Claims
- 1. A method of transmitting a television signal comprising:
- providing an N-level digitally encoded signal at a sample rate fs substantially equal to three times the NTSC color subcarrier frequency;
- generating a carrier signal.Iadd., wherein said carrier signal has a frequency less than the frequency of the picture carrier of an NTSC co-channel signal by an amount of about fs/12;
- modulating said carrier signal with said N-level digitally encoded signal; and
- forming a transmission signal in response to said modulated carrier.
- 2. The method of claim 1 wherein said sample rate is equal to 684 times the NTSC horizontal scanning frequency. .[.3. The method of claim 1 wherein said carrier signal has a frequency less than the frequency of the picture
- carrier of an NTSC co-channel signal by an amount of about fs/12..].4. The method of claim .[.3.]. .Iadd.1 .Iaddend.wherein said transmission signal comprises a suppressed carrier, VSB signal including a Nyquist slope characterized by a center frequency substantially coincident with the
- frequency of said carrier signal. 5. The method of claim 4 wherein said transmission signal comprises a pilot signal .[.in quadrature relation with.]. .Iadd.having a frequency equal to the frequency of .Iaddend.said
- carrier signal. 6. A method of transmitting a television signal over a television channel comprising:
- providing an N-level digitally encoded signal at a sample rate fs substantially equal to three times the NTSC color subcarrier frequency;
- generating a carrier signal having a frequency less than the frequency of the picture carrier of an NTSC co-channel signal by an amount of about fs/12; and
- modulating said carrier signal with said N-level digitally encoded signal for forming a transmission signal comprising a suppressed carrier, VSB signal having respective Nyquist slopes at the lower and upper edges of said channel, the center frequency of the Nyquist slope at the lower edge of said channel being substantially coincident with the frequency of said
- carrier signal. 7. The method of claim 6 wherein said sample rate is equal
- to 684 times the NTSC horizontal scanning frequency. 8. The method of claim 6 wherein said transmission signal comprises a pilot signal .[.in quadrature relation with.]. .Iadd.having a frequency equal to the
- frequency of .Iaddend.said carrier signal. 9. A television signal receiver comprising:
- means for receiving an N-level digitally encoded signal modulating a suppressed carrier signal, said N-level signal having a sample rate fs substantially equal to three times the NTSC color subcarrier frequency and said suppressed carrier signal having a frequency less than the frequency of the picture carrier of an NTSC co-channel signal by an amount of about fs/12;
- means for demodulating said received N-level signal;
- filter means processing said demodulated signal for providing an M-level output signal, where M is greater than N, said filter means having a frequency response including a notch at a frequency substantially equal to fs/12; and
- means for converting said M-level signal to an .[.N-level.]. .Iadd.output
- .Iaddend.signal representing a televised image. 10. The receiver of claim 9 Wherein the frequency response of said filter means includes a notch at
- a frequency substantially equal to 5fs/12. 11. The receiver of claim 10 wherein the frequency response of said filter means includes an notch at a
- frequency substantially equal to fs/2. 12. The receiver of claim 11 wherein said filter means comprises means for delaying said demodulated signal by an interval substantially equal to 12/fs and means for subtracting the delayed signal from said demodulated signal for providing
- said M-level output signal. 13. The receiver of claim 9 wherein said received signal comprises a pilot signal having a .[.quadrature relationship with.]. .Iadd.frequency equal to the frequency of .Iaddend.said suppressed carrier signal, said receiver including means responsive to said pilot signal for developing a regenerated carrier signal having frequency and phase characteristics corresponding to said suppressed carrier signal and means for applying said regenerated carrier
- signal to said demodulating means. 14. The receiver of claim 13 wherein said carrier signal regenerating means comprises a frequency and phase locked loop responsive to said pilot signal for generating an intermediate signal having frequency and phase characteristics corresponding thereto .[.and means for shifting the phase of said Intermediate signal by
- 90.degree..]. for providing said regenerated carrier signal. 15. A television signal receiver comprising:
- means for receiving an N-level digitally encoded signal modulating a suppressed carrier signal, said N-level signal having a sample rate fs substantially equal to three time the NTSC color subcarrier frequency and said suppressed carrier signal having a frequency less than the frequency of the picture carrier of an NTSC co-channel signal by an amount of about fs/12;
- means for demodulating said received N-level signal;
- filter means comprising means for delaying said demodulated signal by an interval substantially equal to 12/fs and means for subtracting the delayed signal from said demodulated signal for providing an M-level output signal, where M is greater than N; and
- means for converting said M-level signal to an .[.N-level.]. .Iadd.output
- .Iaddend.signal representing a televised image. 16. A receiver for receiving a television signal transmitted over a selected channel comprising:
- means for receiving a transmission signal comprising a suppressed carrier, VSB signal having respective Nyquist slopes at the lower and upper edges of said selected channel, the center frequency of the Nyquist slope at the lower edge of said selected channel being substantially coincident with the frequency of said suppressed carrier, said suppressed carrier being modulated by an N-level digitally encoded signal having a sample rate fs substantially equal to three times the NTSC color subcarrier frequency and said suppressed carrier having a frequency less than the frequency of the picture carrier of an NTSC co-channel signal by an amount of about fs/12;
- means coupled to said receiving means for demodulating said N-level signal; and
- filter means processing said demodulated signal for providing an .[.N.]..Iadd.M.Iaddend.-level output signal, .Iadd.where M is greater than N, .Iaddend.said filter means having a frequency response including
- notches at frequencies substantially equal to fs/12 and 5fs/12. 17. The receiver of claim 16 wherein said filter means comprises a linear filter .[.having a frequency response including notches at frequencies substantially equal to fs/12 and 5fs/12 processing said demodulated signal for providing an M-level output signal, where M is greater than N,.]. and .Iadd.including .Iaddend.means for converting said M-level output signal to .[.said N level output.]. .Iadd.a .Iaddend.signal .Iadd.representing a
- televised image..Iaddend.18. The receiver of claim 17 wherein the frequency response of said filter means includes a notch at a frequency
- substantially equal to fs/2. 19. A receiver for receiving a television signal transmitted over a selected channel comprising:
- means for receiving a transmission signal comprising a suppressed carrier, VSB signal having respective Nyquist slopes at the lower and upper edges of said selected channel, the center frequency of the Nyquist slope at the lower edge of said selected channel being substantially coincident with the frequency of said suppressed carrier, and a pilot signal, said suppressed carrier being modulated by an N-level digitally encoded signal having a sample rate fs substantially equal to three times the NTSC color subcarrier frequency and said suppressed carrier having a frequency less than the frequency of the picture carrier of an NTSC co-channel signal by an amount equal to about fs/12;
- means responsive to said pilot signal for developing a regenerated carrier signal having frequency and phase characteristics corresponding to said suppressed carrier signal;
- means coupled to said receiving means and responsive to said regenerated carrier signal for demodulating said N-level signal; and
- filter means processing said demodulated signal for providing an .[.N.]. .Iadd.M .Iaddend.level output signal, .Iadd.where M is greater than N, .Iaddend.said filter means having a frequency response including notches
- at frequencies substantially equal to fs/12 and 5fs/12. 20. The receiver of claim 19 wherein said filter means comprises a linear filter .[.having a frequency response including notches at frequencies substantially equal to fs/12 and 5fs/12 processing said demodulated signal for providing an M-level output signal, where M is greater than N.]. and .Iadd.including .Iaddend.means for converting said M-level output signal to .[.said N level output.]. .Iadd.a .Iaddend.signal .Iadd.representing a televised
- image..Iaddend.21. The receiver of claim 20 wherein said linear filter comprises means for delaying said demodulated signal by an interval substantially equal to 12/fs and means for substracting the delayed signal from said demodulated signal for providing said M-level output signal.
- The receiver of claim 19 wherein said carrier signal regenerating means comprises a frequency and phase locked loop responsive to said pilot signal for generating an intermediate signal having frequency and phase characteristics corresponding thereto .[.and means for shifting the phase of said intermediate signal by 90.degree..]. for providing said
- regenerated carrier signal. 23. A method of transmitting and receiving a television signal over a selected channel comprising:
- providing a transmission signal comprising a suppressed carrier, VSB signal having respective Nyquist slopes at the upper and lower edges of said selected channel, the center frequency of the Nyquist slope at the lower edge of said selected channel being substantially coincident with the frequency of said suppressed carrier, said suppressed carrier being modulated by an N-level digitally encoded signal having a sample rate fs substantially equal to three times the NTSC color subcarrier frequency and said suppressed carrier having a frequency less than the frequency of the picture carrier of an NTSC co-channel signal by an amount equal to about fs/12;
- transmitting said transmission signal over said selected channel;
- receiving said transmitted signal;
- demodulating said received signal for recovering said N-level signal;
- subjecting said recovered N-level signal to a filter response having notches at frequencies substantially equal to fs/12 and 5fs/12 for providing a filtered M-level signal, where M is greater than N; and
- converting said M-level signal to an .[.N-level.]. output signal
- representing said television signal. 24. The method of claim 23 including precoding an N-level data signal for providing said N-level digitally
- encoded signal. 25. The method of claim 24 wherein said subjecting step comprises delaying said recovered N-level signal by an interval substantially equal to 12/fs and subtracting said delayed recovered signal
- from said recovered signal for providing said M-level signal. 26. The method of claim 23 wherein said sample rate is equal to 684 times the NTSC
- horizontal scanning rate. 27. The method of claim 23 wherein said filter
- response includes a notch at a frequency substantially equal to fs/2. 28. A method of transmitting and receiving a television signal over a selected channel comprising:
- providing a transmission signal comprising a suppressed carrier, VSB signal having respective Nyquist slopes at the upper and lower edges of said selected channel, the center frequency of the Nyquist slope at the lower edge of said selected channel being substantially coincident with the frequency of said suppressed carrier, and a pilot signal, said suppressed carrier being modulated by an N-level digitally encoded signal having a sample rate fs substantially equal to three times the NTSC color subcarrier frequency and said suppressed carrier having a frequency less than the frequency of the picture carrier of an NTSC co-channel signal by an amount equal to about fs/12;
- transmitting said transmission signal over said selected channel;
- receiving said transmitted signal;
- regenerating a carrier signal in response to said received pilot signal, said regenerated carrier signal having frequency and phase characteristics corresponding to said suppressed carrier;
- demodulating said received signal in response to said regenerated carrier signal for recovering said N-level signal;
- subjecting said recovered N-level signal to a filter response having notches at frequencies substantially equal to fs/12 and 5fs/12 for providing a filtered M-level signal, where M is greater than N; and
- converting said M-level signal to an .[.N-level.]. output signal
- representing said television signal. 29. The method of claim 28 including precoding an N-level data signal for providing said N-level digitally
- encoded signal. 30. The method of claim 28 wherein said sample rate is
- equal to 684 times the NTSC horizontal scanning rate. 31. The method of claim 28 wherein said filter response includes a notch at a frequency
- substantially equal to fs/2. 32. A method of providing a television transmission signal for transmission over a selected television channel providing:
- providing an N-level digitally encoded signal at a sample rate fs; and
- modulating a carrier signal with said N-level digitally encoded signal for forming a transmission signal comprising a suppressed carrier, VSB signal having respective Nyquist slopes at the lower and upper edges of said selected television channel, the frequency of said carrier signal being substantially coincident with the center frequency of the Nyquist slope at the lower edge of said selected television channel and the frequency fs/2 being substantially coincident with the center frequency of the Nyquist
- slope at the upper edge of said selected television channel. 33. The method of claim 32 wherein said selected television channel has a bandwidth of about 6 MHz and wherein said sample rate fs is substantially
- equal to three times the NTSC color subcarrier frequency. 34. A receiver for receiving a television signal transmitted over a selected channel comprising:
- means for receiving a television signal comprising a suppressed carrier, VSB signal having respective Nyquist slopes at the lower and upper edges of said selected channel, said suppressed carrier being modulated by an N-level digitally encoded signal having a sample rate fs, the frequency of said suppressed carrier being substantially coincident with the center frequency of the Nyquist slope at the lower edge of said selected channel and the frequency fs/2 being substantially coincident with the center frequency of the Nyquist slope at the upper edge of said selected channel; and
- demodulation means coupled to said receiving means and responsive to said received television signal for recovering said N-level digitally encoded
- signal. 35. The receiver of claim 34 wherein said television channel has a bandwidth of about 6 MHz and wherein said sample rate fs is substantially
- equal to three time the NTSC color subcarrier frequency. 36. The receiver of claim 34 including filter means coupled to said demodulation means, said filter means having a frequency response for attenuating selected
- co-channel interference signals. 37. The receiver of claim 35 including filter means coupled to said demodulation means, said filter means having a frequency response for attenuating co-channel interference signals
- occurring at a frequency substantially equal to fs/12. 38. The method of claim 6 including:
- transmitting said transmission signal over said television channel;
- receiving said transmitted signal; and
- demodulating said received signal for recovering said N-level digitally
- encoded signal. .Iadd.39. A receiver for receiving an N-level digitally encoded signal transmitted over a selected channel comprising:
- means for receiving an N-level digitally encoded signal at a sampling rate fs substantially equal to three times the NTSC color subcarrier frequency, wherein the N-level digitally encoded signal is a modulated suppressed carrier signal having a frequency less than the frequency of the picture carrier of an NTSC co-channel signal by an amount of about fs/12; and
- means for demodulating said received N-level digitally encoded signal..Iaddend..Iadd.40. The receiver of claim 39 wherein said means for receiving comprises means for receiving a N-level digitally encoded signal at a sampling rate fs of about 684 times the NTSC horizontal scanning frequency..Iaddend..Iadd.41. The receiver of claim 39 wherein said received signal comprises a pilot signal at the frequency of said suppressed carrier signal, said receiver further comprising means responsive to said pilot signal for developing a regenerated carrier signal having frequency and phase characteristics corresponding to said suppressed carrier signal, said means for demodulating being responsive to said regenerated carrier for recovering said N-level digitally encoded
- signal..Iaddend..Iadd.42. The receiver of claim 39 including filter means for processing said demodulated signal, said filter means having a frequency response for attenuating selected co-channel interference signals..Iaddend..Iadd.43. The receiver of claim 42 wherein the frequency response of said filter means includes a notch at a frequency of about fs/12..Iaddend..Iadd.44. The receiver of claim 42 wherein said filter means comprises means for providing an M-level output signal, where M is greater than N..Iaddend..Iadd.45. The receiver of claim 42 wherein the frequency response of said filter means includes a notch at a frequency of about 5 fs/12..Iaddend..Iadd.46. The receiver of claim 42 wherein the frequency response of said filter means includes a notch at a frequency of about fs/2..Iaddend..Iadd.47. The receiver of claim 39 wherein said N-level digitally encoded signal comprises a television signal..Iaddend..Iadd.48. A receiver for receiving an N-level digitally encoded signal transmitted over a selected channel comprising:
- means for receiving a signal comprising a suppressed carrier, VSB signal having respective Nyquist slopes at the lower and upper edges of said selected channel, said suppressed carrier being modulated by an N-level digitally encoded signal having a sampling rate fs, the frequency of said suppressed carrier being substantially coincident with the center frequency of the Nyquist slope at the lower edge of said selected channel and the frequency fs/2 being substantially coincident with the center frequency of the Nyquist slope at the upper edge of said selected channel; and
- demodulation means coupled to said receiving means for recovering said
- N-level digitally encoded signal..Iaddend..Iadd.49. The receiver of claim 48 wherein said sampling rate fs is substantially equal to three times the NTSC color subcarrier frequency..Iaddend..Iadd.50. The receiver of claim 49 wherein said sampling rate fs is equal to about 684 times the NTSC horizontal scanning frequency..Iaddend..Iadd.51. The receiver of claim 48 wherein said suppressed carrier signal has a frequency less than the frequency of the picture carrier of an NTSC co-channel signal by an amount
- of about fs/12..Iaddend..Iadd.52. The receiver of claim 51 wherein said received signal comprises a pilot signal at the frequency of said suppressed carrier signal, said receiver further comprising means responsive to said pilot signal for developing a regenerated carrier signal having frequency and phase characteristics corresponding to said suppressed carrier signal, said demodulation means being responsive to said regenerated carrier for recovering said N-level digitally encoded signal..Iaddend..Iadd.53. The receiver of claim 48 including filter means for processing said recovered signal, said filter means having a frequency response for attenuating selected co-channel interference signals..Iaddend..Iadd.54. The receiver of claim 53 wherein the frequency response of said filter means includes at notch at a frequency of about fs/12..Iaddend..Iadd.55. The receiver of claim 53 wherein said filter means comprises means for providing an M-level output signal, where M is greater than N..Iaddend..Iadd.56. The receiver of claim 53 wherein the frequency response of said filter means includes a notch at a frequency of
- about 5 fs/12..Iaddend..Iadd.57. The receiver of claim 53 wherein the frequency response of said filter means includes a notch at a frequency of about fs/2..Iaddend..Iadd.58. A method of transmitting an N-level digitally encoded signal comprising:
- providing an N-level digitally encoded signal at a sampling rate fs substantially equal to three times the NTSC color subcarrier frequency;
- generating a carrier signal; and
- transmitting said N-level digitally encoded signal as modulation of said carrier signal, wherein said carrier signal is a suppressed carrier signal having a frequency less than the frequency of the picture carrier of an NTSC co-channel signal by an amount of about fs/12..Iaddend..Iadd.59. The method of claim 58 wherein said sampling rate is equal to about 684 times
- the NTSC horizontal scanning frequency..Iaddend..Iadd.60. The method of claim 58 wherein said transmitting step comprises transmitting a VSB signal including a Nyquist slope characterized by a center frequency substantially coincident with the frequency of said suppressed carrier signal..Iaddend..Iadd.61. The method of claim 38 including transmitting a pilot signal at the frequency of said suppressed carrier..Iaddend..Iadd.62. A method of providing an N-level digitally encoded signal for transmission over a selected channel comprising:
- providing an N-level digitally encoded signal at a sampling rate fs; and
- modulating a carrier signal with said N-level digitally encoded signal for forming a transmission signal comprising a suppressed carrier, VSB signal having respective Nyquist slopes at the lower and upper edges of said selected channel, the frequency of said suppressed carrier being substantially coincident with the center frequency of the Nyquist slope at the lower edge of said selected channel and the frequency fs/2 being substantially coincident with the center frequency of the Nyquist slope at
- the upper edge of said selected channel..Iaddend..Iadd.63. The method of claim 62 wherein said sampling rate fs is substantially equal to three times the NTSC color subcarrier frequency..Iaddend..Iadd.64. The method of claim 63 wherein said sampling rate fs is equal to about 684 times the NTSC horizontal scanning frequency..Iaddend..Iadd.65. The method of claim 62 wherein said suppressed carrier signal has a frequency less than the frequency of the picture carrier of an NTSC co-channel signal by an amount of about fs/12..Iaddend..Iadd.66. The method of claim 62 including transmitting a pilot signal at the frequency of said suppressed carrier
- signal..Iaddend..Iadd.67. A method of receiving an N-level digitally encoded signal transmitted over a selected channel comprising the following steps:
- receiving an N-level digitally encoded signal at a sampling rate fs substantially equal to three times the NTSC color subcarrier frequency, wherein the N-level digitally encoded signal is a modulated suppressed carrier signal having a frequency which is approximately 309.5 kHz above an edge of the transmitted selected channel; and
- demodulating said received N-level digitally encoded signal..Iaddend..Iadd.68. The method of claim 1 wherein said carrier signal has a frequency, and wherein the frequency of said carrier signal is approximately 309.5 kHz above a transmission channel edge..Iaddend..Iadd.69. The method of claim 6 wherein the frequency of said suppressed carrier, VSB signal is approximately 309.5 kHz above said lower edge said transmitted channel..Iaddend..Iadd.70. The receiver of claim 9 wherein the frequency of said suppressed carrier signal is approximately 309.5 kHz above a transmission channel
- edge..Iaddend..Iadd. . The receiver of claim 15 wherein the frequency of said suppressed carrier signal is approximately 309.5 kHz above a transmission channel edge..Iaddend..Iadd.72. The receiver of claim 16 wherein the frequency of said suppressed carrier, VSB signal is approximately 309.5 kHz above said lower edge of said transmitted selected channel..Iaddend..Iadd.73. The receiver of claim 19 wherein the frequency of said suppressed carrier, VSB signal is approximately 309.5 kHz above said lower edge of said transmitted selected channel..Iaddend..Iadd.74. The method of claim 23 wherein the frequency of said suppressed carrier, VSB signal is approximately 309.5 kHz above said lower edge of said transmitted selected channel..Iaddend..Iadd.75. The method of claim 28 wherein the frequency of said suppressed carrier, VSB signal is approximately 309.5 kHz above said lower edge of said transmitted selected
- channel..Iaddend..Iadd.76. The method of claim 32 wherein the frequency of said suppressed carrier, VSB signal is approximately 309.5 kHz above said lower edge of said selected transmission television channel..Iaddend..Iadd.77. The method of claim 32 wherein said transmission signal comprises a pilot signal having a frequency substantially equal to the frequency of said suppressed carrier, VSB signal..Iaddend..Iadd.78. The receiver of claim 34 wherein the frequency of said suppressed carrier, VSB signal is approximately 309.5 kHz above said lower edge of said transmitted selected channel..Iaddend..Iadd.79. The receiver of claim 34 wherein said received television signal comprises a pilot signal having a frequency substantially equal to the frequency of said suppressed carrier, VSB signal, wherein said receiver further comprises means responsive to said pilot signal for developing a regenerated carrier signal having frequency and phase characteristics corresponding to said suppressed carrier, VSB signal, and wherein said demodulation means is responsive to said regenerated carrier for
- recovering said N-level digitally encoded signal..Iaddend..Iadd.80. The receiver of claim 39 wherein the frequency of said suppressed carrier signal is approximately 309.5 kHz above a transmission channel edge..Iaddend..Iadd.81. The receiver of claim 48 wherein the frequency of said suppressed carrier, VSB signal is approximately 309.5 kHz above said lower edge of said transmitted selected channel..Iaddend..Iadd.82. The method of claim 58 wherein the frequency of said suppressed carrier signal is approximately 309.5 kHz above a transmission channel edge..Iaddend..Iadd.83. The method of claim 62 wherein the frequency of said suppressed carrier, VSB signal is approximately 309.5 kHz above said
- lower edge of said selected transmission channel..Iaddend..Iadd.84. The method of claim 67 wherein said receiving step comprises the step of receiving a N-level digitally encoded signal at a sampling rate fs of about 684 times the NTSC horizontal scanning frequency..Iaddend..Iadd.85. The method of claim 67 wherein said receiving step comprises the steps of receiving a pilot signal having a frequency substantially equal to the frequency of said suppressed carrier signal and, in response to said pilot signal, developing a regenerated carrier signal having frequency and phase characteristics corresponding to said suppressed carrier signal, and wherein said demodulating step is performed in response to said regenerated carrier in order to recover said N-level digitally encoded signal..Iaddend..Iadd.86. The method of claim 67 including the further step of filtering said demodulated signal so as to attenuate co-channel interference..Iaddend..Iadd.87. The method of claim 86 wherein the filtering step comprises the step of filtering said demodulated signal with a frequency response having a notch at a frequency of about
- fs/12..Iaddend..Iadd.88. The method of claim 86 wherein the filtering step comprises the steps of filtering said demodulated signal so as to provide an M-level output signal, where M is greater than N..Iaddend..Iadd.89. The method of claim 86 wherein the filtering step comprises the step of filtering said demodulated signal with a frequency response having a notch at a frequency of about 5fs/12..Iaddend..Iadd.90. The method of claim 86 wherein the filtering step comprises the step of filtering said demodulated signal with a frequency response having a notch at a frequency of about fs/2..Iaddend..Iadd.91. The method of claim 67 wherein said N-level digitally encoded signal comprises a television signal..Iaddend.
CROSS REFERENCE TO RELATED APPLICATIONS
This application is related to co-pending application Ser. No. 600,469, filed Oct. 18, 1990, entitled "Co-Channel Interference Filter for Digital High Definition Television Receiver", to application Ser. No. 601,169, filed Oct. 19, 1990, entitled "Co-Channel Interference Reduction System for Digital High Definition Television", and to application Ser. No. 600,458, filed Oct. 19, 1990, entitled "HDTV Transmission System for Digital High Definition Television", all of which applications are assigned to the assignee of the present application and which are incorporated herein by reference.
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Reissues (1)
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611236 |
Nov 1990 |
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