
SECURITY AGREEMENT Recorded Oct 12, 2010
From: ATC TECHNOLOGIES, LLC
To: WILMINGTON TRUST FSB, AS COLLATERAL TRUSTEE
Reel/Frame 025126/0120 →
RELEASE OF SECURITY INTEREST Recorded Oct 7, 2010
From: THE BANK OF NEW YORK MELLON AS COLLATERAL AGENT
To: ATC TECHNOLOGIES, LLC; LIGHTSQUARED LP; LIGHTSQUARED FINANCE CO.
Reel/Frame 025105/0605 →
SECURITY AGREEMENT Recorded Apr 1, 2010
From: MOBILE SATELLITE VENTURES LP; MSV FINANCE CO.
To: BANK OF NEW YORK, THE
Reel/Frame 024176/0137 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 13, 2009
From: KARABINIS, PETER D.
To: MOBILE SATELLITE VENTURES, LP
Reel/Frame 023098/0082 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 13, 2009
From: MOBILE SATELLITE VENTURES, LP
To: ATC TECHNOLOGIES, LLC
Reel/Frame 023098/0127 →