IP Library Granted Patent US 12,181,713
Granted Patent B2
US 12,181,713 · App. 18/466,507 · Granted Dec 31, 2024

Secured fiber link system

Inventor: Gary M. Weiner (Bedminster, NJ)
Assignee: APRIORI NETWORK SYSTEMS, LLC.
G02B6/29385H04B10/0795H04B10/25H04B10/85H04J14/0227H04J14/04
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Quick Facts
Patent No.
US 12,181,713
App. No.
18/466,507
Granted
Dec 31, 2024
Kind
B2
Abstract

A method for securing communication over an optical fiber, comprising: supplying an optically modulated version of a desired sequence of information that is intended to be transferred over a multicore optical fiber to a first core of the multicore optical fiber; and supplying an unmodulated optical chaff signal to a second core of the multicore optical fiber that is spatially distinct from the first core; wherein the fiber is adapted to transport the optical chaff signal from a first end thereof to a second end thereof unmodified in the second core; and wherein the fiber is adapted to transport the optically modulated version of a desired sequence of information from the first end of the fiber to the second end of the fiber unmodified in the first core and independent of the chaff signal in the second core unless there is a tap of the fiber.

Claims (40)

1. A method for securing communication over an optical fiber, comprising:

supplying an optically modulated version of a desired sequence of information that is intended to be transferred over a multicore optical fiber to a first core of the multicore optical fiber; and

supplying an unmodulated optical chaff signal to a second core of the multicore optical fiber that is spatially distinct from the first core;

wherein the multicore optical fiber is adapted to transport the unmodulated optical chaff signal from a first end of the multicore optical fiber to a second end of the multicore optical fiber unmodified in the second core;

wherein the multicore optical fiber is adapted to transport the optically modulated version of the desired sequence of information from the first end of the multicore optical fiber to the second end of the multicore optical fiber unmodified in the first core and independent of the unmodulated optical chaff signal in the second core unless there is a tap of the multicore optical fiber; and

supplying a second unmodulated optical chaff signal to a third core of the multicore optical fiber that is spatially distinct from each of the first core and the second core, wherein the unmodulated optical chaff signal and the second unmodulated optical chaff signal are both derived from an output of a single optical amplifier.

2. The method of claim 1 , wherein the unmodulated optical chaff signal occupies substantially a same bandwidth as the optically modulated version of the desired sequence of information.

3. The method of claim 1 , further comprising:

operating an optical amplifier to generate the unmodulated optical chaff signal by amplified spontaneous emission, wherein the unmodulated optical chaff signal is based on the amplified spontaneous emission (ASE).

4. The method of claim 1 , wherein optical power of the unmodulated optical chaff signal when supplied to its optical path is such that at a tap at any point along the multicore optical fiber a signal representing the optically modulated version of the desired sequence of information that is sufficiently strong to enable determination therefrom of the desired sequence of information cannot be obtained due to interference caused by the resultant presence of the unmodulated optical chaff signal at the tap point.

5. The method of claim 1 , further comprising:

determining, at the second end of the multicore optical fiber which is opposite from the first end at which the unmodulated optical chaff signal and the optically modulated version of the desired sequence of information are each supplied, if there is a tap on the optical fiber based on a power of the unmodulated optical chaff signal and a power of the optically modulated version of a desired sequence of information.

6. The method of claim 1 , further comprising:

filtering an amplified spontaneous emission (ASE) to produce an output that occupies substantially a same optical frequency range as the optically modulated version of the desired sequence of information, the output being the unmodulated optical chaff signal.

7. The method of claim 1 , further comprising:

at the second end of the multicore optical fiber, redirecting, by a light signal redirector, the unmodulated optical chaff signal to travel back toward the first end of the multicore optical fiber to which the unmodulated optical chaff signal and the optically modulated version of a desired sequence of information are each supplied.

8. The method of claim 1 , wherein the unmodulated optical chaff signal and the second unmodulated optical chaff signal are incoherent with respect to each other.

9. The method of claim 1 , wherein the unmodulated optical chaff signal and the second unmodulated optical chaff signal are both versions of the output of the optical amplifier but wherein each is temporally delayed relative to each other.

10. The method of claim 1 , further comprising:

converting the unmodulated optical chaff signal into electrical energy at the second end of the multicore optical fiber.

11. The method of claim 10 , further comprising:

powering a receiver for detecting the desired sequence of information in the optically modulated version of a desired sequence of information using the electrical energy.

12. The method of claim 1 , wherein an optical power of the unmodulated optical chaff signal within an optical frequency range substantially occupied by the optically modulated version of a desired sequence of information is such that a ratio of an optical power of the optically modulated version of the desired sequence of information power to an optical power of the unmodulated optical chaff signal power that is couplable out of the multicore optical fiber at a tap formed therein at any location along the multicore optical fiber is smaller than a required signal-to-noise ratio to achieve error-free detection of the desired sequence of information by a receiver at a location of the tap.

13. The method of claim 1 , wherein an optical power of the unmodulated optical chaff signal within an optical frequency range substantially occupied by the optically modulated version of a desired sequence of information is such that a ratio of an optical power of the optically modulated version of the desired sequence of information power to an optical power of the unmodulated optical chaff signal power that is couplable out of the optical multicore fiber at a tap formed therein at any location along the multicore optical fiber is smaller than a theoretical minimum signal-to-noise ratio to achieve error-free of the desired sequence of information by a receiver at a location of the tap.

14. A method for securing communication over an optical fiber, comprising:

supplying an optically modulated version of a desired sequence of information that is intended to be transferred over a multicore optical fiber to a first core of the multicore optical fiber; and

supplying an unmodulated optical chaff signal to a second core of the multicore optical fiber that is spatially distinct from the first core;

wherein the multicore optical fiber is adapted to transport the unmodulated optical chaff signal from a first end of the multicore optical fiber to a second end of the multicore optical fiber unmodified in the second core;

wherein the multicore optical fiber is adapted to transport the optically modulated version of the desired sequence of information from the first end of the multicore optical fiber to the second end of the multicore optical fiber unmodified in the first core and independent of the unmodulated optical chaff signal in the second core unless there is a tap of the multicore optical fiber;

wherein at a tap formed at any location along the multicore optical fiber a signal-to-noise ratio is less than a required signal-to-noise ratio for a receiver at the tap location to achieve substantially error-free recovery of the desired sequence of information,

wherein noise in the signal-to-noise ratio is a combination of optical power, within an optical frequency range substantially occupied by the optically modulated version of the desired sequence of information, of the unmodulated optical chaff signal and any other one or more optical chaff signals that are coupled to any further cores of the multicore optical fiber beyond the first and second core; and

wherein signal in the signal-to-noise ratio is an optical power of the optically modulated version of the desired sequence of information.

15. A method for securing communication over an optical fiber, comprising:

supplying an optically modulated version of a desired sequence of information that is intended to be transferred over a multicore optical fiber to a first core of the multicore optical fiber; and

supplying an unmodulated optical chaff signal to a second core of the multicore optical fiber that is spatially distinct from the first core;

wherein the multicore optical fiber is adapted to transport the unmodulated optical chaff signal from a first end of the multicore optical fiber to a second end of the multicore optical fiber unmodified in the second core;

wherein the multicore optical fiber is adapted to transport the optically modulated version of the desired sequence of information from the first end of the multicore optical fiber to the second end of the multicore optical fiber unmodified in the first core and independent of the unmodulated optical chaff signal in the second core unless there is a tap of the multicore optical fiber;

wherein at a tap formed at any location along the multicore optical fiber a signal-to-noise ratio is less than a theoretically minimum required signal-to-noise ratio for any receiver at the tap location to achieve substantially error-free recovery of the desired sequence of information,

wherein noise in the signal-to-noise ratio is a combination of optical power, within an optical frequency range substantially occupied by the optically modulated version of the desired sequence of information, of the unmodulated optical chaff signal and any other one or more optical chaff signals that are coupled to any further cores of the multicore optical fiber beyond the first and second core; and

wherein signal in the signal-to-noise ratio is an optical power of the optically modulated version of the desired sequence of information.

Continuity (9)
Continuation 16891549 · Jun 3, 2020
Continuation In Part 16384360 · Apr 15, 2019
Continuation In Part 15822909 · Nov 27, 2017
Continuation 15435619 · Feb 17, 2017
Continuation In Part 15435619 · Feb 17, 2017
Provisional Application 62427186 · Nov 29, 2016
Provisional Application 62301892 · Mar 1, 2016
Provisional Application 62296897 · Feb 18, 2016
Related Publication 20240004139A1 · Jan 4, 2024