IP Library Granted Patent US 8,630,578
Granted Patent B2
US 8,630,578 · App. 13/539,948 · Granted Jan 14, 2014

Methods and apparatus for interoperable satellite radio receivers

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Quick Facts
Patent No.
US 8,630,578
App. No.
13/539,948
Granted
Jan 14, 2014
Kind
B2
Abstract

Methods and apparatus are presented to allow one receiver architecture to be used for the reception of two different SDARS signals. Common receiver functions can be utilized to process each signal, thereby obviating the need to duplicate hardware elements. For example, it can be assumed that both signals will not be received at the same time, thus allowing for considerable hardware reuse and lowering the cost of an interoperable receiver.

Claims (49)

1. A satellite radio receiver capable of receiving broadcasts from different satellite radio services, comprising:

a common S-band antenna and analog tuner;

a common A/D converter;

partially shared TDM signal processing, said shared TDM signal processing including at least one of:

(i) storing two sets of channel isolation filtering co-efficients in a ROM table and selected based upon which satellite service is then active; and

utilizing a single channel isolation filter to accommodate both satellite services, tuned to the service with larger TDM bandwidth, and

(ii) storing two sets of matched filter coefficients in hardware and selected based upon which satellite service is then active; and

utilizing a single matched filter to accommodate both satellite services, tuned either to one of the satellite services or designed to split the difference between the two;

and partially shared COFDM processing;

wherein a common microprocessor is used to control tuner/baseband chip functionality and to perform audio decoding.

2. The receiver of claim 1 , wherein the two SDARS signals are those broadcast by Sirius Satellite Radio and XM Satellite Radio.

3. The receiver of claim 2 , wherein all methods used to decode the Sirius COFDM signal can also be applied to the XM COFDM signal, thus resulting in interoperability of a COFDM receiver across the two SDARS formats.

4. The receiver of claim 2 , wherein said partially shared COFDM signal processing is performed without using the XM AMSS signal.

5. The receiver of claim 2 , said XM service comprising two COFDM ensembles, wherein: each of the synchronization functions performed in the Sirius COFDM receiver can also be used with respect to the XM system; the XM AMSS need not be used, and thus an identical receiver can be used to process both COFDM signals; and the two XM ensemble streams are translated to a correct offset, and one large FFT is used to perform demodulation of both XM COFDM ensembles.

6. The receiver of claim 1 , further comprising a second S-band antenna and analog tuner.

7. The receiver of claim 6 , wherein the second S-band antenna and analog tuner can be utilized as an optional diversity path.

8. The receiver of claim 1 , wherein each satellite signal is first fed to a front end tuner, is then mixed down to a common IF frequency, and is then filtered by a common SAW filter.

9. The receiver of claim 1 , further comprising four TDM demodulators, wherein all four are used for demodulating a TDM signal from a first SDARS transmission, and two of are used for demodulating a TDM signal from a second SOARS transmission.

10. The receiver of claim 9 , wherein the first SDARS transmission is an XM transmission and wherein the second SDARS transmission is a Sirius transmission.

11. The receiver of claim 10 , wherein when receiving a Sirius SDARS transmission the remaining two TDM demodulators can be used as a diversity receiver.

12. The receiver of claim 1 , further comprising a COFDM demodulator for demodulating a COFDM signal from a first SDARS transmission and one COFDM demodulator for demodulating a COFDM signal from a second SDARS transmission.

13. The receiver of claim 12 , wherein when receiving a Sirius SDARS transmission one of the two COFDM demodulators can be used as a diversity receiver.

14. The receiver of claim 1 , further comprising a common RS decoder with programmable block size.

15. The receiver of claim 1 , further comprising a common programmable convolutional decoder, arranged to support the rates of each satellite service's transmission(s).

16. The receiver of claim 1 , further comprising at least one of:

a baseband chip run by a common crystal, at an overclocking rate that is satisfactory for both satellite systems;

a common external SDRAM; and

common shared external flash memory.

17. The receiver of claim 1 , wherein the microprocessor is loaded with independent audio decompression software sufficient to decode each satellite transmission.

18. The receiver of claim 1 , further comprising at least one of: one or more common stereo DACs; a common audio interpolator block; and a common FM modulator unit.

19. The receiver of claim 1 , wherein said partially shared TDM signal processing comprises fixing a correlation to the longer fast synchronization preamble of the two satellite services, storing two reference sequences in hardware and selecting a reference sequence based on which service is then active, and zero padding the shorter reference sequence to limit its contribution to the correlation output to only symbols of interest.

20. The receiver of claim 1 , wherein said partially shared COFDM signal processing comprises using identical processing blocks to achieve all required synchronization.

21. A satellite radio receiver capable of receiving broadcasts from different satellite radio services, comprising:

a common S-band antenna and analog tuner;

a common A/D converter;

partially shared TDM signal processing; and

partially shared COFDM processing;

wherein a common microprocessor is used to control tuner/baseband chip functionality and to perform audio decoding, and

wherein said partially shared TDM signal processing comprises fixing a correlation to the longer fast synchronization preamble of the two satellite services, storing two reference sequences in hardware and selecting a reference sequence based on which service is then active, and zero padding the shorter reference sequence to limit its contribution to the correlation output to only symbols of interest.

22. The receiver of claim 21 , wherein the two SDARS signals are those broadcast by Sirius Satellite Radio and XM Satellite Radio.

23. The receiver of claim 21 , further comprising one of (i) a second S-band antenna and analog tuner, and (ii) a second S-band antenna and analog tuner, wherein the second S-band antenna and analog tuner can be utilized as an optional diversity path.

24. A satellite radio receiver capable of receiving broadcasts from different satellite radio services, comprising:

a common S-band antenna and analog tuner;

a common A/D converter;

partially shared TDM signal processing; and

partially shared COFDM processing; and

four TDM demodulators, wherein all four are used for demodulating a TDM signal from a first SDARS transmission, and two of are used for demodulating a TDM signal from a second SDARS transmission,

wherein a common microprocessor is used to control tuner/baseband chip functionality and to perform audio decoding.

25. The receiver of claim 24 , wherein the second SDARS transmissions is a Sirius transmission, and two TDM demodulators can be used as a diversity receiver.

Assignments (4)
RELEASE OF SECURITY INTEREST Recorded Sep 1, 2017
From: U.S. BANK NATIONAL ASSOCIATION
To: SIRIUS XM RADIO INC.; SIRIUS XM CONNECTED VEHICLE SERVICES INC.
Reel/Frame 043747/0091 →
PATENT SECURITY AGREEMENT Recorded Apr 11, 2014
From: SIRIUS XM RADIO INC.; SIRIUS XM CONNECTED VEHICLE SERVICES INC.
To: U.S. BANK NATIONAL ASSOCIATION
Reel/Frame 032660/0603 →
CHANGE OF NAME Recorded Jan 17, 2013
From: SIRIUS SATELLITE RADIO INC.
To: SIRIUS XM RADIO INC.
Reel/Frame 029651/0835 →
SECURITY AGREEMENT Recorded Dec 5, 2012
From: SIRIUS XM RADIO INC.
To: JPMORGAN CHASE BANK, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 029408/0767 →