Claims
- 1. A blind-equalization method for equalization of a channel of a digital television receiver, the digital television receiver having a rejection filter corresponding to a precoder for which precoding is implemented at a television transmitter for combating co-channel interference, the television transmitter for transmitting a digital television signal, the digital television receiver further having an equalizer, the equalizer having an input and an output, said method comprising the steps of:
- initiating an equalization with a binary-level slicing mode;
- advancing the equalization from the binary-level slicing mode to a four-level slicing mode upon an occurrence of a first condition, and returning the equalization from the four-level slicing mode to the binary-level slicing mode upon the occurrence of a second condition;
- advancing the equalization from the four-level slicing mode to an eight-level slicing mode upon an occurrence of a third condition and returning the equalization from the eight-level slicing mode to the binary-level slicing mode upon the occurrence of the second condition; and
- changing the equalization to a training sequence mode upon an occurrence of a no flutter condition, and upon an occurrence of a flutter condition, returning the equalization from the training sequence mode to the binary-level mode, wherein a determination of an occurrence of the flutter condition is based upon an estimate of a negative derivative of the Signal-to-Noise Ratio (SNR) at the output of the equalizer, dS.sub.o, being greater than a prescribed threshold T.sub.4.
- 2. The blind-equalization method according to claim 1,
- wherein the first condition is determined by a difference between the SNR at the equalizer output, S.sub.o, and the SNR at the equalizer input, S.sub.i, being greater than a first threshold, T.sub.1,
- wherein the second condition is determined by a difference between S.sub.o and S.sub.i being less than T.sub.1,
- wherein the third condition is determined by a difference between S.sub.o and S.sub.i being greater than a second threshold, T.sub.2, further wherein T.sub.2 is greater than T.sub.1, and
- wherein the estimate of the negative derivative of the SNR at the output of the equalizer, dS.sub.o, is obtained based upon a least-squares approximation of the derivative, further wherein the occurrence of a no flutter condition corresponds to dS.sub.o being less than the prescribed threshold T.sub.4, the occurrence of a no flutter condition further including the occurrence of a fifth condition, wherein the fifth condition is determined by a difference between S.sub.o and S.sub.i being greater than a third threshold, T.sub.3, further wherein T.sub.3 is greater than T.sub.2.
- 3. The blind-equalization method according to claim 2,
- further wherein the estimate of the negative derivative of the SNR at the output of the equalizer, dS.sub.o, is obtained based upon a least-squares approximation of the derivative using first-order polynomials, wherein the estimate is given by the expression dS.sub.o =S.sub.o (n-1)-S.sub.o (n+1), where S.sub.o (n-1) and S.sub.o (n+1) are samples of the SNR at the equalizer output separated by one sequence sample, S.sub.o (n).
- 4. The blind-equalization method according to claim 2,
- further wherein the estimate of the negative derivative of the SNR at the output of the equalizer, dS.sub.o, is obtained based upon a least-squares approximation of the derivative using second-order polynomials, wherein the estimate is given by the expression dS.sub.o =2(S.sub.o (n-2)-S.sub.o (n+2)) +S.sub.o (n-1) -S.sub.o (n+1), where S.sub.o (n-1) and S.sub.o (n+1) are samples of the SNR at the equalizer output separated by one sequence sample S.sub.o (n), and where S.sub.o (n-2) and S.sub.o (n+2) are samples of the SNR at the equalizer output separated by three sequence samples S.sub.o (n-1), S.sub.o (n), and S.sub.o (n+1).
- 5. A blind-equalization method for equalization of a channel of a digital television receiver, the digital television receiver having a rejection filter corresponding to a precoder for which precoding is implemented at a television transmitter for combating co-channel interference, the television transmitter for transmitting a digital television signal, the digital television receiver further having an equalizer, the equalizer having an input and an output, said method comprising the steps of:
- initiating an equalization with a blind slicing mode; and
- changing the equalization to a training sequence mode upon an occurrence of a no flutter condition, and upon an occurrence of a flutter condition, returning the equalization from the training sequence mode to the blind slicing mode, wherein a determination of the occurrence of the flutter condition is based upon an estimate of a negative derivative of the Signal-to-Noise Ratio (SNR) at the output of the equalizer, dS.sub.o, being greater than a first prescribed threshold.
- 6. The blind-equalization method according to claim 5,
- wherein the estimate of the negative derivative of the SNR at the output of the equalizer, dS.sub.o, is obtained based upon a least-squares approximation of the derivative, further wherein the occurrence of a no flutter condition corresponds to dS.sub.o being less than the first prescribed threshold and wherein a difference between S.sub.o the equalizer output, and S.sub.i, the equalizer input, is greater than a second prescribed threshold.
- 7. The blind-equalization method according to claim 6,
- further wherein the estimate of the negative derivative of the SNR at the output of the equalizer, dS.sub.o, is obtained based upon a least-squares approximation of the derivative using first-order polynomials, wherein the estimate is given by the expression dS.sub.o =S.sub.o (n-1)-S.sub.o (n+1), where S.sub.o (n-1) and S.sub.o (n+1) are samples of the SNR at the equalizer output separated by one sequence sample, S.sub.o (n).
- 8. The blind-equalization method according to claim 6,
- further wherein the estimate of the negative derivative of the SNR at the output of the equalizer, dS.sub.o, is obtained based upon a least-squares approximation of the derivative using second-order polynomials, wherein the estimate is given by the expression dS.sub.o =2(S.sub.o (n-2)-S.sub.o (n+2)) +S.sub.o (n-1)-S.sub.o (n+1), where S.sub.o (n-1) and S.sub.o (n+1) are samples of the SNR at the equalizer output separated by one sequence sample S.sub.o (n), and where S.sub.o (n-2) and S.sub.o (n+2) are samples of the SNR at the equalizer output separated by three sequence samples S.sub.o (n-1), S.sub.o (n), and S.sub.o (n+1).
- 9. The blind-equalization method according to claim 5,
- wherein the blind slicing mode comprises a binary-level slicing mode.
- 10. An equalizer for implementing blind-equalization of a channel of a digital television digital television receiver, the digital television receiver having a rejection filter corresponding to a precoder for which precoding is implemented at a television transmitter for combating co-channel interference, the television transmitter for transmitting a digital television signal, said equalizer comprising:
- an input and an output;
- means for initiating an equalization with a binary-level slicing mode;
- means for advancing the equalization from the binary-level slicing mode to a four-level slicing mode upon an occurrence of a first condition, and returning the equalization from the four-level slicing mode to the binary-level slicing mode upon the occurrence of a second condition;
- means for advancing the equalization from the four-level slicing mode to an eight-level slicing mode upon an occurrence of a third condition and returning the equalization from the eight-level slicing mode to the binary-level slicing mode upon the occurrence of the second condition; and
- means for changing the equalization to a training sequence mode upon an occurrence of a no flutter condition, and upon an occurrence of a flutter condition, returning the equalization from the training sequence mode to the binary-level mode, wherein a determination of an occurrence of the flutter condition is based upon an estimate of a negative derivative of the Signal-to-Noise Ratio (SNR) at the output of the equalizer, dS.sub.o, being greater than a prescribed threshold T.sub.4.
- 11. The equalizer according to claim 10,
- wherein the first condition is determined by a difference between the SNR at the equalizer output, S.sub.o, and the SNR at the equalizer input, S.sub.i, being greater than a first threshold, T.sub.1,
- wherein the second condition is determined by a difference between S.sub.o and S.sub.i being less than T.sub.1,
- wherein the third condition is determined by a difference between S.sub.o and S.sub.i being greater than a second threshold, T.sub.2, further wherein T.sub.2 is greater than T.sub.1, and
- wherein the estimate of the negative derivative of the SNR at the output of the equalizer, dS.sub.o, is obtained based upon a least-squares approximation of the derivative, further wherein the occurrence of a no flutter condition corresponds to dS.sub.o being less than the prescribed threshold T.sub.4, the occurrence of a no flutter condition further including the occurrence of a fifth condition, wherein the fifth condition is determined by a difference between S.sub.0 and S.sub.i being greater than a third threshold, T.sub.3, further wherein T.sub.3 is greater than T.sub.2.
- 12. The equalizer according to claim 11,
- further wherein the estimate of the negative derivative of the SNR at the output of the equalizer, dS.sub.o, is obtained based upon a least-squares approximation of the derivative using first-order polynomials, wherein the estimate is given by the expression dS.sub.o =S.sub.o (n-1)-S.sub.o (n+1), where S.sub.o (n-1) and S.sub.o (n+1) are samples of the SNR at the equalizer output separated by one sequence sample, S.sub.o (n).
- 13. The equalizer according to claim 11,
- further wherein the estimate of the negative derivative of the SNR at the output of the equalizer, dS.sub.o, is obtained based upon a least-squares approximation of the derivative using second-order polynomials, wherein the estimate is given by the expression dS.sub.o =2(S.sub.o (n-2)-S.sub.o (n+2)) +S.sub.o (n-1)-S.sub.o (n+1), where S.sub.o (n-1) and S.sub.o (n+1) are samples of the SNR at the equalizer output separated by one sequence sample S.sub.o (n), and where S.sub.o (n-2) and S.sub.o (n+2) are samples of the SNR at the equalizer output separated by three sequence samples S.sub.o (n-1), S.sub.o (n), and S.sub.o (n+1).
- 14. A An equalizer for implementing blind-equalization of a channel of a digital television receiver, the digital television receiver having a rejection filter corresponding to a precoder for which precoding is implemented at a television transmitter for combating co-channel interference, the television transmitter for transmitting a digital television signal, said equalizer comprising:
- an input and an output;
- means for initiating an equalization with a blind slicing mode; and
- means for changing the equalization to a training sequence mode upon an occurrence of a no flutter condition, and upon an occurrence of a flutter condition, returning the equalization from the training sequence mode to the blind slicing mode, wherein a determination of the occurrence of the flutter condition is based upon an estimate of a negative derivative of the Signal-to-Noise Ratio (SNR) at the output of the equalizer, dS.sub.o, being greater than a first prescribed threshold.
- 15. The equalizer according to claim 14,
- wherein the estimate of the negative derivative of the SNR at the output of the equalizer, dS.sub.o, is obtained based upon a least-squares approximation of the derivative, further wherein the occurrence of a no flutter condition corresponds to dS.sub.o being less than the first prescribed threshold and wherein a difference between S.sub.o, the equalizer output, and S.sub.i, the equalizer input, is greater than a second prescribed threshold.
- 16. The equalizer according to claim 15,
- further wherein the estimate of the negative derivative of the SNR at the output of the equalizer, dS.sub.o, is obtained based upon a least-squares approximation of the derivative using first-order polynomials, wherein the estimate is given by the expression dS.sub.o =S.sub.o (n-1)-S.sub.o (n+1), where S.sub.o (n-1) and S.sub.o (n+1) are samples of the SNR at the equalizer output separated by one sequence sample, S.sub.o (n).
- 17. The equalizer according to claim 15,
- further wherein the estimate of the negative derivative of the SNR at the output of the equalizer, dS.sub.o, is obtained based upon a least-squares approximation of the derivative using second-order polynomials, wherein the estimate is given by the expression dS.sub.o =2( S.sub.o (n-2)-S.sub.o (n+2)) +S.sub.o (n-1)-S.sub.o (n+1), where S.sub.o (n-1) and S.sub.o (n+1) are samples of the SNR at the equalizer output separated by one sequence sample S.sub.o (n), and where S.sub.o (n-2) and S.sub.o (n+2) are samples of the SNR at the equalizer output separated by three sequence samples S.sub.o (n-1), S.sub.o (n), and S.sub.o (n+1).
- 18. The equalizer according to claim 14,
- wherein the blind slicing mode comprises a binary-level slicing mode.
- 19. A method for receiving a digital television signal transmitted from a digital television transmitter over a channel, said method comprising the steps of providing a rejection filter corresponding to a precoder for which precoding is implemented at the television transmitter for combating co-channel interference and equalizing the channel with an equalizer, the equalizer having an input and an output, wherein said equalizing step comprises:
- initiating an equalization with a binary-level slicing mode;
- advancing the equalization from the binary-level slicing mode to a four-level slicing mode upon an occurrence of a first condition, and returning the equalization from the four-level slicing mode to the binary-level slicing mode upon the occurrence of a second condition;
- advancing the equalization from the four-level slicing mode to an eight-level slicing mode upon an occurrence of a third condition and returning the equalization from the eight-level slicing mode to the binary-level slicing mode upon the occurrence of the second condition; and
- changing the equalization to a training sequence mode upon an occurrence of a no flutter condition, and upon an occurrence of a flutter condition, returning the equalization from the training sequence mode to the binary-level mode, wherein a determination of an occurrence of the flutter condition is based upon an estimate of a negative derivative of the Signal-to-Noise Ratio (SNR) at the output of the equalizer, dS.sub.o, being greater than a prescribed threshold T.sub.4.
- 20. The method according to claim 19,
- wherein the first condition is determined by a difference between the SNR at the equalizer output, S.sub.o, and the SNR at the equalizer input, S.sub.i, a being greater than a first threshold, T.sub.1,
- wherein the second condition is determined by a difference between S.sub.o and S.sub.i being less than T.sub.1,
- wherein the third condition is determined by a difference between S.sub.o and S.sub.i being greater than a second threshold, T.sub.2, further wherein T.sub.2 is greater than T.sub.1, and
- wherein the estimate of the negative derivative of the SNR at the output of the equalizer, dS.sub.o, is obtained based upon a least-squares approximation of the derivative, further wherein the occurrence of a no flutter condition corresponds to dS.sub.o being less than the prescribed threshold T.sub.4, the occurrence of a no flutter condition further including the occurrence of a fifth condition, wherein the fifth condition is determined by a difference between S.sub.o and S.sub.i being greater than a third threshold, T.sub.3, further wherein T.sub.3 is greater than T.sub.2.
- 21. The method according to claim 20, further wherein the estimate of the negative derivative of the SNR at the output of the equalizer, dS.sub.o, is obtained based upon a least-squares approximation of the derivative using first-order polynomials, wherein the estimate is given by the expression dS.sub.o =S.sub.o (n-1)-S.sub.o (n+1), where S.sub.o (n-1) and S.sub.o (n+1) are samples of the SNR at the equalizer output separated by one sequence sample, S.sub.o (n).
- 22. The method according to claim 20,
- further wherein the estimate of the negative derivative of the SNR at the output of the equalizer, dS.sub.o, is obtained based upon a least-squares approximation of the derivative using second-order polynomials, wherein the estimate is given by the expression dS.sub.o =2(S.sub.o (n-2)-S.sub.o (n+2)) +S.sub.o (n-1)-S.sub.o (n+1), where S.sub.o (n-1) and S.sub.o (n+1) are samples of the SNR at the equalizer output separated by one sequence sample S.sub.o (n), and where S.sub.o (n-2) and S.sub.o (n+2) are samples of the SNR at the equalizer output separated by three sequence samples S.sub.o (n-1), S.sub.o (n), and S.sub.o (n+1).
- 23. A method for receiving a digital television signal transmitted from a digital television transmitter over a channel, said method comprising the steps of providing a rejection filter corresponding to a precoder for which precoding is implemented at the television transmitter for combating co-channel interference and equalizing the channel with an equalizer, the equalizer having an input and an output, wherein said equalizing step comprises:
- initiating an equalization with a blind slicing mode; and
- changing the equalization to a training sequence mode upon an occurrence of a no flutter condition, and upon an occurrence of a flutter condition, returning the equalization from the training sequence mode to the blind slicing mode, wherein a determination of the occurrence of the flutter condition is based upon an estimate of a negative derivative of the Signal-to-Noise Ratio (SNR) at the output of the equalizer, dS.sub.o, being greater than a first prescribed threshold.
- 24. The method according to claim 23,
- wherein the estimate of the negative derivative of the SNR at the output of the equalizer, dS.sub.o, is obtained based upon a least-squares approximation of the derivative, further wherein the occurrence of a no flutter condition corresponds to dS.sub.o being less than the first prescribed threshold and wherein a difference between S.sub.o, the equalizer output, and S.sub.i, the equalizer input, is greater than a second prescribed threshold.
- 25. The method according to claim 24,
- further wherein the estimate of the negative derivative of the SNR at the output of the equalizer, dS.sub.o, is obtained based upon a least-squares approximation of the derivative using first-order polynomials, wherein the estimate is given by the expression dS.sub.o =S.sub.o (n-1)-S.sub.o (n+1), where S.sub.o (n-1) and S.sub.o (n+1) are samples of the SNR at the equalizer output separated by one sequence sample, S.sub.o (n).
- 26. The method according to claim 24,
- further wherein the estimate of the negative derivative of the SNR at the output of the equalizer, dS.sub.o, is obtained based upon a least-squares approximation of the derivative using second-order polynomials, wherein the estimate is given by the expression dS.sub.o =2(S.sub.o (n-2)-S.sub.o (n+2)) +S.sub.o (n-1)-S.sub.o (n+1), where S.sub.o (n-1) and S.sub.o (n+1) are samples of the SNR at the equalizer output separated by one sequence sample S.sub.o (n), and where S.sub.o (n-2) and S.sub.o (n+2) are samples of the SNR at the equalizer output separated by three sequence samples S.sub.o (n-1), S.sub.o (n), and S.sub.o (n+1).
- 27. The method according to claim 23,
- wherein the blind slicing mode comprises a binary-level slicing mode.
- 28. A digital television receiver for receiving a digital television signal transmitted from a television transmitter, said receiver having a rejection filter corresponding to a precoder for which precoding is implemented at the television transmitter for combating co-channel interference and an equalizer for implementing blind-equalization of a channel of said receiver, wherein said equalizer comprises:
- an input and an output;
- means for initiating an equalization with a binary-level slicing mode;
- means for advancing the equalization from the binary-level slicing mode to a four-level slicing mode upon an occurrence of a first condition, and returning the equalization from the four-level slicing mode to the binary-level slicing mode upon the occurrence of a second condition;
- means for advancing the equalization from the four-level slicing mode to an eight-level slicing mode upon an occurrence of a third condition and returning the equalization from the eight-level slicing mode to the binary-level slicing mode upon the occurrence of the second condition; and
- means for changing the equalization to a training sequence mode upon an occurrence of a no flutter condition, and upon an occurrence of a flutter condition, returning the equalization from the training sequence mode to the binary-level mode, wherein a determination of an occurrence of the flutter condition is based upon an estimate of a negative derivative of the Signal-to-Noise Ratio (SNR) at the output of the equalizer, dS.sub.o, being greater than a prescribed threshold T.sub.4.
- 29. The receiver according to claim 28,
- wherein the first condition is determined by a difference between the SNR at the equalizer output, S.sub.o, and the SNR at the equalizer input, S.sub.i, being greater than a first threshold, T.sub.1,
- wherein the second condition is determined by a difference between S.sub.o and S.sub.i being less than T.sub.1,
- wherein the third condition is determined by a difference between S.sub.o and S.sub.i being greater than a second threshold, T.sub.2, further wherein T.sub.2 is greater than T.sub.1, and
- wherein the estimate of the negative derivative of the SNR at the output of the equalizer, dS.sub.o, is obtained based upon a least-squares approximation of the derivative, further wherein the occurrence of a no flutter condition corresponds to dS.sub.o being less than the prescribed threshold T.sub.4, the occurrence of a no flutter condition further including the occurrence of a fifth condition, wherein the fifth condition is determined by a difference between S.sub.o and S.sub.i being greater than a third threshold, T.sub.3, further wherein T.sub.3 is greater than T.sub.2.
- 30. The receiver according to claim 29,
- further wherein the estimate of the negative derivative of the SNR at the output of the equalizer, dS.sub.o, is obtained based upon a least-squares approximation of the derivative using first-order polynomials, wherein the estimate is given by the expression dS.sub.o =S.sub.o (n-1)-S.sub.o (n+1), where S.sub.o (n-1) and S.sub.o (n+1) are samples of the SNR at the equalizer output separated by one sequence sample, S.sub.o (n).
- 31. The receiver according to claim 29,
- further wherein the estimate of the negative derivative of the SNR at the output of the equalizer, dS.sub.o, is obtained based upon a least-squares approximation of the derivative using second-order polynomials, wherein the estimate is given by the expression dS.sub.o =2(S.sub.o (n-2)-S.sub.o (n+2)) +S.sub.o (n-1)-S.sub.o (n+1), where S.sub.o (n-1) and S.sub.o (n+1) are samples of the SNR at the equalizer output separated by one sequence sample S.sub.o (n), and where S.sub.o (n-2) and S.sub.o (n+2) are samples of the SNR at the equalizer output separated by three sequence samples S.sub.o (n-1), S.sub.o (n), and S.sub.o (n+1).
- 32. A digital television receiver for receiving a digital television signal transmitted from a television transmitter, said receiver having a rejection filter corresponding to a precoder for which precoding is implemented at the television transmitter for combating co-channel interference and an equalizer for implementing blind-equalization of a channel of said receiver, wherein said equalizer comprises:
- an input and an output;
- means for initiating an equalization with a blind slicing mode; and
- means for changing the equalization to a training sequence mode upon an occurrence of a no flutter condition, and upon an occurrence of a flutter condition, returning the equalization from the training sequence mode to the blind slicing mode, wherein a determination of the occurrence of the flutter condition is based upon an estimate of a negative derivative of the Signal-to-Noise Ratio (SNR) at the output of the equalizer, dS.sub.o, being greater than a first prescribed threshold.
- 33. The receiver according to claim 32,
- wherein the estimate of the negative derivative of the SNR at the output of the equalizer, dS.sub.o, is obtained based upon a least-squares approximation of the derivative, further wherein the occurrence of a no flutter condition corresponds to dS.sub.o being less than the first prescribed threshold and wherein a difference between S.sub.o, the equalizer output, and S.sub.i, the equalizer input, is greater than a second prescribed threshold.
- 34. The receiver according to claim 33,
- further wherein the estimate of the negative derivative of the SNR at the output of the equalizer, dS.sub.o, is obtained based upon a least-squares approximation of the derivative using first-order polynomials, wherein the estimate is given by the expression dS.sub.o =S.sub.o (n-1)-S.sub.o (n+1), where S.sub.o (n-1) and S.sub.o (n+1) are samples of the SNR at the equalizer output separated by one sequence sample, S.sub.o (n).
- 35. The receiver according to claim 33,
- further wherein the estimate of the negative derivative of the SNR at the output of the equalizer, dS.sub.o, is obtained based upon a least-squares approximation of the derivative using second-order polynomials, wherein the estimate is given by the expression dS.sub.o =2(S.sub.o (n-2)-S.sub.o (n+2)) +S.sub.o (n-1)-S.sub.o (n+1), where S.sub.o (n-1) and S.sub.o (n+1) are samples of the SNR at the equalizer output separated by one sequence sample S.sub.o (n), and where S.sub.o (n-2) and S.sub.o (n+2) are samples of the SNR at the equalizer output separated by three sequence samples S.sub.o (n-1), S.sub.o (n), and S.sub.o (n+1).
- 36. The receiver according to claim 32,
- wherein the blind slicing mode comprises a binary-level slicing mode.
- 37. A blind-equalization method for equalization of a channel of a digital receiver, the digital receiver having a rejection filter corresponding to a precoder for which precoding is implemented at a transmitter for combating co-channel interference, the transmitter for transmitting a digital signal, the digital receiver further having an equalizer, the equalizer having an input and an output, said method comprising the steps of:
- initiating an equalization with a binary-level slicing mode;
- advancing the equalization from the binary-level slicing mode to a four-level slicing mode upon an occurrence of a first condition, and returning the equalization from the four-level slicing mode to the binary-level slicing mode upon the occurrence of a second condition;
- advancing the equalization from the four-level slicing mode to an eight-level slicing mode upon an occurrence of a third condition and returning the equalization from the eight-level slicing mode to the binary-level slicing mode upon the occurrence of the second condition; and
- changing the equalization to a training sequence mode upon an occurrence of a no flutter condition, and upon an occurrence of a flutter condition, returning the equalization from the training sequence mode to the binary-level mode, wherein a determination of an occurrence of the flutter condition is based upon an estimate of a negative derivative of the Signal-to-Noise Ratio (SNR) at the output of the equalizer, dS.sub.o, being greater than a prescribed threshold T.sub.4.
- 38. A blind-equalization method for equalization of a channel of a digital receiver, the digital receiver having a rejection filter corresponding to a precoder for which precoding is implemented at a transmitter for combating co-channel interference, the transmitter for transmitting a digital signal, the digital receiver further having an equalizer, the equalizer having an input and an output, said method comprising the steps of:
- initiating an equalization with a blind slicing mode; and
- changing the equalization to a training sequence mode upon an occurrence of a no flutter condition, and upon an occurrence of a flutter condition, returning the equalization from the training sequence mode to the blind slicing mode, wherein a determination of the occurrence of the flutter condition is based upon an estimate of a negative derivative of the Signal-to-Noise Ratio (SNR) at the output of the equalizer, dS.sub.o, being greater than a first prescribed threshold.
- 39. An equalizer for implementing blind-equalization of a channel of a digital receiver, the digital receiver having a rejection filter corresponding to a precoder for which precoding is implemented at a transmitter for combating co-channel interference, the transmitter for transmitting a digital signal, said equalizer comprising:
- an input and an output;
- means for initiating an equalization with a binary-level slicing mode;
- means for advancing the equalization from the binary-level slicing mode to a four-level slicing mode upon an occurrence of a first condition, and returning the equalization from the four-level slicing mode to the binary-level slicing mode upon the occurrence of a second condition;
- means for advancing the equalization from the four-level slicing mode to an eight-level slicing mode upon an occurrence of a third condition and returning the equalization from the eight-level slicing mode to the binary-level slicing mode upon the occurrence of the second condition; and
- means for changing the equalization to a training sequence mode upon an occurrence of a no flutter condition, and upon an occurrence of a flutter condition, returning the equalization from the training sequence mode to the binary-level mode, wherein a determination of an occurrence of the flutter condition is based upon an estimate of a negative derivative of the Signal-to-Noise Ratio (SNR) at the output of the equalizer, dS.sub.o, being greater than a prescribed threshold T.sub.4.
- 40. An equalizer for implementing blind-equalization of a channel of a digital receiver, the digital receiver having a rejection filter corresponding to a precoder for which precoding is implemented at a transmitter for combating co-channel interference, the transmitter for transmitting a digital signal, said equalizer comprising:
- an input and an output;
- means for initiating an equalization with a blind slicing mode; and
- means for changing the equalization to a training sequence mode upon an occurrence of a no flutter condition, and upon an occurrence of a flutter condition, returning the equalization from the training sequence mode to the blind slicing mode, wherein a determination of the occurrence of the flutter condition is based upon an estimate of a negative derivative of the Signal-to-Noise Ratio (SNR) at the output of the equalizer, dS.sub.o, being greater than a first prescribed threshold.
- 41. A method for receiving a digital signal transmitted from a digital transmitter over a channel, said method comprising the steps of providing a rejection filter corresponding to a precoder for which precoding is implemented at the transmitter for combating co-channel interference and equalizing the channel with an equalizer, the equalizer having an input and an output, wherein said equalizing step comprises:
- initiating an equalization with a binary-level slicing mode;
- advancing the equalization from the binary-level slicing mode to a four-level slicing mode upon an occurrence of a first condition, and returning the equalization from the four-level slicing mode to the binary-level slicing mode upon the occurrence of a second condition;
- advancing the equalization from the four-level slicing mode to an eight-level slicing mode upon an occurrence of a third condition and returning the equalization from the eight-level slicing mode to the binary-level slicing mode upon the occurrence of the second condition; and
- changing the equalization to a training sequence mode upon an occurrence of a no flutter condition, and upon an occurrence of a flutter condition, returning the equalization from the training sequence mode to the binary-level mode, wherein a determination of an occurrence of the flutter condition is based upon an estimate of a negative derivative of the Signal-to-Noise Ratio (SNR) at the output of the equalizer, dS.sub.o, being greater than a prescribed threshold T.sub.4.
- 42. A method for receiving a digital signal transmitted from a digital transmitter over a channel, said method comprising the steps of providing a rejection filter corresponding to a precoder for which precoding is implemented at the transmitter for combating co-channel interference and equalizing the channel with an equalizer, the equalizer having an input and an output, wherein said equalizing step comprises:
- initiating an equalization with a blind slicing mode; and
- changing the equalization to a training sequence mode upon an occurrence of a no flutter condition, and upon an occurrence of a flutter condition, returning the equalization from the training sequence mode to the blind slicing mode, wherein a determination of the occurrence of the flutter condition is based upon an estimate of a negative derivative of the Signal-to-Noise Ratio (SNR) at the output of the equalizer, dS.sub.o, being greater than a first prescribed threshold.
- 43. A digital receiver for receiving a digital signal transmitted from a transmitter, said receiver having a rejection filter corresponding to a precoder for which precoding is implemented at the transmitter for combating co-channel interference and an equalizer for implementing blind-equalization of a channel of said receiver, wherein said equalizer comprises:
- an input and an output;
- means for initiating an equalization with a binary-level slicing mode;
- means for advancing the equalization from the binary-level slicing mode to a four-level slicing mode upon an occurrence of a first condition, and returning the equalization from the four-level slicing mode to the binary-level slicing mode upon the occurrence of a second condition;
- means for advancing the equalization from the four-level slicing mode to an eight-level slicing mode upon an occurrence of a third condition and returning the equalization from the eight-level slicing mode to the binary-level slicing mode upon the occurrence of the second condition; and
- means for changing the equalization to a training sequence mode upon an occurrence of a no flutter condition, and upon an occurrence of a flutter condition, returning the equalization from the training sequence mode to the binary-level mode, wherein a determination of an occurrence of the flutter condition is based upon an estimate of a negative derivative of the Signal-to-Noise Ratio (SNR) at the output of the equalizer, dS.sub.o, being greater than a prescribed threshold T.sub.4.
- 44. A digital receiver for receiving a digital signal transmitted from a transmitter, said receiver having a rejection filter corresponding to a precoder for which preceding is implemented at the transmitter for combating co-channel interference and an equalizer for implementing blind-equalization of a channel of said receiver, wherein said equalizer comprises:
- an input and an output;
- means for initiating an equalization with a blind slicing mode; and
- means for changing the equalization to a training sequence mode upon an occurrence of a no flutter condition, and upon an occurrence of a flutter condition, returning the equalization from the training sequence mode to the blind slicing mode, wherein a determination of the occurrence of the flutter condition is based upon an estimate of a negative derivative of the Signal-to-Noise Ratio (SNR) at the output of the equalizer, dS.sub.o, being greater than a first prescribed threshold.
CROSS-REFERENCE TO COPENDING APPLICATIONS
This is a continuation of application Ser. No. 08/576,546, filed Dec. 21, 1995, now abandoned which is a continuation-in-part of U.S. patent application Ser. No. 08/230,360, filed Apr. 20, 1994, U.S. Pat. No 5,512,957, entitled "Method and Apparatus for Combating Co-channel NTSC Interference for Digital TV Transmission" (attorney docket PHA 21,878), which is a continuation-in-part of application Ser. No. 08/197,773, filed Feb. 10, 1994, now U.S. Pat. No. 5,452,015, issued Sep. 19, 1995, entitled "Method and Apparatus for Combating Co-channel NTSC Interference for Digital TV Transmission" (attorney docket PHA 21,869), both of which are assigned to the assignee of the present invention, and further, the disclosures of which are incorporated by reference herein. Additional related applications include U.S. Ser. No. 08/271,810, filed Jul. 7, 1994, U.S. Pat. No. 5,572,249, entitled "Method and Apparatus for Optimal NTSC Rejection Filtering and Transmitter and Receiver Comprising the Same" (attorney docket PHA 21,894), U.S. Ser. No. 08/444,484, filed May 19, 1995, U.S. Pat. No. 5,648,822, entitled "Method and Apparatus for Combating Co-Channel NTSC Interference Using a Variable For Digital TV Transmission (attorney docket PHA 21,953), and U.S. Ser. No. 08/550,128, filed Oct. 27, 1995, U.S. Pat. No. 5,602,602, entitled "Method and Apparatus for Combating Co-Channel NTSC Interference For Digital TV Transmission Having a Simplified Rejection Filter" (attorney docket PHA 23,046), all assigned to the assignee of the present invention, and further the disclosures of which are incorporated by reference herein.
US Referenced Citations (8)
Non-Patent Literature Citations (7)
Entry |
A Method of Self-Recovering Equaliztion for Multilevel Amplitude Modulation Systems, By Y. Sata in vol. COM-23, pp. 679-682, Jun. 1975. |
VSB Transmission System: Technical Details, Feb. 18, 1994. |
New Automatic Equalizer Employing Modulo Arithmetic, Electronic Letters, pp. 138-139, Mar. 1971, By M. Tomlinson. |
Matched-Transmission Technique for Channels with Intersymbol Interference, IEEE Transactions on Communications, vol. COM-20, No. 4 pp. 774-780, Aug. 1972, by H.Harashima dn H. Miyakawa. |
Liu et al, "Multiuser Blind Channel Estimation & Spatial Channel Equalization", ICASSP '95:Acoustics Speech & Signal Processing Sentence, vol. 3, pp. 1756-1759, May 1995. |
Li, "Blind Deconvolution of Linear Systems w/ Nonstationary Discrete Inputs", Higher Order Statistics, 1993 Workshop, pp. 160-163, Jun. 1993. |
Weerackody et al, "Dual-Mode Type Algorithms for Blind Equalization", IEEE Transactions on Communications, vol. 42, Issue 1, pp. 22-28, Jan. 1994. |
Continuations (1)
|
Number |
Date |
Country |
Parent |
576546 |
Dec 1995 |
|
Continuation in Parts (2)
|
Number |
Date |
Country |
Parent |
230360 |
Apr 1994 |
|
Parent |
197773 |
Feb 1994 |
|