IP Library Granted Patent US 7,983,141
Granted Patent B2
US 7,983,141 · App. 11/678,845 · Granted Jul 19, 2011

Synchronized multipoint-to-point communication using orthogonal frequency division

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Quick Facts
Patent No.
US 7,983,141
App. No.
11/678,845
Granted
Jul 19, 2011
Kind
B2
Abstract

A multipoint-to-point, orthogonal frequency division multiplexed (OFDM) communication system is provided. The system includes a plurality of remote units and a host unit that includes a demodulator. Each of the remote units transmits an upstream OFDM signal using a multiple access scheme to the host unit demodulator using at least one of a plurality of orthogonal tones within an OFDM waveform. The host unit receives the upstream OFDM signals from a plurality of the remote units. Portions of upstream OFDM signals from at least two of the remote units arrive at the host unit at the same time. The host unit demodulator demodulates the portions and the upstream signals from the plurality of remote units arrive at the host unit synchronized in time and frequency within the OFDM waveform.

Claims (30)

1. A remote service unit for a multiple access OFDM communication system, the remote service unit comprising:

a transceiver for receiving an OFDM waveform, the OFDM waveform having references signals distributed throughout, the references signals for adjusting demodulation of the OFDM waveform;

an FFT engine coupled to the transceiver, the FFT engine producing frequency domain data samples representing information carried by the OFDM waveform;

an FFT engine coupled to the transceiver, the FFT engine producing time domain data samples representing upstream information for transmission by the transceiver on a subset of orthogonal carriers of the OFDM waveform;

a mapper that that receives payload data mapped onto an in-phase (I) and quadrature-phase (Q) constellation based on an output from the FFT engine, wherein the mapper maps said payload data into a at least one baseband payload signal; and

a controller that receives reference data based on at least one of the reference signals, wherein the controller makes adjustments for demodulating the payload data based on the reference data.

2. The remote service unit of claim 1 , wherein the subset of orthogonal carriers comprises less than all the OFDM waveform.

3. The remote service unit of claim 1 , wherein controller comprises an equalizer that performs an equalization of the payload data based on the reference data.

4. The remote service unit of claim 1 , wherein the controller adjusts the payload data based on an error determined from the reference data.

5. The remote service unit of claim 1 , wherein the controller adjust a transmission delay and a transmission frequency of upstream transmissions from the receiver to maintain carrier orthogonality within the OFDM waveform.

6. The remote service unit of claim 1 , wherein the OFDM waveform is a wireless waveform.

7. A remote service unit for a multiple access OFDM communication system, the remote service unit comprising:

a transceiver for receiving an OFDM waveform, the OFDM waveform having reference signals transmitted over a plurality of reference tones distributed within the OFDM waveform, the references signals for adjusting demodulation of the signals transmitted over the OFDM waveform;

an FFT engine communicatively coupled to the transceiver;

a mapper communicatively coupled to the FFT engine, the mapper using a constellation map to demodulate data from signals transmitted over the OFDM waveform; and

a controller that makes adjustments to the data demodulation based on the receipt of the reference signals;

wherein the transceiver transmits upstream OFDM signals using only a portion of the orthogonal tones within an upstream OFDM waveform based on an allocation of said portion received from a host unit.

8. The remote service unit of claim 7 , wherein the reference tones are always reference tones.

9. A remote service unit for a scalable multiple access OFDM communication system, the remote service unit comprising:

a multi-carrier modem for accessing an OFDM waveform having a first bandwidth, wherein the multi-carrier modem provides access to a subset of channels available in a second bandwidth of the OFDM waveform, wherein the second bandwidth is smaller than the first bandwidth;

an n-point FFT engine producing time domain samples of data for modulation onto OFDM carriers within the second bandwidth, the n-point FFT having a number of n-points selected for producing the time domain samples based on a size of the second bandwidth; and

a controller for controlling OFDM carrier spacing of the OFDM carriers modulated by the n-point FFT engine, wherein the controller maintains OFDM carrier spacing of the OFDM carriers modulated by the n-point FFT engine based on a carrier spacing criteria for the first bandwidth.

10. The remote service unit of claim 9 , wherein the controller adjusts OFDM carrier spacing of the OFDM carriers modulated by the n-point FFT engine based on instructions from a host unit that receives upstream communications from the remote services unit.

11. The remote service unit of claim 9 , wherein the OFDM waveform is a wireless waveform.

12. A remote service unit for a scalable multiple access OFDM communication system, the remote service unit comprising:

a multi-carrier modem for accessing an OFDM waveform having a first bandwidth, wherein the multi-carrier modem provides access to a subset of channels available in a second bandwidth of the OFDM waveform, wherein the second bandwidth is contained within the first bandwidth;

an n-point FFT engine producing time domain samples of data for modulation onto OFDM carriers within the second bandwidth, the n-point FFT having a number of n-points selected for producing the time domain samples based on a size of the second bandwidth; and

a controller for controlling OFDM carrier spacing of the OFDM carriers modulated by the n-point FFT engine, wherein the controller maintains OFDM carrier spacing of the OFDM carriers modulated by the n-point FFT engine based on a carrier spacing criteria for the first bandwidth.

13. The remote service unit of claim 12 , wherein the controller adjusts OFDM carrier spacing of the OFDM carriers modulated by the n-point FFT engine based on instructions from a host unit that receives upstream communications from the remote services unit.

14. The remote service unit of claim 12 , wherein the OFDM waveform is a wireless waveform.

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 →