WO2015184587A1 - 光分组的发送方法、设备、处理方法及光交换设备 - Google Patents
光分组的发送方法、设备、处理方法及光交换设备 Download PDFInfo
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- WO2015184587A1 WO2015184587A1 PCT/CN2014/079085 CN2014079085W WO2015184587A1 WO 2015184587 A1 WO2015184587 A1 WO 2015184587A1 CN 2014079085 W CN2014079085 W CN 2014079085W WO 2015184587 A1 WO2015184587 A1 WO 2015184587A1
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- optical
- label
- optical packet
- packet payload
- optical label
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04Q—SELECTING
- H04Q11/00—Selecting arrangements for multiplex systems
- H04Q11/0001—Selecting arrangements for multiplex systems using optical switching
- H04Q11/0062—Network aspects
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04J—MULTIPLEX COMMUNICATION
- H04J14/00—Optical multiplex systems
- H04J14/02—Wavelength-division multiplex systems
- H04J14/0201—Add-and-drop multiplexing
- H04J14/0202—Arrangements therefor
- H04J14/021—Reconfigurable arrangements, e.g. reconfigurable optical add/drop multiplexers [ROADM] or tunable optical add/drop multiplexers [TOADM]
- H04J14/0212—Reconfigurable arrangements, e.g. reconfigurable optical add/drop multiplexers [ROADM] or tunable optical add/drop multiplexers [TOADM] using optical switches or wavelength selective switches [WSS]
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04Q—SELECTING
- H04Q11/00—Selecting arrangements for multiplex systems
- H04Q11/0001—Selecting arrangements for multiplex systems using optical switching
- H04Q11/0062—Network aspects
- H04Q11/0066—Provisions for optical burst or packet networks
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L45/00—Routing or path finding of packets in data switching networks
- H04L45/50—Routing or path finding of packets in data switching networks using label swapping, e.g. multi-protocol label switch [MPLS]
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L7/00—Arrangements for synchronising receiver with transmitter
- H04L7/0075—Arrangements for synchronising receiver with transmitter with photonic or optical means
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04Q—SELECTING
- H04Q11/00—Selecting arrangements for multiplex systems
- H04Q11/0001—Selecting arrangements for multiplex systems using optical switching
- H04Q11/0005—Switch and router aspects
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04Q—SELECTING
- H04Q11/00—Selecting arrangements for multiplex systems
- H04Q11/0001—Selecting arrangements for multiplex systems using optical switching
- H04Q11/0062—Network aspects
- H04Q2011/0077—Labelling aspects, e.g. multiprotocol label switching [MPLS], G-MPLS, MPAS
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04Q—SELECTING
- H04Q11/00—Selecting arrangements for multiplex systems
- H04Q11/0001—Selecting arrangements for multiplex systems using optical switching
- H04Q11/0062—Network aspects
- H04Q2011/0079—Operation or maintenance aspects
- H04Q2011/0083—Testing; Monitoring
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04Q—SELECTING
- H04Q11/00—Selecting arrangements for multiplex systems
- H04Q11/0001—Selecting arrangements for multiplex systems using optical switching
- H04Q11/0062—Network aspects
- H04Q2011/0086—Network resource allocation, dimensioning or optimisation
Definitions
- the present invention relates to the field of optical switching technologies, and in particular, to a method, a device, a processing method, and an optical switching device for transmitting optical packets.
- an optical label serial transmission scheme that is, an edge packet device processes an optical packet signal to be exchanged, and transmits an optical label and an optical packet payload to the optical source in a serial manner.
- Switching equipment Please refer to FIG. 1 , which is a timing diagram of serial transmission of optical tags in the prior art. As shown in the figure, the optical tags are separated from the corresponding optical packet loads in time, and the optical tags are sent first, and then the corresponding lights are transmitted. Packet load, and a certain time interval is reserved between the optical label and the transmitted optical packet payload. The time interval is called the protection duration. The protection duration needs to be greater than or equal to the optical switching device receiving the optical label, generating the control signal, and establishing the transmission optical packet. The time required for the optical link of the load.
- the protection duration takes hundreds of nanoseconds.
- the optical switching device needs to run a complex algorithm to establish an optical link, it takes a longer protection period.
- the link between the edge device and the optical switching device is not Any valid data will be transmitted, resulting in wasted link resources and low utilization of link resources.
- the embodiments of the present invention provide a method, a device, a processing method, and an optical switching device for transmitting an optical packet, which can improve the utilization rate of a transmission link that improves optical tags and optical packet payloads.
- an embodiment of the present invention provides a device for sending an optical packet, including: a processor, configured to obtain a first optical packet payload and/or a third optical label, and obtain a second optical label and a second optical packet load corresponding to the second optical label;
- an output unit configured to send the third optical label and/or the obtained by the processor to the optical switching device during a protection duration between sending the second optical label and transmitting the second optical packet payload Determining a first optical packet load, so that the optical switching device performs an exchange process of a third optical packet load corresponding to the third optical label according to the third optical label, and/or, in order to facilitate the optical switching
- the device performs the exchange processing of the first optical packet load according to the first optical label corresponding to the first optical packet payload;
- the second optical label is sent first, and the second optical packet is sent after being loaded; the first optical packet payload is light corresponding to the first optical label that has been sent before the second optical label is sent.
- a packet load, the third optical tag being an optical tag corresponding to a third optical packet load after the second optical packet load.
- the processor specifically includes: a first converter, configured to receive an input first optical signal, and perform photoelectric conversion processing on the first optical signal, to Obtaining an electrical signal;
- a parser configured to perform parsing processing on the electrical signal obtained by the first converter to obtain routing information of a first data frame and/or a third data frame, and obtain a second data frame and a second data frame Routing information;
- a first generator configured to generate the third optical label according to routing information of the third data frame obtained by the parser, and/or a second generator, configured to obtain according to the parser Generating the first optical packet payload by the first data frame;
- the first generator is further configured to generate the second optical label according to the routing information of the second data frame obtained by the parser;
- the second generator is further configured to generate the second optical packet payload according to the second data frame obtained by the parser.
- the output device includes: a scheduler, a sub-output device, and a second converter; ,
- the scheduler is configured to monitor the first generator to obtain a generated state of the third optical tag, and/or to monitor the second generator to obtain the first light a generation state of the packet payload; the generation state includes or has not been generated;
- the scheduler is further configured to: after the sending the second optical label, determine the protection duration according to the generated state of the first optical packet payload and/or the generated state of the first optical label, a first transmission time of the first optical packet payload and/or a third transmission timing of the third optical label;
- the scheduler is further configured to: after sending the second optical label, start a preset timer, where the timer starts timing;
- the scheduler is further configured to: when the timer reaches the first sending moment, generate a first control indication; and/or, further, when the timer reaches the third sending moment, generate Third control indication;
- the sub-outputter configured to send the first optical packet payload to a second converter according to the first control indication generated by the scheduler, and/or for generating according to the scheduler a third control indication, sending the third optical label to the second converter;
- the second converter is configured to perform electro-optical conversion processing on the third optical tag and/or the first optical packet payload sent by the sub-output device to obtain a corresponding second optical signal, and
- the optical switching device transmits the second optical signal.
- the output device includes: a scheduler and a second converter;
- the scheduler is configured to monitor the first generator to obtain a generated state of the third optical tag, and/or to monitor the second generator to obtain the first light a generation state of the packet payload; the generation state includes or has not been generated;
- the scheduler is further configured to: after the second optical label is sent, determine the protection duration according to the generated state of the first optical packet payload and/or the generated state of the third optical label, a first transmission time of the first optical packet payload and/or a third transmission timing of the third optical label;
- the scheduler is further configured to: after sending the second optical label, start a preset timer, where the timer starts timing;
- the scheduler is further configured to: when the timer reaches the first sending moment, generate a first control indication; and/or, further, when the timer reaches the third sending moment, generate Third control indication;
- the first generator is further configured to send the third optical label to the second converter according to the three control indications generated by the scheduler, and/or the second generator, further And transmitting, according to the first control indication generated by the scheduler, the first optical packet payload to the second converter;
- the second converter is further configured to perform an electro-optical conversion process on the third optical tag sent by the first generator and/or the first optical packet payload sent by the second generator to obtain Corresponding second optical signal, and transmitting the second optical signal to the optical switching device.
- the scheduler is specifically used In:
- the first generator is specifically configured to:
- the first optical label includes an optical label delimiter, a destination port information, a priority information, and length information.
- the optical label delimiter is used to indicate a start position of the first optical label, and the destination port information is used.
- the priority information is used to indicate a priority of the first optical packet payload corresponding to the first optical label, where the length information is used to indicate a destination port of the first optical packet payload corresponding to the first optical label, where the length information is used to indicate a priority of the first optical packet payload corresponding to the first optical label, where the length information is used. Indicates the length of the first optical tag.
- the second generator is specifically configured to:
- the first optical packet payload includes a terminator, the data frame, an initiator, and a preamble
- the end character is used to indicate a start position of the data frame
- the start character is used to indicate an end position of the data frame
- the preamble is used by a receiving device to perform clock synchronization processing according to the preamble To accurately receive the data frame.
- the second aspect of the present invention further provides an optical switching device, including:
- a controller a third optical label and/or a first optical packet payload sent by the sending device for receiving the optical packet, within a protection duration between sending the second optical label and transmitting the corresponding second optical packet payload;
- the second optical label is sent first, and the second optical packet is sent after being loaded;
- the first optical packet payload is an optical packet payload corresponding to the first optical label that has been sent before the second optical label is sent.
- the third optical tag is an optical tag corresponding to the third optical packet load after the second optical packet load;
- the controller obtains corresponding third control information according to the third optical label, where the third control information is used by the optical switch matrix to perform the third according to the third control information obtained by the controller.
- the controller is specifically configured to: obtain corresponding third control information according to the third optical label, and send the optical switch to the optical switch according to a preset first duration Transmitting, by the matrix, the third control information;
- the optical switch matrix is specifically configured to: establish, according to the third control information sent by the controller, an optical link that transmits a third optical packet payload, and after obtaining the third optical packet payload, by using the The optical link performs an exchange process of the third optical packet load corresponding to the third optical label.
- the controller is specifically configured to: obtain corresponding third control information according to the third optical label, and send the third control information to the optical switch matrix according to a preset first duration;
- the optical switch matrix is specifically configured to: establish, according to the third control information sent by the controller, an optical link that transmits a third optical packet payload, and after obtaining the third optical packet payload, by using the The optical link performs an exchange process of the third optical packet load corresponding to the third optical label.
- the controller sends the third control to the optical switch matrix according to a preset first duration
- the information specifically includes: after obtaining the third control information, starting a timer, the timer starts counting; when the timer reaches the first duration, sending the third control information to the optical switch matrix .
- the third optical label includes length information
- the controller is configured according to the preset first duration
- the sending the third control information by the optical switch matrix specifically includes:
- an embodiment of the present invention provides a method for transmitting an optical packet, including: obtaining a first optical packet payload and/or a third optical label;
- the optical switching device performs an exchange process of the third optical packet load corresponding to the third optical label according to the third optical label, and/or, so that the optical switching device corresponds to the first optical packet payload.
- a first optical label performing an exchange process of the first optical packet load
- the second optical label is sent first, and the second optical packet is sent after being loaded; the first optical packet payload is light corresponding to the first optical label that has been sent before the second optical label is sent.
- a packet load, the third optical tag being an optical tag corresponding to a third optical packet load after the second optical packet load.
- the obtaining, by the optical switching device, the obtained the first time in a protection duration between sending the second optical label and transmitting the second optical packet payload includes:
- the generated state includes whether it has been generated or not generated
- the second optical label After the second optical label is sent, determining, according to the generated state of the first optical packet payload and/or the generated state of the first optical label, the first time of the first optical packet load a transmission time and/or a third transmission time of the third optical tag;
- a preset timer is started, and the timer starts counting; And when the timer reaches the first sending moment, performing electro-optical conversion processing on the first optical packet load to obtain a corresponding second optical signal; and/or, when the timer reaches the third When the time is transmitted, the third optical tag performs an electro-optical conversion process to obtain a corresponding second optical signal;
- the generating state according to the first optical packet load and/or the first optical label The generating state, determining the first sending time of the first optical packet load and/or the third sending time of the third optical label, including:
- the embodiment of the present invention further provides a method for processing an optical packet, including: sending, by a sending device that receives an optical packet, a protection duration between sending a second optical label and transmitting a corresponding second optical packet payload, sending The third optical label and/or the first optical packet payload; wherein the second optical label is sent first, and the second optical packet is sent after the load; the first optical packet load is sent by the second optical The optical packet corresponding to the first optical label that has been sent before the label, the third optical label is the optical label corresponding to the third optical packet load after the second optical packet load; and obtained according to the third optical label Corresponding third control information; according to the third control And performing, according to the first control information, an exchange process of the third optical packet payload, where the first control information is exchanged; and/or, according to the first control information, the first control information Obtained according to the first optical label.
- the performing, by the third control information, the exchange processing of the third optical packet load corresponding to the third optical label including: according to a preset Establishing, by the first duration and the third control information, an optical link for transmitting a third optical packet payload;
- the performing the processing of the first optical packet load according to the first control information includes:
- the third optical label includes length information, and the first duration and the first The third control information establishes an optical link for transmitting the third optical packet payload, including:
- the length information is less than or equal to the length threshold, establishing, according to the third control information, an optical link that transmits a third optical packet payload; If the length information is greater than the length threshold, after obtaining the third control information, start a timer, so that the timer starts timing, and when the timer reaches the first duration, according to the The third control information is set up to establish an optical link for transmitting the third optical packet payload.
- the foregoing technical solution is capable of transmitting, during a protection time of transmitting the optical label and transmitting the corresponding optical packet payload.
- Other optical tags and/or other optical packet payloads, other optical packet payloads are optical packet payloads corresponding to other optical labels that have been sent before the optical label is sent, and other optical labels are light corresponding to other optical packet payloads after the optical packet payload.
- the label can be used to establish a corresponding optical link according to the optical label that is transmitted in advance. Therefore, the waste of link resources between the edge device and the optical switching device in the protection duration is reduced, and the utilization of link resources is improved.
- FIG. 2 is a functional block diagram of a transmission system for an optical packet according to an embodiment of the present invention
- FIG. 4 is a schematic diagram of an optical label format provided by an embodiment of the present invention
- FIG. 5 is a schematic diagram of an optical packet payload format according to an embodiment of the present invention
- FIG. Figure 7 is a functional block diagram of an optical switching device according to an embodiment of the present invention
- Figure 8 is a schematic structural diagram of an optical switching device according to an embodiment of the present invention
- Figure 10 is a light tag and optical package provided by an embodiment of the present invention. Schematic diagram of the transmission timing of the load;
- FIG. 11 is a first schematic diagram of a transmission sequence of an optical label and an optical packet load when n is equal to 1 according to an embodiment of the present invention
- FIG. 13 is a second schematic diagram of a transmission timing of an optical label and an optical packet load when n is equal to 1 according to an embodiment of the present invention
- FIG. 14 is a third schematic diagram of a transmission timing of an optical tag and an optical packet load according to an embodiment of the present invention.
- 15 is a fourth schematic diagram of a transmission timing of an optical tag and an optical packet load according to an embodiment of the present invention.
- 16 is a fifth schematic diagram of a transmission timing of an optical tag and an optical packet load according to an embodiment of the present invention.
- FIG. 17 is a sixth schematic diagram of a transmission sequence of an optical label and an optical packet load according to an embodiment of the present invention.
- first, second, third, etc. may be used to describe various durations, optical labels, and optical packet loads in embodiments of the present invention, these durations, optical labels, and optical envelope loads should not be limited to these terms. These terms are only used to distinguish between duration, optical label, and optical packet load.
- the first optical tag may also be referred to as a second optical tag without departing from the scope of the embodiments of the present invention.
- the second optical tag may also be referred to as a first optical tag.
- the word “if” as used herein may be interpreted as “at time” or “when” or “in response to determination” or “in response to detection”.
- the phrase “if determined” or “if detected (conditions or events stated)” can be interpreted as “when determined” or “in response to determination” or “when detected (stated condition or event) When “or” is in response to a test (stated condition or event).
- the transmission system of the optical packet includes a transmitting device of an optical packet, an optical switching device, and a receiving device of an optical packet.
- the transmitting device of the optical packet and the receiving of the optical packet The device is located between the user side device and the optical switching device, or the transmitting device of the optical packet and the receiving device of the optical packet are integrated in the user side device, and the user side device may be a server or a machine rejecting the top device, etc., each user side.
- the device sends an optical label and/or an optical packet payload to the transmitting device and the optical sub-device of the optical group.
- the optical packet is processed by the optical switching device and sent to the receiving device of the optical packet corresponding to the other user-side device.
- the optical packet transmission technique divides the transmitted optical data into a number of optical packets.
- a packet header is included in each optical packet, and the packet header is an optical label in the embodiment of the present invention.
- the portion of the optical packet other than the packet header is the optical packet payload in the embodiment of the present invention, and the packet header is used to indicate The destination port to which the packet is sent, and then the optical switching device forwards the packet to the destination port according to the packet header of each packet. This process is called optical packet switching.
- Block diagram As shown in the figure, the transmitting device of the optical packet includes:
- the processor 30 is configured to obtain a first optical packet payload and/or a third optical label, and obtain a second optical label and a second optical packet load corresponding to the second optical label;
- the output unit 31 is configured to send the third optical label obtained by the processor 30 to the optical switching device during a protection duration between sending the second optical label and transmitting the second optical packet payload Or the first optical packet load, so that the optical switching device performs an exchange process of the third optical packet load corresponding to the third optical label according to the third optical label, and/or, in order to facilitate the The optical switching device performs the exchange processing of the first optical packet load according to the first optical label corresponding to the first optical packet payload;
- the second optical label is sent first, and the second optical packet is sent after being sent; the first optical packet payload is opposite to the first optical label that has been sent before the second optical label is sent.
- the optical packet load is the optical label corresponding to the third optical packet load after the second optical packet load.
- the processor 30 further includes a first converter 301, a parser 302, a first generator 303, and a second generator 304.
- the outputter 31 further includes a scheduler 31 1 , a sub-outputter 312 and a second converter 313 ; or the outputter 31 further includes a scheduler 31 1 and a second converter 313 .
- the first converter 301 is configured to receive the input first optical signal, and perform photoelectric conversion processing on the first optical signal to obtain an electrical signal. Specifically, the first converter 301 receives the first optical signal sent by the user side device by using the optical medium between the user side device, and then performs photoelectric conversion processing on the first optical signal to obtain a corresponding electrical signal. The obtained electrical signal is then sent to the parser 302.
- the parser 302 is configured to perform parsing processing on the electrical signal obtained by the first converter 301 to obtain routing information of the first data frame and/or the third data frame, and obtain the second data frame and the second data frame Routing information for data frames.
- the parser 302 receives the electrical signal sent by the first converter 301, parses the electrical signal, obtains routing information of the first data frame and/or the third data frame, and obtains the second data frame and Routing information of the second data frame.
- the obtained routing information of the third data frame is used to generate a third optical label; the routing information of the third data frame may include a destination port address and length information.
- the parser 302 may further cache the routing information of the data frame and the data frame obtained after the parsing, and the parser 302 may separately send the routing information and the data frame of the data frame under the control of the scheduler 31 1 . Giving the first generator 303 and the second generator 304 to trigger the first The generator 303 generates a third optical tag and/or the second generator 304 generates a first optical packet payload, and the first generator 303 generates a second optical tag, and the second generator 304 generates a second optical packet payload.
- Ethernet packet is parsed to obtain the media access control.
- MAC Medium/Media Access Control
- a first generator 303 configured to generate the third optical label according to routing information of the third data frame obtained by the parser 302, and/or a second generator 303, configured to use the parser according to the parser
- the first data frame obtained by the 302 generates the first optical packet payload; and is further configured to generate the second optical label according to the routing information of the second data frame obtained by the parser.
- the routing information of the data frame is used by the controller of the optical switching device to generate control information to control the optical switch matrix of the optical switching device to establish an optical link.
- the first generator 303 receives the routing information of the third data frame sent by the parser 302, and generates a third optical label according to the routing information of the third data frame and the preset optical label format.
- FIG. 4 is a schematic diagram of an optical label format provided by an embodiment of the present invention.
- the generated third optical label may include an optical label delimiter, destination port information, and length information. information.
- the first generator 303 can generate the destination port information shown in FIG. 4 according to the received destination port address, and generate the length information shown in FIG. 4 according to the received length information.
- the optical label delimiter is used to indicate a start position of the third optical label
- the destination port information is used to indicate a destination port of the third optical packet payload corresponding to the third optical label, where the length information is used.
- the optical switching device can complete the scheduling operation of the third optical packet load exchange according to the destination port information, indicating the length of the third optical packet payload corresponding to the third optical label.
- the length of the third optical label is fixed, and the transmission time of the third optical label is assumed in the embodiment of the present invention. For t tabel .
- the first generator 303 may further cache the generated third optical label, so that under the control of the scheduler 31 1 , the first generator 303 may send to the sub-output 312, and the sub-output 312
- the second generator 313 is sent to the second converter 313; or, under the control of the scheduler 31 1 , the first generator 303 can be directly sent to the second converter 313.
- a second generator 304 configured to generate the first optical packet payload according to the first data frame obtained by the parser; and configured to generate the first data frame according to the second data frame obtained by the parser Two optical packet load.
- the second generator 304 receives the first data frame sent by the parser 302, and generates the first optical packet payload according to the first data frame and a preset optical packet payload format.
- FIG. 5 is a schematic diagram of an optical packet payload format according to an embodiment of the present invention.
- the generated first optical packet payload may include a terminator, a data frame, an initiator, and a preamble.
- the second generator 304 takes the received data frame as the MAC frame shown in FIG. 5, and adds the start character, the terminator, and the preamble.
- the terminator is used to indicate a start position of the data frame
- the start code is used to indicate an end position of the data frame.
- the preamble is used by a receiving device to perform clock synchronization processing according to the preamble. To accurately receive the data frame. It should be noted that when the first optical packet payload is received by the receiving device of the optical packet, the receiving device needs to perform clock synchronization according to the preamble and prepare to receive the actual data frame.
- the exchanged optical packet load from different optical packet sources, and through different switching paths, makes the signal amplitude and phase between the received optical packet loads different, and the clocks of different optical packet sources also have Therefore, the receiving device needs to lock the clock phase and recover the decision threshold for each optical packet payload. Before the locking and recovery, the data cannot be correctly received, that is, the locking and recovery require a certain overhead, and the preamble is used as the preamble.
- the second generator 304 may further perform scrambling processing on the generated first optical packet payload to ensure stability and accuracy of the first optical packet payload during transmission.
- the outputter 31 is specifically configured to:
- the scheduler 31 1 is configured to monitor the first generator 303, obtain a generation status of the third optical label, and/or, and monitor the second generator 304 to obtain the first a generation state of an optical packet load; the generation state includes or has not been generated.
- the scheduler 31 1 is further configured to: after transmitting the second optical label, determine the protection duration according to the generated state of the first optical packet payload and/or the generated state of the first optical label, a first transmission time of the first optical packet payload and/or a third transmission timing of the third optical label.
- the scheduler 31 1 is further configured to: after sending the second optical label, turn on a preset timer, and the timer starts timing.
- the scheduler 31 1 is further configured to: when the timer reaches the first sending moment, generate a first control indication; and/or, further, when the timer reaches the third sending moment , generating a third control indication.
- the preset timer is started, so that the timer starts timing.
- the timer reaches a preset first duration, determining a first sending moment that reaches the first optical packet load, generating a first control indication of the first optical packet payload, and indicating the first control
- the sub-output 312 is sent to the sub-output 312 to cause the sub-output 312 to output a first optical packet load to the second converter 313.
- the sub-outputter 312 is configured to send the first optical packet payload to the second converter 313 according to the first control indication generated by the scheduler 31 1 , and/or for using the scheduler according to the scheduler
- the third control indication generated by 31 1 transmits the third optical tag to the second converter 313.
- the sub-outputter 312 can multiplex the third optical tag and the first optical packet payload on one transmission link in a time division multiplexing manner, and the sub-outputter 312 and the first generator 303 and the second generation.
- the routers 304 are respectively connected to each other, and may select to send the first optical label provided by the first generator 303 to the second converter 313, or may select to send the first optical packet payload provided by the second generator 304 to the second converter 313.
- the sub-outputter 312, after receiving the control instruction of the scheduler 31 1 selects whether to transmit the third optical tag or the first optical packet payload to the second converter 313 according to the control indication.
- the second converter 313 is configured to send the third light to the sub-outputter 312
- the tag and/or the first optical packet payload are subjected to an electro-optical conversion process to obtain a corresponding second optical signal, and the second optical signal is transmitted to the optical switching device.
- the second converter 313 receives the third optical tag and/or the first optical packet payload sent by the outputter 312, and then performs the electro-optical conversion processing on the third optical tag and/or the first optical packet payload, so that The tri-optical tag and/or the first optical packet payload is converted into a corresponding optical signal, and finally the obtained optical signal is transmitted to the optical switching device through the optical medium between the second converter 313 and the optical switching device.
- the outputter 31 further includes a scheduler 31 1 and a second converter 313, the outputter 31 is specifically configured to:
- the scheduler 31 1 is configured to monitor the first generator 303 to obtain a generated state of the third optical tag, and/or to monitor the second generator 304 to obtain A generation state of the first optical packet load; the generated state includes or has not been generated.
- the scheduler 31 1 is further configured to: after transmitting the second optical label, determine the protection duration according to the generated state of the first optical packet payload and/or the generated state of the third optical label, a first transmission time of the first optical packet payload and/or a third transmission timing of the third optical label.
- the scheduler 31 1 is further configured to: after sending the second optical label, turn on a preset timer, and the timer starts timing.
- the scheduler 31 1 is further configured to: when the timer reaches the first sending moment, generate a first control indication; and/or, further, when the timer reaches the third sending moment , generating a third control indication.
- the preset meter is started. a timer to cause the timer to start timing. When the timer reaches a preset first duration, determining a first sending moment that reaches the first optical packet payload, generating a first control indication of the first optical packet payload, and sending the first control indication
- the second generator 304 is given to cause the second generator 304 to output a first optical packet load to the second converter 313.
- the scheduler 31 1 can schedule the protection time between the second optical tag and the corresponding second optical packet payload, and let the first generator 303 and/or the second generator 304 output the first time according to a certain timing.
- the second generator 304 is a device for generating all optical packet loads in the present invention in the transmitting device of the optical packet, and therefore, the second optical tag is generated by the first generator 303, The two-beam payload is generated by the second generator 304.
- the first generator 303 is further configured to send the third optical label to the second converter 313 according to the three control indications generated by the scheduler 31 1
- the second generator 304 is further configured to send the first optical packet payload to the second converter 313 according to the first control indication generated by the scheduler 31 1 .
- the first generator 303 and the second generator 304 are respectively connected to the second converter 313.
- the first generator 303 buffers the third optical tag
- the second generator 304 buffers the first optical packet payload
- the first control indication sent by the scheduler 31 1 is received
- the cached first An optical packet payload is sent to the second converter 313.
- the second converter 313 is further configured to perform electro-optical conversion processing on the third optical tag sent by the first generator 303 and/or the first optical packet payload sent by the second generator 304. Obtaining a corresponding second optical signal, and transmitting the second optical signal to the optical switching device.
- the second converter 313 receives the third optical tag sent by the first generator 303, and/or receives the first optical packet payload sent by the second generator 304; then the second converter 313 sets the third optical tag. And/or the first optical packet load is subjected to an electro-optical conversion process, so that the third optical tag and/or the first optical packet load can be converted into a corresponding optical signal; the second converter 313 passes through the second converter 313 and the optical switching device Between the optical medium, the obtained optical signal is sent to the optical switching device.
- the first converter 301 and the second converter 313 may be implemented by using a transceiver.
- the parser 302, the first generator 303, the second generator 304, the scheduler 313, and the sub-outputter 312 respectively It can be realized by Field Programmable Gate Array (FPGA) chip or Application Specific Integrated Circuits (ASIC), but the program on the chip or ASIC can make the chip or integrated circuit have different functions. . schematic diagram. As shown in the figure, the transmitting device of the optical packet includes: a memory 601, configured to store information including a program routine;
- the processor 602 is coupled to the memory 601 and the transmitter 603, and is configured to control execution of the program routine, specifically: obtaining a first optical packet payload and/or a third optical label, and obtaining a second optical label and a second optical packet load corresponding to the second optical label;
- the transmitter 603 is configured to send the third optical label obtained by the processor 30 to the optical switching device during a protection duration between sending the second optical label and transmitting the second optical packet payload. Or the first optical packet load, so that the optical switching device performs an exchange process of the third optical packet load corresponding to the third optical label according to the third optical label, and/or, in order to facilitate the The optical switching device performs the exchange processing of the first optical packet load according to the first optical label corresponding to the first optical packet payload;
- the second optical label is sent first, and the second optical packet is sent after being loaded; the first optical packet payload is light corresponding to the first optical label that has been sent before the second optical label is sent.
- a packet load, the third optical tag being an optical tag corresponding to a third optical packet load after the second optical packet load.
- FIG. 7 is a functional block diagram of an optical switching device according to an embodiment of the present invention.
- the optical switching device includes:
- the controller 701 is configured to: send, by the sending device that receives the optical packet, a third optical label and/or a first optical packet payload within a protection duration between sending the second optical label and transmitting the corresponding second optical packet payload;
- the second optical label is sent first, and the second optical packet is sent after being loaded;
- the first optical packet payload is an optical packet payload corresponding to the first optical label that has been sent before the second optical label is sent,
- the third optical tag is an optical tag corresponding to a third optical packet load after the second optical packet load;
- the controller 701 obtains corresponding third control information according to the third optical label,
- the third control information is used by the optical switch matrix 702 to perform the exchange processing of the third optical packet load corresponding to the third optical label according to the third control information obtained by the controller 701; and/or
- the optical switch matrix 702 is configured to perform, according to the first control information, an exchange process of the first optical packet load, where the first control information is obtained by the controller according to the first optical label.
- the controller 701 is configured to: obtain corresponding third control information according to the third optical label, and send the third control information to the optical switch matrix according to a preset first duration;
- the optical switch matrix 702 is specifically configured to: establish, according to the third control information sent by the controller, an optical link that transmits a third optical packet payload, and after obtaining the third optical packet payload, pass the The optical link performs an exchange process of the third optical packet payload corresponding to the third optical label.
- the sending, by the controller 701, the first control information to the optical switch matrix 702 according to the preset first duration includes: after obtaining the third control information, starting a timer, where the timer starts timing; When the timer reaches the first duration, the third control information is sent to the optical switch matrix 702.
- the optical splitter extracts the third optical label in the optical packet, and then provides the third optical label to the controller 701, so that the controller 701 can send the optical packet to the sending device.
- the third optical label and extracts the destination port information and the length information from the third optical label, and then performs path calculation according to the destination port information to obtain corresponding third control information.
- the controller 701 may perform collision detection according to the destination port information, and calculate an optical link that transmits the third optical packet payload corresponding to the third optical label according to the detection result.
- the controller 701 After obtaining the first control information, the controller 701 starts a timer to cause the timer to start timing; when the timer reaches a preset first duration, the controller 701 sends the optical switch matrix 702 to the optical switch matrix 702. The first control information. In this way, the optical switch matrix 702 can establish an optical link between the source port and the destination port of the first optical packet payload according to the first control information.
- the controller 701 may further control the optical switch matrix 702 according to the length information, so that the optical switch matrix 702 can maintain the optical link according to the control of the controller 701. That is, it is determined the time that needs to be maintained after the optical link is established. Additionally, other information in the third optical tag can be used by controller 701 for collision detection.
- the third optical label includes the length information
- the sending, by the controller 701, the third control information to the optical switch matrix according to the preset first duration includes: comparing the previous light of the third optical label The length information included in the label and the preset length threshold; if the length information is less than or equal to the length threshold, the third control information is sent to the optical switch matrix 702; if the length information is greater than the length a threshold value, after the third control information is obtained, a timer is started to cause the timer to start timing, and when the timer reaches a preset second duration, the optical switch matrix 702 is sent The third control information is described.
- the controller 701 compares the length information included in the previous optical label with a preset length threshold, and if the length information is less than or equal to the length threshold, the The third control information is sent to the optical switch matrix 702; if the length information is greater than the length threshold, after obtaining the third control information, a timer is started, so that the timer starts timing, when When the timer reaches the preset second duration, the third control information is sent to the optical switch matrix 702, so that the optical switch matrix 702 establishes the third light between the source port and the destination port according to the third control information.
- Package The optical link of the load.
- the first optical packet payload enters the receiving device of the optical packet after being transmitted by the optical link, and the receiving device of the optical packet performs processing such as burst reception, data frame recovery, and data frame transmission on the first optical packet payload.
- the burst receiving process refers to converting the received first optical packet payload into an electrical signal, and obtaining a data frame according to the start and end characters in the first optical packet payload, and then converting the data frame.
- the frame format that can be recognized by the destination device is then sent to the destination device; for example, the destination device can be an Ethernet device.
- FIG. 8 is a schematic structural diagram of an optical switching device according to an embodiment of the present invention. As shown, the optical switching device includes:
- the second optical label is sent first, and the second optical packet is sent after being loaded;
- the first optical packet payload is an optical packet payload corresponding to the first optical label that has been sent before the second optical label is sent,
- the third optical tag is an optical tag corresponding to the third optical packet load after the second optical packet load;
- a memory 802 configured to store information including a program routine
- the processor 803 is coupled to the memory 802 and the receiver 801 respectively for controlling the execution of the program routine, and the method includes: obtaining, according to the third optical label, corresponding third control information, according to the third control information. And performing an exchange process of the third optical packet payload corresponding to the third optical label; and/or performing, according to the first control information, an exchange processing of the first optical packet payload, where the first control information is The controller is obtained according to the first optical tag.
- Embodiments of the present invention further provide a method implementation for implementing each unit in the foregoing device embodiment. example.
- FIG. 9 is a schematic flowchart of a method for sending an optical packet according to an embodiment of the present invention. As shown in FIG. 9, the method includes the following steps:
- Step 901 The transmitting device of the optical packet obtains the first optical packet payload and/or the third optical label; and obtains the second optical label and the second optical packet payload corresponding to the second optical label. Receiving a first optical signal, and performing photoelectric conversion processing on the first optical signal to obtain a corresponding electrical signal.
- the transmitting device of the optical packet performs parsing processing on the obtained electrical signal to obtain routing information of the first data frame and/or the third data frame, and obtain routing information of the second data frame and the second data frame.
- the routing information of the third data frame is used to generate a third optical label, where the first data frame is used to generate a first optical packet payload.
- the second data frame is used to generate a second optical packet payload, and the routing information of the second data frame is used to generate a second optical label.
- the routing information of the data frame may include a destination port address and length information.
- the sending device of the optical packet may further cache the routing information of the data frame and the data frame obtained after parsing.
- the transmitting device of the optical packet generates the third optical label according to the obtained routing information of the third data frame, and/or the transmitting device of the optical packet generates the first according to the obtained first data frame.
- Optical packet load
- the transmitting device of the optical packet generates the second optical label according to the obtained routing information of the second data frame, and the transmitting device of the optical packet generates the second optical packet payload according to the obtained second data frame.
- the third optical label is used by the optical switching device to generate third control information to control the optical switch matrix to establish an optical link.
- the transmitting device of the optical packet generates a third optical label according to the routing information of the third data frame and the preset optical label format.
- FIG. 4 is a schematic diagram of an optical label format provided by an embodiment of the present invention.
- the generated third optical label may include an optical label delimiter, destination port information, and length information. information.
- the transmitting device of the optical packet obtains the destination port information shown in FIG.
- the optical switching device may complete the scheduling operation of the third optical packet payload exchange according to the destination port information.
- the length of the third optical tag is fixed.
- the transmission time of the third optical tag is t tabe i.
- the sending device of the optical packet may further cache the generated third optical label.
- the transmitting device of the optical packet generates the first optical packet payload according to the data frame and the preset optical packet payload format.
- FIG. 5 is a schematic diagram of an optical packet payload format according to an embodiment of the present invention.
- the generated first optical packet payload may include a terminator, a data frame, an initiator, and a preamble.
- the transmitting device of the optical packet uses the data frame as the data frame shown in FIG. 5, and sets the start character, the terminator, and the preamble.
- the terminator and the start character respectively indicate a start position and an end position of the data frame.
- the receiving device When the first optical packet payload is received by the receiving device of the optical signal, the receiving device needs to perform clock synchronization and preparation according to the preamble. Receiving an actual data frame; for example, adjusting a clock according to a preamble, etc., so as to be able to correctly receive data; optionally, the optical packet transmitting device can also load the generated first optical packet into Line scrambling processing is used to ensure the stability and accuracy of the first optical packet load during transmission. Step 902: The transmitting device of the optical packet sends the obtained third optical label and/or the obtained optical switching device to the optical switching device within a protection duration between the sending of the second optical label and the sending of the second optical packet payload.
- the optical switching device performs an exchange process of a third optical packet load corresponding to the third optical label according to the third optical label, and/or, in order to facilitate the optical switching device Performing the first optical packet load exchange process according to the first optical label corresponding to the first optical packet payload; wherein the second optical label is sent first, and the second optical packet is sent after being sent;
- the optical packet payload is an optical packet payload corresponding to the first optical label that has been transmitted before the second optical label is sent, and the third optical label is a third optical packet load after the second optical packet is loaded. Corresponding light label.
- the sending device of the optical packet monitors the first generator to obtain a generated state of the third optical tag, and/or is configured to monitor the second generator to obtain the a generation state of the first optical packet load; the generated state includes or has not been generated.
- the transmitting device of the optical packet transmits the second optical tag, determining, according to the generated state of the first optical packet payload and/or the generated state of the first optical tag, the protection duration a first transmission time of an optical packet payload and/or a third transmission timing of the third optical label.
- a preset timer is started, and the timer starts counting; when the timer reaches the first sending moment, performing electro-optical conversion on the first optical packet load Processing, to obtain a corresponding second optical signal; and/or, when the timer reaches the third sending moment, the third optical label performs an electro-optical conversion process to obtain a corresponding second optical signal;
- the optical switching device transmits the second optical signal. For example, after the sending device of the optical packet sends the second optical tag, a preset timer is started, so that the timer starts timing.
- the transmitting device of the optical packet can perform scheduling within the guard time between the second optical tag and the corresponding second optical packet payload, and output the third optical tag and/or the first optical packet payload according to a certain timing.
- the transmitting device of the optical packet may buffer the third optical label and/or the first optical packet payload, and perform electro-optical conversion processing on the buffered third optical label and/or the first optical packet payload after generating the control indication.
- FIG. 10 is a schematic diagram of a transmission sequence of an optical label and an optical packet payload according to an embodiment of the present invention.
- a transmitting device of an optical packet sends the optical label shown in FIG. 10 to the optical switching device by using the foregoing method.
- an optical packet load wherein n optical labels are transmitted during a protection time between the transmission optical label i (corresponding to the second optical label) and the transmission optical packet load i (corresponding to the second optical packet load)
- n optical packet loads correspond to the first optical packet load described above
- the protection time between the optical label i and the corresponding optical packet payload i is greater than or equal to the length of time that the optical switching device generates the control signal according to the optical label i and the optical switching device according to the control signal.
- the sum of the durations of the optical links is established, so the guard time is divided into t at 2 .
- the optical label i is sent before the optical packet load i - n, so that the protection time between the optical label i and the optical packet load i is no longer idle time, but n optical labels are sent and / or n optical packet loads.
- n Satisfy tcontrol > n > 1 t. m m a a x x is the transmission of the longest optical packet load
- Time therefore, is required to be greater than or equal to the time length t e at which the optical switching device receives the optical tag i and generates a control signal in accordance with the optical tag i. Nt)1 , it is also necessary to satisfy that at least one other optical packet payload and/or at least one other optical label can be transmitted within a guard time between the transmitting optical label i and the transmitting optical packet payload i-1.
- the t 2 needs to be greater than or equal to the length t switch required by the optical switching device to establish an optical link for transmitting the optical packet payload, and needs to be greater than or equal to the transmission duration t tabel required for an optical tag. It should be noted that, according to t e .
- Nt )1 can determine the range of values of n, when the control used by the optical switching device is more complicated, t c . ntn) 1 value is large, the value n can be within a wide range, embodiments of the present invention may be set in advance based on the value of n in the range of n, a transmission apparatus of an optical signal preset parameters.
- FIG. 1 1 is a first schematic diagram of a transmission sequence of an optical label and an optical packet load when n is equal to 1 according to an embodiment of the present invention. As shown in the figure, the embodiment uses n equal to 1 as an example for optical signals.
- the optical tag i corresponds to the second optical tag
- the optical packet load i corresponds to the second optical packet load
- the optical tag i + 1 corresponds to the third optical tag
- the packet payload i-1 corresponds to the first optical packet payload
- the optical label i+1 is an optical label corresponding to the optical packet payload i+1 after the optical packet payload i
- the optical label i_1 corresponding to the optical packet payload i_1 has been Send noon.
- Step 1201 After the optical packet sending device sends the optical label i to the optical switching device, the timer is reset, so that the timer starts counting.
- Step 1202 The transmitting device of the optical packet determines whether the optical packet payload i-1 has been sent to the optical switching device; if not, performs step 1203, and if it has been sent, performs step 1204.
- Step 1203 When the timer reaches the preset first duration 7, where the optical signal transmitting device sends the optical packet payload, then step 1204 is performed.
- the first time length t gap is a time interval between the transmitting optical tag i and the transmitting optical packet payload i - 1.
- ⁇ needs to be greater than or equal to the optical tag device receiving the optical tag i and the duration of the control signal generated according to the optical tag i tc ⁇ t ⁇ , t tabel is the transmission time required for an optical tag, t 2 needs to be greater than or equal to the optical switching device to establish transmission
- the length of the optical link required for the optical packet load is t switch and needs to be greater than or equal to the length of time t tabel required to transmit an optical tag.
- Step 1206 After transmitting the optical packet payload i, the transmitting device of the optical packet waits for the optical label i+1 to be generated, and after the optical label i+1 is generated, performs step 1207.
- Step 1207 The transmitting device of the optical packet sends the optical label i+1 to the optical switching device, and then step 1208 is performed.
- the value method of ⁇ can include:
- FIG. 13 is a transmission timing of the optical tag and the optical packet load when n is equal to 1 according to an embodiment of the present invention.
- the second schematic diagram, t gap 0 in the transmission timing shown in FIG.
- ⁇ -2 is a tswitch.
- the optical tag i is transmitted before the optical packet load i-1, so that the optical signal corresponding to the optical packet load i enters the transmitting device of the optical signal, and is generated.
- the optical packet payload il Before the corresponding optical label i, the optical packet payload il has been buffered, and a timer is set. When the timer expires, the optical label i is generated, and then the optical packet payload il is sent after the optical label i is sent, otherwise the buffer is The optical packet payload i-1 is sent to the optical switching device because the timer expires.
- the transmission timing of the optical label and the optical packet payload is related to the rate of the optical label and the transmitting device of the optical packet payload entering the optical packet, that is, the optical packet.
- the load of the transmitting device of the optical packet exists in the following four cases:
- FIG. 14 is a third schematic diagram of a transmission timing of an optical label and an optical packet payload according to an embodiment of the present invention.
- the optical label i + 1 can be generated in the +l ⁇ - t gap - t label time after the optical tag i is sent, so that the optical tag i is always sent to the optical switching device before the optical packet load i - 1, and the corresponding execution is performed.
- the process includes: Step 1201 - Step 1202 - Step 1203 - Step 1204 - Step 1207 ⁇ Step 1208.
- Case 2 The transmitting device of the optical packet changes from a high load state to a low load state.
- FIG. 15 is a fourth schematic diagram of a transmission sequence of an optical label and an optical packet payload according to an embodiment of the present invention.
- the optical label i is transmitted before the optical packet payload i - 1 , and ti+t 2 - t gap - t labe ⁇ after the optical label i is transmitted.
- the optical tag i + 1 is not generated in the day.
- the corresponding execution flow includes: Step 1201 ⁇ Step 1202 ⁇ Step 1203 ⁇ Step 1204 ⁇ Step 1205 ⁇ Step 1206 ⁇ Step 1207—Step 1208.
- FIG. 16 is a fifth schematic diagram of a transmission sequence of an optical label and an optical packet payload according to an embodiment of the present invention.
- the transmitting device of the optical packet is in a continuous low load state
- the optical label i after the transmission is completed + l ⁇ - t gap - the time t label light tag i + 1 always has not been generated, so that the front light tag i generated optical packet payload i - 1 has been transmitted to the optical switching device, the corresponding execution process
- the method includes the following steps: Step 1201 - Step 1202 - Step 1204 - Step 1205 - Step 1206 - Step 1207 -> Step 1208.
- Case 4 The transmitting device of the optical packet changes from a low load state to a high load state.
- FIG. 17 is a sixth schematic diagram of a transmission sequence of an optical label and an optical packet payload according to an embodiment of the present invention.
- the optical packet payload i - 1 has been sent to the optical switching device, and the optical label i + 1 has been generated in the +l ⁇ - t gap - t labe ⁇ after the optical label i is sent.
- the corresponding execution flow includes: Step 1201 - Step 1202 ⁇ Step 1204 - Step 1207 - Step 1208.
- the transmitting device of the optical packet when the load of the transmitting device of the optical packet is high, the transmitting device of the optical packet fully utilizes the guard time between the transmitting optical label i and the optical packet payload i corresponding to the transmission, and transmits a complete optical packet.
- the load i - 1 and a complete optical label i + 1 are such that the link resources are not wasted during the protection time.
- the actual number of optical labels or the number of optical packet loads between the optical label and the corresponding optical packet payload is equal to n. .
- the load of the transmitting device of the optical packet becomes higher, the load of the transmitting device of the optical packet is lower, or the load of the transmitting device of the optical packet is lower, the load is higher.
- the time limit of the optical packet load is increased. If the optical label i + 1 has not been generated yet, the optical labeling device needs to send the optical packet payload i. At this time, the optical label and the corresponding optical packet are sent.
- the number of optical packet loads or the number of optical tags is less than n.
- ⁇ is equal to t C . Ntt .
- Step 1801 After the optical packet sending device sends the optical label i to the optical switching device, the timer is reset, so that the timer starts counting.
- Step 1802 The transmitting device of the optical packet determines whether the optical packet payload i-1 has been sent to the optical switching device. If not, step 1803 is performed. If it has been sent, step 1804 is performed.
- Step 1803 when the timer reaches the preset first duration 7, wherein the transmitting device of the optical signal transmits the optical packet payload and then performs step 1804.
- the first time length t gap is a time interval between the transmitting optical tag i and the transmitting optical packet payload i - 1.
- Step 1804 The transmitting device of the optical packet compares the length information Li_ ⁇ carried in the optical label i-1 with the length threshold L thresh .
- the comparison result of ld update the current!
- the value of ⁇ is equivalent to the dynamic adjustment of the optical packet transmission device based on the length information of the optical packet payload!
- the value of ⁇ can reduce the waste of link resources and improve the utilization of link resources.
- the transmitting device of the optical packet may convert the received optical signal to obtain an electrical signal, and then parse the electrical signal to obtain routing information of the data frame, where the routing information includes the length.
- Information the transmitting device of the optical packet can obtain the length information Li ⁇ included in the optical tag i-1, and the length information refers to the length information in the optical packet payload i-1 corresponding to the optical tag i-1.
- Step 1807 After transmitting the optical packet payload i, the transmitting device of the optical packet waits for the cursor to sign i + 1 to generate, and after the optical label i + 1 is generated, step 1808 is performed.
- Step 1808 the transmitting device of the optical packet sends the optical label i + 1 to the optical switching device, and then performs step 1809.
- the optical packet load i-1 is transmitted for less than the preset transmission time threshold T tl ⁇ esh .
- the time interval between the transmission optical tag i and the optical packet payload i corresponding to the transmission is t 2 + t control , when the transmission time of the optical packet payload i - 1 is greater than or equal to the preset transmission time threshold T thresh .
- the time interval between the transmission optical label i and the optical packet payload i corresponding to the transmission is 1: 2 + t pi — , such that only when the transmission time of the optical packet payload i - 1 is less than the preset transmission time threshold T Tl ⁇ esh .
- the embodiment of the present invention provides a method for processing an optical packet.
- FIG. 19 it is a schematic flowchart of a method for processing an optical packet according to an embodiment of the present invention. As shown in FIG. 19, the method includes the following steps:
- Step 1901 The third optical label and/or the first optical packet payload sent by the sending device that receives the optical packet by the optical switching device after transmitting the second optical label and transmitting the corresponding second optical packet payload.
- the second optical label is sent first, and the second optical packet is sent after being loaded;
- the first optical packet payload is an optical packet payload corresponding to the first optical label that has been sent before the second optical label is sent,
- the third optical tag is an optical tag corresponding to a third optical packet load after the second optical packet load.
- Step 1902 Obtain corresponding third control information according to the third optical label.
- the third control information is performed, and the third optical packet load exchange process corresponding to the third optical tag is performed; and/or, according to the first control information, the first optical packet load exchange process is performed, where The first control information is obtained according to the first optical tag.
- the optical switching device extracts the destination port information and the length information from the first optical label, and then performs path calculation according to the destination port information to obtain the third control information.
- the collision detection may be performed according to the destination port information, and the optical link that transmits the third optical packet payload corresponding to the third optical label is calculated according to the detection result.
- the optical switching device establishes an optical link that transmits a third optical packet load according to the preset first duration and the third control information, and then performs the third optical label by using the optical link. Corresponding exchange processing of the third optical packet payload.
- establishing an optical link for transmitting the third optical packet load according to the preset first duration and the third control information may include the following two methods:
- Method 1 After the optical switching device obtains the third control information, start a timer, so that the timer starts timing. When the timer reaches the preset first duration 7, the optical link for transmitting the third optical packet load is established according to the third control information; thus, the optical switching device can establish the third control information according to the third control information.
- Method 2 The optical switching device compares the length information contained in the previous optical label i-1 of the third optical label i with a preset length threshold L th ⁇ esh . LD; if the length is less than or equal to the length information value width, i tag according to the third light corresponding to the third control information, the establishment of the third light transmitting optical packet payload link i; i if before a light tag - 1 contains length information greater than the length threshold L thresh .
- the tag i to obtain a third light corresponding to the third control information, starts the timer, so the timer is started, and the timer reaches a predetermined first
- the time T is long, an optical link for transmitting the third optical packet load is established according to the third control information, so that the previous optical packet load i can be exchanged through the optical link.
- the optical switching device may further maintain a state of the optical link according to length information carried in the third optical tag.
- optical tags and/or other optical packet payloads can be transmitted during the protection time of transmitting the optical tag and transmitting the corresponding optical packet payload, and the other optical packet payloads are corresponding to other optical tags that have been sent before the optical tag is transmitted.
- the optical packet load, the other optical label is the optical label corresponding to the other optical packet payload after the optical packet payload, and the optical link can be established according to the optical label transmitted in advance, thereby reducing the edge device and the optical switching device during the protection duration.
- the waste of inter-link resources improves the utilization of link resources.
- the fiber delay line is no longer needed to obtain the protection time, and the integration degree of the optical switching device can be improved, and the miniaturization requirement of the optical switching device can be satisfied.
- the protection duration between the optical packet sending device and the optical packet payload corresponding to the optical packet needs to be adjusted.
- the optical packet sending device can automatically adjust according to the protection duration.
- the number of optical tags and/or optical packet payloads transmitted during the protection period so that the link utilization can be maintained at a high level without causing a decrease in link utilization caused by an increase in the protection duration;
- the number of the optical packet load can be dynamically adjusted according to the protection duration, so that the technical solution of the embodiment of the present invention can be flexibly applied to various application scenarios to meet the requirements of various optical switching devices.
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Abstract
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Priority Applications (6)
Application Number | Priority Date | Filing Date | Title |
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EP14893899.6A EP3142275A4 (en) | 2014-06-03 | 2014-06-03 | Optical packet sending method and device, processing method and optical switching device |
PCT/CN2014/079085 WO2015184587A1 (zh) | 2014-06-03 | 2014-06-03 | 光分组的发送方法、设备、处理方法及光交换设备 |
KR1020167036569A KR102030573B1 (ko) | 2014-06-03 | 2014-06-03 | 광 패킷 전송 방법 및 장치, 처리 방법 및 광 스위칭 장치 |
CN201480077406.8A CN106464412B (zh) | 2014-06-03 | 2014-06-03 | 光分组的发送方法、设备、处理方法及光交换设备 |
JP2016571143A JP6353932B2 (ja) | 2014-06-03 | 2014-06-03 | 光パケット送出方法及びデバイス、光パケット処理方法、並びに光スイッチングデバイス |
US15/367,458 US10149025B2 (en) | 2014-06-03 | 2016-12-02 | Optical packet sending method and device, optical packet processing method, and optical switching device |
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EP (1) | EP3142275A4 (zh) |
JP (1) | JP6353932B2 (zh) |
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Publication number | Priority date | Publication date | Assignee | Title |
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JP6353932B2 (ja) * | 2014-06-03 | 2018-07-04 | 華為技術有限公司Huawei Technologies Co.,Ltd. | 光パケット送出方法及びデバイス、光パケット処理方法、並びに光スイッチングデバイス |
WO2016201704A1 (zh) * | 2015-06-19 | 2016-12-22 | 华为技术有限公司 | 一种光开关控制方法及装置 |
CN109274425B (zh) * | 2018-11-02 | 2021-11-30 | 国网四川省电力公司广安供电公司 | 一种智能跳纤系统的设计方法 |
US11606150B2 (en) * | 2020-06-23 | 2023-03-14 | Infinera Corporation | Data synchronization in optical networks and devices |
CN112291016B (zh) * | 2020-10-30 | 2021-09-17 | 台州科技职业学院 | 非正交调制下的伪正交线路编码实现标签信号调制方法 |
CN113794956B (zh) * | 2021-07-27 | 2022-07-22 | 北京理工大学 | 一种光分组交换的方法和装置 |
Citations (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
CN1343082A (zh) * | 2001-11-01 | 2002-04-03 | 上海交通大学 | 多波长标记方式的光分组交换技术 |
CN101005330A (zh) * | 2006-12-30 | 2007-07-25 | 电子科技大学 | 基于串行排列光正交码标签的光分组交换方法 |
CN102231864A (zh) * | 2011-06-20 | 2011-11-02 | 东南大学 | 基于光码字标签的光分组组播发送、接收方法及其装置 |
Family Cites Families (23)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US6493120B1 (en) * | 1999-02-17 | 2002-12-10 | Alcatel | Optical fiber-delay line buffers with void filling |
US6721315B1 (en) * | 1999-09-30 | 2004-04-13 | Alcatel | Control architecture in optical burst-switched networks |
US6665495B1 (en) * | 2000-10-27 | 2003-12-16 | Yotta Networks, Inc. | Non-blocking, scalable optical router architecture and method for routing optical traffic |
US6757497B2 (en) * | 2001-01-30 | 2004-06-29 | The Regents Of The University Of California | Optical layer multicasting using a single sub-carrier header and a multicast switch with active header insertion via reflective single sideband optical processing |
US20020191251A1 (en) * | 2001-06-19 | 2002-12-19 | Ferguson Bruce A. | All optical switching routing system |
FR2834411B1 (fr) * | 2002-01-03 | 2005-04-29 | Cit Alcatel | Procede et dispositif de gestion de paquets a multiplexage a repartition temporelle et repartition sur longueurs d'onde pour reseaux optiques |
KR100467321B1 (ko) * | 2002-06-17 | 2005-01-24 | 한국전자통신연구원 | 광 버스트 스위칭 망에서의 스케줄링 방법 및 헤더 패킷 데이터 자료구조 |
KR100487201B1 (ko) * | 2003-02-04 | 2005-05-04 | 삼성전자주식회사 | 전기 버퍼를 이용한 대용량 광 라우터 |
US7848649B2 (en) * | 2003-02-28 | 2010-12-07 | Intel Corporation | Method and system to frame and format optical control and data bursts in WDM-based photonic burst switched networks |
WO2005002101A1 (ja) * | 2003-06-19 | 2005-01-06 | Sony Corporation | マルチキャリヤ伝送を行なう無線通信システム、受信装置及び受信方法、送信装置及び送信方法、並びに遅延時間算出装置及び遅延時間算出方法 |
EP1608100A1 (en) | 2004-06-17 | 2005-12-21 | Mitsubishi Electric Information Technology Centre Europe B.V. | Method for transmitting TDD frames with increased data payload |
FR2875085B1 (fr) * | 2004-09-08 | 2006-12-15 | Cit Alcatel | Station pour reseau optique apte a inserer des paquets dans un train de paquets en transit |
KR100603254B1 (ko) * | 2004-12-27 | 2006-07-24 | 삼성전자주식회사 | 광 버스트 스위칭 네트워크에서 빈전송구간 채움 및버스트 데이터 전송 방법 |
EP1744476A1 (en) * | 2005-07-12 | 2007-01-17 | Alcatel | Transmission method and processing unit for a modulated optical signal |
CN101582718B (zh) * | 2009-06-12 | 2011-09-21 | 北京科技大学 | 一种基于单链路内波长使用率的波长保护方法 |
CN101977336B (zh) * | 2010-11-24 | 2013-02-13 | 电子科技大学 | 基于布拉格衍射原理的光分组交换系统和方法 |
WO2012082838A1 (en) * | 2010-12-14 | 2012-06-21 | University Of Houston | Dense wavelength division multiplexing multi-mode switching systems and methods for concurrent and dynamic reconfiguration with different switching modes |
JP5411195B2 (ja) * | 2011-03-30 | 2014-02-12 | 富士通テレコムネットワークス株式会社 | 光パケット交換システム |
JP5426604B2 (ja) * | 2011-04-26 | 2014-02-26 | 富士通テレコムネットワークス株式会社 | 光パケット交換システム |
US8565114B2 (en) * | 2011-07-29 | 2013-10-22 | Nokia Corporation | Cognitive radio resource utilization |
US9960872B2 (en) * | 2012-03-08 | 2018-05-01 | Marvell International Ltd. | Systems and methods for performing a soft-block of a queue based on a size of a remaining period of a guard band |
US8971321B2 (en) * | 2012-12-11 | 2015-03-03 | Futurewei Technologies, Inc. | System and method for accelerating and decelerating packets |
JP6353932B2 (ja) * | 2014-06-03 | 2018-07-04 | 華為技術有限公司Huawei Technologies Co.,Ltd. | 光パケット送出方法及びデバイス、光パケット処理方法、並びに光スイッチングデバイス |
-
2014
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- 2014-06-03 WO PCT/CN2014/079085 patent/WO2015184587A1/zh active Application Filing
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Patent Citations (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
CN1343082A (zh) * | 2001-11-01 | 2002-04-03 | 上海交通大学 | 多波长标记方式的光分组交换技术 |
CN101005330A (zh) * | 2006-12-30 | 2007-07-25 | 电子科技大学 | 基于串行排列光正交码标签的光分组交换方法 |
CN102231864A (zh) * | 2011-06-20 | 2011-11-02 | 东南大学 | 基于光码字标签的光分组组播发送、接收方法及其装置 |
Non-Patent Citations (1)
Title |
---|
See also references of EP3142275A4 * |
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KR102030573B1 (ko) | 2019-10-10 |
CN106464412B (zh) | 2018-11-13 |
JP6353932B2 (ja) | 2018-07-04 |
JP2017525186A (ja) | 2017-08-31 |
EP3142275A1 (en) | 2017-03-15 |
CN106464412A (zh) | 2017-02-22 |
EP3142275A4 (en) | 2017-06-07 |
US10149025B2 (en) | 2018-12-04 |
US20170085971A1 (en) | 2017-03-23 |
KR20170010006A (ko) | 2017-01-25 |
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