Claims
- 1. A wireless communication device in an orthogonal frequency-division multiplexing system employing multiple-branch transmitter diversity, the transmitter comprising:
a serial-to-parallel converter adapted to receive a serial digital input, the serial-to-parallel converter further adapted to convert the serial digital input into a frequency-domain parallel data block; an inverse Fourier transform circuit adapted to receive the frequency-domain parallel data block, the inverse Fourier transform circuit adapted to perform an inverse Fourier transform on the frequency-domain parallel data block to produce a time-domain parallel data block; a parallel-to-serial converter adapted to receive the time-domain parallel data block, the parallel-to-serial converter further adapted to convert the time-domain parallel data block into a serial time-domain signal; a space-time block-code encoder having a first output port and a second output port, the space-time block-code encoder adapted to receive the serial time-domain signal, the space-time block-code encoder further adapted to convert the serial time domain signal to pairs of signals for transmission such that the signals are:
x2n−1 at the first output port for each odd-indexed data block; x2n at the second output port for each odd-indexed data block; −x′2n at the first output port for each even-indexed data block; and x′2n−1 at the second output port for each even-indexed data block; a first cyclic prefix adder adapted to add a cyclic prefix to the signal at the first output port to produce a first prefixed signal; a second cyclic prefix adder adapted to add a cyclic prefix to the signal at the second output port to produce a second prefixed signal; a first digital-to-analog converter adapted to convert the first prefixed signal to a first analog signal; a second digital-to-analog converter adapted to convert the second prefixed signal to a second analog signal; a first transmitter adapted to transmit the first analog signal; and a second transmitter adapted to transmit the second analog signal at substantially the same time as the transmission of the first analog signal.
- 2. A wireless communication device comprising:
an inverse Fourier transform (IFT) circuit adapted to perform an IFT on a data block to produce an inverse-Fourier-transformed data block, the inverse-Fourier-transformed data block having x2n−1 data and x2n data; and a space-time block-code (STBC) encoder adapted to convert the inverse-Fourier-transformed data block into pairs of signals for transmission through two channels hA and hB, such that the signals are:
x2n−1 for the first signal to be transmitted on channel hA; x2n for the first signal to be transmitted on channel hB;
−x′2n for the second signal to be transmitted on channel hA; and x′2n−1 for the second signal to be transmitted on channel hB.
- 3. The wireless communication device of claim 2, wherein the STBC encoder comprises circular-shift operation logic adapted to perform a circular shift operation, the circular-shift operation logic further adapted to generate −x′2n from x2n, the circular-shift operation logic further adapted to generate x′2n−1 from x2n−1.
- 4. The wireless communication device of claim 2, further comprising a first cyclic-prefix adder adapted to generate a first cyclic prefix, the first cyclic prefix adder further adapted to concatenate the first cyclic prefix to x2n−1.
- 5. The wireless communication device of claim 2, further comprising a first cyclic-prefix adder adapted to generate a first cyclic prefix, the first cyclic prefix adder further adapted to concatenate the first cyclic prefix to −x′2n.
- 6. The wireless communication device of claim 2, further comprising a second cyclic-prefix adder adapted to generate a second cyclic prefix, the second cyclic prefix adder further adapted to concatenate the second cyclic prefix to x2n.
- 7. The wireless communication device of claim 2, further comprising a second cyclic-prefix adder adapted to generate a second cyclic prefix, the second cyclic prefix adder further adapted to concatenate the second cyclic prefix to x′2n−1.
- 8. The wireless communication device of claim 2, wherein the IFT circuit is further adapted to perform an inverse discrete Fourier transform (IDFT) on the data block to produce an inverse-discrete-Fourier-transformed data block.
- 9. The wireless communication device of claim 2, wherein the IFT circuit is further adapted to perform an inverse fast Fourier transform (IFFT) on the data block to produce an inverse-fast-Fourier-transformed data block.
- 10. The wireless communication device of claim 2, wherein the IFT circuit is further adapted to perform a Fourier transform on the data block to produce a Fourier-transformed data block.
- 11. A transmitter comprising:
an inverse Fourier transform (IFT) circuit adapted to perform an IFT on a data block to produce an inverse-Fourier-transformed data block; and a space-time block-code (STBC) encoder adapted to encode the inverse-Fourier-transformed data block for transmission in a multiple-branch transmitter-diversity system.
- 12. The system of claim 11, wherein the STBC encoder comprises circular-shift operation logic adapted to perform a circular shift operation on the inverse-Fourier-transformed data block.
- 13. The system of claim 11, wherein the STBC encoder is further adapted to encode the inverse-Fourier-transformed data block using a STBC algorithm.
- 14. The system of claim 11, further comprising a wireless communication device, the wireless communication device adapted to house the transmitter.
- 15. In a wireless OFDM communication device employing multiple-branch transmitter diversity, a method comprising:
performing an inverse Fourier transform on a data block to produce an inverse-Fourier-transformed data block; and encoding the inverse-Fourier-transformed data block for transmission in a multiple-branch transmitter-diversity system.
- 16. The method of claim 15, wherein the encoding further comprises:
encoding the inverse-Fourier-transformed data block using a space-time block-code algorithm.
- 17. The method of claim 15, further comprising:
performing a circular shift operation on the inverse-Fourier-transformed data block.
- 18. A wireless OFDM communication device employing multiple-branch transmitter diversity, the wireless communication device comprising:
means for performing an inverse Fourier transform on a data block to produce an inverse-Fourier-transformed data block; and means for encoding the inverse-Fourier-transformed data block for transmission in a multiple-branch transmitter-diversity system.
- 19. The wireless communication device of claim 18, further comprising:
means for encoding the inverse-Fourier-transformed data block using a space-time block-code algorithm.
- 20. The wireless communication device of claim 18, further comprising:
means for performing a circular shift operation on the inverse-Fourier-transformed data block.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. provisional patent application serial No. 60/400,888, entitled “System implementation of space-time-block-coded OFDM,” filed on Aug. 1, 2002, which is incorporated herein by reference in its entirety.
Provisional Applications (1)
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Number |
Date |
Country |
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60400888 |
Aug 2002 |
US |