WO2015067211A1 - All-optical time slice switching method and system based on time synchronization - Google Patents

All-optical time slice switching method and system based on time synchronization Download PDF

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Publication number
WO2015067211A1
WO2015067211A1 PCT/CN2014/090582 CN2014090582W WO2015067211A1 WO 2015067211 A1 WO2015067211 A1 WO 2015067211A1 CN 2014090582 W CN2014090582 W CN 2014090582W WO 2015067211 A1 WO2015067211 A1 WO 2015067211A1
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time
wavelength
time slots
optical
available
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French (fr)
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Nan HUA
Xiaoping Zheng
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Tsinghua University
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Tsinghua University
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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04QSELECTING
    • H04Q11/00Selecting arrangements for multiplex systems
    • H04Q11/0001Selecting arrangements for multiplex systems using optical switching
    • H04Q11/0062Network aspects
    • H04Q11/0066Provisions for optical burst or packet networks
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04JMULTIPLEX COMMUNICATION
    • H04J14/00Optical multiplex systems
    • H04J14/08Time-division multiplex systems
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04JMULTIPLEX COMMUNICATION
    • H04J14/00Optical multiplex systems
    • H04J14/08Time-division multiplex systems
    • H04J14/083Add and drop multiplexing
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L7/00Arrangements for synchronising receiver with transmitter
    • H04L7/0016Arrangements for synchronising receiver with transmitter correction of synchronization errors
    • H04L7/0033Correction by delay
    • H04L7/0041Delay of data signal
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L7/00Arrangements for synchronising receiver with transmitter
    • H04L7/0075Arrangements for synchronising receiver with transmitter with photonic or optical means
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04QSELECTING
    • H04Q11/00Selecting arrangements for multiplex systems
    • H04Q11/0001Selecting arrangements for multiplex systems using optical switching
    • H04Q11/0005Switch and router aspects
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04QSELECTING
    • H04Q11/00Selecting arrangements for multiplex systems
    • H04Q11/0001Selecting arrangements for multiplex systems using optical switching
    • H04Q11/0005Switch and router aspects
    • H04Q2011/0007Construction
    • H04Q2011/0033Construction using time division switching
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04QSELECTING
    • H04Q11/00Selecting arrangements for multiplex systems
    • H04Q11/0001Selecting arrangements for multiplex systems using optical switching
    • H04Q11/0005Switch and router aspects
    • H04Q2011/0037Operation
    • H04Q2011/0039Electrical control
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04QSELECTING
    • H04Q11/00Selecting arrangements for multiplex systems
    • H04Q11/0001Selecting arrangements for multiplex systems using optical switching
    • H04Q11/0005Switch and router aspects
    • H04Q2011/0037Operation
    • H04Q2011/0045Synchronisation

Definitions

  • the present disclosure relates to an optical network communication technique field, and more particularly relates to an all-optical time slice switching method and system based on time synchronization.
  • OCS optical circuit switching
  • OPS optical packet switching
  • OPS optical packet switching
  • OPS optical packet switching
  • OPS optical packet switching
  • OPS Optical burst switching
  • OBS can be regarded as a combination of OCS and OPS while avoiding their shortcomings in a certain extent.
  • OBS can exchange data at a sub-wavelength granularity without all-optical buffers.
  • OBS cannot guarantee reliable data transmission due to packet loss. Even worse, without buffers the loss rate of packets at a heavy load could be much higher in OBS than that in conventional packet-switched networks, which limits the application of OBS.
  • the present disclosure seeks to solve at least one of problems in the related art.
  • an objective of the present disclosure is aimed to provide an all-optical time slice switching method based on time synchronization.
  • the all-optical time slice switching method based on time synchronization comprises: determining an OTSS connection between a source node and a destination node according to a state of time slots of an optical network, wherein the OTSS connection comprises wavelength links between adjacent optical switching nodes; transmitting data streams to the destination node via the OTSS connection by the source node, wherein time domain periodic OTSS frames are used to transmit the data streams on the wavelength links; each OTSS frame comprises variable-length time slices and OTSS frames on a same wavelength link comprises same time slices; each group of periodic time slices constitute an OTSS sub-wavelength optical channel; each optical switching node switches time slices arriving at an input fiber port to an output fiber port by an optical switch controller.
  • the all-optical time slice switching method based on time synchronization may overcome the shortcomings in current switching technologies and realize reliable and flexible all-optical switching at a sub-wavelength granularity without participation of all-optical buffers and all-optical logic devices.
  • the method further comprises obtaining a high-precision time signal by each optical switching node from a time server to synchronize a local time of the optical switching node, wherein the time server determines the high-precision time signal via a satellite or a network.
  • the method further comprises if a state of time slots on a wavelength link changes, flooding information of the time slots within a period on the wavelength link throughout the optical network by optical switching nodes at each end of the wavelength link so as to determine time slots available to the OTSS connection according to a changed state of the time slots, wherein the information comprises start/end time of time slices, slot occupying/releasing and services carried on time slices.
  • determining an OTSS connection between a source node and a destination node comprises: if a connection request arrives, calculating an available path, a wavelength and start/end time of one or more groups of periodic time slots to be occupied on each wavelength link of the available path by the source node according to the state of time slots of the optical network, information of the destination node and a requested bandwidth; establishing the OTSS connection by the source node according to the available path, the wavelength and the start/end time of one or more groups of periodic time slots to be occupied on each wavelength link of the available path.
  • establishing the OTSS connection comprises: transmitting a message for reserving time slots and information on the available path, the wavelength and the start/end time of one or more groups of periodic time slots to be occupied on each wavelength link of the available path to other optical switching nodes on the available path by the source node until the message is received by the destination node or a failure occurs; after the message is received by the other optical switching nodes on the available path, reserving the periodic time slots by each optical switching node other than the destination node on the available path for the port of the output fiber connected to a next optical switching node on the available path according to the information on the available path, the wavelength and the start/end time of one or more groups of periodic time slots to be occupied on each wavelength link of the available path, where reserved time slots are not allowed to be occupied by other connections within a reserved period; after the message is received by the destination node, transmitting a confirming message on the available path by the destination node until the confirming message is received by the source node
  • transmitting data streams to the destination node via the OTSS connection by the source node comprises: recoding the data streams by the source node to obtain recoded data streams according to a line rate of a wavelength channel on the available path, wherein recoding the data streams comprises remodulating the data streams and assembling them into an OTSS sub-wavelength optical channel according to the start/end time of one or more groups of periodic time slots to be occupied on the first wavelength link of the available path; transmitting the recoded data streams to a next optical switching node on the available path by the source node at the start time of one or more groups of periodic time slots to be occupied on the first wavelength link of the available path; switching optical switches by each optical switching node on the available path at the switching points set by the optical switch controller to switch periodic time slices arriving at the input fiber port to the output fiber port.
  • calculating an available path, a wavelength and start/end time of one or more groups of periodic time slots to be occupied on each wavelength link of the available path by the source node comprises: obtaining a candidate path between the source node and the destination node; calculating combined available time slots on the candidate path according to a propagation delay and a state of time slots on each wavelength link of the candidate path; if a total data transmission bandwidth of the combined available time slots on the candidate path is greater than or equal to the requested bandwidth, determining the candidate path to be the available path and determining the wavelength and the start/end time of one or more groups of periodic time slots to be occupied on each wavelength link of the available path according to the combined available time slots on the available path; otherwise, repeating above steps until the available path is determined.
  • calculating combined available time slots on the candidate path comprises: for each wavelength link of the candidate path, defining a set of time slots occupied on the wavelength link according to the state of time slots on the wavelength link as where ⁇ i is the set of time slots occupied on wavelength link e i , and represent a start/end time of a k th time slot occupied on wavelength link e i respectively, and K i is a number of occupied time slots on wavelength link e i ; obtaining a combined occupied time slots using a time-slice shift and combination algorithm by H 1 -times iterations as:
  • determining the wavelength and the start/end time of one or more groups of periodic time slots to be occupied on each wavelength link of the available path according to the combined available time slots on the available path comprises: selecting one or more groups of periodic available time slots from the combined available time slots on the available path as one or more groups of periodic available time slots to be occupied on the first wavelength link of which a total data transmission bandwidth is greater than or equal to the requested bandwidth, where and N represent a start/end time of an n th available time slot on the first wavelength link and a number of available time slots on the first wavelength link respectively ; calculating start/end time of one or more groups of periodic time slots to be occupied on other wavelength links of the available path according to one or more groups of periodic available time slots to be occupied on the first wavelength link as:
  • H 2 is a number of wavelength links of the available path and is a propagation delay of wavelength link e k .
  • time slices are separated from each other by a guard time and the method further comprises: when a time synchronization error or a propagation delay variation exceeds the guard time so that a conflict between time slices occurs, delaying the time slices by an apparatus in an electrical domain or an optical domain at output fiber ports of conflicting optical switching nodes.
  • Another objective of the present disclosure is aimed to provide an all-optical time slice switching system based on time synchronization, which comprises: a determining module, configured for determining an OTSS connection between the source node and the destination node according to a state of time slots of an optical network, wherein the OTSS connection comprises wavelength links between adjacent optical switching nodes; a transmitting module, configured for using time domain periodic OTSS frames to transmit data streams on the wavelength links, wherein each OTSS frame comprises variable-length time slices and OTSS frames on a same wavelength link comprises same time slices, each group of periodic time slices constitute an OTSS sub-wavelength optical channel, and each optical switching node switches time slices arriving at an input fiber port to an output fiber port by an optical switch controller.
  • Fig. 1 is a flow chart of an all-optical time slice switching method based on time synchronization according to embodiments of the present disclosure
  • Fig. 2 is a schematic view of a structure of periodic time slices in OTSS and an asynchronous switching mode of OTSS;
  • Fig. 3 is a schematic view of a structure of an optical switching node supporting both OTSS and conventional wavelength switching technologies
  • Fig. 4 is a principle diagram of a time-slice shift and combination algorithm
  • Fig. 5 is a flow chart of signaling messages in OTSS
  • Fig. 6 is a diagram showing the blocking performance of OTSS compared to that of a conventional wavelength switching technology
  • Fig. 7 is a diagram showing the bandwidth utilization of OTSS compared to that of a conventional wavelength switching technology
  • Fig. 8 is a schematic view of an all-optical time slice switching system based on time synchronization according to embodiments of the present disclosure.
  • the all-optical time slice switching method based on time synchronization comprises the following steps.
  • step S10 determining an OTSS connection between a source node and a destination node according to a state of time slots of an optical network, wherein the OTSS connection comprises wavelength links between adjacent optical switching nodes;
  • step S20 transmitting data streams to the destination node via the OTSS connection by the source node
  • time domain periodic OTSS optical time slice switching
  • each OTSS frame comprises variable-length time slices and OTSS frames on a same wavelength link comprises same time slices
  • each group of periodic time slices constitute an OTSS sub-wavelength optical channel
  • each optical switching node switches time slices arriving at an input fiber port to an output fiber port by an optical switch controller.
  • the all-optical time slice switching method based on time synchronization may realize reliable and flexible all-optical switching at a sub-wavelength granularity without all-optical buffers and all-optical logic devices.
  • the method further comprises obtaining a high-precision time signal by each optical switching node from a time server to synchronize a local time of the optical switching node, wherein the time server determines the high-precision time signal via a satellite or a network.
  • the method further comprises if a state of time slots on a wavelength link changes, flooding information of the time slots within a period on the wavelength link throughout the optical network by optical switching nodes at each end of the wavelength link so as to determine time slots available to the OTSS connection according to a changed state of the time slots, wherein the information comprises start/end time of time slices, slot occupying/releasing and services carried on time slices.
  • determining an OTSS connection between a source node and a destination node comprises: if a connection request arrives, calculating an available path, a wavelength and start/end time of one or more groups of periodic time slots to be occupied on each wavelength link of the available path by the source node according to the state of time slots of the optical network, information of the destination node and a requested bandwidth; establishing the OTSS connection by the source node according to the available path, the wavelength and the start/end time of one or more groups of periodic time slots to be occupied on each wavelength link of the available path.
  • establishing the OTSS connection comprises: transmitting a message for reserving time slots and information on the available path, the wavelength and the start/end time of one or more groups of periodic time slots to be occupied on each wavelength link of the available path to other optical switching nodes on the available path by the source node until the message is received by the destination node or a failure occurs; after the message is received by the other optical switching nodes on the available path, reserving the periodic time slots by each optical switching node other than the destination node on the available path for the port of the output fiber connected to a next optical switching node on the available path according to the information on the available path, the wavelength and the start/end time of one or more groups of periodic time slots to be occupied on each wavelength link of the available path, where reserved time slots are not allowed to be occupied by other connections within a reserved period; after the message is received by the destination node, transmitting a confirming message on the available path by the destination node until the confirming message is received by the source node
  • transmitting data streams to the destination node via the OTSS connection by the source node comprises: recoding the data streams by the source node to obtain recoded data streams according to a line rate of a wavelength channel on the available path, wherein recoding the data streams comprises remodulating the data streams and assembling them into an OTSS sub-wavelength optical channel according to the start/end time of one or more groups of periodic time slots to be occupied on the first wavelength link of the available path; transmitting the recoded data streams to a next optical switching node on the available path by the source node at the start time of one or more groups of periodic time slots to be occupied on the first wavelength link of the available path; switching by each optical switching node on the available path optical switches at the switching points set by the optical switch controller to switch periodic time slices arriving at the input fiber port to the output fiber port.
  • calculating an available path, a wavelength and start/end time of one or more groups of periodic time slots to be occupied on each wavelength link of the available path by the source node comprises: obtaining a candidate path between the source node and the destination node; calculating combined available time slots on the candidate path according to a propagation delay and a state of time slots on each wavelength link of the candidate path; if a total data transmission bandwidth of the combined available time slots on the candidate path is greater than or equal to the requested bandwidth, determining the candidate path to be the available path and determining the wavelength and the start/end time of one or more groups of periodic time slots to be occupied on each wavelength link of the available path according to the combined available time slots on the available path; otherwise, repeating above steps until the available path is determined.
  • calculating combined available time slots on the candidate path comprises: for each wavelength link of the candidate path, defining a set of time slots occupied on the wavelength link according to the state of time slots on the wavelength link as where ⁇ i is the set of time slots occupied on wavelength link e i , and represent a start/end time of a k th time slot occupied on wavelength link e i respectively and K i is a number of occupied time slots on wavelength link e i ; obtaining a combined occupied time slots using a time-slice shift and combination algorithm by H 1 -times iterations as:
  • determining the wavelength and the start/end time of one or more groups of periodic time slots to be occupied on each wavelength link of the available path according to the combined available time slots on the available path comprises: selecting one or more groups of periodic available time slots from the combined available time slots on the available path as one or more groups of periodic available time slots to be occupied on the first wavelength link of which a total data transmission bandwidth is greater than or equal to the requested bandwidth, where and N represent a start/end time of an n th available time slot on the first wavelength link and a number of available time slots on the first wavelength link respectively ; calculating start/end time of one or more groups of periodic time slots to be occupied on other wavelength links of the available path according to one or more groups of periodic available time slots to be occupied on the first wavelength link as:
  • H 2 is a number of wavelength links of the available path and is a propagation delay of wavelength link e k .
  • time slices are separated from each other by a guard time and the method further comprises: when a time synchronization error or a propagation delay variation exceeds the guard time so that a conflict between time slices occurs, delaying the time slices by an apparatus in an electrical domain or an optical domain at output fiber ports of the conflicting optical switching nodes.
  • Fig. 2 illustrates a structure of periodic time slices in OTSS based on time synchronization and an asynchronous switching mode of OTSS.
  • the core of OTSS is an optical switch controller and an OTSS switching matrix in Fig. 2, where the optical switch controller controls the OTSS switching matrix to reverse high-speed optical switches at periodic switching points such that time slices arriving at a wavelength channel on an input fiber are switched to an output fiber port in an asynchronous mode.
  • Fig. 2 illustrates three OTSS channels (1, 2 and 3) having sub-wavelength granularity being switched in the OTSS switching matrix.
  • the OTSS channels 1 and 2 arrive at wavelength link ⁇ 0 on input fiber one and the OTSS channel 3 arrives at wavelength link ⁇ 0 on input fiber two.
  • Each OTSS channel is organized into periodic OTSS time slices with a period of T FL , namely a length of an OTSS frame. If a state of time slots on a wavelength link changes, optical switching nodes at each end of the wavelength link flood information of time slots within a period on the wavelength link throughout the optical network, where the information comprises start/end time of time slices, slot occupying/releasing and services carried on time slices. Time slices are separated from each other by a guard time which may avoid a conflict between time slices due to a tiny time synchronization error or propagation delay variation. When the time synchronization error or propagation delay variation exceeds the guard time so that a conflict between time slices occurs, delaying the time slices by an apparatus in an electrical domain or an optical domain at output fiber ports of conflicting optical switching nodes to avoid the conflict.
  • Fig. 3 illustrates a structure of an optical switching node supporting both OTSS and conventional wavelength switching technologies.
  • Fig. 3 illustrates an example of two OTSS connections, an OTSS Drop at sub-wavelength granularity and an OCS Bypass at wavelength granularity.
  • Both signal generation and control of high-speed optical switches are based on a high-precision synchronized time signal obtained from a time server.
  • the start/end time of each time slot is configured as a switching point (SP) .
  • SP switching point
  • the OTSS switching matrix Controlled by the optical switch controller, the OTSS switching matrix reverses optical switches at periodic switching points such that time slices arriving at a wavelength channel on an input fiber are switched to a target output fiber port in an asynchronous mode.
  • the optical switch controller obtains calculated switching points from a network control plane via a connection control interface (CCI) and obtains a high-precision synchronized time signal from a time server to synchronize a local time of an optical switching node connected to the optical switch controller.
  • CCI connection control interface
  • a connection request with a destination node being Node D arrives at Node S
  • the procedure for calculating a path, a wavelength and time slots allocation is conducted by the source node (Node S) .
  • An available path, a wavelength and start/end time of one or more groups of periodic time slots to be occupied on each wavelength link of the available path are calculated according to the state of time slots of the optical network and a requested bandwidth.
  • available path S-A-D may be obtained by a shortest path algorithm and available wavelength ⁇ 0 may be obtained by a First-Fit algorithm.
  • available time slots on wavelength ⁇ 0 on path S-A-D may be calculated by a time-slice shift and combination algorithm.
  • Fig. 4 illustrates a principle diagram of a time-slice shift and combination algorithm.
  • path S-A-D Take path S-A-D for example, a method for calculating available time slots on the path is described. More specifically, firstly, a forward shift of the propagation delay of wavelength link S-A ( the wavelength is ⁇ 0 ) is made on all the time slices on wavelength link A-D (the wavelength is ⁇ 0 ) by the time-slice shift and combination algorithm. Then, all the time slices on wavelength link S-A(the wavelength is ⁇ 0 ) are combined with those on wavelength link A-D (the wavelength is ⁇ 0 ) after the forward shift. Finally, combined available time slots are calculated.
  • Fig. 5 illustrates a flow chart of signaling messages in OTSS. Take path S-A-D for example, the procedure for reserving time slots and the procedure of data transmission are described.
  • a connection establishment is started by a connection management module of the source node (Node S).Node S transmits a ā€œRESVā€ message on path S-A-D.
  • the information including a path (S-A-D) , a wavelength ( ⁇ 0 ) and start/end time of the periodic time slots to be occupied on wavelength link S-Aand wavelength link A-D is sent to the nodes A and D until the ā€œRESVā€ message is received by Node D or a failure occurs.
  • the periodic time slots on wavelength link S-A( ⁇ 0 ) to be occupied for a port connected to Node A are reserved by Node S, and the reserved time slots are not allowed to be occupied by other connections within the reserved period.
  • the periodic time slots on wavelength link A-D ( ⁇ 0 ) to be occupied for a port connected to Node D are reserved by Node A, and the reserved time slots are not allowed to be occupied by other connections within the reserved period.
  • Node D After the ā€œRESVā€ message is received by Node D, Node D transmits a ā€œCONFā€ confirming message on path D-A-Still the ā€œCONFā€ message is received by Node A. After receiving the ā€œCONFā€ message, an operation for configuring optical switch controllers is conducted by Node A or Node S via a connection control interface to set periodic switching points (SP) according to start/end time of time slots carried by the ā€œRESVā€ message. The connection establishment is finished after the ā€œCONFā€ message is received by Node S and the operation for configuring optical switch controllers is conducted by Node S, and then the data transmission is started.
  • SP periodic switching points
  • the data streams are recoded by Node S to obtain recoded data streams according to a line rate of wavelength channel ⁇ 0 , the data streams are remodulated and then assembled into an OTSS sub-wavelength optical channel whose time slices period is T FL , according to a length of calculated time slots to be occupied, and then the recoded data streams are sent to Node A on wavelength channel ⁇ 0 at calculated start time of time slots on wavelength link S-A.
  • Node A reverses optical switches at the periodic switching points set by the optical switch controller such that periodic time slices on wavelength channel ⁇ 0 sent by Node S are switched to the target output fiber port connected to Node D.
  • Fig. 6 and Fig. 7 illustrate diagrams showing simulation results of OTSS compared to that of a conventional wavelength switching technology.
  • the simulation is based on an NSFNET topology with 14 nodes and 21 links, and the line rate of each wavelength channel is 40 Gb/s. Connection requests arrive in a Poisson process and are uniformly distributed among all the nodes with a single requested bandwidth of 1 Gb/s.
  • Fig. 6 illustrates the blocking performance of OTSS compared to that of a conventional wavelength switching technology. In Fig. 6, it can be seen that the blocking probability of the conventional wavelength switching technology is greater than 90%in a given load range, which is unacceptable in practice. The blocking probability of OTSS is no greater than 13%in the same load range, and the performance of OTSS is good.
  • Fig. 6 illustrates showing simulation results of OTSS compared to that of a conventional wavelength switching technology.
  • the simulation is based on an NSFNET topology with 14 nodes and 21 links, and the line rate of each wavelength channel is 40 Gb/
  • FIG. 7 illustrates the bandwidth utilization of OTSS compared to that of a conventional wavelength switching technology. It can be seen that the bandwidth utilization of OTSS is greater than that of the conventional wavelength switching technology with the same blocking probability. In a given blocking probability range (0-13%) , the bandwidth utilization of OTSS varies from 32%to 46%while that of the conventional wavelength switching technology is no greater than 1%.
  • the present disclosure provides an all-optical time slice switching system based on time synchronization.
  • the system 80 comprises: a determining module 801 and a transmitting module 802.
  • the determining module801 is configured for: determining an OTSS connection between the source node and the destination node according to a state of time slots of an optical network, wherein the OTSS connection comprises wavelength links between adjacent optical switching nodes ;
  • the transmitting module 802 is configured for: using time domain periodic OTSS frames to transmit data streams on the wavelength links, wherein each OTSS frame comprises variable-length time slices and OTSS frames on a same wavelength link comprises same time slices, each group of periodic time slices constitute an OTSS sub-wavelength optical channel, and each optical switching node switches time slices arriving at an input fiber port to an output fiber port by an optical switch controller.
  • the data streams are transmitted from source node to the destination node via the OTSS connection by the transmitting module 802.
  • the all-optical time slice switching system based on time synchronization may realize reliable and flexible all-optical switching at a sub-wavelength granularity without all-optical buffers and all-optical logic devices.
  • Any process or method described in a flow chart or described herein in other ways may be understood to include one or more modules, segments or portions of codes of executable instructions for achieving specific logical functions or steps in the process, and the scope of a preferred embodiment of the present disclosure includes other implementations in which the order of execution may differ from that which is depicted in the flow chart, which should be understood by those skilled in the art.
  • a particular sequence table of executable instructions for realizing the logical function may be specifically achieved in any computer readable medium to be used by the instruction execution system, device or equipment (such as the system based on computers, the system comprising processors or other systems capable of obtaining the instruction from the instruction execution system, device and equipment and executing the instruction) , or to be used in combination with the instruction execution system, device and equipment.
  • each part of the present disclosure may be realized by the hardware, software, firmware or their combination.
  • a plurality of steps or methods may be realized by the software or firmware stored in the memory and executed by the appropriate instruction execution system.
  • the steps or methods may be realized by one or a combination of the following techniques known in the art: a discrete logic circuit having a logic gate circuit for realizing a logic function of a data signal, an application-specific integrated circuit having an appropriate combination logic gate circuit, a programmable gate array (PGA) , a field programmable gate array (FPGA) , etc.
  • each function cell of the embodiments of the present disclosure may be integrated in a processing module, or these cells may be separate physical existence, or two or more cells are integrated in a processing module.
  • the integrated module may be realized in a form of hardware or in a form of software function modules. When the integrated module is realized in a form of software function module and is sold or used as a standalone product, the integrated module may be stored in a computer readable storage medium.
  • the storage medium mentioned above may be read-only memories, magnetic disks, CD, etc.

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Abstract

An all-optical time slice switching method based on time synchronization is provided. With the method, continuous data streams in an optical network are assembled to time domain periodic optical time slices and are transmitted in an asynchronous transmission mode. Network nodes obtain high precision synchronization time via a network and control optical switches to switch arriving optical time slices to a target port at precise time points periodically, therefore all-optical switching is implemented. When a connection request arrives, an available path, a wavelength and time slots to be occupied are calculated by a source node according to information on available time slots of the optical network, and the time slots are reserved by a connection management module. After the time slots are reserved, the source node send optical time slices carrying services periodically at reserved time slots. A destination node restores the optical time slices to the data streams. Compared with an existing switching technology, the all-optical time slice switching method has remarkable advantages that reliable and flexible all-optical switching at sub-wavelength granularity can be implemented without participation of all-optical buffers and all-optical logic apparatus.

Description

ALL-OPTICALĀ TIMEĀ SLICEĀ SWITCHINGĀ METHODĀ ANDĀ SYSTEMĀ BASEDĀ ONĀ TIMEĀ SYNCHRONIZATION
CROSS-REFERENCEĀ TOĀ RELATEDĀ APPLICATION
ThisĀ applicationĀ claimsĀ priorityĀ toĀ andĀ benefitsĀ ofĀ ChineseĀ PatentĀ ApplicationĀ SerialĀ No.Ā 201310556993.6,Ā filedĀ withĀ theĀ StateĀ IntellectualĀ PropertyĀ OfficeĀ ofĀ P.Ā R.Ā ChinaĀ onĀ Nov.Ā 11,Ā 2013,Ā theĀ entireĀ contentĀ ofĀ whichĀ isĀ incorporatedĀ hereinĀ byĀ reference.
FIELD
TheĀ presentĀ disclosureĀ relatesĀ toĀ anĀ opticalĀ networkĀ communicationĀ techniqueĀ field,Ā andĀ moreĀ particularlyĀ relatesĀ toĀ anĀ all-opticalĀ timeĀ sliceĀ switchingĀ methodĀ andĀ systemĀ basedĀ onĀ timeĀ synchronization.
BACKGROUND
RapidĀ growthĀ ofĀ amountĀ ofĀ dataĀ exchangeĀ bringsĀ aĀ challengeĀ toĀ anĀ electronicĀ packet-switchedĀ networkĀ inĀ termsĀ ofĀ size,Ā costĀ andĀ energyĀ consumption.Ā TheĀ capacityĀ ofĀ theĀ networkĀ isĀ eventuallyĀ limitedĀ byĀ potentialĀ bottlenecksĀ inĀ routers.Ā EffectiveĀ approachesĀ toĀ breakĀ theĀ bottlenecksĀ includeĀ introducingĀ anĀ all-opticalĀ switchingĀ technology.
However,Ā existingĀ opticalĀ circuitĀ switchingĀ (OCS)Ā canĀ onlyĀ exchangeĀ dataĀ atĀ aĀ wavelengthĀ granularity,Ā leadingĀ toĀ inefficientĀ bandwidthĀ utilizationĀ ofĀ theĀ network.Ā OpticalĀ packetĀ switchingĀ (OPS)Ā canĀ exchangeĀ dataĀ atĀ anĀ ultrafineĀ sub-wavelengthĀ granularity,Ā butĀ all-opticalĀ buffersĀ andĀ all-opticalĀ logicĀ devicesĀ areĀ requiredĀ inĀ OPS.Ā SinceĀ all-opticalĀ buffersĀ andĀ all-opticalĀ logicĀ devicesĀ areĀ notĀ matureĀ andĀ cannotĀ beĀ putĀ intoĀ practice,Ā theĀ prospectĀ ofĀ developmentĀ inĀ OPSĀ isĀ notĀ promisingĀ inĀ theĀ foreseeableĀ future.Ā OpticalĀ burstĀ switchingĀ (OBS)Ā canĀ beĀ regardedĀ asĀ aĀ combinationĀ ofĀ OCSĀ andĀ OPSĀ whileĀ avoidingĀ theirĀ shortcomingsĀ inĀ aĀ certainĀ extent.Ā UsingĀ out-of-bandĀ signaling,Ā OBSĀ canĀ exchangeĀ dataĀ atĀ aĀ sub-wavelengthĀ granularityĀ withoutĀ all-opticalĀ buffers.Ā However,Ā likeĀ OPS,Ā OBSĀ cannotĀ guaranteeĀ reliableĀ dataĀ transmissionĀ dueĀ toĀ packetĀ loss.Ā EvenĀ worse,Ā withoutĀ buffersĀ theĀ lossĀ rateĀ ofĀ packetsĀ atĀ aĀ heavyĀ loadĀ couldĀ beĀ muchĀ higherĀ inĀ OBSĀ thanĀ thatĀ inĀ conventionalĀ packet-switchedĀ networks,Ā whichĀ limitsĀ theĀ applicationĀ ofĀ OBS.
Hence,Ā inĀ currentĀ all-opticalĀ switchingĀ networks,Ā thereĀ areĀ someĀ defectsĀ inĀ OCS,Ā OPSĀ andĀ OBSĀ andĀ thereĀ isĀ noĀ all-opticalĀ switchingĀ technologyĀ forĀ overcomingĀ theseĀ defects.
SUMMARY
TheĀ presentĀ disclosureĀ seeksĀ toĀ solveĀ atĀ leastĀ oneĀ ofĀ problemsĀ inĀ theĀ relatedĀ art.
Thus,Ā anĀ objectiveĀ ofĀ theĀ presentĀ disclosureĀ isĀ aimedĀ toĀ provideĀ anĀ all-opticalĀ timeĀ sliceĀ switchingĀ methodĀ basedĀ onĀ timeĀ synchronization.
InĀ orderĀ toĀ achieveĀ theĀ objective,Ā theĀ all-opticalĀ timeĀ sliceĀ switchingĀ methodĀ basedĀ onĀ timeĀ synchronizationĀ accordingĀ toĀ embodimentsĀ ofĀ theĀ presentĀ disclosureĀ comprises:Ā determiningĀ anĀ OTSSĀ connectionĀ betweenĀ aĀ sourceĀ nodeĀ andĀ aĀ destinationĀ nodeĀ accordingĀ toĀ aĀ stateĀ ofĀ timeĀ slotsĀ ofĀ anĀ opticalĀ network,Ā whereinĀ theĀ OTSSĀ connectionĀ comprisesĀ wavelengthĀ linksĀ betweenĀ adjacentĀ opticalĀ switchingĀ nodes; transmittingĀ dataĀ streamsĀ toĀ theĀ destinationĀ nodeĀ viaĀ theĀ OTSSĀ connectionĀ byĀ theĀ sourceĀ node,Ā whereinĀ timeĀ domainĀ periodicĀ OTSSĀ framesĀ areĀ usedĀ toĀ transmitĀ theĀ dataĀ streamsĀ onĀ theĀ wavelengthĀ links; eachĀ OTSSĀ frameĀ comprisesĀ variable-lengthĀ timeĀ slicesĀ andĀ OTSSĀ framesĀ onĀ aĀ sameĀ wavelengthĀ linkĀ comprisesĀ sameĀ timeĀ slices; eachĀ groupĀ ofĀ periodicĀ timeĀ slicesĀ constituteĀ anĀ OTSSĀ sub-wavelengthĀ opticalĀ channel; eachĀ opticalĀ switchingĀ nodeĀ switchesĀ timeĀ slicesĀ arrivingĀ atĀ anĀ inputĀ fiberĀ portĀ toĀ anĀ outputĀ fiberĀ portĀ byĀ anĀ opticalĀ switchĀ controller.
TheĀ all-opticalĀ timeĀ sliceĀ switchingĀ methodĀ basedĀ onĀ timeĀ synchronizationĀ accordingĀ toĀ embodimentsĀ ofĀ theĀ presentĀ disclosureĀ mayĀ overcomeĀ theĀ shortcomingsĀ inĀ currentĀ switchingĀ technologiesĀ andĀ realizeĀ reliableĀ andĀ flexibleĀ all-opticalĀ switchingĀ atĀ aĀ sub-wavelengthĀ granularityĀ withoutĀ participationĀ ofĀ all-opticalĀ buffersĀ andĀ all-opticalĀ logicĀ devices.
Moreover,Ā theĀ all-opticalĀ timeĀ sliceĀ switchingĀ methodĀ basedĀ onĀ timeĀ synchronizationĀ accordingĀ toĀ embodimentsĀ ofĀ theĀ presentĀ disclosureĀ bearsĀ theĀ followingĀ additionalĀ technicalĀ features.
InĀ anĀ embodimentĀ ofĀ theĀ presentĀ disclosure,Ā theĀ methodĀ furtherĀ comprisesĀ obtainingĀ aĀ high-precisionĀ timeĀ signalĀ byĀ eachĀ opticalĀ switchingĀ nodeĀ fromĀ aĀ timeĀ serverĀ toĀ synchronizeĀ aĀ localĀ timeĀ ofĀ theĀ opticalĀ switchingĀ node,Ā whereinĀ theĀ timeĀ serverĀ determinesĀ theĀ high-precisionĀ timeĀ signalĀ viaĀ aĀ satelliteĀ orĀ aĀ network.
InĀ anĀ embodimentĀ ofĀ theĀ presentĀ disclosure,Ā theĀ methodĀ furtherĀ comprisesĀ ifĀ aĀ stateĀ ofĀ timeĀ slotsĀ onĀ aĀ wavelengthĀ linkĀ changes,Ā floodingĀ informationĀ ofĀ theĀ timeĀ slotsĀ withinĀ aĀ periodĀ onĀ theĀ wavelengthĀ linkĀ throughoutĀ theĀ opticalĀ networkĀ byĀ opticalĀ switchingĀ nodesĀ atĀ eachĀ endĀ ofĀ theĀ wavelengthĀ linkĀ soĀ asĀ toĀ determineĀ timeĀ slotsĀ availableĀ toĀ theĀ OTSSĀ connectionĀ accordingĀ toĀ aĀ  changedĀ stateĀ ofĀ theĀ timeĀ slots,Ā whereinĀ theĀ informationĀ comprisesĀ start/endĀ timeĀ ofĀ timeĀ slices,Ā slotĀ occupying/releasingĀ andĀ servicesĀ carriedĀ onĀ timeĀ slices.
InĀ anĀ embodimentĀ ofĀ theĀ presentĀ disclosure,Ā determiningĀ anĀ OTSSĀ connectionĀ betweenĀ aĀ sourceĀ nodeĀ andĀ aĀ destinationĀ nodeĀ comprises:Ā ifĀ aĀ connectionĀ requestĀ arrives,Ā calculatingĀ anĀ availableĀ path,Ā aĀ wavelengthĀ andĀ start/endĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ eachĀ wavelengthĀ linkĀ ofĀ theĀ availableĀ pathĀ byĀ theĀ sourceĀ nodeĀ accordingĀ toĀ theĀ stateĀ ofĀ timeĀ slotsĀ ofĀ theĀ opticalĀ network,Ā informationĀ ofĀ theĀ destinationĀ nodeĀ andĀ aĀ requestedĀ bandwidth; establishingĀ theĀ OTSSĀ connectionĀ byĀ theĀ sourceĀ nodeĀ accordingĀ toĀ theĀ availableĀ path,Ā theĀ wavelengthĀ andĀ theĀ start/endĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ eachĀ wavelengthĀ linkĀ ofĀ theĀ availableĀ path.
InĀ anĀ embodimentĀ ofĀ theĀ presentĀ disclosure,Ā establishingĀ theĀ OTSSĀ connectionĀ comprises:Ā transmittingĀ aĀ messageĀ forĀ reservingĀ timeĀ slotsĀ andĀ informationĀ onĀ theĀ availableĀ path,Ā theĀ wavelengthĀ andĀ theĀ start/endĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ eachĀ wavelengthĀ linkĀ ofĀ theĀ availableĀ pathĀ toĀ otherĀ opticalĀ switchingĀ nodesĀ onĀ theĀ availableĀ pathĀ byĀ theĀ sourceĀ nodeĀ untilĀ theĀ messageĀ isĀ receivedĀ byĀ theĀ destinationĀ nodeĀ orĀ aĀ failureĀ occurs; afterĀ theĀ messageĀ isĀ receivedĀ byĀ theĀ otherĀ opticalĀ switchingĀ nodesĀ onĀ theĀ availableĀ path,Ā reservingĀ theĀ periodicĀ timeĀ slotsĀ byĀ eachĀ opticalĀ switchingĀ nodeĀ otherĀ thanĀ theĀ destinationĀ nodeĀ onĀ theĀ availableĀ pathĀ forĀ theĀ portĀ ofĀ theĀ outputĀ fiberĀ connectedĀ toĀ aĀ nextĀ opticalĀ switchingĀ nodeĀ onĀ theĀ availableĀ pathĀ accordingĀ toĀ theĀ informationĀ onĀ theĀ availableĀ path,Ā theĀ wavelengthĀ andĀ theĀ start/endĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ eachĀ wavelengthĀ linkĀ ofĀ theĀ availableĀ path,Ā whereĀ reservedĀ timeĀ slotsĀ areĀ notĀ allowedĀ toĀ beĀ occupiedĀ byĀ otherĀ connectionsĀ withinĀ aĀ reservedĀ period; afterĀ theĀ messageĀ isĀ receivedĀ byĀ theĀ destinationĀ node,Ā transmittingĀ aĀ confirmingĀ messageĀ onĀ theĀ availableĀ pathĀ byĀ theĀ destinationĀ nodeĀ untilĀ theĀ confirmingĀ messageĀ isĀ receivedĀ byĀ theĀ sourceĀ node; afterĀ receivingĀ theĀ confirmingĀ message,Ā configuringĀ theĀ opticalĀ switchĀ controllerĀ byĀ eachĀ opticalĀ switchingĀ nodeĀ otherĀ thanĀ theĀ destinationĀ nodeĀ onĀ theĀ availableĀ path,Ā whereinĀ configuringĀ theĀ opticalĀ switchĀ controllerĀ comprisesĀ settingĀ periodicĀ switchingĀ pointsĀ accordingĀ toĀ theĀ start/endĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ eachĀ wavelengthĀ linkĀ ofĀ theĀ availableĀ path.
InĀ anĀ embodimentĀ ofĀ theĀ presentĀ disclosure,Ā transmittingĀ dataĀ streamsĀ toĀ theĀ destinationĀ nodeĀ viaĀ theĀ OTSSĀ connectionĀ byĀ theĀ sourceĀ nodeĀ comprises:Ā recodingĀ theĀ dataĀ streamsĀ byĀ theĀ sourceĀ nodeĀ toĀ obtainĀ recodedĀ dataĀ streamsĀ accordingĀ toĀ aĀ lineĀ rateĀ ofĀ aĀ wavelengthĀ channelĀ onĀ theĀ  availableĀ path,Ā whereinĀ recodingĀ theĀ dataĀ streamsĀ comprisesĀ remodulatingĀ theĀ dataĀ streamsĀ andĀ assemblingĀ themĀ intoĀ anĀ OTSSĀ sub-wavelengthĀ opticalĀ channelĀ accordingĀ toĀ theĀ start/endĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ theĀ firstĀ wavelengthĀ linkĀ ofĀ theĀ availableĀ path; transmittingĀ theĀ recodedĀ dataĀ streamsĀ toĀ aĀ nextĀ opticalĀ switchingĀ nodeĀ onĀ theĀ availableĀ pathĀ byĀ theĀ sourceĀ nodeĀ atĀ theĀ startĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ theĀ firstĀ wavelengthĀ linkĀ ofĀ theĀ availableĀ path; switchingĀ opticalĀ switchesĀ byĀ eachĀ opticalĀ switchingĀ nodeĀ onĀ theĀ availableĀ pathĀ atĀ theĀ switchingĀ pointsĀ setĀ byĀ theĀ opticalĀ switchĀ controllerĀ toĀ switchĀ periodicĀ timeĀ slicesĀ arrivingĀ atĀ theĀ inputĀ fiberĀ portĀ toĀ theĀ outputĀ fiberĀ port.
InĀ anĀ embodimentĀ ofĀ theĀ presentĀ disclosure,Ā calculatingĀ anĀ availableĀ path,Ā aĀ wavelengthĀ andĀ start/endĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ eachĀ wavelengthĀ linkĀ ofĀ theĀ availableĀ pathĀ byĀ theĀ sourceĀ nodeĀ comprises:Ā obtainingĀ aĀ candidateĀ pathĀ betweenĀ theĀ sourceĀ nodeĀ andĀ theĀ destinationĀ node; calculatingĀ combinedĀ availableĀ timeĀ slotsĀ onĀ theĀ candidateĀ pathĀ accordingĀ toĀ aĀ propagationĀ delayĀ andĀ aĀ stateĀ ofĀ timeĀ slotsĀ onĀ eachĀ wavelengthĀ linkĀ ofĀ theĀ candidateĀ path; ifĀ aĀ totalĀ dataĀ transmissionĀ bandwidthĀ ofĀ theĀ combinedĀ availableĀ timeĀ slotsĀ onĀ theĀ candidateĀ pathĀ isĀ greaterĀ thanĀ orĀ equalĀ toĀ theĀ requestedĀ bandwidth,Ā determiningĀ theĀ candidateĀ pathĀ toĀ beĀ theĀ availableĀ pathĀ andĀ determiningĀ theĀ wavelengthĀ andĀ theĀ start/endĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ eachĀ wavelengthĀ linkĀ ofĀ theĀ availableĀ pathĀ accordingĀ toĀ theĀ combinedĀ availableĀ timeĀ slotsĀ onĀ theĀ availableĀ path; otherwise,Ā repeatingĀ aboveĀ stepsĀ untilĀ theĀ availableĀ pathĀ isĀ determined.
InĀ anĀ embodimentĀ ofĀ theĀ presentĀ disclosure,Ā calculatingĀ combinedĀ availableĀ timeĀ slotsĀ onĀ theĀ candidateĀ pathĀ comprises:Ā forĀ eachĀ wavelengthĀ linkĀ ofĀ theĀ candidateĀ path,Ā definingĀ aĀ setĀ ofĀ timeĀ slotsĀ occupiedĀ onĀ theĀ wavelengthĀ linkĀ accordingĀ toĀ theĀ stateĀ ofĀ timeĀ slotsĀ onĀ theĀ wavelengthĀ linkĀ asĀ 
Figure PCTCN2014090582-appb-000001
where ψi is the set of time slots occupied on wavelength link ei, 
Figure PCTCN2014090582-appb-000002
andĀ 
Figure PCTCN2014090582-appb-000003
representĀ aĀ start/endĀ timeĀ ofĀ aĀ kthĀ timeĀ slotĀ occupiedĀ onĀ wavelengthĀ linkĀ eiĀ respectively,Ā andĀ KiĀ isĀ aĀ numberĀ ofĀ occupiedĀ timeĀ slotsĀ onĀ wavelengthĀ linkĀ ei; obtainingĀ aĀ combinedĀ occupiedĀ timeĀ slotsĀ usingĀ aĀ time-sliceĀ shiftĀ andĀ combinationĀ algorithmĀ byĀ H1-timesĀ iterationsĀ as:
(1)
Figure PCTCN2014090582-appb-000004
(2)ψcā†Ļˆc∪ψi'ļ¼›
(3)
Figure PCTCN2014090582-appb-000005
whereĀ H1Ā isĀ aĀ numberĀ ofĀ wavelengthĀ linksĀ ofĀ theĀ candidateĀ path,Ā 
Figure PCTCN2014090582-appb-000006
is a propagation delay  of wavelength link ei, ψcand
Figure PCTCN2014090582-appb-000007
represent the combined occupied time slots and an accumulative propagation delay respectively, the initial value of ψc is an empty set and the initial value of
Figure PCTCN2014090582-appb-000008
isĀ 0Ā andĀ iļ¼1ļ½žH1; obtainingĀ theĀ combinedĀ availableĀ timeĀ slotsĀ as
Figure PCTCN2014090582-appb-000009
InĀ anĀ embodimentĀ ofĀ theĀ presentĀ disclosure,Ā determiningĀ theĀ wavelengthĀ andĀ theĀ start/endĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ eachĀ wavelengthĀ linkĀ ofĀ theĀ availableĀ pathĀ accordingĀ toĀ theĀ combinedĀ availableĀ timeĀ slotsĀ onĀ theĀ availableĀ pathĀ comprises:Ā selectingĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ availableĀ timeĀ slots
Figure PCTCN2014090582-appb-000010
fromĀ theĀ combinedĀ availableĀ timeĀ slotsĀ onĀ theĀ availableĀ pathĀ asĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ availableĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ theĀ firstĀ wavelengthĀ linkĀ ofĀ whichĀ aĀ totalĀ dataĀ transmissionĀ bandwidthĀ isĀ greaterĀ thanĀ orĀ equalĀ toĀ theĀ requestedĀ bandwidth,Ā where
Figure PCTCN2014090582-appb-000011
andĀ NĀ representĀ aĀ start/endĀ timeĀ ofĀ anĀ nthĀ availableĀ timeĀ slotĀ onĀ theĀ firstĀ wavelengthĀ linkĀ andĀ aĀ numberĀ ofĀ availableĀ timeĀ slotsĀ onĀ theĀ firstĀ wavelengthĀ linkĀ respectively ; calculatingĀ start/endĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ otherĀ wavelengthĀ linksĀ ofĀ theĀ availableĀ pathĀ accordingĀ toĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ availableĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ theĀ firstĀ wavelengthĀ linkĀ as:
Figure PCTCN2014090582-appb-000012
where
Figure PCTCN2014090582-appb-000013
and
Figure PCTCN2014090582-appb-000014
representĀ aĀ start/endĀ timeĀ ofĀ anĀ nthĀ availableĀ timeĀ slotĀ onĀ wavelengthĀ linkĀ ejĀ respectively,Ā jļ¼2ļ½žH2Ā ,Ā H2Ā isĀ aĀ numberĀ ofĀ wavelengthĀ linksĀ ofĀ theĀ availableĀ pathĀ and
Figure PCTCN2014090582-appb-000015
isĀ aĀ propagationĀ delayĀ ofĀ wavelengthĀ linkĀ ek.
InĀ anĀ embodimentĀ ofĀ theĀ presentĀ disclosure,Ā timeĀ slicesĀ areĀ separatedĀ fromĀ eachĀ otherĀ byĀ aĀ guardĀ timeĀ andĀ theĀ methodĀ furtherĀ comprises:Ā whenĀ aĀ timeĀ synchronizationĀ errorĀ orĀ aĀ propagationĀ delayĀ variationĀ exceedsĀ theĀ guardĀ timeĀ soĀ thatĀ aĀ conflictĀ betweenĀ timeĀ slicesĀ occurs,Ā delayingĀ theĀ timeĀ slicesĀ byĀ anĀ apparatusĀ inĀ anĀ electricalĀ domainĀ orĀ anĀ opticalĀ domainĀ atĀ outputĀ fiberĀ portsĀ ofĀ conflictingĀ opticalĀ switchingĀ nodes.
AnotherĀ objectiveĀ ofĀ theĀ presentĀ disclosureĀ isĀ aimedĀ toĀ provideĀ anĀ all-opticalĀ timeĀ sliceĀ switchingĀ systemĀ basedĀ onĀ timeĀ synchronization,Ā whichĀ comprises:Ā aĀ determiningĀ module,Ā configuredĀ forĀ determiningĀ anĀ OTSSĀ connectionĀ betweenĀ theĀ sourceĀ nodeĀ andĀ theĀ destinationĀ nodeĀ accordingĀ toĀ aĀ stateĀ ofĀ timeĀ slotsĀ ofĀ anĀ opticalĀ network,Ā whereinĀ theĀ OTSSĀ connectionĀ comprisesĀ wavelengthĀ linksĀ betweenĀ adjacentĀ opticalĀ switchingĀ nodes; aĀ transmittingĀ module,Ā configuredĀ forĀ usingĀ timeĀ domainĀ periodicĀ OTSSĀ framesĀ toĀ transmitĀ dataĀ streamsĀ onĀ theĀ wavelengthĀ links,Ā whereinĀ eachĀ OTSSĀ frameĀ comprisesĀ variable-lengthĀ timeĀ slicesĀ andĀ OTSSĀ framesĀ onĀ aĀ sameĀ  wavelengthĀ linkĀ comprisesĀ sameĀ timeĀ slices,Ā eachĀ groupĀ ofĀ periodicĀ timeĀ slicesĀ constituteĀ anĀ OTSSĀ sub-wavelengthĀ opticalĀ channel,Ā andĀ eachĀ opticalĀ switchingĀ nodeĀ switchesĀ timeĀ slicesĀ arrivingĀ atĀ anĀ inputĀ fiberĀ portĀ toĀ anĀ outputĀ fiberĀ portĀ byĀ anĀ opticalĀ switchĀ controller.
TheseĀ additionalĀ aspectsĀ andĀ advantagesĀ ofĀ theĀ presentĀ disclosureĀ willĀ becomeĀ apparentĀ fromĀ theĀ followingĀ descriptionsĀ andĀ moreĀ readilyĀ appreciatedĀ fromĀ theĀ embodimentsĀ ofĀ theĀ presentĀ disclosure.
BRIEFĀ DESCRIPTIONĀ OFĀ THEĀ DRAWINGS
TheseĀ and/orĀ additionalĀ aspectsĀ andĀ advantagesĀ ofĀ theĀ presentĀ disclosureĀ willĀ becomeĀ apparentĀ andĀ moreĀ readilyĀ appreciatedĀ fromĀ theĀ followingĀ descriptionsĀ ofĀ embodimentsĀ madeĀ withĀ referenceĀ toĀ theĀ drawings,Ā inĀ which:
Fig.Ā 1Ā isĀ aĀ flowĀ chartĀ ofĀ anĀ all-opticalĀ timeĀ sliceĀ switchingĀ methodĀ basedĀ onĀ timeĀ synchronizationĀ accordingĀ toĀ embodimentsĀ ofĀ theĀ presentĀ disclosureļ¼›
Fig.Ā 2Ā isĀ aĀ schematicĀ viewĀ ofĀ aĀ structureĀ ofĀ periodicĀ timeĀ slicesĀ inĀ OTSSĀ andĀ anĀ asynchronousĀ switchingĀ modeĀ ofĀ OTSSļ¼›
Fig.Ā 3Ā isĀ aĀ schematicĀ viewĀ ofĀ aĀ structureĀ ofĀ anĀ opticalĀ switchingĀ nodeĀ supportingĀ bothĀ OTSSĀ andĀ conventionalĀ wavelengthĀ switchingĀ technologiesļ¼›
Fig.Ā 4Ā isĀ aĀ principleĀ diagramĀ ofĀ aĀ time-sliceĀ shiftĀ andĀ combinationĀ algorithmļ¼›
Fig.Ā 5Ā isĀ aĀ flowĀ chartĀ ofĀ signalingĀ messagesĀ inĀ OTSSļ¼›
Fig.Ā 6Ā isĀ aĀ diagramĀ showingĀ theĀ blockingĀ performanceĀ ofĀ OTSSĀ comparedĀ toĀ thatĀ ofĀ aĀ conventionalĀ wavelengthĀ switchingĀ technologyļ¼›
Fig.Ā 7Ā isĀ aĀ diagramĀ showingĀ theĀ bandwidthĀ utilizationĀ ofĀ OTSSĀ comparedĀ toĀ thatĀ ofĀ aĀ conventionalĀ wavelengthĀ switchingĀ technologyļ¼›
Fig.Ā 8Ā isĀ aĀ schematicĀ viewĀ ofĀ anĀ all-opticalĀ timeĀ sliceĀ switchingĀ systemĀ basedĀ onĀ timeĀ synchronizationĀ accordingĀ toĀ embodimentsĀ ofĀ theĀ presentĀ disclosure.
DETAILEDĀ DESCRIPTION
ReferenceĀ willĀ beĀ madeĀ inĀ detailĀ toĀ embodimentsĀ ofĀ theĀ presentĀ disclosure,Ā whereinĀ theĀ sameĀ orĀ similarĀ elementsĀ andĀ theĀ elementsĀ havingĀ sameĀ orĀ similarĀ functionsĀ areĀ denotedĀ byĀ likeĀ referenceĀ numeralsĀ throughoutĀ theĀ descriptions.Ā TheĀ embodimentsĀ describedĀ hereinĀ withĀ referenceĀ toĀ drawingsĀ areĀ explanatory,Ā illustrative,Ā andĀ usedĀ toĀ generallyĀ understandĀ theĀ presentĀ disclosure.Ā  TheĀ embodimentsĀ shallĀ notĀ beĀ construedĀ toĀ limitĀ theĀ presentĀ disclosure.
AsĀ shownĀ inĀ Fig.Ā 1,Ā theĀ all-opticalĀ timeĀ sliceĀ switchingĀ methodĀ basedĀ onĀ timeĀ synchronizationĀ accordingĀ toĀ embodimentsĀ ofĀ theĀ presentĀ disclosureĀ comprisesĀ theĀ followingĀ steps.
AtĀ stepĀ S10:Ā determiningĀ anĀ OTSSĀ connectionĀ betweenĀ aĀ sourceĀ nodeĀ andĀ aĀ destinationĀ nodeĀ accordingĀ toĀ aĀ stateĀ ofĀ timeĀ slotsĀ ofĀ anĀ opticalĀ network,Ā whereinĀ theĀ OTSSĀ connectionĀ comprisesĀ wavelengthĀ linksĀ betweenĀ adjacentĀ opticalĀ switchingĀ nodesļ¼›
AtĀ stepĀ S20:Ā transmittingĀ dataĀ streamsĀ toĀ theĀ destinationĀ nodeĀ viaĀ theĀ OTSSĀ connectionĀ byĀ theĀ sourceĀ node,
whereinĀ timeĀ domainĀ periodicĀ OTSSĀ (opticalĀ timeĀ sliceĀ switching)Ā framesĀ areĀ usedĀ toĀ transmitĀ theĀ dataĀ streamsĀ onĀ theĀ wavelengthĀ links; eachĀ OTSSĀ frameĀ comprisesĀ variable-lengthĀ timeĀ slicesĀ andĀ OTSSĀ framesĀ onĀ aĀ sameĀ wavelengthĀ linkĀ comprisesĀ sameĀ timeĀ slices; eachĀ groupĀ ofĀ periodicĀ timeĀ slicesĀ constituteĀ anĀ OTSSĀ sub-wavelengthĀ opticalĀ channel; eachĀ opticalĀ switchingĀ nodeĀ switchesĀ timeĀ slicesĀ arrivingĀ atĀ anĀ inputĀ fiberĀ portĀ toĀ anĀ outputĀ fiberĀ portĀ byĀ anĀ opticalĀ switchĀ controller.
TheĀ all-opticalĀ timeĀ sliceĀ switchingĀ methodĀ basedĀ onĀ timeĀ synchronizationĀ accordingĀ toĀ embodimentsĀ ofĀ theĀ presentĀ disclosureĀ mayĀ realizeĀ reliableĀ andĀ flexibleĀ all-opticalĀ switchingĀ atĀ aĀ sub-wavelengthĀ granularityĀ withoutĀ all-opticalĀ buffersĀ andĀ all-opticalĀ logicĀ devices.
InĀ anĀ embodimentĀ ofĀ theĀ presentĀ disclosure,Ā theĀ methodĀ furtherĀ comprisesĀ obtainingĀ aĀ high-precisionĀ timeĀ signalĀ byĀ eachĀ opticalĀ switchingĀ nodeĀ fromĀ aĀ timeĀ serverĀ toĀ synchronizeĀ aĀ localĀ timeĀ ofĀ theĀ opticalĀ switchingĀ node,Ā whereinĀ theĀ timeĀ serverĀ determinesĀ theĀ high-precisionĀ timeĀ signalĀ viaĀ aĀ satelliteĀ orĀ aĀ network.
InĀ anĀ embodimentĀ ofĀ theĀ presentĀ disclosure,Ā theĀ methodĀ furtherĀ comprisesĀ ifĀ aĀ stateĀ ofĀ timeĀ slotsĀ onĀ aĀ wavelengthĀ linkĀ changes,Ā floodingĀ informationĀ ofĀ theĀ timeĀ slotsĀ withinĀ aĀ periodĀ onĀ theĀ wavelengthĀ linkĀ throughoutĀ theĀ opticalĀ networkĀ byĀ opticalĀ switchingĀ nodesĀ atĀ eachĀ endĀ ofĀ theĀ wavelengthĀ linkĀ soĀ asĀ toĀ determineĀ timeĀ slotsĀ availableĀ toĀ theĀ OTSSĀ connectionĀ accordingĀ toĀ aĀ changedĀ stateĀ ofĀ theĀ timeĀ slots,Ā whereinĀ theĀ informationĀ comprisesĀ start/endĀ timeĀ ofĀ timeĀ slices,Ā slotĀ occupying/releasingĀ andĀ servicesĀ carriedĀ onĀ timeĀ slices.
InĀ anĀ embodimentĀ ofĀ theĀ presentĀ disclosure,Ā determiningĀ anĀ OTSSĀ connectionĀ betweenĀ aĀ sourceĀ nodeĀ andĀ aĀ destinationĀ nodeĀ comprises:Ā ifĀ aĀ connectionĀ requestĀ arrives,Ā calculatingĀ anĀ availableĀ path,Ā aĀ wavelengthĀ andĀ start/endĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ eachĀ wavelengthĀ linkĀ ofĀ theĀ availableĀ pathĀ byĀ theĀ sourceĀ nodeĀ accordingĀ toĀ theĀ stateĀ ofĀ  timeĀ slotsĀ ofĀ theĀ opticalĀ network,Ā informationĀ ofĀ theĀ destinationĀ nodeĀ andĀ aĀ requestedĀ bandwidth; establishingĀ theĀ OTSSĀ connectionĀ byĀ theĀ sourceĀ nodeĀ accordingĀ toĀ theĀ availableĀ path,Ā theĀ wavelengthĀ andĀ theĀ start/endĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ eachĀ wavelengthĀ linkĀ ofĀ theĀ availableĀ path.
InĀ anĀ embodimentĀ ofĀ theĀ presentĀ disclosure,Ā establishingĀ theĀ OTSSĀ connectionĀ comprises:Ā transmittingĀ aĀ messageĀ forĀ reservingĀ timeĀ slotsĀ andĀ informationĀ onĀ theĀ availableĀ path,Ā theĀ wavelengthĀ andĀ theĀ start/endĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ eachĀ wavelengthĀ linkĀ ofĀ theĀ availableĀ pathĀ toĀ otherĀ opticalĀ switchingĀ nodesĀ onĀ theĀ availableĀ pathĀ byĀ theĀ sourceĀ nodeĀ untilĀ theĀ messageĀ isĀ receivedĀ byĀ theĀ destinationĀ nodeĀ orĀ aĀ failureĀ occurs; afterĀ theĀ messageĀ isĀ receivedĀ byĀ theĀ otherĀ opticalĀ switchingĀ nodesĀ onĀ theĀ availableĀ path,Ā reservingĀ theĀ periodicĀ timeĀ slotsĀ byĀ eachĀ opticalĀ switchingĀ nodeĀ otherĀ thanĀ theĀ destinationĀ nodeĀ onĀ theĀ availableĀ pathĀ forĀ theĀ portĀ ofĀ theĀ outputĀ fiberĀ connectedĀ toĀ aĀ nextĀ opticalĀ switchingĀ nodeĀ onĀ theĀ availableĀ pathĀ accordingĀ toĀ theĀ informationĀ onĀ theĀ availableĀ path,Ā theĀ wavelengthĀ andĀ theĀ start/endĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ eachĀ wavelengthĀ linkĀ ofĀ theĀ availableĀ path,Ā whereĀ reservedĀ timeĀ slotsĀ areĀ notĀ allowedĀ toĀ beĀ occupiedĀ byĀ otherĀ connectionsĀ withinĀ aĀ reservedĀ period; afterĀ theĀ messageĀ isĀ receivedĀ byĀ theĀ destinationĀ node,Ā transmittingĀ aĀ confirmingĀ messageĀ onĀ theĀ availableĀ pathĀ byĀ theĀ destinationĀ nodeĀ untilĀ theĀ confirmingĀ messageĀ isĀ receivedĀ byĀ theĀ sourceĀ node; afterĀ receivingĀ theĀ confirmingĀ message,Ā configuringĀ theĀ opticalĀ switchĀ controllerĀ byĀ eachĀ opticalĀ switchingĀ nodeĀ otherĀ thanĀ theĀ destinationĀ nodeĀ onĀ theĀ availableĀ path,Ā whereinĀ configuringĀ theĀ opticalĀ switchĀ controllerĀ comprisesĀ settingĀ periodicĀ switchingĀ pointsĀ accordingĀ toĀ theĀ start/endĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ eachĀ wavelengthĀ linkĀ ofĀ theĀ availableĀ path.
InĀ anĀ embodimentĀ ofĀ theĀ presentĀ disclosure,Ā transmittingĀ dataĀ streamsĀ toĀ theĀ destinationĀ nodeĀ viaĀ theĀ OTSSĀ connectionĀ byĀ theĀ sourceĀ nodeĀ comprises:Ā recodingĀ theĀ dataĀ streamsĀ byĀ theĀ sourceĀ nodeĀ toĀ obtainĀ recodedĀ dataĀ streamsĀ accordingĀ toĀ aĀ lineĀ rateĀ ofĀ aĀ wavelengthĀ channelĀ onĀ theĀ availableĀ path,Ā whereinĀ recodingĀ theĀ dataĀ streamsĀ comprisesĀ remodulatingĀ theĀ dataĀ streamsĀ andĀ assemblingĀ themĀ intoĀ anĀ OTSSĀ sub-wavelengthĀ opticalĀ channelĀ accordingĀ toĀ theĀ start/endĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ theĀ firstĀ wavelengthĀ linkĀ ofĀ theĀ availableĀ path; transmittingĀ theĀ recodedĀ dataĀ streamsĀ toĀ aĀ nextĀ opticalĀ switchingĀ nodeĀ onĀ theĀ availableĀ pathĀ byĀ theĀ sourceĀ nodeĀ atĀ theĀ startĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ theĀ firstĀ wavelengthĀ linkĀ ofĀ theĀ availableĀ path; switchingĀ byĀ eachĀ opticalĀ switchingĀ  nodeĀ onĀ theĀ availableĀ pathĀ opticalĀ switchesĀ atĀ theĀ switchingĀ pointsĀ setĀ byĀ theĀ opticalĀ switchĀ controllerĀ toĀ switchĀ periodicĀ timeĀ slicesĀ arrivingĀ atĀ theĀ inputĀ fiberĀ portĀ toĀ theĀ outputĀ fiberĀ port.
InĀ anĀ embodimentĀ ofĀ theĀ presentĀ disclosure,Ā calculatingĀ anĀ availableĀ path,Ā aĀ wavelengthĀ andĀ start/endĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ eachĀ wavelengthĀ linkĀ ofĀ theĀ availableĀ pathĀ byĀ theĀ sourceĀ nodeĀ comprises:Ā obtainingĀ aĀ candidateĀ pathĀ betweenĀ theĀ sourceĀ nodeĀ andĀ theĀ destinationĀ node; calculatingĀ combinedĀ availableĀ timeĀ slotsĀ onĀ theĀ candidateĀ pathĀ accordingĀ toĀ aĀ propagationĀ delayĀ andĀ aĀ stateĀ ofĀ timeĀ slotsĀ onĀ eachĀ wavelengthĀ linkĀ ofĀ theĀ candidateĀ path; ifĀ aĀ totalĀ dataĀ transmissionĀ bandwidthĀ ofĀ theĀ combinedĀ availableĀ timeĀ slotsĀ onĀ theĀ candidateĀ pathĀ isĀ greaterĀ thanĀ orĀ equalĀ toĀ theĀ requestedĀ bandwidth,Ā determiningĀ theĀ candidateĀ pathĀ toĀ beĀ theĀ availableĀ pathĀ andĀ determiningĀ theĀ wavelengthĀ andĀ theĀ start/endĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ eachĀ wavelengthĀ linkĀ ofĀ theĀ availableĀ pathĀ accordingĀ toĀ theĀ combinedĀ availableĀ timeĀ slotsĀ onĀ theĀ availableĀ path; otherwise,Ā repeatingĀ aboveĀ stepsĀ untilĀ theĀ availableĀ pathĀ isĀ determined.
InĀ anĀ embodimentĀ ofĀ theĀ presentĀ disclosure,Ā calculatingĀ combinedĀ availableĀ timeĀ slotsĀ onĀ theĀ candidateĀ pathĀ comprises:Ā forĀ eachĀ wavelengthĀ linkĀ ofĀ theĀ candidateĀ path,Ā definingĀ aĀ setĀ ofĀ timeĀ slotsĀ occupiedĀ onĀ theĀ wavelengthĀ linkĀ accordingĀ toĀ theĀ stateĀ ofĀ timeĀ slotsĀ onĀ theĀ wavelengthĀ linkĀ asĀ 
Figure PCTCN2014090582-appb-000016
where ψi is the set of time slots occupied on wavelength link ei, 
Figure PCTCN2014090582-appb-000017
andĀ 
Figure PCTCN2014090582-appb-000018
representĀ aĀ start/endĀ timeĀ ofĀ aĀ kthĀ timeĀ slotĀ occupiedĀ onĀ wavelengthĀ linkĀ eiĀ respectivelyĀ andĀ KiĀ isĀ aĀ numberĀ ofĀ occupiedĀ timeĀ slotsĀ onĀ wavelengthĀ linkĀ ei; obtainingĀ aĀ combinedĀ occupiedĀ timeĀ slotsĀ usingĀ aĀ time-sliceĀ shiftĀ andĀ combinationĀ algorithmĀ byĀ H1-timesĀ iterationsĀ as:
(1)
Figure PCTCN2014090582-appb-000019
(2)ψcā†Ļˆc∪ψi'ļ¼›
(3)
Figure PCTCN2014090582-appb-000020
whereĀ H1Ā isĀ aĀ numberĀ ofĀ wavelengthĀ linksĀ ofĀ theĀ candidateĀ path,Ā 
Figure PCTCN2014090582-appb-000021
is a propagation delay of wavelength link ei, ψcand
Figure PCTCN2014090582-appb-000022
represent the combined occupied time slots and an accumulative propagation delay respectively, the initial value of ψc is an empty set and the initial value of
Figure PCTCN2014090582-appb-000023
isĀ 0Ā andĀ iļ¼1ļ½žH1; obtainingĀ theĀ combinedĀ availableĀ timeĀ slotsĀ as
Figure PCTCN2014090582-appb-000024
InĀ anĀ embodimentĀ ofĀ theĀ presentĀ disclosure,Ā determiningĀ theĀ wavelengthĀ andĀ theĀ start/endĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ eachĀ wavelengthĀ linkĀ ofĀ theĀ availableĀ pathĀ accordingĀ toĀ theĀ combinedĀ availableĀ timeĀ slotsĀ onĀ theĀ availableĀ pathĀ comprises:Ā  selectingĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ availableĀ timeĀ slots
Figure PCTCN2014090582-appb-000025
fromĀ theĀ combinedĀ availableĀ timeĀ slotsĀ onĀ theĀ availableĀ pathĀ asĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ availableĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ theĀ firstĀ wavelengthĀ linkĀ ofĀ whichĀ aĀ totalĀ dataĀ transmissionĀ bandwidthĀ isĀ greaterĀ thanĀ orĀ equalĀ toĀ theĀ requestedĀ bandwidth,Ā where
Figure PCTCN2014090582-appb-000026
andĀ NĀ representĀ aĀ start/endĀ timeĀ ofĀ anĀ nthĀ availableĀ timeĀ slotĀ onĀ theĀ firstĀ wavelengthĀ linkĀ andĀ aĀ numberĀ ofĀ availableĀ timeĀ slotsĀ onĀ theĀ firstĀ wavelengthĀ linkĀ respectively ; calculatingĀ start/endĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ otherĀ wavelengthĀ linksĀ ofĀ theĀ availableĀ pathĀ accordingĀ toĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ availableĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ theĀ firstĀ wavelengthĀ linkĀ as:
Figure PCTCN2014090582-appb-000027
where
Figure PCTCN2014090582-appb-000028
and
Figure PCTCN2014090582-appb-000029
representĀ aĀ start/endĀ timeĀ ofĀ anĀ nthĀ availableĀ timeĀ slotĀ onĀ wavelengthĀ linkĀ ejĀ respectively,Ā jļ¼2ļ½žH2Ā ,Ā H2Ā isĀ aĀ numberĀ ofĀ wavelengthĀ linksĀ ofĀ theĀ availableĀ pathĀ and
Figure PCTCN2014090582-appb-000030
isĀ aĀ propagationĀ delayĀ ofĀ wavelengthĀ linkĀ ek.
InĀ anĀ embodimentĀ ofĀ theĀ presentĀ disclosure,Ā timeĀ slicesĀ areĀ separatedĀ fromĀ eachĀ otherĀ byĀ aĀ guardĀ timeĀ andĀ theĀ methodĀ furtherĀ comprises:Ā whenĀ aĀ timeĀ synchronizationĀ errorĀ orĀ aĀ propagationĀ delayĀ variationĀ exceedsĀ theĀ guardĀ timeĀ soĀ thatĀ aĀ conflictĀ betweenĀ timeĀ slicesĀ occurs,Ā delayingĀ theĀ timeĀ slicesĀ byĀ anĀ apparatusĀ inĀ anĀ electricalĀ domainĀ orĀ anĀ opticalĀ domainĀ atĀ outputĀ fiberĀ portsĀ ofĀ theĀ conflictingĀ opticalĀ switchingĀ nodes.
InĀ orderĀ toĀ makeĀ thoseĀ skilledĀ inĀ theĀ artĀ betterĀ understandĀ theĀ presentĀ disclosure,Ā theĀ presentĀ disclosureĀ willĀ beĀ describedĀ inĀ detailĀ withĀ referenceĀ toĀ Fig.Ā 2Ā toĀ Fig.Ā 7.
Fig. 2 illustrates a structure of periodic time slices in OTSS based on time synchronization and an asynchronous switching mode of OTSS. The core of OTSS is an optical switch controller and an OTSS switching matrix in Fig. 2, where the optical switch controller controls the OTSS switching matrix to reverse high-speed optical switches at periodic switching points such that time slices arriving at a wavelength channel on an input fiber are switched to an output fiber port in an asynchronous mode. Fig. 2 illustrates three OTSS channels (1, 2 and 3) having sub-wavelength granularity being switched in the OTSS switching matrix. The  OTSS channels  1 and 2 arrive at wavelength link λ0 on input fiber one and the OTSS channel 3 arrives at wavelength link λ0 on input fiber two. Each OTSS channel is organized into periodic OTSS time slices with a period of TFL, namely a length of an OTSS frame. If a state of time slots on a wavelength link changes, optical switching nodes at each end of the wavelength link flood information of time slots within a  period on the wavelength link throughout the optical network, where the information comprises start/end time of time slices, slot occupying/releasing and services carried on time slices. Time slices are separated from each other by a guard time which may avoid a conflict between time slices due to a tiny time synchronization error or propagation delay variation. When the time synchronization error or propagation delay variation exceeds the guard time so that a conflict between time slices occurs, delaying the time slices by an apparatus in an electrical domain or an optical domain at output fiber ports of conflicting optical switching nodes to avoid the conflict.
Fig.Ā 3Ā illustratesĀ aĀ structureĀ ofĀ anĀ opticalĀ switchingĀ nodeĀ supportingĀ bothĀ OTSSĀ andĀ conventionalĀ wavelengthĀ switchingĀ technologies.Ā Fig.Ā 3Ā illustratesĀ anĀ exampleĀ ofĀ twoĀ OTSSĀ connections,Ā anĀ OTSSĀ DropĀ atĀ sub-wavelengthĀ granularityĀ andĀ anĀ OCSĀ BypassĀ atĀ wavelengthĀ granularity.Ā BothĀ signalĀ generationĀ andĀ controlĀ ofĀ high-speedĀ opticalĀ switchesĀ areĀ basedĀ onĀ aĀ high-precisionĀ synchronizedĀ timeĀ signalĀ obtainedĀ fromĀ aĀ timeĀ server.Ā TheĀ start/endĀ timeĀ ofĀ eachĀ timeĀ slotĀ isĀ configuredĀ asĀ aĀ switchingĀ pointĀ (SP)Ā .Ā ControlledĀ byĀ theĀ opticalĀ switchĀ controller,Ā theĀ OTSSĀ switchingĀ matrixĀ reversesĀ opticalĀ switchesĀ atĀ periodicĀ switchingĀ pointsĀ suchĀ thatĀ timeĀ slicesĀ arrivingĀ atĀ aĀ wavelengthĀ channelĀ onĀ anĀ inputĀ fiberĀ areĀ switchedĀ toĀ aĀ targetĀ outputĀ fiberĀ portĀ inĀ anĀ asynchronousĀ mode.
AsĀ shownĀ inĀ Fig.Ā 2Ā andĀ Fig.Ā 3,Ā theĀ opticalĀ switchĀ controllerĀ obtainsĀ calculatedĀ switchingĀ pointsĀ fromĀ aĀ networkĀ controlĀ planeĀ viaĀ aĀ connectionĀ controlĀ interfaceĀ (CCI)Ā andĀ obtainsĀ aĀ high-precisionĀ synchronizedĀ timeĀ signalĀ fromĀ aĀ timeĀ serverĀ toĀ synchronizeĀ aĀ localĀ timeĀ ofĀ anĀ opticalĀ switchingĀ nodeĀ connectedĀ toĀ theĀ opticalĀ switchĀ controller.
When a connection request with a destination node being Node D arrives at Node S, the procedure for calculating a path, a wavelength and time slots allocation is conducted by the source node (Node S) . An available path, a wavelength and start/end time of one or more groups of periodic time slots to be occupied on each wavelength link of the available path are calculated according to the state of time slots of the optical network and a requested bandwidth. In the embodiment, available path S-A-D may be obtained by a shortest path algorithm and available wavelength λ0 may be obtained by a First-Fit algorithm. Then, available time slots on wavelength λ0 on path S-A-D may be calculated by a time-slice shift and combination algorithm.
Fig.Ā 4Ā illustratesĀ aĀ principleĀ diagramĀ ofĀ aĀ time-sliceĀ shiftĀ andĀ combinationĀ algorithm.Ā TakeĀ pathĀ S-A-DĀ forĀ example,Ā aĀ methodĀ forĀ calculatingĀ availableĀ timeĀ slotsĀ onĀ theĀ pathĀ isĀ described.Ā MoreĀ specifically,Ā firstly,Ā aĀ forwardĀ shiftĀ ofĀ theĀ propagationĀ delayĀ ofĀ wavelengthĀ linkĀ S-AĀ (
Figure PCTCN2014090582-appb-000031
theĀ wavelengthĀ isĀ Ī»0)Ā isĀ madeĀ onĀ allĀ theĀ timeĀ slicesĀ onĀ wavelengthĀ linkĀ A-DĀ (theĀ wavelengthĀ isĀ Ī»0)Ā byĀ theĀ time-sliceĀ shiftĀ andĀ combinationĀ algorithm.Ā Then,Ā allĀ theĀ timeĀ slicesĀ onĀ wavelengthĀ linkĀ S-A(theĀ wavelengthĀ isĀ Ī»0)Ā areĀ combinedĀ withĀ thoseĀ onĀ wavelengthĀ linkĀ A-DĀ (theĀ wavelengthĀ isĀ Ī»0)Ā afterĀ theĀ forwardĀ shift.Ā Finally,Ā combinedĀ availableĀ timeĀ slotsĀ areĀ calculated.Ā (1)Ā ifĀ aĀ totalĀ dataĀ transmissionĀ bandwidthĀ ofĀ theĀ combinedĀ availableĀ timeĀ slotsĀ isĀ lessĀ thanĀ theĀ requestedĀ bandwidthĀ suchĀ thatĀ thereĀ isĀ noĀ satisfactoryĀ availableĀ timeĀ slotĀ (s)Ā onĀ pathĀ S-A-DĀ (theĀ wavelengthĀ isĀ Ī»0)Ā ,Ā aĀ calculationĀ ofĀ availableĀ timeĀ slotsĀ mayĀ beĀ madeĀ onĀ anotherĀ pathĀ byĀ usingĀ theĀ time-sliceĀ shiftĀ andĀ combinationĀ algorithmĀ orĀ aĀ failureĀ messageĀ ofĀ theĀ pathĀ calculationĀ mayĀ beĀ returned; (2)Ā ifĀ theĀ totalĀ dataĀ transmissionĀ bandwidthĀ ofĀ theĀ combinedĀ availableĀ timeĀ slotsĀ isĀ noĀ lessĀ thanĀ theĀ requestedĀ bandwidth,Ā oneĀ orĀ moreĀ groupsĀ ofĀ availableĀ timeĀ slotsĀ ofĀ whichĀ theĀ totalĀ dataĀ transmissionĀ bandwidthĀ isĀ noĀ lessĀ thanĀ theĀ requestedĀ bandwidthĀ areĀ selected.Ā Start/endĀ timeĀ ofĀ theĀ oneĀ orĀ moreĀ groupsĀ ofĀ availableĀ timeĀ slotsĀ areĀ returnedĀ suchĀ thatĀ start/endĀ timeĀ ofĀ availableĀ timeĀ slotsĀ onĀ wavelengthĀ linkĀ S-AĀ (theĀ wavelengthĀ isĀ Ī»0)Ā areĀ obtained.Ā ShiftĀ theĀ start/endĀ timeĀ backwardĀ aĀ propagationĀ delayĀ ofĀ wavelengthĀ linkĀ S-AĀ (
Figure PCTCN2014090582-appb-000032
) , then start/end time of available time slots on wavelength link A-D (the wavelength is λ0) are obtained. Thus, the procedure for calculating a path, a wavelength and time slots allocation is finished.
Fig.Ā 5Ā illustratesĀ aĀ flowĀ chartĀ ofĀ signalingĀ messagesĀ inĀ OTSS.Ā TakeĀ pathĀ S-A-DĀ forĀ example,Ā theĀ procedureĀ forĀ reservingĀ timeĀ slotsĀ andĀ theĀ procedureĀ ofĀ dataĀ transmissionĀ areĀ described.Ā AĀ connectionĀ establishmentĀ isĀ startedĀ byĀ aĀ connectionĀ managementĀ moduleĀ ofĀ theĀ sourceĀ nodeĀ (NodeĀ S).NodeĀ SĀ transmitsĀ aĀ ā€œRESVā€Ā messageĀ onĀ pathĀ S-A-D.Ā TheĀ informationĀ includingĀ aĀ pathĀ (S-A-D)Ā ,Ā aĀ wavelengthĀ (Ī»0)Ā andĀ start/endĀ timeĀ ofĀ theĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ wavelengthĀ linkĀ S-AandĀ wavelengthĀ linkĀ A-DĀ isĀ sentĀ toĀ theĀ nodesĀ AĀ andĀ DĀ untilĀ theĀ ā€œRESVā€Ā messageĀ isĀ receivedĀ byĀ NodeĀ DĀ orĀ aĀ failureĀ occurs.Ā TheĀ periodicĀ timeĀ slotsĀ onĀ wavelengthĀ linkĀ S-A(Ī»0)Ā toĀ beĀ occupiedĀ forĀ aĀ portĀ connectedĀ toĀ NodeĀ AĀ areĀ reservedĀ byĀ NodeĀ S,Ā andĀ theĀ reservedĀ timeĀ slotsĀ areĀ notĀ allowedĀ toĀ beĀ occupiedĀ byĀ otherĀ connectionsĀ withinĀ theĀ reservedĀ period.Ā AfterĀ theĀ ā€œRESVā€Ā messageĀ isĀ receivedĀ byĀ NodeĀ A,Ā theĀ periodicĀ timeĀ slotsĀ onĀ wavelengthĀ linkĀ A-DĀ (Ī»0)Ā toĀ beĀ occupiedĀ forĀ aĀ portĀ connectedĀ toĀ NodeĀ DĀ areĀ reservedĀ byĀ NodeĀ A,Ā andĀ theĀ reservedĀ timeĀ slotsĀ areĀ notĀ allowedĀ toĀ beĀ occupiedĀ byĀ otherĀ connectionsĀ withinĀ theĀ reservedĀ period.
AfterĀ theĀ ā€œRESVā€Ā messageĀ isĀ receivedĀ byĀ NodeĀ D,Ā NodeĀ DĀ transmitsĀ aĀ ā€œCONFā€Ā confirmingĀ messageĀ onĀ pathĀ D-A-StillĀ theĀ ā€œCONFā€Ā messageĀ isĀ receivedĀ byĀ NodeĀ A.Ā AfterĀ receivingĀ theĀ ā€œCONFā€Ā message,Ā anĀ operationĀ forĀ configuringĀ opticalĀ switchĀ controllersĀ isĀ conductedĀ byĀ NodeĀ AĀ  orĀ NodeĀ SĀ viaĀ aĀ connectionĀ controlĀ interfaceĀ toĀ setĀ periodicĀ switchingĀ pointsĀ (SP)Ā accordingĀ toĀ start/endĀ timeĀ ofĀ timeĀ slotsĀ carriedĀ byĀ theĀ ā€œRESVā€Ā message.Ā TheĀ connectionĀ establishmentĀ isĀ finishedĀ afterĀ theĀ ā€œCONFā€Ā messageĀ isĀ receivedĀ byĀ NodeĀ SĀ andĀ theĀ operationĀ forĀ configuringĀ opticalĀ switchĀ controllersĀ isĀ conductedĀ byĀ NodeĀ S,Ā andĀ thenĀ theĀ dataĀ transmissionĀ isĀ started.
When transmitting data streams, the data streams are recoded by Node S to obtain recoded data streams according to a line rate of wavelength channel λ0, the data streams are remodulated and then assembled into an OTSS sub-wavelength optical channel whose time slices period is TFL, according to a length of calculated time slots to be occupied, and then the recoded data streams are sent to Node A on wavelength channel λ0 at calculated start time of time slots on wavelength link S-A. Node A reverses optical switches at the periodic switching points set by the optical switch controller such that periodic time slices on wavelength channel λ0 sent by Node S are switched to the target output fiber port connected to Node D.
Fig.Ā 6Ā andĀ Fig.Ā 7Ā illustrateĀ diagramsĀ showingĀ simulationĀ resultsĀ ofĀ OTSSĀ comparedĀ toĀ thatĀ ofĀ aĀ conventionalĀ wavelengthĀ switchingĀ technology.Ā TheĀ simulationĀ isĀ basedĀ onĀ anĀ NSFNETĀ topologyĀ withĀ 14Ā nodesĀ andĀ 21Ā links,Ā andĀ theĀ lineĀ rateĀ ofĀ eachĀ wavelengthĀ channelĀ isĀ 40Ā Gb/s.Ā ConnectionĀ requestsĀ arriveĀ inĀ aĀ PoissonĀ processĀ andĀ areĀ uniformlyĀ distributedĀ amongĀ allĀ theĀ nodesĀ withĀ aĀ singleĀ requestedĀ bandwidthĀ ofĀ 1Ā Gb/s.Ā Fig.Ā 6Ā illustratesĀ theĀ blockingĀ performanceĀ ofĀ OTSSĀ comparedĀ toĀ thatĀ ofĀ aĀ conventionalĀ wavelengthĀ switchingĀ technology.Ā InĀ Fig.Ā 6,Ā itĀ canĀ beĀ seenĀ thatĀ theĀ blockingĀ probabilityĀ ofĀ theĀ conventionalĀ wavelengthĀ switchingĀ technologyĀ isĀ greaterĀ thanĀ 90ļ¼…inĀ aĀ givenĀ loadĀ range,Ā whichĀ isĀ unacceptableĀ inĀ practice.Ā TheĀ blockingĀ probabilityĀ ofĀ OTSSĀ isĀ noĀ greaterĀ thanĀ 13ļ¼…inĀ theĀ sameĀ loadĀ range,Ā andĀ theĀ performanceĀ ofĀ OTSSĀ isĀ good.Ā Fig.Ā 7Ā illustratesĀ theĀ bandwidthĀ utilizationĀ ofĀ OTSSĀ comparedĀ toĀ thatĀ ofĀ aĀ conventionalĀ wavelengthĀ switchingĀ technology.Ā ItĀ canĀ beĀ seenĀ thatĀ theĀ bandwidthĀ utilizationĀ ofĀ OTSSĀ isĀ greaterĀ thanĀ thatĀ ofĀ theĀ conventionalĀ wavelengthĀ switchingĀ technologyĀ withĀ theĀ sameĀ blockingĀ probability.Ā InĀ aĀ givenĀ blockingĀ probabilityĀ rangeĀ (0-13ļ¼…)Ā ,Ā theĀ bandwidthĀ utilizationĀ ofĀ OTSSĀ variesĀ fromĀ 32ļ¼…toĀ 46ļ¼…whileĀ thatĀ ofĀ theĀ conventionalĀ wavelengthĀ switchingĀ technologyĀ isĀ noĀ greaterĀ thanĀ 1ļ¼….
TheĀ presentĀ disclosureĀ providesĀ anĀ all-opticalĀ timeĀ sliceĀ switchingĀ systemĀ basedĀ onĀ timeĀ synchronization.
AsĀ shownĀ inĀ Fig.Ā 8,Ā theĀ systemĀ 80Ā comprises:Ā aĀ determiningĀ moduleĀ 801Ā andĀ aĀ transmittingĀ moduleĀ 802.
TheĀ determiningĀ module801Ā isĀ configuredĀ for:Ā determiningĀ anĀ OTSSĀ connectionĀ betweenĀ theĀ  sourceĀ nodeĀ andĀ theĀ destinationĀ nodeĀ accordingĀ toĀ aĀ stateĀ ofĀ timeĀ slotsĀ ofĀ anĀ opticalĀ network,Ā whereinĀ theĀ OTSSĀ connectionĀ comprisesĀ wavelengthĀ linksĀ betweenĀ adjacentĀ opticalĀ switchingĀ nodesĀ ļ¼›
TheĀ transmittingĀ moduleĀ 802Ā isĀ configuredĀ for:Ā usingĀ timeĀ domainĀ periodicĀ OTSSĀ framesĀ toĀ transmitĀ dataĀ streamsĀ onĀ theĀ wavelengthĀ links,Ā whereinĀ eachĀ OTSSĀ frameĀ comprisesĀ variable-lengthĀ timeĀ slicesĀ andĀ OTSSĀ framesĀ onĀ aĀ sameĀ wavelengthĀ linkĀ comprisesĀ sameĀ timeĀ slices,Ā eachĀ groupĀ ofĀ periodicĀ timeĀ slicesĀ constituteĀ anĀ OTSSĀ sub-wavelengthĀ opticalĀ channel,Ā andĀ eachĀ opticalĀ switchingĀ nodeĀ switchesĀ timeĀ slicesĀ arrivingĀ atĀ anĀ inputĀ fiberĀ portĀ toĀ anĀ outputĀ fiberĀ portĀ byĀ anĀ opticalĀ switchĀ controller.Ā TheĀ dataĀ streamsĀ areĀ transmittedĀ fromĀ sourceĀ nodeĀ toĀ theĀ destinationĀ nodeĀ viaĀ theĀ OTSSĀ connectionĀ byĀ theĀ transmittingĀ moduleĀ 802.
TheĀ all-opticalĀ timeĀ sliceĀ switchingĀ systemĀ basedĀ onĀ timeĀ synchronizationĀ accordingĀ toĀ embodimentsĀ ofĀ theĀ presentĀ disclosureĀ mayĀ realizeĀ reliableĀ andĀ flexibleĀ all-opticalĀ switchingĀ atĀ aĀ sub-wavelengthĀ granularityĀ withoutĀ all-opticalĀ buffersĀ andĀ all-opticalĀ logicĀ devices.
AnyĀ processĀ orĀ methodĀ describedĀ inĀ aĀ flowĀ chartĀ orĀ describedĀ hereinĀ inĀ otherĀ waysĀ mayĀ beĀ understoodĀ toĀ includeĀ oneĀ orĀ moreĀ modules,Ā segmentsĀ orĀ portionsĀ ofĀ codesĀ ofĀ executableĀ instructionsĀ forĀ achievingĀ specificĀ logicalĀ functionsĀ orĀ stepsĀ inĀ theĀ process,Ā andĀ theĀ scopeĀ ofĀ aĀ preferredĀ embodimentĀ ofĀ theĀ presentĀ disclosureĀ includesĀ otherĀ implementationsĀ inĀ whichĀ theĀ orderĀ ofĀ executionĀ mayĀ differĀ fromĀ thatĀ whichĀ isĀ depictedĀ inĀ theĀ flowĀ chart,Ā whichĀ shouldĀ beĀ understoodĀ byĀ thoseĀ skilledĀ inĀ theĀ art.
TheĀ logicĀ and/orĀ stepĀ describedĀ inĀ otherĀ mannersĀ hereinĀ orĀ shownĀ inĀ theĀ flowĀ chart,Ā forĀ example,Ā aĀ particularĀ sequenceĀ tableĀ ofĀ executableĀ instructionsĀ forĀ realizingĀ theĀ logicalĀ function,Ā mayĀ beĀ specificallyĀ achievedĀ inĀ anyĀ computerĀ readableĀ mediumĀ toĀ beĀ usedĀ byĀ theĀ instructionĀ executionĀ system,Ā deviceĀ orĀ equipmentĀ (suchĀ asĀ theĀ systemĀ basedĀ onĀ computers,Ā theĀ systemĀ comprisingĀ processorsĀ orĀ otherĀ systemsĀ capableĀ ofĀ obtainingĀ theĀ instructionĀ fromĀ theĀ instructionĀ executionĀ system,Ā deviceĀ andĀ equipmentĀ andĀ executingĀ theĀ instruction)Ā ,Ā orĀ toĀ beĀ usedĀ inĀ combinationĀ withĀ theĀ instructionĀ executionĀ system,Ā deviceĀ andĀ equipment.
ItĀ shouldĀ beĀ understoodĀ thatĀ eachĀ partĀ ofĀ theĀ presentĀ disclosureĀ mayĀ beĀ realizedĀ byĀ theĀ hardware,Ā software,Ā firmwareĀ orĀ theirĀ combination.Ā InĀ theĀ aboveĀ embodiments,Ā aĀ pluralityĀ ofĀ stepsĀ orĀ methodsĀ mayĀ beĀ realizedĀ byĀ theĀ softwareĀ orĀ firmwareĀ storedĀ inĀ theĀ memoryĀ andĀ executedĀ byĀ theĀ appropriateĀ instructionĀ executionĀ system.Ā ForĀ example,Ā ifĀ itĀ isĀ realizedĀ byĀ theĀ hardware,Ā likewiseĀ inĀ anotherĀ embodiment,Ā theĀ stepsĀ orĀ methodsĀ mayĀ beĀ realizedĀ byĀ oneĀ orĀ aĀ combinationĀ ofĀ theĀ  followingĀ techniquesĀ knownĀ inĀ theĀ art:Ā aĀ discreteĀ logicĀ circuitĀ havingĀ aĀ logicĀ gateĀ circuitĀ forĀ realizingĀ aĀ logicĀ functionĀ ofĀ aĀ dataĀ signal,Ā anĀ application-specificĀ integratedĀ circuitĀ havingĀ anĀ appropriateĀ combinationĀ logicĀ gateĀ circuit,Ā aĀ programmableĀ gateĀ arrayĀ (PGA)Ā ,Ā aĀ fieldĀ programmableĀ gateĀ arrayĀ (FPGA)Ā ,Ā etc.
ThoseĀ skilledĀ inĀ theĀ artĀ shallĀ understandĀ thatĀ allĀ orĀ partsĀ ofĀ theĀ stepsĀ inĀ theĀ aboveĀ exemplifyingĀ methodĀ ofĀ theĀ presentĀ disclosureĀ mayĀ beĀ achievedĀ byĀ commandingĀ theĀ relatedĀ hardwareĀ withĀ programs.Ā TheĀ programsĀ mayĀ beĀ storedĀ inĀ aĀ computerĀ readableĀ storageĀ medium,Ā andĀ theĀ programsĀ compriseĀ oneĀ orĀ aĀ combinationĀ ofĀ theĀ stepsĀ inĀ theĀ methodĀ embodimentsĀ ofĀ theĀ presentĀ disclosureĀ whenĀ runĀ onĀ aĀ computer.
InĀ addition,Ā eachĀ functionĀ cellĀ ofĀ theĀ embodimentsĀ ofĀ theĀ presentĀ disclosureĀ mayĀ beĀ integratedĀ inĀ aĀ processingĀ module,Ā orĀ theseĀ cellsĀ mayĀ beĀ separateĀ physicalĀ existence,Ā orĀ twoĀ orĀ moreĀ cellsĀ areĀ integratedĀ inĀ aĀ processingĀ module.Ā TheĀ integratedĀ moduleĀ mayĀ beĀ realizedĀ inĀ aĀ formĀ ofĀ hardwareĀ orĀ inĀ aĀ formĀ ofĀ softwareĀ functionĀ modules.Ā WhenĀ theĀ integratedĀ moduleĀ isĀ realizedĀ inĀ aĀ formĀ ofĀ softwareĀ functionĀ moduleĀ andĀ isĀ soldĀ orĀ usedĀ asĀ aĀ standaloneĀ product,Ā theĀ integratedĀ moduleĀ mayĀ beĀ storedĀ inĀ aĀ computerĀ readableĀ storageĀ medium.
TheĀ storageĀ mediumĀ mentionedĀ aboveĀ mayĀ beĀ read-onlyĀ memories,Ā magneticĀ disks,Ā CD,Ā etc.
ReferenceĀ throughoutĀ thisĀ specificationĀ toĀ ā€œanĀ embodiment,Ā ā€Ā ā€œsomeĀ embodiments,Ā ā€Ā ā€œoneĀ embodimentā€Ā ,Ā ā€œanotherĀ example,Ā ā€Ā ā€œanĀ example,Ā ā€Ā ā€œaspecificĀ example,Ā ā€Ā orĀ ā€œsomeĀ examples,Ā ā€Ā meansĀ thatĀ aĀ particularĀ feature,Ā structure,Ā material,Ā orĀ characteristicĀ describedĀ inĀ connectionĀ withĀ theĀ embodimentĀ orĀ exampleĀ isĀ includedĀ inĀ atĀ leastĀ oneĀ embodimentĀ orĀ exampleĀ ofĀ theĀ presentĀ disclosure.Ā Thus,Ā theĀ appearancesĀ ofĀ theĀ phrasesĀ suchĀ asĀ ā€œinĀ someĀ embodiments,Ā ā€Ā ā€œinĀ oneĀ embodimentā€Ā ,Ā ā€œinĀ anĀ embodimentā€Ā ,Ā ā€œinĀ anotherĀ example,Ā ā€Ā ā€œinĀ anĀ example,Ā ā€Ā ā€œinĀ aĀ specificĀ example,Ā ā€Ā orĀ ā€œinĀ someĀ examples,Ā ā€Ā inĀ variousĀ placesĀ throughoutĀ thisĀ specificationĀ areĀ notĀ necessarilyĀ referringĀ toĀ theĀ sameĀ embodimentĀ orĀ exampleĀ ofĀ theĀ presentĀ disclosure.Ā Furthermore,Ā theĀ particularĀ features,Ā structures,Ā materials,Ā orĀ characteristicsĀ mayĀ beĀ combinedĀ inĀ anyĀ suitableĀ mannerĀ inĀ oneĀ orĀ moreĀ embodimentsĀ orĀ examples.
AlthoughĀ explanatoryĀ embodimentsĀ haveĀ beenĀ shownĀ andĀ described,Ā itĀ wouldĀ beĀ appreciatedĀ byĀ thoseĀ skilledĀ inĀ theĀ artĀ thatĀ theĀ aboveĀ embodimentsĀ cannotĀ beĀ construedĀ toĀ limitĀ theĀ presentĀ disclosure,Ā andĀ changes,Ā alternatives,Ā andĀ modificationsĀ canĀ beĀ madeĀ inĀ theĀ embodimentsĀ withoutĀ departingĀ fromĀ spirit,Ā principlesĀ andĀ scopeĀ ofĀ theĀ presentĀ disclosure.

Claims (11)

  1. AnĀ all-opticalĀ timeĀ sliceĀ switchingĀ methodĀ basedĀ onĀ timeĀ synchronization,Ā comprising:
    determiningĀ anĀ OTSSĀ connectionĀ betweenĀ aĀ sourceĀ nodeĀ andĀ aĀ destinationĀ nodeĀ accordingĀ toĀ aĀ stateĀ ofĀ timeĀ slotsĀ ofĀ anĀ opticalĀ network,Ā whereinĀ theĀ OTSSĀ connectionĀ comprisesĀ wavelengthĀ linksĀ betweenĀ adjacentĀ opticalĀ switchingĀ nodesļ¼›
    transmittingĀ dataĀ streamsĀ toĀ theĀ destinationĀ nodeĀ viaĀ theĀ OTSSĀ connectionĀ byĀ theĀ sourceĀ node,
    whereinĀ timeĀ domainĀ periodicĀ OTSSĀ framesĀ areĀ usedĀ toĀ transmitĀ theĀ dataĀ streamsĀ onĀ theĀ wavelengthĀ links; eachĀ OTSSĀ frameĀ comprisesĀ variable-lengthĀ timeĀ slicesĀ andĀ OTSSĀ framesĀ onĀ aĀ sameĀ wavelengthĀ linkĀ comprisesĀ sameĀ timeĀ slices; eachĀ groupĀ ofĀ periodicĀ timeĀ slicesĀ constituteĀ anĀ OTSSĀ sub-wavelengthĀ opticalĀ channel; eachĀ opticalĀ switchingĀ nodeĀ switchesĀ timeĀ slicesĀ arrivingĀ atĀ anĀ inputĀ fiberĀ portĀ toĀ anĀ outputĀ fiberĀ portĀ byĀ anĀ opticalĀ switchĀ controller.
  2. TheĀ methodĀ accordingĀ toĀ claimĀ 1,Ā furtherĀ comprising:
    obtainingĀ aĀ high-precisionĀ timeĀ signalĀ byĀ eachĀ opticalĀ switchingĀ nodeĀ fromĀ aĀ timeĀ serverĀ toĀ synchronizeĀ aĀ localĀ timeĀ ofĀ theĀ opticalĀ switchingĀ node,Ā whereinĀ theĀ timeĀ serverĀ determinesĀ theĀ high-precisionĀ timeĀ signalĀ viaĀ aĀ satelliteĀ orĀ aĀ network.
  3. TheĀ methodĀ accordingĀ toĀ claimĀ 1,Ā furtherĀ comprising:
    ifĀ aĀ stateĀ ofĀ timeĀ slotsĀ onĀ aĀ wavelengthĀ linkĀ changes,Ā floodingĀ informationĀ ofĀ theĀ timeĀ slotsĀ withinĀ aĀ periodĀ onĀ theĀ wavelengthĀ linkĀ throughoutĀ theĀ opticalĀ networkĀ byĀ opticalĀ switchingĀ nodesĀ atĀ eachĀ endĀ ofĀ theĀ wavelengthĀ linkĀ soĀ asĀ toĀ determineĀ timeĀ slotsĀ availableĀ toĀ theĀ OTSSĀ connectionĀ accordingĀ toĀ aĀ changedĀ stateĀ ofĀ theĀ timeĀ slots,Ā whereinĀ theĀ informationĀ comprisesĀ start/endĀ timeĀ ofĀ timeĀ slices,Ā slotĀ occupying/releasingĀ andĀ servicesĀ carriedĀ onĀ timeĀ slices.
  4. TheĀ methodĀ accordingĀ toĀ claimĀ 1,Ā whereinĀ determiningĀ anĀ OTSSĀ connectionĀ betweenĀ aĀ sourceĀ nodeĀ andĀ aĀ destinationĀ nodeĀ comprises:
    ifĀ aĀ connectionĀ requestĀ arrives,Ā calculatingĀ anĀ availableĀ path,Ā aĀ wavelengthĀ andĀ start/endĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ eachĀ wavelengthĀ linkĀ ofĀ theĀ availableĀ pathĀ byĀ theĀ sourceĀ nodeĀ accordingĀ toĀ theĀ stateĀ ofĀ timeĀ slotsĀ ofĀ theĀ opticalĀ network,Ā informationĀ ofĀ theĀ destinationĀ nodeĀ andĀ aĀ requestedĀ bandwidthļ¼›
    establishingĀ theĀ OTSSĀ connectionĀ byĀ theĀ sourceĀ nodeĀ accordingĀ toĀ theĀ availableĀ path,Ā theĀ wavelengthĀ andĀ theĀ start/endĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ  eachĀ wavelengthĀ linkĀ ofĀ theĀ availableĀ path.
  5. TheĀ methodĀ accordingĀ toĀ claimĀ 4,Ā whereinĀ establishingĀ theĀ OTSSĀ connectionĀ comprises:
    transmittingĀ aĀ messageĀ forĀ reservingĀ timeĀ slotsĀ andĀ informationĀ onĀ theĀ availableĀ path,Ā theĀ wavelengthĀ andĀ theĀ start/endĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ eachĀ wavelengthĀ linkĀ ofĀ theĀ availableĀ pathĀ toĀ otherĀ opticalĀ switchingĀ nodesĀ onĀ theĀ availableĀ pathĀ byĀ theĀ sourceĀ nodeĀ untilĀ theĀ messageĀ isĀ receivedĀ byĀ theĀ destinationĀ nodeĀ orĀ aĀ failureĀ occursļ¼›
    afterĀ theĀ messageĀ isĀ receivedĀ byĀ theĀ otherĀ opticalĀ switchingĀ nodesĀ onĀ theĀ availableĀ path,Ā reservingĀ theĀ periodicĀ timeĀ slotsĀ byĀ eachĀ opticalĀ switchingĀ nodeĀ otherĀ thanĀ theĀ destinationĀ nodeĀ onĀ theĀ availableĀ pathĀ forĀ theĀ outputĀ fiberĀ portĀ connectedĀ toĀ aĀ nextĀ opticalĀ switchingĀ nodeĀ onĀ theĀ availableĀ pathĀ accordingĀ toĀ theĀ informationĀ onĀ theĀ availableĀ path,Ā theĀ wavelengthĀ andĀ theĀ start/endĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ eachĀ wavelengthĀ linkĀ ofĀ theĀ availableĀ path,Ā whereĀ reservedĀ timeĀ slotsĀ areĀ notĀ allowedĀ toĀ beĀ occupiedĀ byĀ otherĀ connectionsĀ withinĀ aĀ reservedĀ periodļ¼›
    afterĀ theĀ messageĀ isĀ receivedĀ byĀ theĀ destinationĀ node,Ā transmittingĀ aĀ confirmingĀ messageĀ onĀ theĀ availableĀ pathĀ byĀ theĀ destinationĀ nodeĀ untilĀ theĀ confirmingĀ messageĀ isĀ receivedĀ byĀ theĀ sourceĀ nodeļ¼›
    afterĀ receivingĀ theĀ confirmingĀ message,Ā configuringĀ theĀ opticalĀ switchĀ controllerĀ byĀ eachĀ opticalĀ switchingĀ nodeĀ otherĀ thanĀ theĀ destinationĀ nodeĀ onĀ theĀ availableĀ path,Ā whereinĀ configuringĀ theĀ opticalĀ switchĀ controllerĀ comprisesĀ settingĀ periodicĀ switchingĀ pointsĀ accordingĀ toĀ theĀ start/endĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ eachĀ wavelengthĀ linkĀ ofĀ theĀ availableĀ path.
  6. TheĀ methodĀ accordingĀ toĀ claimĀ 5,Ā whereinĀ transmittingĀ dataĀ streamsĀ toĀ theĀ destinationĀ nodeĀ viaĀ theĀ OTSSĀ connectionĀ byĀ theĀ sourceĀ nodeĀ comprises:
    recodingĀ theĀ dataĀ streamsĀ byĀ theĀ sourceĀ nodeĀ toĀ obtainĀ recodedĀ dataĀ streamsĀ accordingĀ toĀ aĀ lineĀ rateĀ ofĀ aĀ wavelengthĀ channelĀ onĀ theĀ availableĀ path,Ā whereinĀ recodingĀ theĀ dataĀ streamsĀ comprisesĀ remodulatingĀ theĀ dataĀ streamsĀ andĀ assemblingĀ themĀ intoĀ anĀ OTSSĀ sub-wavelengthĀ opticalĀ channelĀ accordingĀ toĀ theĀ start/endĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ theĀ firstĀ wavelengthĀ linkĀ ofĀ theĀ availableĀ pathļ¼›
    transmittingĀ theĀ recodedĀ dataĀ streamsĀ toĀ aĀ nextĀ opticalĀ switchingĀ nodeĀ onĀ theĀ availableĀ pathĀ byĀ theĀ sourceĀ nodeĀ atĀ theĀ startĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ theĀ firstĀ wavelengthĀ linkĀ ofĀ theĀ availableĀ pathļ¼›
    switchingĀ opticalĀ switchesĀ byĀ eachĀ opticalĀ switchingĀ nodeĀ onĀ theĀ availableĀ pathĀ atĀ theĀ switchingĀ pointsĀ setĀ byĀ theĀ opticalĀ switchĀ controllerĀ toĀ switchĀ periodicĀ timeĀ slicesĀ arrivingĀ atĀ theĀ inputĀ fiberĀ portĀ toĀ theĀ outputĀ fiberĀ port.
  7. TheĀ methodĀ accordingĀ toĀ claimĀ 4,Ā whereinĀ calculatingĀ anĀ availableĀ path,Ā aĀ wavelengthĀ andĀ start/endĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ eachĀ wavelengthĀ linkĀ ofĀ theĀ availableĀ pathĀ byĀ theĀ sourceĀ nodeĀ comprises:
    obtainingĀ aĀ candidateĀ pathĀ betweenĀ theĀ sourceĀ nodeĀ andĀ theĀ destinationĀ nodeļ¼›
    calculatingĀ combinedĀ availableĀ timeĀ slotsĀ onĀ theĀ candidateĀ pathĀ accordingĀ toĀ aĀ propagationĀ delayĀ andĀ aĀ stateĀ ofĀ timeĀ slotsĀ onĀ eachĀ wavelengthĀ linkĀ ofĀ theĀ candidateĀ pathļ¼›
    ifĀ aĀ totalĀ dataĀ transmissionĀ bandwidthĀ ofĀ theĀ combinedĀ availableĀ timeĀ slotsĀ onĀ theĀ candidateĀ pathĀ isĀ greaterĀ thanĀ orĀ equalĀ toĀ theĀ requestedĀ bandwidth,Ā determiningĀ theĀ candidateĀ pathĀ toĀ beĀ theĀ availableĀ pathĀ andĀ determiningĀ theĀ wavelengthĀ andĀ theĀ start/endĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ eachĀ wavelengthĀ linkĀ ofĀ theĀ availableĀ pathĀ accordingĀ toĀ theĀ combinedĀ availableĀ timeĀ slotsĀ onĀ theĀ availableĀ pathļ¼›
    otherwise,Ā repeatingĀ aboveĀ stepsĀ untilĀ theĀ availableĀ pathĀ isĀ determined.
  8. TheĀ methodĀ accordingĀ toĀ claimĀ 7,Ā whereinĀ calculatingĀ combinedĀ availableĀ timeĀ slotsĀ onĀ theĀ candidateĀ pathĀ comprises:
    forĀ eachĀ wavelengthĀ linkĀ ofĀ theĀ candidateĀ path,Ā definingĀ aĀ setĀ ofĀ timeĀ slotsĀ occupiedĀ onĀ theĀ wavelengthĀ linkĀ accordingĀ toĀ theĀ stateĀ ofĀ timeĀ slotsĀ onĀ theĀ wavelengthĀ linkĀ as
    Figure PCTCN2014090582-appb-100001
    where ψi is the set of time slots occupied on wavelength link ei, 
    Figure PCTCN2014090582-appb-100002
    and
    Figure PCTCN2014090582-appb-100003
    representĀ aĀ start/endĀ timeĀ ofĀ aĀ kthĀ timeĀ slotĀ occupiedĀ onĀ wavelengthĀ linkĀ eiĀ respectivelyĀ andĀ KiĀ isĀ aĀ numberĀ ofĀ occupiedĀ timeĀ slotsĀ onĀ wavelengthĀ linkĀ eiļ¼›
    obtainingĀ aĀ combinedĀ occupiedĀ timeĀ slotsĀ usingĀ aĀ time-sliceĀ shiftĀ andĀ combinationĀ algorithmĀ byĀ H1-timesĀ iterationsĀ as:
    Figure PCTCN2014090582-appb-100004
    (2)ψcā†Ļˆc∪ψi′;
    Figure PCTCN2014090582-appb-100005
    whereĀ H1Ā isĀ aĀ numberĀ ofĀ wavelengthĀ linksĀ ofĀ theĀ candidateĀ path,Ā 
    Figure PCTCN2014090582-appb-100006
    is a propagation delay of wavelength link ei, ψc and
    Figure PCTCN2014090582-appb-100007
    represent the combined occupied time slots and an accumulative propagation delay respectively, the initial value of ψc is an empty set and the initial value of
    Figure PCTCN2014090582-appb-100008
    isĀ  0Ā andĀ iļ¼1ļ½žH1ļ¼›
    obtainingĀ theĀ combinedĀ availableĀ timeĀ slotsĀ as
    Figure PCTCN2014090582-appb-100009
  9. TheĀ methodĀ accordingĀ toĀ claimĀ 7,Ā whereinĀ determiningĀ theĀ wavelengthĀ andĀ theĀ start/endĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ eachĀ wavelengthĀ linkĀ ofĀ theĀ availableĀ pathĀ accordingĀ toĀ theĀ combinedĀ availableĀ timeĀ slotsĀ onĀ theĀ availableĀ pathĀ comprises:
    selectingĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ availableĀ timeĀ slots
    Figure PCTCN2014090582-appb-100010
    fromĀ theĀ combinedĀ availableĀ timeĀ slotsĀ onĀ theĀ availableĀ pathĀ asĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ availableĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ theĀ firstĀ wavelengthĀ linkĀ ofĀ whichĀ aĀ totalĀ dataĀ transmissionĀ bandwidthĀ isĀ greaterĀ thanĀ orĀ equalĀ toĀ theĀ requestedĀ bandwidth,Ā where
    Figure PCTCN2014090582-appb-100011
    andĀ NĀ representĀ aĀ start/endĀ timeĀ ofĀ anĀ nthĀ availableĀ timeĀ slotĀ onĀ theĀ firstĀ wavelengthĀ linkĀ andĀ aĀ numberĀ ofĀ availableĀ timeĀ slotsĀ onĀ theĀ firstĀ wavelengthĀ linkĀ respectivelyļ¼›
    calculatingĀ start/endĀ timeĀ ofĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ otherĀ wavelengthĀ linksĀ ofĀ theĀ availableĀ pathĀ accordingĀ toĀ oneĀ orĀ moreĀ groupsĀ ofĀ periodicĀ availableĀ timeĀ slotsĀ toĀ beĀ occupiedĀ onĀ theĀ firstĀ wavelengthĀ linkĀ as:
    Figure PCTCN2014090582-appb-100012
    where
    Figure PCTCN2014090582-appb-100013
    and
    Figure PCTCN2014090582-appb-100014
    representĀ aĀ start/endĀ timeĀ ofĀ anĀ nthĀ availableĀ timeĀ slotĀ onĀ wavelengthĀ linkĀ ejĀ respectively,Ā jļ¼2ļ½žH2,Ā H2Ā isĀ aĀ numberĀ ofĀ wavelengthĀ linksĀ ofĀ theĀ availableĀ pathĀ and
    Figure PCTCN2014090582-appb-100015
    isĀ aĀ propagationĀ delayĀ ofĀ wavelengthĀ linkĀ ek.
  10. TheĀ methodĀ accordingĀ toĀ claimĀ 1,Ā whereinĀ timeĀ slicesĀ areĀ separatedĀ fromĀ eachĀ otherĀ byĀ aĀ guardĀ timeĀ andĀ theĀ methodĀ furtherĀ comprises:
    whenĀ aĀ timeĀ synchronizationĀ errorĀ orĀ aĀ propagationĀ delayĀ variationĀ exceedsĀ theĀ guardĀ timeĀ soĀ thatĀ aĀ conflictĀ betweenĀ timeĀ slicesĀ occurs,Ā delayingĀ theĀ timeĀ slicesĀ byĀ anĀ apparatusĀ inĀ anĀ electricalĀ domainĀ orĀ anĀ opticalĀ domainĀ atĀ outputĀ fiberĀ portsĀ ofĀ conflictingĀ opticalĀ switchingĀ nodes.
  11. AnĀ all-opticalĀ timeĀ sliceĀ switchingĀ systemĀ basedĀ onĀ timeĀ synchronization,Ā comprising:
    aĀ determiningĀ module,Ā configuredĀ forĀ determiningĀ anĀ OTSSĀ connectionĀ betweenĀ aĀ sourceĀ nodeĀ andĀ aĀ destinationĀ nodeĀ accordingĀ toĀ aĀ stateĀ ofĀ timeĀ slotsĀ ofĀ anĀ opticalĀ network,Ā whereinĀ theĀ OTSSĀ connectionĀ comprisesĀ wavelengthĀ linksĀ betweenĀ adjacentĀ opticalĀ switchingĀ nodesļ¼›
    aĀ transmittingĀ module,Ā configuredĀ forĀ usingĀ timeĀ domainĀ periodicĀ OTSSĀ framesĀ toĀ transmitĀ dataĀ streamsĀ onĀ theĀ wavelengthĀ links,Ā whereinĀ eachĀ OTSSĀ frameĀ comprisesĀ variable-lengthĀ timeĀ slicesĀ andĀ OTSSĀ framesĀ onĀ aĀ sameĀ wavelengthĀ linkĀ comprisesĀ sameĀ timeĀ slices,Ā eachĀ groupĀ ofĀ  periodicĀ timeĀ slicesĀ constituteĀ anĀ OTSSĀ sub-wavelengthĀ opticalĀ channel,Ā andĀ eachĀ opticalĀ switchingĀ nodeĀ switchesĀ timeĀ slicesĀ arrivingĀ atĀ anĀ inputĀ fiberĀ portĀ toĀ anĀ outputĀ fiberĀ portĀ byĀ anĀ opticalĀ switchĀ controller.
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