IP Library Granted Patent US 7,171,072
Granted Patent B2
US 7,171,072 · App. 11/152,926 · Granted Jan 30, 2007

Fast optical switch

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Quick Facts
Patent No.
US 7,171,072
App. No.
11/152,926
Granted
Jan 30, 2007
Kind
B2
Abstract

A fast optical switch is needed to realize an economical and scaleable optical-core network. In the disclosed optical switch, switching is effected by rapid wavelength conversion. Either channel switching, Time Division Multiplex (TDM) switching or both may be provided by the fast optical switch. The operation of the fast optical switch is enabled by a fast scheduler. The throughput of the optical switch may be increased through a process of bimodal pipelined connection-packing. An in-band exchange of control signals with external nodes may serve to minimize the control overhead. Such control signals may include time-locking signals and connection-requests. A modular structure may be configured to comprise several fast optical switches to yield a high-speed, high-capacity, fully-connected optical switch.

Claims (39)

1. An optical switching node comprising:

a plurality of input demultiplexers, each of said plurality of input demultiplexers adapted to receive a multi-channel link and demultiplex said multi-channel link into a plurality of input wavelength channels;

a spectral-translation module adapted to receive said plurality of input wavelength channels and emit a plurality of internal optical signals;

a wavelength router; and

a plurality of star couplers, each of said plurality of star couplers including:

a plurality of input ports, each of said plurality of input ports adapted to receive a particular internal optical signal of said plurality of internal optical signals; and

an output port emitting a combined signal to said wavelength router, said combined signal including said particular internal optical signal received by each of said plurality of input ports;

wherein said spectral-translation module comprises a plurality of wavelength converters, each of said plurality of wavelength converters adapted to:

receive one of said plurality of input wavelength channels, where each of said plurality of input wavelength channels occupies a first wavelength band; and

translate said first wavelength band to a second wavelength band.

2. The optical switching node of claim 1 wherein said wavelength router comprises:

a plurality of output demultiplexers, each of said plurality of output demultiplexers adapted to:

receive said combined signal of one of said plurality of star couplers; and

demultiplex said combined signal into constituent internal optical signals;

a plurality of multiplexers, at least one of said plurality of multiplexers adapted to:

receive at least one of said constituent internal optical signals from at least one of said output dentultiplexers; and

multiplex said at least one of said constituent internal optical signals into a switching node output signal.

3. The optical switching node of claim 2 further comprising a node controller adapted to receive an electrical input control signal at each of a plurality of control input ports and transmit an electrical output control signal from each of a plurality of control output ports, said node controller operable to select said sccond wavelength band.

4. The optical switching node of claim 3 wherein each of said plurality of control input ports is associated with an optical-to-electrical converter adapted to convert an optical input control signal to said electrical input control signal and each of said plurality of control output ports is associated with an electrical-to-optical converter adapted to convert said electrical output control signal to an optical output control signal.

5. The optical switching node of claim 4 wherein:

said optical input control signal is carried on one of said plurality of input wavelength channels from one of said plurality of input demultiplexers; and

said optical output control signal is multiplexed, in one of said at least one of said plurality of multiplexers, with said at least one of said constituent internal optical signals into said switching node output signal.

6. The optical switching node of claim 4 wherein:

said optical input control signal is one of said constituent internal optical signals output from one of said plurality of output demultiplexers; and

said optical output control signal is an input to one of said plurality of star couplers.

7. The optical switching node of claim 3 further including a time-counter and wherein said node controller is further adapted to:

receive incoming timing signals from an external node;

perform a plurality of comparisons, where each of said plurality of comparisons compares one of said incoming timing signals with a corresponding reading of said time counter; and

transmit a result of said plurality of comparisons to said external node.

8. The optical switching node of claim 3 further including a scheduler associated with said node controller, said scheduler operable to:

receive a connection request specifying a channel in one of said multi-channel links, an outlet port of said wavelength router and a required capacity;

determine a path for said connection request; and

compute a schedule for said connection request.

9. The optical switching node of claim 8 wherein said required capacity is defined as a number of time slots in a time frame, where said time frame has been divided into a predefined number of time slots.

10. The optical switching node of claim 9 wherein said scheduler is further adapted to define said pat by a wavelength band and communicate an identity of said wavelength band to said spectral-translation module.

11. The optical switching node of claim 2 wherein each of said plurality of outpat demultiplexers is an Arrayed Waveguide Grating device.

12. The optical switching node of claim 2 wherein each of said plurality of multiplexers is an Arrayed Waveguide Grating device.

13. The optical switching node of claim 1 further comprising a plurality of optical amplifiers.

14. The optical switching node of claim 1 further comprising an input optical amplifier corresponding to, and preceding, each of said plurality of input demultiplexers and adapted to amplify said plurality of input wavelength channels.

Assignments (9)
RELEASE OF SECURITY INTEREST Recorded Oct 26, 2020
From: JEFFERIES FINANCE LLC
To: RPX CLEARINGHOUSE LLC
Reel/Frame 054305/0505 →
SECURITY INTEREST Recorded Jun 29, 2018
From: RPX CLEARINGHOUSE LLC
To: JEFFERIES FINANCE LLC
Reel/Frame 046485/0644 →
RELEASE (REEL 038041 / FRAME 0001) Recorded Jan 2, 2018
From: JPMORGAN CHASE BANK, N.A.
To: RPX CORPORATION; RPX CLEARINGHOUSE LLC
Reel/Frame 044970/0030 →
SECURITY AGREEMENT Recorded Mar 9, 2016
From: RPX CORPORATION; RPX CLEARINGHOUSE LLC
To: JPMORGAN CHASE BANK, N.A., AS COLLATERAL AGENT
Reel/Frame 038041/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 9, 2015
From: ROCKSTAR CONSORTIUM US LP; ROCKSTAR CONSORTIUM LLC; BOCKSTAR TECHNOLOGIES LLC; CONSTELLATION TECHNOLOGIES LLC; MOBILESTAR TECHNOLOGIES LLC; NETSTAR TECHNOLOGIES LLC
To: RPX CLEARINGHOUSE LLC
Reel/Frame 034924/0779 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 6, 2014
From: ROCKSTAR CONSORTIUM US LP
To: BOCKSTAR TECHNOLOGIES LLC
Reel/Frame 032399/0116 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 7, 2014
From: ROCKSTAR BIDCO, LP
To: ROCKSTAR CONSORTIUM US LP
Reel/Frame 032168/0750 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 28, 2011
From: NORTEL NETWORKS LIMITED
To: ROCKSTAR BIDCO, LP
Reel/Frame 027164/0356 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 15, 2005
From: BESHAI, MAGED E.; GRAVES, ALAN FRANK
To: NORTEL NETWORKS, LIMITED
Reel/Frame 016694/0295 →