Claims
- 1. An apparatus for coupling N inputs to N outputs comprising:
a plurality of separate, substantially identical, static K×K interconnect networks wherein the plurality has a total of at least N2 discrete signal carrying inputs and N2 discrete signal carrying outputs with K<N, wherein 23NKnetworks are each coupled to K inputs.
- 2. An apparatus as in claim 1 which includes K, 1-to-N input switches coupled between K inputs and the
- 3. An apparatus as in claim 2 which includes N output switches coupled between
- 4. An apparatus as in claim 1 wherein
- 5. An apparatus as in claim 2 wherein connectivity between the inputs, networks and outputs is symmetrical relative to a selected centerline.
- 6. An apparatus as in claim 5 wherein the networks comprise optical transmission paths.
- 7. An apparatus as in claim 6 wherein N optical input switches are coupled to the plurality of networks.
- 8. An apparatus as in claim 7 wherein N optical output switches are coupled to the plurality of networks.
- 9. An apparatus as in claim 1 wherein K different sources are coupled to K2 network inputs and K different outputs are coupled to K2 network outputs.
- 10. A modular cross-connect switch having N inputs independently connectable to N outputs, the switch comprising:
a plurality of substantially identical static interconnect modules wherein each module has K2 inputs connected to K2 outputs, wherein K<N; and wherein the plurality comprises 27(NK)2modules.
- 11. A switch as in claim 10 wherein the modules are each implemented with a second plurality of substantially identical static interconnect modules wherein each module of the second plurality has less than K inputs.
- 12. A switch as in claim 10 which includes a plurality of input switches coupled to the interconnect modules.
- 13. A switch as in claim 12 wherein the input switches comprise 1×N input switches.
- 14. A switch as in claim 13 wherein the input switches form
- 15. A switch as in claim 14 wherein the plurality of interconnect modules forms
- 16. A switch as in claim 10 wherein the interconnect modules each comprise one of a plurality of optical transmission paths and a plurality of electrical transmission paths.
- 17. A switch as in claim 16 which includes a first plurality of optical switches coupled to input sides of the modules.
- 18. A switch as in claim 17 which includes a second plurality of optical switches coupled to output sides of the modules.
- 19. A switch as in claim 18 wherein at least the first plurality includes N switches.
- 20. A method of implementing an N×N cross-connect switch comprising:
selecting a value for N; selecting a value for K<N; providing a plurality of identical K×K static cross-connect modules; coupling N inputs to the plurality ; and coupling N outputs from the plurality.
- 21. A method as in claim 20 wherein the providing step includes providing
- 22. A method as in claim 20 which includes coupling
- 23. A method as in claim 20 which includes coupling K input switches to a group of modules from the plurality.
- 24. A method as in claim 23 which includes dividing the plurality of modules into
- 25. A method as in claim 23 which includes coupling N output switches to the plurality.
- 26. A method as in claim 20 which includes coupling
- 27. A method as in claim 26 which includes coupling a plurality of output switches between the members of different groups of modules.
- 28. A method as in claim 20 which includes replacing a defective module with a module substantially identical to other members of the plurality of modules.
- 29. A method as in claim 20 which includes providing K2 optical transmission paths in each interconnect module.
- 30. A modular connecting network comprising:
M input ports; M output ports; a plurality of substantially identical static N×N interconnect blocks where N<M wherein the blocks are coupled between the input ports and the output ports, wherein each block includes a plurality of substantially identical K×K interconnect modules.
- 31. A network as in claim 30 wherein M is an integer multiple of N.
- 32. A network as in claim 30 wherein the interconnect modules each comprise K2 separate transmission paths.
- 33. A network as in claim 32 wherein the transmission paths comprise one of static, optical fibers or static electrical conductors.
- 34. An apparatus formed of interconnect modules wherein for N2 inputs and N2 outputs the apparatus comprises:
- 35. An apparatus as in claim 34 which includes a plurality of 1×N switches coupled to inputs to the modules.
- 36. An apparatus as in claim 34 which includes a plurality of N×1 switches coupled to outputs to the modules.
- 37. An apparatus as in claim 35 which includes a control circuit coupled to each of the switches.
- 38. An apparatus as in claim 37 which includes a plurality of N×1 switches coupled to outputs to the modules and to the control circuit.
- 39. An apparatus as in claim 35 wherein the plurality of 1×N switches comprises
- 40. An apparatus as in claim 36 wherein the plurality of N×1 switches comprises
- 41. A signal coupling network for coupling any one of N1 inputs to any one of N2 outputs comprising:
a plurality of substantially identical, static, K×K signal interconnect modules wherein each receives K2 input signals, where K<N1, and couples them to K2 outputs.
- 42. A network as in claim 41 wherein the plurality comprises
- 43. A network as in claim 41 which includes N1 input switches.
- 44. A network as in claim 43 which includes N2 output switches coupled to the plurality.
- 45. A method of creating an interconnect apparatus having L inputs and N outputs comprising:
forming a first plurality of K×K substantially identical, static interconnect modules for coupling K2 input signals to K2 output ports wherein the signals can be one of an optical signal or an electrical signal; and arranging selected members of the first plurality to form at least one L×N interconnect module wherein each L×N interconnect module includes 38(LK×NK)modules from the first plurality.
- 46. A method as in claim 45 which includes forming a second plurality of L×N interconnect modules.
- 47. A method as in claim 46 wherein L=N.
- 48. A method as in claim 47 wherein selected members of the second plurality are arranged to form a third plurality of M×M interconnect modules wherein each M×M interconnect module includes
- 49. A method as in claim 47 which includes selecting a member of the second plurality and coupling a set of input switches and output switches to the member thereby forming an N×N switch.
- 50. An interconnect network allocation method comprising:
selecting 1 inputs and N outputs; defining a first modular K×K interconnect having K2 signal carriers with K<L and K<N; establishing a plurality of input signal carrier groups, 40LKand output signal groups 41NK;; establishing a plurality of 42(LK×NK)first modular interconnects to provide connectivity between L2 input signals and N2 output signals thereby forming a second modular L×N interconnect network having (L×N) signal carriers.
- 51. A method as in claim 50 wherein L=N and forming a second plurality of N×N interconnect networks.
- 52. A method as in claim 50 where for N<M establishing a plurality of signal carrier groups
- 53. A method as in claim 50 wherein the signal carriers comprise one of optical fibers or electrical conductors.
- 54. A method as in claim 50 which includes forming the first modular K×K interconnect with K2 signal carrying inputs coupled to K2 signal carrying outputs.
- 55. A method as in claim 54 which includes coupling connectors to the 2K2 signal carrying inputs and outputs.
- 56. A method as in claim 54 wherein inputs from a plurality of K-wide groups are coupled to corresponding outputs in respective K-wide groups in accordance with input group number.
Parent Case Info
[0001] This application claims the benefit of the filing date of Provisional Application Ser. No. 60/222,352, filed Aug. 1, 2000, and entitled Building Large Optical Interconnect From Smaller Modular Units.
Provisional Applications (1)
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Number |
Date |
Country |
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60222352 |
Aug 2000 |
US |