IP Library Granted Patent US 7,672,219
Granted Patent B2
US 7,672,219 · App. 11/671,786 · Granted Mar 2, 2010

Multipoint-to-point communication using orthogonal frequency division multiplexing

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Quick Facts
Patent No.
US 7,672,219
App. No.
11/671,786
Granted
Mar 2, 2010
Kind
B2
Abstract

A bidirectional communication system is provided. The system includes a first remote unit for communicating with a host unit using orthogonal frequency division multiplexing. The host unit is communicatively coupled to a plurality of remote units in a multipoint-to-point configuration. The first remote unit is configured to transmit up to a plurality of tones and the first remote unit includes a modulator for modulating the plurality of tones with upstream information using orthogonal frequency division multiplexing such that when any tones are transmitted from the first remote unit and at least one other remote unit of the plurality of remote units, the tones are substantially orthogonal when received at the host unit.

Claims (29)

1. A remote communication device for operation in a bidirectional communication system, the device comprising:

at least one symbol mapper for mapping symbols using quadrature amplitude modulation (QAM) symbol mapping and phase-shift keying (PSK) symbol mapping;

a Fast Fourier Transform (FFT) engine that receives a frame of parallel data based on symbol data generated by the symbol mapper, the Fast Fourier Transform (FFT) engine generating a frame of time domain in-phase and quadrature phase data from the symbol data generated by the symbol mapper;

at least one converter generating an analog signal based on the stream of time domain in-phase and quadrature phase data;

a radio frequency transmitter for transmitting a radio frequency signal based on the analog signal; and

a processor, wherein the symbol mapper is responsive to the processor, and the processor controls synchronization of symbol timing and carrier frequency of transmissions from the radio frequency transmitter.

2. The remote communication device of claim 1 , wherein the radio frequency transmitter modulates a carrier frequency with the at least one analog signal.

3. The remote communication device of claim 1 , further comprising:

a buffer receiving symbols of both payload and control data from the at least one symbol mapper.

4. The remote communication device of claim 1 , wherein the at least one converter comprises at least one digital to analog converter (DAC) receiving the time domain in-phase and quadrature phase data and generating at least one analog signal based on the stream of time domain in-phase and quadrature phase data.

5. The remote communication device of claim 1 , wherein the at least one symbol mapper comprises a binary phase-shift keying (BPSK) symbol mapper.

6. A remote communication device for a bi-directional communication system, the device comprising:

a modem that includes:

a symbol mapper that produces at least one stream of symbols;

a Fast Fourier Transform (FFT) engine that receives a frame of parallel data based on symbol data generated by the symbol mapper, the Fast Fourier Transform (FFT) engine generating a frame of time domain in-phase and quadrature phase samples from the symbol data generated by the symbol mapper;

at least one converter receiving the time domain in-phase and quadrature phase samples and generating an analog signal based on the time domain samples; and

an amplifier that amplifies for transmission a radio frequency carrier carrying the at least one analog signal; and

a processor that synchronizes the transmissions from the amplifier for combining with other signals.

7. The remote communication device of claim 6 , wherein the processor adjusts symbol timing.

8. The remote communication device of claim 7 , wherein the processor adjusts transmission characteristics align symbols received at a host unit within a guard interval.

9. A remote communication device, the device comprising:

a symbol mapper that produces at least one stream of symbols;

a Fast Fourier Transform (FFT) engine that receives a frame of parallel data based on symbol data generated by the symbol mapper, the Fast Fourier Transform (FFT) engine generating a frame of time domain in-phase and quadrature phase samples from the symbol data generated by the symbol mapper;

at least one converter receiving the time domain in-phase and quadrature phase samples and generating an analog signal based on the time domain samples; and

an amplifier that amplifies for transmission a radio frequency carrier carrying the at least one analog signal;

a processor that causes transmissions from the amplifier to be orthogonal when received at a multipoint-to-point host unit.

10. The remote communication device of claim 9 , further comprising a buffer between the symbol mapper and the inverse Fast Fourier Transform engine, the buffer receiving symbol data produced by the symbol mapper and storing the symbol data in parallel within a frame.

11. The remote communication device of claim 9 , wherein the FFT engine performs an inverse Fast Fourier Transform on the frame of parallel data to produce the time domain samples.

12. The remote communication device of claim 9 , wherein the processor causes the transmissions to be orthogonal with respect to other signals when received at the multipoint-to-point host unit.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 3, 2011
From: ADC TELECOMMUNICATIONS, INC.
To: HTC CORPORATION
Reel/Frame 026390/0167 →
CORRECTIVE ASSIGNMENT TO CORRECT THE INVENTOR NAME THOMAS G. TUCKER AND EXECUTION DATE OF JOE HALL 01/31/1997 PREVIOUSLY RECORDED ON REEL 022071 FRAME 0467. ASSIGNOR(S) HEREBY CONFIRMS THE THOMAS C. TUCKER JOE HALL'S EXECUTION DATE: 01/21/1997. Recorded May 22, 2009
From: DAPPER, MARK J.; GEILE, MICHAEL J.; HILL, TERRANCE J.; ROBERTS, HAROLD A.; ANDERSON, BRIAN D.; BREDE, JEFFREY; WADMAN, MARK S.; KIRSCHT, ROBERT J.; HERRMANN, JAMES J.; FORT, MICHAEL J.; BUSKA, STEVEN P.; SOLUM, JEFF; ENFIELD, DEBRA LEA; BERG, DARRELL; SMIGELSKI, THOMAS; TUCKER, THOMAS C.; HALL, JOE; LOGAJAN, JOHN M.; BOUALOUANG, SOMVAY; LOU, HENG; ELPERS, MARK D.; DOWNS, MATT; FERRIS, TAMMY; OPOCZYNSKI, ADAM; RUSSELL, DAVID S.; NELSON, CALVIN G.; SAMANT, NIRANJAN R.; CHIAPPETTA, JOSEPH F.; SARNIKOWSKI, SCOTT
To: ADC TELECOMMUNICATIONS, INC.
Reel/Frame 022729/0029 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 8, 2009
From: DAPPER, MARK J.; GEILE, MICHAEL J.; HILL, TERRANCE J.; ROBERTS, HAROLD A.; ANDERSON, BRIAN D.; BREDE, JEFFREY; WADMAN, MARK S.; KIRSCHT, ROBERT J.; HERRMANN, JAMES J.; FORT, MICHAEL J.; BUSKA, STEVEN P.; SOLUM, JEFF; ENFIELD, DEBRA LEA; BERG, DARRELL; SMIGELSKI, THOMAS; TUCKER, THOMAS G.; HALL, JOE; LOGAJAN, JOHN M.; BOUALOUANG, SOMVAY; LOU, HENG; ELPERS, MARK D.; DOWNS, MATT; FERRIS, TAMMY; OPOCZYNSKI, ADAM; RUSSELL, DAVID S.; NELSON, CALVIN G.; SAMANT, NIRANJAN R.; CHIAPPETTA, JOSEPH F.; SARNIKOWSKI, SCOTT
To: ADC TELECOMMUNICATIONS, INC.
Reel/Frame 022071/0467 →