Nova Patents
EP3020161B1

Network node connection configuration

Abstract

This record has no abstract on file.

EP3020161B1, drawing sheet 1
Sheet 1 of 7

Term

7.8 yearsleft in the term

Expires 10 July 2034.

  1. Priority
  2. Filed
  3. Granted
  4. Today
  5. Expires

15 claims: 10 independent, 5 dependent

  1. 1
    A network node (600, 710, 810) configured to be connected in a network (700, 800), the network node (600, 710, 810) comprising:first and second ordered sets of optical connectors (610, 620), each ordered set (610, 620) including positions 1 to N, wherein each optical connector in the first ordered set (610) corresponds in position to a like numbered optical connector in the second ordered set (620), such that the network node (600, 710, 810) is interconnectable with other like nodes (600, 710, 810) upon interconnection of optical connectors in the first ordered set (610) with like numbered optical connectors of the second ordered set (620) in adjacent nodes (600, 710, 810), wherein the optical connectors of the first and second ordered sets (610, 620) define an interconnection arrangement;a transmitter and a receiver (604) coupled to like numbered selected optical connectors of the first and second ordered sets of optical connectors (610, 620) so as to provide communication between adjacent nodes (600, 710, 810) upon interconnection of the network node (600, 710, 810) with other nodes (600, 710, 810) having the same interconnection arrangement;at least one direct optical pass-through connection pathway extending internally from a specified optical connector of the first ordered set (610) to a specified optical connector of the second ordered set (620) that is offset in position from the position of the specified optical connector in the first ordered set (610) by at least one position, wherein each of the at least one direct optical pass-through connection pathway provides a passive communication pathway through the network node (600, 710, 810);a first bidirectional construct (602) coupled to a second selected optical connector of the first ordered set (610) and operative to provide bidirectional communication via the second selected optical connector of the first ordered set (610);and a second bidirectional construct (602) coupled to a second selected optical connector of the second ordered set (620) and operative to provide bidirectional communication via the second selected optical connector of the second ordered set (620), wherein the specified optical connectors of the first and second ordered sets (610, 620) associated with the at least one direct optical pass-through connection pathway and, the first and second selected optical connectors of the first and second ordered sets of optical connectors (610, 620) associated with the first and second bidirectional constructs (602), respectively, have positions in the first and second ordered sets (610, 620), such that upon series interconnection of a plurality of nodes (600, 710, 810) that have an interconnection arrangement that is the same as the network node (600, 710, 810), a plurality of direct optical interconnections having first and second endpoints corresponding to the first and second bidirectional constructs (602) are formed between non-adjacent nodes (600, 710, 810).
  2. 3
    The network node (600, 710, 810) according to any one of claims 1-2, further including a switch which is configured to receive traffic at the network node (600, 710, 810) from the network (700, 800) and to redirect the traffic back into the network (700, 800).
  3. 4
    The network node (600, 710, 810) according to any one of claims 1-3, wherein a number of pass-through fiber connections between the first and second endpoints of each direct optical interconnection define a reach of the nodes (600, 710, 810) in the network (700, 800), and wherein the first and second bidirectional constructs (602) are endpoints on the optical interconnections having the largest pass-through reach in the network (700, 800) formed upon such interconnection of the plurality of nodes (600, 710, 810).
  4. 6
    The network node (600, 710, 810) according to any one of claims 4-5, wherein the second largest pass-through reach is greater than or equal to three.
  5. 7
    The network node (600, 710, 810) according to any one of claims 4-6, wherein the largest pass-through reach is five.
  6. 8
    The network node (600, 710, 810) according to any one of claims 1-7, wherein, upon interconnection of the network node (600, 710, 810) with the other nodes (600, 710, 810) having the same interconnection arrangement, the network node (600, 710, 810) and the other nodes (600, 710, 810) form a physical topology and a logical topology.
  7. 10
    The network node (600, 710, 810) according to any one of claims 8-9, wherein the physical topology is a q-dimensional torus ring, and the logical topology is a q-dimensional chordal ring.
  8. 12
    The network node (600, 710, 810) according to any one of claims 1-11, further comprising a switch connected to at least one network node (600, 710, 810) for directing a signal from the at least one network node (600, 710, 810) back to the at least one network node (600, 710, 810) or at least another network node (600, 710, 810) to thereby increase the reach of one or more network nodes (600, 710, 810) in the network (700, 800).
  9. 13
    The network node (600, 710, 810) according to any one of claims 1-12, wherein the first bidirectional construct (602) includes a circulator connected to an output from a transmitter (604) and an input to a receiver (604), wherein the circulator is configured to permit optical signals to be sent and received on a single optical fiber connected to the second selected optical connector of the first ordered set (610).
  10. 15
    A method for communicating over a plurality of nodes (600, 710, 810) on a network (700, 800) in which each node (600, 710, 810) includes first and second ordered sets of optical connectors (610, 620), each ordered set (610, 620) including positions 1 to N, wherein each optical connector in the first ordered set (610) corresponds in position to a like numbered optical connector in the second ordered set (620), such that the node (600, 710, 810) is interconnectable with other like nodes (600, 710, 810) upon interconnection of optical connectors in the first ordered set (610) with like numbered optical connectors of the second ordered set (620) in adjacent nodes (600, 710, 810), wherein the optical connectors of the first and second ordered sets (610, 620) define an interconnection arrangement, the method comprising:connecting a transmitter or receiver to a first selected optical connector in the first ordered set (610) or a first selected optical connector in the second ordered set (620) at a position from which at least one of the at least two first selected optical connectors is offset by at least one position;in first and second nodes (600, 710, 810) of the plurality of nodes (600, 710, 810) having a transmitter and a receiver (604) coupled to selected optical connectors of the first and second ordered sets (610, 620) in the same position in each ordered set (610, 620), optically communicating from the transmitter (604) of the first node (600, 710, 810) to the receiver (604) of the second node (600, 710, 810), where the second node (600, 710, 810) is physically adjacent in the network (700, 800) to the first node (600, 710, 810);and optically communicating between a first bidirectional construct (602) in a third node (600, 710, 810) of the plurality of nodes (600, 710, 810) that is operative to provide bidirectional communication via a third selected optical connector of the first ordered set (610) and a second bidirectional construct (602) in a fourth node (600, 710, 810) of the plurality of nodes (600, 710, 810) operative to provide bidirectional communication via the third selected optical connector of the second ordered set (620), wherein the third node (600, 710, 810) is not physically adjacent in the network (700, 800) to the fourth node (600, 710, 810), wherein the optically communicating between the first bidirectional construct (602) in a third node (600, 710, 810) and the second bidirectional construct (602) in a fourth node (600, 710, 810) includes: traversing a direct optical pass-through interconnection between the first bidirectional construct (602) which corresponds to a first endpoint in the third node (600, 710, 810) and the second bidirectional construct (602) that corresponds to a second endpoint in the fourth node (600, 710, 810), wherein the direct optical pass-through interconnection includes at least one passive direct optical pass-through connection in at least one fifth node (600, 710, 810) physically disposed between the third and fourth nodes (600, 710, 810) via specified optical connector of the first and second ordered sets (610, 620) of the at least one fifth node (600, 710, 810), wherein the actual number of direct optical pass-through connections define a pass-through reach, and wherein the specified connector in the first ordered set (610) of the at least one fifth node (600, 710, 810) is offset from the specified connector in the second ordered set (620) of the at least one fifth node (600, 710, 810) by at least one position, and wherein the traversing step further includes communicating over the direct optical interconnections having the largest pass-through reach.