IP Library Granted Patent US 11,483,066
Granted Patent B2
US 11,483,066 · App. 16/578,391 · Granted Oct 25, 2022

Frequency division multiple access optical subcarriers

Inventors: Jeffrey T. Rahn (Sunnyvale, CA); Kuang-Tsan Wu (Kanata, CA); Steven J Hand (Los Gatos, CA); David F. Welch (Atherton, CA)
Assignee: Infinera Corporation
H04B7/2656H04B10/0773H04B10/0793H04B10/25H04B10/25754H04B10/40H04B10/503H04B10/504H04B10/505H04B10/548H04B10/61H04B10/613H04B10/69H04J14/005H04J14/0298H04J14/08H04J15/00H04L1/0041H04L1/0045H04L1/0071H04L5/001H04Q11/0005H04Q11/0067H04Q2011/0015H04Q2011/0035H04Q2011/0079
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Quick Facts
Patent No.
US 11,483,066
App. No.
16/578,391
Granted
Oct 25, 2022
Kind
B2
Abstract

A network or system in which a hub or primary node may communicate with a plurality of leaf or secondary nodes. The hub node may operate or have a capacity greater than that of the leaf nodes. Accordingly, relatively inexpensive leaf nodes may be deployed to receive data carrying optical signals from, and supply data carrying optical signals to, the hub node. One or more connections may couple each leaf node to the hub node, whereby each connection may include one or more spans or segments of optical fibers, optical amplifiers, optical splitters/combiners, and optical add/drop multiplexer, for example. Optical subcarriers may be transmitted over such connections, each carrying a data stream. The subcarriers may be generated by a combination of a laser and a modulator, such that multiple lasers and modulators are not required, and costs may be reduced. As the bandwidth or capacity requirements of the leaf nodes change, the number of subcarriers, and thus the amount of data provided to each node, may be changed accordingly. Each subcarrier within a dedicated group of subcarriers may carry OAM or control channel information to a corresponding leaf node, and such information may be used by the leaf node to configure the leaf node to have a desired bandwidth or capacity.

Claims (23)

1. A transceiver, comprising:

a transmitter, including:

a laser that outputs light;

a processor circuit that is operable to receive data and provides a first plurality of electrical signals based on the data;

a plurality of digital-to-analog conversion circuits that are operable to provide a second plurality of electrical signals based on the first plurality of electrical signals;

a plurality of driver circuits that are operable to provide a third plurality of electrical signals based on the second plurality of electrical signals; and

a modulator that is operable to modulate the light to provide a first plurality of optical subcarriers based on the third plurality of electrical signals, each of the first plurality of subcarriers including an in-phase component and a quadrature component; and

a receiver that is operable to receive a second plurality of subcarriers at an optical input of the receiver, the transmitter being operable to supply a first number of the first plurality of optical subcarriers based on first control data received at the optical input of the receiver, and the transmitter being operable to supply a second number of the first plurality of optical subcarriers based on second control data received at the optical input, wherein the first control data is indicative of the first number of the first plurality of optical subcarriers transmitted from the modulator and the second control data is indicative of the second number of the first plurality of optical subcarriers transmitted from the modulator.

2. A transceiver in accordance with claim 1 , wherein each of the first plurality of optical subcarriers and each of the second plurality of optical subcarriers is a Nyquist subcarrier.

3. A method, comprising:

receiving a first plurality of optical subcarriers at an optical input;

receiving first control data at the optical input;

receiving second control data at the optical input;

generating a second plurality of optical subcarriers, a number of the second plurality of optical subcarriers being based on the first control data, such that the first control data is indicative of the number of the second plurality of subcarriers to be transmitted;

generating a third plurality of optical subcarriers, a number of the third plurality of optical subcarriers being based on the second control data, such that the second control data is indicative of the number of the third plurality of optical subcarriers to be transmitted; and

transmitting the second plurality of subcarriers from an optical output.

4. The method in accordance with claim 3 , wherein each of the first plurality of optical subcarriers and each of the second plurality of optical subcarriers is a Nyquist subcarrier.

5. The method in accordance with claim 3 , wherein a number of the first plurality of optical subcarriers is different than the number of the second plurality of optical subcarriers.

6. The method in accordance with claim 3 , further comprising:

generating an optical signal;

receiving data and generating a plurality of digital signals based on the received data;

generating a plurality of analog signals based on the plurality of digital signals; and

modulating the optical signal to provide the second plurality of optical subcarriers based on the analog signals.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 12, 2022
From: HAND, STEVEN J.
To: INFINERA CORPORATION
Reel/Frame 058626/0017 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 11, 2022
From: WELCH, DAVID F.
To: INFINERA CORPORATION
Reel/Frame 058613/0466 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 4, 2022
From: WU, KUANG-TSAN
To: INFINERA CORPORATION
Reel/Frame 058532/0828 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 10, 2021
From: RAHN, JEFFREY T.
To: INFINERA CORPORATION
Reel/Frame 058354/0682 →
Continuity (2)
Provisional Application 62813151 · Mar 4, 2019
Related Publication 20200413169A1 · Dec 31, 2020