IP Library Granted Patent US 7,873,120
Granted Patent B2
US 7,873,120 · App. 12/685,378 · Granted Jan 18, 2011

Forward error correction coding for AM 9kHz and 10kHz in-band on-channel digital audio broadcasting systems

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Quick Facts
Patent No.
US 7,873,120
App. No.
12/685,378
Granted
Jan 18, 2011
Kind
B2
Abstract

A method of broadcasting an AM compatible digital audio broadcasting signal includes: producing an analog modulated carrier signal centrally positioned in a radio channel, wherein the analog modulated carrier signal is modulated by an analog signal, producing a plurality of digitally modulated subcarrier signals in the radio channel, wherein the digitally modulated subcarrier signals are modulated using complementary pattern-mapped trellis code modulation (CPTCM) including a code mapped to overlapping partitions including an upper main partition, a lower main partition, an upper backup partition and a lower backup partition, and a non-overlapping tertiary partition, and transmitting the analog modulated carrier signal and the plurality of digitally modulated subcarrier signals. Transmitters that broadcast the signal and receivers that receive the signal, and the reception method are also included.

Claims (25)

1. A method of broadcasting an AM compatible digital audio broadcasting signal, the method comprising:

producing an analog modulated carrier signal centrally positioned in a radio channel, wherein the analog modulated carrier signal is modulated by an analog signal;

producing a plurality of digitally modulated subcarrier signals in the radio channel, wherein the digitally modulated subcarrier signals are modulated using complementary pattern-mapped trellis code modulation (CPTCM) including a code mapped to overlapping partitions including an upper main partition, a lower main partition, an upper backup partition and a lower backup partition, and a non-overlapping tertiary partition; and

transmitting the analog modulated carrier signal and the plurality of digitally modulated subcarrier signals.

2. The method of claim 1 , wherein the code forms a single stream audio signal.

3. The method of claim 2 , wherein the subcarrier signals in the upper backup partition and the lower backup partition are modulated using 16-QAM.

4. The method of claim 1 , wherein the subcarriers include upper main subcarriers, lower main subcarriers, upper backup subcarriers, lower backup subcarriers, and tertiary subcarriers, with the power spectral density of each of the upper main subcarriers, lower main subcarriers, upper backup subcarriers, lower backup subcarriers, being at least 40 dBc below the power spectral density of an analog modulated carrier in the same channel as the subcarriers, and the power spectral density of each of the tertiary subcarriers, being at least 50 dBc below the power spectral density of the analog modulated carrier.

5. The method of claim 4 , wherein the subcarriers further include timing subcarriers and integrated digital service subcarriers; and

each of the subcarriers is located at one of a plurality of evenly spaced frequency locations, with the timing subcarriers being at locations + 1 and − 1 , the upper tertiary subcarriers being at locations + 2 through + 26 , the lower tertiary subcarriers being at locations − 2 through − 26 , the upper main subcarriers being at locations + 28 through + 52 , the lower main subcarriers being at locations − 28 through − 52 , the upper backup subcarriers being at locations + 54 through + 78 , the lower backup subcarriers being at locations − 54 through − 78 , and the integrated digital service subcarriers being at locations + 27 , + 53 , − 27 and − 53 .

6. The method of claim 4 , wherein the subcarriers further include timing subcarriers and integrated digital service subcarriers; and

each of the subcarriers is located at one of a plurality of evenly spaced frequency locations, with the timing subcarriers being at locations + 1 and − 1 , the upper tertiary subcarriers being at locations + 2 through + 26 , the lower tertiary subcarriers being at locations − 2 through − 26 , the upper main subcarriers being at locations + 28 through + 52 , the lower main subcarriers being at locations − 28 through − 52 , the upper backup subcarriers being at locations + 54 through + 73 , the lower backup subcarriers being at locations − 54 through − 73 , and the integrated digital service subcarriers being at locations + 27 , + 53 , − 27 and − 53 .

7. The method of claim 4 , wherein the subcarriers further include timing subcarriers and integrated digital service subcarriers; and

each of the subcarriers is located at one of a plurality of evenly spaced frequency locations, with the timing subcarriers being at locations + 1 and − 1 , the upper tertiary subcarriers being at locations + 2 through + 26 , the lower tertiary subcarriers being at locations − 2 through − 26 , the upper main subcarriers being at locations + 28 through + 52 , the lower main subcarriers being at locations − 28 through − 52 , the upper backup subcarriers being at locations + 57 through + 81 , the lower backup subcarriers being at locations − 57 through − 81 , and the integrated digital service subcarriers being at locations + 27 , + 53 , − 27 and − 53 .

8. A transmitter for broadcasting an AM compatible digital audio broadcasting signal, the transmitter comprising:

a processor for modulating a plurality of subcarriers using complementary pattern-mapped trellis code modulation (CPTCM) including a code mapped to overlapping partitions including an upper main partition, a lower main partition, an upper backup partition and a lower backup partition, and a non-overlapping tertiary partition; and

a transmitter for transmitting an analog modulated carrier signal and the plurality of digitally modulated subcarrier signals.

9. The transmitter of claim 8 , wherein the code forms a single stream audio signal.

10. The transmitter of claim 8 , wherein the subcarrier signals in the upper backup partition and the lower backup partition are modulated using 16-QAM.

11. The transmitter of claim 8 , wherein the subcarriers include upper main subcarriers, lower main subcarriers, upper backup subcarriers, lower backup subcarriers, and tertiary subcarriers, with the power spectral density of each of the upper main subcarriers, lower main subcarriers, upper backup subcarriers, lower backup subcarriers, being at least 40 dBc below the power spectral density of an analog modulated carrier in the same channel as the subcarriers, and the power spectral density of each of the tertiary subcarriers, being at least 50 dBc below the power spectral density of the analog modulated carrier.

12. The transmitter of claim 11 , wherein the subcarriers further include timing subcarriers and integrated digital service subcarriers; and

each of the subcarriers is located at one of a plurality of evenly spaced frequency locations, with the timing subcarriers being at locations + 1 and − 1 , the upper tertiary subcarriers being at locations + 2 through + 26 , the lower tertiary subcarriers being at locations − 2 through − 26 , the upper main subcarriers being at locations + 28 through + 52 , the lower main subcarriers being at locations − 28 through − 52 , the upper backup subcarriers being at locations + 54 through + 78 , the lower backup subcarriers being at locations − 54 through − 78 , and the integrated digital service subcarriers being at locations + 27 , + 53 , − 27 and − 53 .

13. The transmitter of claim 11 , wherein the subcarriers further include timing subcarriers and integrated digital service subcarriers; and

each of the subcarriers is located at one of a plurality of evenly spaced frequency locations, with the timing subcarriers being at locations + 1 and − 1 , the upper tertiary subcarriers being at locations + 2 through + 26 , the lower tertiary subcarriers being at locations − 2 through − 26 , the upper main subcarriers being at locations + 28 through + 52 , the lower main subcarriers being at locations − 28 through − 52 , the upper backup subcarriers being at locations + 54 through + 73 , the lower backup subcarriers being at locations − 54 through − 73 , and the integrated digital service subcarriers being at locations + 27 , + 53 , − 27 and − 53 .

14. The transmitter of claim 11 , wherein the subcarriers further include timing subcarriers and integrated digital service subcarriers; and

each of the subcarriers is located at one of a plurality of evenly spaced frequency locations, with the timing subcarriers being at locations + 1 and − 1 , the upper tertiary subcarriers being at locations + 2 through + 26 , the lower tertiary subcarriers being at locations − 2 through − 26 , the upper main subcarriers being at locations + 28 through + 52 , the lower main subcarriers being at locations − 28 through − 52 , the upper backup subcarriers being at locations + 57 through + 81 , the lower backup subcarriers being at locations − 57 through − 81 , and the integrated digital service subcarriers being at locations + 27 , + 53 , − 27 and − 53 .

Assignments (9)
PARTIAL RELEASE OF SECURITY INTEREST IN PATENTS Recorded Oct 27, 2022
From: BANK OF AMERICA, N.A., AS COLLATERAL AGENT
To: VEVEO LLC (F.K.A. VEVEO, INC.); DTS, INC.; PHORUS, INC.; IBIQUITY DIGITAL CORPORATION
Reel/Frame 061786/0675 →
RELEASE OF SECURITY INTEREST Recorded Jun 11, 2020
From: ROYAL BANK OF CANADA
To: TESSERA, INC.; INVENSAS BONDING TECHNOLOGIES, INC. (F/K/A ZIPTRONIX, INC.); FOTONATION CORPORATION (F/K/A DIGITALOPTICS CORPORATION AND F/K/A DIGITALOPTICS CORPORATION MEMS); INVENSAS CORPORATION; TESSERA ADVANCED TECHNOLOGIES, INC; DTS, INC.; DTS LLC; PHORUS, INC.; IBIQUITY DIGITAL CORPORATION
Reel/Frame 052920/0001 →
SECURITY INTEREST Recorded Jun 1, 2020
From: ROVI SOLUTIONS CORPORATION; ROVI TECHNOLOGIES CORPORATION; ROVI GUIDES, INC.; TIVO SOLUTIONS INC.; VEVEO, INC.; INVENSAS CORPORATION; INVENSAS BONDING TECHNOLOGIES, INC.; TESSERA, INC.; TESSERA ADVANCED TECHNOLOGIES, INC.; DTS, INC.; PHORUS, INC.; IBIQUITY DIGITAL CORPORATION
To: BANK OF AMERICA, N.A.
Reel/Frame 053468/0001 →
RELEASE OF SECURITY INTEREST Recorded Dec 6, 2016
From: WELLS FARGO BANK, NATIONAL ASSOCIATION
To: IBIQUITY DIGITAL CORPORATION
Reel/Frame 040821/0108 →
SECURITY INTEREST Recorded Dec 2, 2016
From: INVENSAS CORPORATION; TESSERA, INC.; TESSERA ADVANCED TECHNOLOGIES, INC.; ZIPTRONIX, INC.; DIGITALOPTICS CORPORATION; DIGITALOPTICS CORPORATION MEMS; DTS, LLC; DTS, INC.; PHORUS, INC.; IBIQUITY DIGITAL CORPORATION
To: ROYAL BANK OF CANADA, AS COLLATERAL AGENT
Reel/Frame 040797/0001 →
SECURITY INTEREST Recorded Nov 9, 2015
From: IBIQUITY DIGITAL CORPORATION
To: WELLS FARGO BANK, NATIONAL ASSOCIATION, AS ADMINISTRATIVE AGENT
Reel/Frame 037069/0153 →
RELEASE OF SECURITY INTEREST Recorded Oct 9, 2015
From: MERRILL LYNCH CREDIT PRODUCTS, LLC
To: IBIQUITY DIGITAL CORPORATION
Reel/Frame 036877/0146 →
SECURITY INTEREST Recorded Jun 9, 2011
From: IBIQUITY DIGITAL CORPORATION
To: MERRILL LYNCH CREDIT PRODUCTS, LLC
Reel/Frame 026423/0250 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 12, 2010
From: KROEGER, BRIAN WILLIAM
To: IBIQUITY DIGITAL CORPORATION
Reel/Frame 023762/0946 →