IP Library › Granted Patent US 12,040,835
Granted Patent B2
US 12,040,835 · App. 17/800,735 · Granted Jul 16, 2024

Optical network with optical core and node using time-slotted reception

Inventors: Ibrahim Salah (Musashino, JP); Toshikazu Hashimoto (Musashino, JP)
Assignee: NIPPON TELEGRAPH AND TELEPHONE CORPORATION
H04B10/27H04L12/28H04L47/70
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Quick Facts
Patent No.
US 12,040,835
App. No.
17/800,735
Granted
Jul 16, 2024
Kind
B2
Abstract

There has been a problem with nodes that are present on the periphery of a flat optical network in that an enormous number of receivers are needed, which have reached the limit of the capacity of the ASIC switch. An optical network of the present disclosure proposes introduction of a slight time-domain limit to data transmission from network nodes to the same destination node. The network operates in accordance with a time slot system for data transmission/reception. The ASIC switch has a switching capacity corresponding to an average volume of incoming traffic at a plurality of nodes, and is provided with a storage medium that stores therein and handle a volume of traffic exceeding this switching capacity. A decreased transmission bandwidth between nodes due to the time-domain limit can also be improved by using a plurality of time slots, and transmitting an optical signal according to optical circuit switching by using an unassigned time slot.

Claims (35)

1. An optical network comprising:

an optical core portion having a full mesh network configuration; and

a plurality of nodes connected to the optical core portion, the plurality of nodes being divided into a plurality of groups, each of the groups including at most “m” nodes,

wherein only during a time slot associated with a group to which a source node belongs, each of the plurality of nodes can be addressed by any node in the group to which the source node belongs,

wherein each of the plurality of nodes includes

“m” arrayed waveguide gratings (AWGs) in which a plurality of input ports of the AWGs receive corresponding optical signals from the at most “m” nodes belonging to a same group, and a wavelength to be used by one or more source nodes of the at most “m” nodes is set to be compatible with an operating wavelength of the plurality of input ports,

“m” receivers connected to output multiplexing ports of the AWGs, and

an ASIC switch that switches an electrical signal from the “m” receivers, and routes the electrical signal to a plurality of servers,

wherein the ASIC switch has a switching capacity corresponding to an average volume of incoming traffic at the plurality of nodes, and

wherein the ASIC switch is provided with a storage medium that stores therein and handle a volume of traffic exceeding the switching capacity.

2. The optical network according to claim 1 , further comprising synchronization means for supplying each of the plurality of nodes with a synchronous signal obtained by distributing an optical comb modulated by a master clock.

3. The optical network according to claim 2 , wherein a source node and a reception node of the plurality of nodes calculate an adjustment value to adjust a phase of the time slot and save therein the adjustment value prior to data transmission/reception, thereby to allow a reception timing to fall within the associated time slot.

4. The optical network according to claim 1 , wherein the ASIC switch has a switching capacity that is configurable in real time on demand.

5. The optical network according to claim 1 , wherein the optical core portion is a physical full mesh network, or is a physical full mesh-like network that does not involve electrical-optical-electrical conversion.

6. An optical network comprising:

an optical core portion having a full mesh network configuration; and

a plurality of nodes connected to the optical core portion, the plurality of nodes being divided into a plurality of groups, each of the groups including at most “m” nodes,

wherein only during a time slot associated with a group to which a source node belongs, each of the plurality of nodes can be addressed by any node in the group to which the source node belongs,

wherein each of the plurality of nodes includes

“m” arrayed waveguide gratings (AWGs) in which a plurality of input ports of the AWGs receive corresponding optical signals from the at most “m” nodes belonging to a same group, and a wavelength to be used by one or more source nodes of the at most “m” nodes is set to be compatible with an operating wavelength of the plurality of input ports,

“m” receivers connected to output multiplexing ports of the AWGs, and

an ASIC switch that switches an electrical signal from the “m” receivers, and routes the electrical signal to a plurality of servers, and wherein

among the plurality of nodes, plural source nodes belonging to the group different from one another include an additional switching unit that adjusts time slots such that each of the plural source nodes can use a different time slot from a time slot associated with the corresponding source node, and

each of the plural source nodes uses both the time slot associated and the different time slot to transmit data to a reception node.

7. An optical network comprising:

an optical core portion having a full mesh network configuration; and

a plurality of nodes connected to the optical core portion, the plurality of nodes being divided into a plurality of groups, each of the groups including at most “m” nodes,

wherein only during a time slot associated with a group to which a source node belongs, each of the plurality of nodes can be addressed by any node in the group to which the source node belongs,

wherein each of the plurality of nodes includes

“m” arrayed waveguide gratings (AWGs) in which a plurality of input ports of the AWGs receive corresponding optical signals from the at most “m” nodes belonging to a same group, and a wavelength to be used by one or more source nodes of the at most “m” nodes is set to be compatible with an operating wavelength of the plurality of input ports,

“m” receivers connected to output multiplexing ports of the AWGs, and

an ASIC switch that switches an electrical signal from the “m” receivers, and routes the electrical signal to a plurality of servers,

optical coupling means for optically coupling a portion of an optical signal from an optical transmission path connecting to each of the input ports of the “m” AWGs; and

an auxiliary AWG including a plurality of input ports that receive an optical signal according to corresponding optical circuit switching from the at most “m” nodes belonging to the same group through the optical coupling means, wherein

during a period except a time slot associated with each of the at most “m” nodes, the optical coupling means is operated to supply the optical signal according to the optical circuit switching to the ASIC switch.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 18, 2022
From: SALAH, IBRAHIM; HASHIMOTO, TOSHIKAZU
To: NIPPON TELEGRAPH AND TELEPHONE CORPORATION
Reel/Frame 060844/0899 →
Continuity (1)
Related Publication 20230104943A1 · Apr 6, 2023