EP0962064B1

Out of channel cyclic redundancy code method for a discrete multitone spread spectrum communications system

Abstract

This record has no abstract on file.

EP0962064B1, drawing sheet 1
Sheet 1 of 8

Term

Term ended

Expired 24 February 2018, 8.6 years ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

22 claims: 18 independent, 4 dependent

  1. 1
    A communications method, comprising the steps of:receiving at a station (X, Z) a first spread signal comprising an incoming data traffic signal spread over a plurality of discrete traffic frequencies in a first channel;characterised further by the steps of: receiving at the station (X, Z) a second spread signal comprising an error detection code spread over a plurality of link control frequencies in a second channel, the link control frequencies being different from the traffic frequencies, the error detection code being derived from the data traffic signal;adaptively despreading (750, 850) the signals received at the station (X, Y) by using despreading weights, and recovering the data traffic signal and the error detection code;computing an error detection code for the recovered data traffic signal;comparing (780, 880) the error detection code computed for the recovered data traffic signal with the error detection code recovered from the second spread signal;and generating (790, 890) an error response signal at the station in response to the error detection code computed for the recovered data traffic signal not being equal to the error detection code recovered from the second spread signal.
  2. 4
    A communications method as claimed in claims 1 or 2, wherein the station (X, Z) is part of a wireless discrete multitone spread spectrum communication system.
  3. 5
    A communications method as claimed in claims 1 or 2, wherein the error detection code comprised in the second spread signal is a checksum resulting from the operation of a polynomial generator on the data block portion of the first spread signal.
  4. 6
    A communications method as claimed in claims 1 or 2, wherein the error detection code comprised in the second spread signal is a cyclic redundancy code.
  5. 7
    A communications method as claimed in claims 1 or 2, further comprising:in response to the error response signal, initiating a negative acknowledgement signal to be sent from the station to a sender requesting the sender to repeat the data transmission.
  6. 8
    A communications method as claimed in claims 1 or 2, further comprising:in response to the error response signal, initiating an update in the spreading and despreading weights at the receiving station in a effort to improve the signal and interference to noise ratio of a traffic channel.
  7. 9
    A communications method as claimed in claims 1 or 2, further comprising:in response to the error response signal, initiating an alarm to be used for real-time control.
  8. 10
    A communications method as claimed in claims 1 or 2, further comprising:in response to the error response signal, logging the error response signal for compilation of a longer term report of a traffic channel quality.
  9. 11
    A communications system, comprising:means (310, 610) for receiving at a station a first spread signal comprising an incoming data traffic signal spread over a plurality of discrete traffic frequencies in a first channel and a second spread signal comprising an error detection code spread over a plurality of link control frequencies in a second channel, the link control frequencies being different from the traffic frequencies, the error detection code being derived from the data traffic signal;means (312, 612) for adaptively despreading the signals received at the station (X, Y) by using despreading weights, and for recovering the data traffic signal and the error detection code;means (318, 618) for computing an error detection code for the recovered data traffic signal;means (320, 408, 620) for comparing the error detection code computed for the recovered data traffic signal with the error detection code recovered from the second spread signal;and means (322, 622) for generating an error response signal at the station in response to the error detection code computed for the recovered data traffic signal not being equal to the error detection code recovered from the second signal.
  10. 14
    A communication system as claimed in claims 11 or 12, wherein said communication system is a wireless discrete multitone spread spectrum communication system.
  11. 15
    A communication system as claimed in claims 11 or 12, wherein the error detection code comprised in the second spread signal is a checksum resulting from the operation of a polynomial generator on the data block portion of the first signal.
  12. 16
    A communication system as claimed in claims 11 or 12, wherein the error detection code comprised in the second spread signal is a cyclic redundancy code.
  13. 17
    A communication system as claimed in claims 11 or 12, further comprising:means for initiating a negative acknowledgement signal to be sent from the station to a sender requesting the sender to repeat the data transmission, in response to the error response signal.
  14. 18
    A communication system as claimed in claims 11 or 12, further comprising:means for initiating an update in the spreading and despreading weights at the receiving station in a effort to improve the signal and interference to noise ratio of a traffic channel, in response to the error response signal.
  15. 19
    A communication system as claimed in claims 11 or 12, further comprising:means for initiating an alarm to be used for real-time control, in response to the error response signal.
  16. 20
    A communication system as claimed in claims 11 or 12, further comprising:means for logging the error response signal for compilation of a longer term report of a traffic channel quality, in response to the error response signal.
  17. 21
    A communication system as claimed any of claims 11 to 20, wherein the station is a base station (Z).
  18. 22
    A communications method as claimed in any of claims 1 to 11, wherein the station is a base station (Z).
Independent claims18