IP Library Granted Patent US 12,191,914
Granted Patent B2
US 12,191,914 · App. 17/807,373 · Granted Jan 7, 2025

Intra data center optical communication

Inventors: Or Vidal (Hod Hasharon, IL); Omri Levy (Hod Hasharon, IL); Nir Chen Sheffi (Hod Hasharon, IL)
Assignee: Solanium Labs Ltd.
H04B10/61H04B10/505H04L5/0048H04B10/25H04J14/02
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Quick Facts
Patent No.
US 12,191,914
App. No.
17/807,373
Granted
Jan 7, 2025
Kind
B2
Abstract

A system, a non-transitory computer readable media and a method for intra data center optical communication, the method may include (a) receiving an optical input signal by a coherent optical receiver of a second unit of a data center; wherein each input optical signal represents a transmitted optical signal that was transmitted by a coherent transmitter of a first unit of the data center; wherein the transmitted optical signal is generated by modulating a transmitter laser signal that is outputted from a laser of the coherent transmitter; (b) generating, by a controllable laser of the coherent optical receiver, a reference signal; wherein a frequency of the reference signal is controlled by a processor of the coherent optical receiver; and (c) recovering data embedded in the optical input signal; wherein the recovering of the data comprises optically processing the reference signal and the optical input signal.

Claims (29)

1. A non-transitory computer readable medium for intra data center optical communication, the non-transitory computer readable medium stores instructions for:

receiving an optical input signal by a coherent optical receiver of a second unit of a data center; wherein each input optical signal represents a transmitted optical signal that was transmitted by a coherent transmitter of a first unit of the data center; wherein the transmitted optical signal is generated by modulating a transmitter laser signal that is outputted from a laser of the coherent transmitter;

generating, by a controllable laser of the coherent optical receiver, a reference signal; wherein a frequency of the reference signal is controlled by a processor of the coherent optical receiver, while avoiding from requesting an absolute output frequency of the controllable laser, and independently from a control of the laser of the coherent transmitter;

estimating the frequency of the reference signal by applying a Viterbi-Viterbi fourth power estimator algorithm; and

recovering data embedded in the optical input signal; wherein the recovering of the data comprises optically processing the reference signal and the optical input signal.

2. The non-transitory computer readable medium according to claim 1 , that stores instructions for controlling a temperature of the controllable laser.

3. A network element, the network element comprises a coherent optical receiver, wherein the coherent optical receiver comprises:

an input that is configured to receive an optical input signal by a coherent optical receiver of a second unit of a data center; wherein the input optical

signal represents a transmitted optical signal that was transmitted by a coherent transmitter of the data center; wherein the transmitted optical signal is generated by modulating a transmitter laser signal that is outputted from a laser of the coherent transmitter;

a processor;

a controllable laser that is configured to generate a reference signal;

a processor that is configured to control a frequency of the reference signal independently from a control of the laser of the coherent transmitter;

optical circuitry that is configured to optically process the reference signal and the optical input signal; and

optical to digital conversion circuitry;

wherein the processor is also configured to recover data embedded in the optical input signal;

wherein the controllable laser has a frequency range that is (ii) narrower than a frequency range of a tunable laser, and (ii) limited to a frequency range of a single coarse wavelength division multiplexing (CWDM) link.

4. The network element according to claim 3 , wherein the controllable laser has a lower stability over temperature changes than a tunable laser.

5. The network element according to claim 3 , wherein the controllable laser has a lower stability over temperature changes than the a tunable laser.

6. The network element according to claim 3 , wherein the processor is configured to control a temperature of the controllable laser.

7. A network element, the network element comprises a coherent optical receiver, wherein the coherent optical receiver comprises:

an input that is configured to receive an optical input signal by a coherent optical receiver of a second unit of a data center; wherein the input optical

signal represents a transmitted optical signal that was transmitted by a coherent transmitter of the data center; wherein the transmitted optical signal is generated by modulating a transmitter laser signal that is outputted from a laser of the coherent transmitter;

a processor;

a controllable laser that is configured to generate a reference signal;

a processor that is configured to control a frequency of the reference signal independently from a control of the laser of the coherent transmitter;

optical circuitry that is configured to optically process the reference signal and the optical input signal; and

optical to digital conversion circuitry;

wherein the processor is also configured to recover data embedded in the optical input signal;

wherein the processor is configured to control the frequency of the reference signal while avoiding from requesting an absolute output frequency of the controllable laser.

Assignments (2)
CHANGE OF NAME Recorded Sep 21, 2025
From: SOLANIUM LABS LTD
To: ALPHAWAVE SEMI ISRAEL LTD
Reel/Frame 072957/0559 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 15, 2022
From: VIDAL, OR; LEVY, OMRI; SHEFI, NIR CHEN
To: SOLANIUM LABS LTD.
Reel/Frame 061784/0624 →
Continuity (3)
Continuation 17477518 · Sep 16, 2021
Provisional Application 63195089 · May 31, 2021
Related Publication 20220393770A1 · Dec 8, 2022
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