WO2011000625A1 - Method and apparatus for line latency measurement in transport networks - Google Patents

Method and apparatus for line latency measurement in transport networks Download PDF

Info

Publication number
WO2011000625A1
WO2011000625A1 PCT/EP2010/056608 EP2010056608W WO2011000625A1 WO 2011000625 A1 WO2011000625 A1 WO 2011000625A1 EP 2010056608 W EP2010056608 W EP 2010056608W WO 2011000625 A1 WO2011000625 A1 WO 2011000625A1
Authority
WO
WIPO (PCT)
Prior art keywords
network node
latency
virtual concatenation
line
concatenation group
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/EP2010/056608
Other languages
French (fr)
Inventor
Stefan Ansorge
Siegfried Beilharz
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Alcatel Lucent SAS
Original Assignee
Alcatel Lucent SAS
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Alcatel Lucent SAS filed Critical Alcatel Lucent SAS
Priority to JP2012518055A priority Critical patent/JP2012531862A/en
Priority to CN201080029627XA priority patent/CN102474373A/en
Priority to US13/378,098 priority patent/US20120087252A1/en
Publication of WO2011000625A1 publication Critical patent/WO2011000625A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

Links

Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L43/00Arrangements for monitoring or testing data switching networks
    • H04L43/08Monitoring or testing based on specific metrics, e.g. QoS, energy consumption or environmental parameters
    • H04L43/0852Delays
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04JMULTIPLEX COMMUNICATION
    • H04J3/00Time-division multiplex systems
    • H04J3/02Details
    • H04J3/06Synchronising arrangements
    • H04J3/062Synchronisation of signals having the same nominal but fluctuating bit rates, e.g. using buffers
    • H04J3/0623Synchronous multiplexing systems, e.g. synchronous digital hierarchy/synchronous optical network (SDH/SONET), synchronisation with a pointer process
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04JMULTIPLEX COMMUNICATION
    • H04J3/00Time-division multiplex systems
    • H04J3/02Details
    • H04J3/06Synchronising arrangements
    • H04J3/0635Clock or time synchronisation in a network
    • H04J3/0682Clock or time synchronisation in a network by delay compensation, e.g. by compensation of propagation delay or variations thereof, by ranging
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04JMULTIPLEX COMMUNICATION
    • H04J3/00Time-division multiplex systems
    • H04J3/16Time-division multiplex systems in which the time allocation to individual channels within a transmission cycle is variable, e.g. to accommodate varying complexity of signals, to vary number of channels transmitted
    • H04J3/1605Fixed allocated frame structures
    • H04J3/1611Synchronous digital hierarchy [SDH] or SONET
    • H04J3/1617Synchronous digital hierarchy [SDH] or SONET carrying packets or ATM cells
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04JMULTIPLEX COMMUNICATION
    • H04J2203/00Aspects of optical multiplex systems other than those covered by H04J14/05 and H04J14/07
    • H04J2203/0001Provisions for broadband connections in integrated services digital network using frames of the Optical Transport Network [OTN] or using synchronous transfer mode [STM], e.g. SONET, SDH
    • H04J2203/0089Multiplexing, e.g. coding, scrambling, SONET
    • H04J2203/0094Virtual Concatenation
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04JMULTIPLEX COMMUNICATION
    • H04J3/00Time-division multiplex systems
    • H04J3/02Details
    • H04J3/06Synchronising arrangements
    • H04J3/0635Clock or time synchronisation in a network
    • H04J3/0638Clock or time synchronisation among nodes; Internode synchronisation
    • H04J3/0647Synchronisation among TDM nodes

Definitions

  • the present invention relates to the field of telecommunications and more particularly to a method and related apparatus for measuring the latency of a line in a transport network.
  • Latency requirements are a hard constraint for packet-based services.
  • Such packet based services can be transported through transport networks like SDH/SONET/OTN or WDM networks.
  • Transport network should therefore be aware of latency.
  • latency for an end-to-end packet service may change and hence result in service degradation or failure on the packet layer. Therefore transport services shall not exceed a maximum latency.
  • the latency of a transport service is based on switch time through nodes and the line length.
  • the end-to-end latency is then given by the number of switching nodes multiplied by the switching time per node plus the latency of the sum line lengths.
  • the line length is typically not known, or if so, is known only roughly. The line length latency hence cannot be simply calculated from the light speed and fiber length. An additional impact on line length latency comes from
  • the inventors have recognized a need for end-to-end latency measurements in transport networks such as SDH/SONET.
  • transport networks latency measurement on a given link or line is typically not available today. Either a test generator must be embedded into the system or an external measurement device must be provided. Neither is generally available today. It is hence an object of the present invention, to provide a method and related apparatus that allows to measure the latency of a particular transport service from end to end, that is compatible with existing equipment.
  • the first network node creates a virtual concatenation group which has at least two multiplexing units.
  • a first of the two is used as a reference for the latency measurement.
  • the second is sent to the second network node, where it is looped back to said first network node.
  • the first network node switches the first multiplexing unit internally back to a line card, where the virtual concatenation group is terminated and, by using its buffer available for re-aligning members of a virtual concatenation group, determines a latency difference between the first and second multiplexing units.
  • figure 1 shows a network node of a transport network performing end-to- end latency measurement to a far end network node
  • figure 2 shows a timing diagram of the latency measurement in figure 1
  • figure 3 shows a second embodiment of a network node performing end- to-end latency measurement to a far end network node
  • figure 4 shows a timing diagram of the latency measurement in figure 3
  • figure 5 shows a third embodiment of a latency measurement of a line and segments thereof
  • figure 6 shows a fourth embodiment where multiple lines are measured in parallel.
  • the inventors have provided a mechanism to measure a line latency, which makes use of functions already available in existing network nodes, in particular of the virtual concatenation function in SDH/SONET, OTN or WDM.
  • transport signals are structured into frames of equal length, which are termed Synchronous Transport Modules of type N (STM-N), where N can be 1 , 4, 16, 64, 256, or even higher.
  • STM-N carries multiplexing units, which are termed virtual containers (VC).
  • the largest VC is the VC4 with a capacity of 140 MBit/s.
  • An STM-I carries one VC4, an STM-4 four VC4s and so on.
  • These VCs transport client signals, which are termed tributaries. In order to provide larger transport capacity, two or more VCs can be linked.
  • This buffer is termed hereinafter the deskewing buffer.
  • the deskewing buffer bases on a common synchronization frame that is inserted for all members at the same time and verified at the sink side.
  • the differential delay can therefore be measured.
  • An idea of the inventors is to make use of the deskewing buffers for virtual concatenated signals, which are anyhow present on tributary line cards for packet services of existing network nodes. Therefore, in a first embodiment, one member of a virtual concatenation is locally looped back while a second member is passed across a link under consideration. The link under consideration is line loop-backed on the far-end network node and switched to the same virtual concatenation group the first member is located. The latency between the two members equals roughly twice the line latency to be measured. This allows line latency measurement without requiring any external measurement devices.
  • a first network node Nl contains a line card LC for tributary signals, a switch matrix Sl and at least one output port Pl connected to an SDH network N.
  • the tributary line card LC contains an Ethernet port EP for Ethernet client signals and a concatenation termination unit T.
  • the concatenation termination unit T is connected to a deskewing buffer B.
  • the tributary line card is connected to the switching matrix Sl .
  • the switching matrix Sl switches multiplexing units at a granularity of VC4.
  • a transmission connection is established from network node Nl through the SDH network N to a far-end terminating network node N2.
  • Network node N2 has an SDH port P2 and a switching matrix S2.
  • FIG. 1 shows the network nodes Nl and N2 in a simplified way and only those building blocks are shown which are used in the present embodiment for the latency measurement. It should be clear however, that real network nodes will have many more and also different kind of interfaces and will include further functional blocks such as lower level and higher level controllers, supervisory and management functions, signaling and
  • the measurement setup is done in the following way;
  • VCG Two members of a virtual concatenation group VCG are used and
  • the peer end of the port is placed into line loopback, when the link is not in service.
  • the VCG member can be locally switched back to the line in the switching matrix S2.
  • concatenation termination units T creates a virtual concatenation of two VC4s, i.e. a VC4-2v
  • the two concatenated virtual containers VC4 are send to the switch matrix Sl .
  • the first of the two VC4s is switched back by the switching matrix Sl to the same tributary line card LC, where it is stored in the deskewing buffer B.
  • the second VC4 is switched from switching matrix Sl to SDH port Pl and transmitted through the SDH network N to network node N2.
  • the second VC4 is received at SDH port P2.
  • a line loopback function is activated to switch the second VC4 back to the line.
  • the second VC4 is transmitted the same way back through network N to node Nl , where it is received at the same port Pl .
  • the second VC4 is switched through switching matrix Sl back to tributary line card LC, where it is received at concatenation termination unit T.
  • Concatenation termination unit T compares the latency of the first and second virtual containers to determine the latency of the line under consideration.
  • Figure 2 shows ⁇ timing diagram of the two virtual containers VC4_1 , VC4_2. Both VC4 VC4_1 and VC4_2 are sent at the same time T 0 from tributary line card LC to switching matrix Sl .
  • Switching matrix Sl has a certain latency, which is typically the same for all signals to be switched.
  • VC4_1 is received at time T 1 back at the tributary line card LC and VC4_2 is received at the same time Tl at SDH port Pl .
  • SDH port Pl performs some processing and overhead termination functions, which introduce a port latency.
  • VC4_2 is sent to the transmission line.
  • the transmission line add a certain line latency and VC4_2 is received at time T 3 at port P2 of network node N2.
  • the loopback function adds a certain latency so that VC4_2 is sent at time T 4 back to the transmission line under consideration.
  • the line latency is then added a second time for the way back and VC4_2 is received at time T 5 at port Pl of node Nl .
  • Port Pl adds again the port latency and switching matrix Sl adds the switching matrix latency, so that VC4_2 is received at time T 7 back at tributary line card LC.
  • the time difference from T 1 till T 7 is the measured latency value.
  • the switching time T 1 , T 7 through the switching matrix Sl is roughly 15 ⁇ s.
  • the port latency T 2 on the egress side is roughly 5 ⁇ s.
  • T 3 , T 5 is the line latency.
  • the loopback latency T 4 is very small, roughly a few ⁇ s.
  • the port latency T 6 at ingress side is again roughly 5 ⁇ s.
  • the line latency can be calculated by
  • the above measurement method is compatible with nearly all existing equipment. Virtual concatenation is available on GE, I OGE and other tributary line cards for packet services. These cards provide also the measurement of differential delay.
  • the granularity that can be measured in SDH frames is 125 ⁇ s.
  • the maximum range depends on the size of the deskewing buffer, which is for I GE typically 15 ms, which corresponds to 120 frames and for I OGE Ethernet/MPLS tributary line cards typically 32 ms corresponding to 256 frames. It should be understood that the above values for equipment an internal processing time are taken from a particular implementation and can be different for others.
  • the buffer size is equipment specific and standard G.7041 allows a buffer size for the de-skewing buffer of up to 256 ms.
  • a "multi-cross" indicator may provide information how often the frame has been overflowed. When this function is available even much longer lines can be measured.
  • the measurement is based on the availability of line cards on one side of the line which provide virtual concatenation functionality.
  • the measurement further requires a free VCG on one card that can be used for measurement and it requires two VC4 on back-panel capacity in the same VCG.
  • the measurement can also be done using an existing VCG, which is currently in service, by simply adding two separate VC4 that are not in service. Such an existing VCG will then have two additional members that are not activated.
  • the following configuration steps will be carried out: At node N2, the line loopback is configured.
  • the VCG at tributary line card LC is configured and the switching matrix Sl is configured to switch one member to the SDH port Pl under consideration and the one member back to tributary line card LC. Then the measurement can be carried out and finally, the switch is released again at switching matrix Sl , the VCG configured back into original condition and the line loopback at node N2 released.
  • a new maintenance command could preferably be defined that measures the differential delay between two members in a VCG.
  • the measurement can either be performed in a manual way in that the above configuration steps are performed by an operator manually, or the
  • the measurement can be automated by a single command which executes the measurement steps.
  • the SDH port under consideration will be specified and optionally also the VCG group to be used can be specified.
  • Measurement can be done on an idle line when no active traffic is currently being sent, or on an line with active traffic but where some capacity is available for an additional VC-4.
  • discovery may use line loopback since the port is not yet in service.
  • matrix loopback For a measurement on a line with active traffic, it would be preferable to use matrix loopback.
  • the setup and measurement steps can be synchronized and coordinated through a control plane, e.g. by GMPLS controllers which communicate with each other.
  • the Link Management Protocol LMP of the GMPLS protocol suit can be used to negotiating which side is measuring, initiate the line loopback or matrix loopback, and in case of matrix loopback which VC is used. Measurement can even be done as a maintenance action during a link is in service by using matrix loopback in the far-end network node N2.
  • FIG. 3 ⁇ second embodiment of line latency measurement will now be described, which uses a second line with known latency characteristics to verify with the line under consideration. In this operation a test line is compared against a known line for example in cases where the multi-cross indication is not available.
  • the setup changes in the following way: The first member of a concatenation group is switched to the known line. The second member is switched to the port under
  • first network node NI has a tributary line card LC, a first SDH port Pl , and a second SDH port Pl '.
  • SDH network N network node N 1 is connected from SDH port Pl to SDH port P2 of network node N2 and from port PT to port P3 of network node N3.
  • Concatenation termination unit T creates as in the first embodiment a virtual concatenation group with two VC4s and sends these to switching matrix Sl .
  • the first VC4 is switched to SDH port Pl ' and the second to SDH port Pl .
  • the first VC is received at port P3 of network node N3 and forwarded to switching matrix S3, where it is looped back to SDH port P3.
  • the first VC4 hence travels back through network N to port Pl ', from where it is switched back to tributary line card LC.
  • the second VC4 is received at port P2 of network node N2, which has activated a line loopback function and hence the VC4 is sent back via network N to port Pl , from where it is switched back to tributary line card LC, too.
  • Concatenation termination unit T using its deskewing buffer B determines the time difference between receipt of the two corresponding VC4.
  • FIG. 4 shows ⁇ timing diagram of the measurement.
  • both VC4s VC4_1 and VC4_2 are sent from line card LC to switching matrix Sl .
  • the VC4s are received at time T 1 at their respective SDH ports Pl , Pl '. Since the port latency is usually the same for different ports, both VC4s are transmitted simultaneously at time T 2 to their respective transmission lines.
  • VC4_1 is received after time T 3 at port P3 and after lapse of a loopback latency, which is essentially the ingress and egress port latency plus the switching latency of switching matrix S3 (due to the fact that node N3 has activated matrix loopback), VC4_1 is transmitted at time T 4 back to the transmission line. At time T 5 , it is received at port Pl ' and after adding port latency (T 6 ) and switching latency is received back at time T 7 at tributary line card LC.
  • VC4_2 is received after time T 3 ' at port P2 of network node N2.
  • the loopback latency of port P2 is then added and VC4_2 is transmitted at time T 4 ' back to the transmission line.
  • T 5 ' it is received at port Pl and after port latency and switching latency it is finally received back at the tributary line card LC at time T 7 '.
  • the measured latency is the difference between VC4_1 and VC4_2, i.e. the difference between T 7 and T 7 '.
  • the latency of the transmission line under consideration can be easily determined.
  • the characteristics of the known transmission line can either be measured in advance using external measurement equipment or can be deduced using known geographical properties. It would also be possible that the known line is just a segment of the line to be measured or the other way round, that the line to be measured is a segment of the known line.
  • the invention allows hence allows to measure a line and all its segments.
  • Figure 5 shows a third embodiment of a measurement.
  • a virtual concatenation of three VC4 is formed at a first network node NT.
  • the first element of the virtual concatenation is looped back locally.
  • the second and third VC4 are transmitted via the same output port to a common optical line, which interconnects network element NT via a second intermediate network element NE2' to a third network element NE3'.
  • the second of the three VC4 is looped back at network node NE2' and the third of the three VC4 is looped back at network node NE3'.
  • the line from NEl ' to NE3' and the segment between NEl ' and NE2' can be measured at the same time. Knowing the latency between NET and NE2' and between NET and NE3', the latency of the segment between NE2' and NE3' can easily be calculated as the difference between the two.
  • This approach can also be extended to a line with more than two segments using a concatenation of more than three VC4. It is hence possible to measure a line and all its segments in one step from a single place in the network.
  • Figure 6 shows yet a further embodiment.
  • a virtual concatenation of three VC4 is formed at a first network node Nl ".
  • the first element of the virtual concatenation is looped back locally.
  • the second and third VC4 are transmitted via different output ports to two different optical lines, which connect network element Nl " to a second intermediate network element NE2" and to a third network element NE3", respectively.
  • the respective VC4s are looped back at network nodes NE2', NE3', respectively.
  • VC-3 which is the higher order multiplex unit in SONET (the ANSI equivalent of SDH), and form a virtual concatenation VC-3nv of n VC-3 and locally loop back the different VC-3s.
  • each network node has a GMPLS controller and the GMPLS controller of network node Nl is equipped with a software extension that configures upon execution the network node Nl to perform the respective steps and is also capable to instruct the GMPLS controller of network node N2, respectively network nodes N2 and N3 to configure the loopback in either switching matrix or line card, depending on which alternative is chosen.
  • the central network management system is equipped with a software extension, which upon execution initiates the necessary configuration and measurement steps in all involved network nodes.
  • program storage devices e.g., digital data storage media, which are machine or computer readable and encode machine-executable or computer-executable programs of instructions, wherein said instructions perform some or all of the steps of said above- described methods.
  • the program storage devices may be, e.g., digital memories, magnetic storage media such as a magnetic disks and magnetic tapes, hard drives, or optically readable digital data storage media.
  • the embodiments are also intended to cover computers programmed to perform said steps of the above-described methods. The description and drawings merely illustrate the principles of the invention.

Landscapes

  • Engineering & Computer Science (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Signal Processing (AREA)
  • Computer Hardware Design (AREA)
  • Environmental & Geological Engineering (AREA)
  • Data Exchanges In Wide-Area Networks (AREA)
  • Maintenance And Management Of Digital Transmission (AREA)

Abstract

In order to measure the latency of a particular transport service from end to end, a method of measuring the latency of a transport connection between a first network node (NI ) and a second network node (N2) is provided, which makes use of a virtual concatenation function with a buffer (B) to compensate the differential delay between members in a received virtual concatenation group. In particular, the first network node (Nl ) creates a virtual concatenation group which has as members at least two multiplexing units (VC4_1, VC4_2). A first of the two (VC4_1 ) is used as a reference for the latency measurement. The second (VC4_2) is sent to the second network node (N2), where it is looped back to said first network node (Nl ). The first network node (Nl ), by using its buffer (B) available for re-aligning members of a virtual concatenation group, determines a latency difference between the first and second multiplexing units (VC4_1, VC4_2).

Description

Method and Apparatus for Line Latency Measurement in Transport Networks
Field of the Invention The present invention relates to the field of telecommunications and more particularly to a method and related apparatus for measuring the latency of a line in a transport network.
Background of the Invention
Latency requirements are a hard constraint for packet-based services. Such packet based services can be transported through transport networks like SDH/SONET/OTN or WDM networks. Transport network should therefore be aware of latency. Especially in the context of protection switching and restoration, latency for an end-to-end packet service may change and hence result in service degradation or failure on the packet layer. Therefore transport services shall not exceed a maximum latency.
The latency of a transport service is based on switch time through nodes and the line length. The end-to-end latency is then given by the number of switching nodes multiplied by the switching time per node plus the latency of the sum line lengths. The line length is typically not known, or if so, is known only roughly. The line length latency hence cannot be simply calculated from the light speed and fiber length. An additional impact on line length latency comes from
intermediate transparent nodes like repeaters or WDM equipment introducing their own latency. So latency is not just given by the cable length and the speed of light in a media but other unknown components must be considered as well.
Summary of the Invention
The inventors have recognized a need for end-to-end latency measurements in transport networks such as SDH/SONET. In transport networks, latency measurement on a given link or line is typically not available today. Either a test generator must be embedded into the system or an external measurement device must be provided. Neither is generally available today. It is hence an object of the present invention, to provide a method and related apparatus that allows to measure the latency of a particular transport service from end to end, that is compatible with existing equipment. These and other objects that appear below are achieved by a method of measuring the latency of a transport connection between a first network node and a second network node, which makes use of a virtual concatenation function with a buffer to compensate the differential delay between members in a received virtual concatenation group. In particular, the first network node creates a virtual concatenation group which has at least two multiplexing units. A first of the two is used as a reference for the latency measurement. The second is sent to the second network node, where it is looped back to said first network node. The first network node switches the first multiplexing unit internally back to a line card, where the virtual concatenation group is terminated and, by using its buffer available for re-aligning members of a virtual concatenation group, determines a latency difference between the first and second multiplexing units. Brief Description of the Drawings
Preferred embodiments of the present invention will now be described with reference to the accompanying drawings in which figure 1 shows a network node of a transport network performing end-to- end latency measurement to a far end network node; figure 2 shows a timing diagram of the latency measurement in figure 1 ; figure 3 shows a second embodiment of a network node performing end- to-end latency measurement to a far end network node; figure 4 shows a timing diagram of the latency measurement in figure 3; figure 5 shows a third embodiment of a latency measurement of a line and segments thereof; and figure 6 shows a fourth embodiment where multiple lines are measured in parallel.
Detailed Description of the Invention
The inventors have provided a mechanism to measure a line latency, which makes use of functions already available in existing network nodes, in particular of the virtual concatenation function in SDH/SONET, OTN or WDM.
In SDH networks, transport signals are structured into frames of equal length, which are termed Synchronous Transport Modules of type N (STM-N), where N can be 1 , 4, 16, 64, 256, or even higher. An STM-N carries multiplexing units, which are termed virtual containers (VC). The largest VC is the VC4 with a capacity of 140 MBit/s. An STM-I carries one VC4, an STM-4 four VC4s and so on. These VCs transport client signals, which are termed tributaries. In order to provide larger transport capacity, two or more VCs can be linked. This is called a concatenation of VCs, In a contiguous concatenation, all concatenated VCs must be transported within the same STM-N, while in a virtual concatenation, the VCs can be transported independently and are reassembled at the terminating network node. Since the VCs can be
transported independently from each other even over different network paths, they can experience different latency and hence a buffer must be provided at the terminating network node to compensate for the skew between the individual VCs. This buffer is termed hereinafter the deskewing buffer.
The deskewing buffer bases on a common synchronization frame that is inserted for all members at the same time and verified at the sink side. The differential delay can therefore be measured.
An idea of the inventors is to make use of the deskewing buffers for virtual concatenated signals, which are anyhow present on tributary line cards for packet services of existing network nodes. Therefore, in a first embodiment, one member of a virtual concatenation is locally looped back while a second member is passed across a link under consideration. The link under consideration is line loop-backed on the far-end network node and switched to the same virtual concatenation group the first member is located. The latency between the two members equals roughly twice the line latency to be measured. This allows line latency measurement without requiring any external measurement devices.
The latency measurement of first embodiment is shown schematically in figure 1. A first network node Nl contains a line card LC for tributary signals, a switch matrix Sl and at least one output port Pl connected to an SDH network N. The tributary line card LC contains an Ethernet port EP for Ethernet client signals and a concatenation termination unit T. The concatenation termination unit T is connected to a deskewing buffer B. The tributary line card is connected to the switching matrix Sl . The switching matrix Sl switches multiplexing units at a granularity of VC4. A transmission connection is established from network node Nl through the SDH network N to a far-end terminating network node N2. Network node N2 has an SDH port P2 and a switching matrix S2. Figure 1 shows the network nodes Nl and N2 in a simplified way and only those building blocks are shown which are used in the present embodiment for the latency measurement. It should be clear however, that real network nodes will have many more and also different kind of interfaces and will include further functional blocks such as lower level and higher level controllers, supervisory and management functions, signaling and
management interfaces and many more.
The measurement setup is done in the following way;
- Two members of a virtual concatenation group VCG are used and
compared.
- One member is locally switched back to the VCG group using a
unidirectional cross connection.
- The second member is switched to the port under consideration.
The peer end of the port is placed into line loopback, when the link is not in service. Alternatively the VCG member can be locally switched back to the line in the switching matrix S2.
In particular, concatenation termination units T creates a virtual concatenation of two VC4s, i.e. a VC4-2v, The two concatenated virtual containers VC4 are send to the switch matrix Sl . The first of the two VC4s is switched back by the switching matrix Sl to the same tributary line card LC, where it is stored in the deskewing buffer B. The second VC4 is switched from switching matrix Sl to SDH port Pl and transmitted through the SDH network N to network node N2. At network node N2, the second VC4 is received at SDH port P2. In SDH port P2, a line loopback function is activated to switch the second VC4 back to the line. Hence, the second VC4 is transmitted the same way back through network N to node Nl , where it is received at the same port Pl . From Pl , the second VC4 is switched through switching matrix Sl back to tributary line card LC, where it is received at concatenation termination unit T. Concatenation termination unit T compares the latency of the first and second virtual containers to determine the latency of the line under consideration. Figure 2 shows α timing diagram of the two virtual containers VC4_1 , VC4_2. Both VC4 VC4_1 and VC4_2 are sent at the same time T0 from tributary line card LC to switching matrix Sl . Switching matrix Sl has a certain latency, which is typically the same for all signals to be switched. Hence, VC4_1 is received at time T1 back at the tributary line card LC and VC4_2 is received at the same time Tl at SDH port Pl . SDH port Pl performs some processing and overhead termination functions, which introduce a port latency. At time T2, VC4_2 is sent to the transmission line. The transmission line add a certain line latency and VC4_2 is received at time T3 at port P2 of network node N2. The loopback function adds a certain latency so that VC4_2 is sent at time T4 back to the transmission line under consideration. The line latency is then added a second time for the way back and VC4_2 is received at time T5 at port Pl of node Nl . Port Pl adds again the port latency and switching matrix Sl adds the switching matrix latency, so that VC4_2 is received at time T7 back at tributary line card LC. The time difference from T1 till T7 is the measured latency value.
Using typical, known latency values for the real line latency can be estimated therefrom. The switching time T1, T7 through the switching matrix Sl is roughly 15 μs. The port latency T2 on the egress side is roughly 5 μs. T3, T5 is the line latency. The loopback latency T4 is very small, roughly a few μs. The port latency T6 at ingress side is again roughly 5 μs. Thus the line latency can be calculated by
Line latency = ((17 -Tl measurement) - (T2+T6+T7+T4)) /2
« ((T7 -Tl measurement) - 20 μs)/2
The above measurement method is compatible with nearly all existing equipment. Virtual concatenation is available on GE, I OGE and other tributary line cards for packet services. These cards provide also the measurement of differential delay. The granularity that can be measured in SDH frames is 125 μs. The maximum range depends on the size of the deskewing buffer, which is for I GE typically 15 ms, which corresponds to 120 frames and for I OGE Ethernet/MPLS tributary line cards typically 32 ms corresponding to 256 frames. It should be understood that the above values for equipment an internal processing time are taken from a particular implementation and can be different for others. In general the buffer size is equipment specific and standard G.7041 allows a buffer size for the de-skewing buffer of up to 256 ms.
Due to frame measurement, the granularity is 125 us. Using an average light speed in medium of 0.2m/ns = 200m/μs this granularity compares to a line length of 25km. Since the line length is measured twice, the granularity of the measurement is 12,5 km of line length. The 20 μs latency due to equipment functions (12, 16, 17, 14) is negligible in this context. With buffer capacity of 15ms corresponding to 120 frames, the total latency that can be measured is 2500 km. As line is measured twice the maximum line length is 1250 km. With buffer capacity of 32 ms corresponding to 256 frames the total length is 6400 km and the maximum line length can be 3200 km.
As the deskewing buffer is filled in linear way starting at buffer begin, in the cases of an overflow a "multi-cross" indicator may provide information how often the frame has been overflowed. When this function is available even much longer lines can be measured.
When the "multi-cross" indicator is not given a given line can be compared with another line already known, which will be described with reference to figure 3 in a second embodiment below.
The measurement is based on the availability of line cards on one side of the line which provide virtual concatenation functionality. The measurement further requires a free VCG on one card that can be used for measurement and it requires two VC4 on back-panel capacity in the same VCG. Instead of a free VCG, the measurement can also be done using an existing VCG, which is currently in service, by simply adding two separate VC4 that are not in service. Such an existing VCG will then have two additional members that are not activated. In order to perform the measurement, the following configuration steps will be carried out: At node N2, the line loopback is configured. At node NI , the VCG at tributary line card LC is configured and the switching matrix Sl is configured to switch one member to the SDH port Pl under consideration and the one member back to tributary line card LC. Then the measurement can be carried out and finally, the switch is released again at switching matrix Sl , the VCG configured back into original condition and the line loopback at node N2 released.
In order to support the above described measurement, a new maintenance command could preferably be defined that measures the differential delay between two members in a VCG. The measurement can either be performed in a manual way in that the above configuration steps are performed by an operator manually, or the
measurement can be automated by a single command which executes the measurement steps. In this case the SDH port under consideration will be specified and optionally also the VCG group to be used can be specified.
Measurement can be done on an idle line when no active traffic is currently being sent, or on an line with active traffic but where some capacity is available for an additional VC-4. In the former case, discovery may use line loopback since the port is not yet in service. For a measurement on a line with active traffic, it would be preferable to use matrix loopback.
The setup and measurement steps can be synchronized and coordinated through a control plane, e.g. by GMPLS controllers which communicate with each other. For example the Link Management Protocol LMP of the GMPLS protocol suit can be used to negotiating which side is measuring, initiate the line loopback or matrix loopback, and in case of matrix loopback which VC is used. Measurement can even be done as a maintenance action during a link is in service by using matrix loopback in the far-end network node N2. Turning to figure 3, α second embodiment of line latency measurement will now be described, which uses a second line with known latency characteristics to verify with the line under consideration. In this operation a test line is compared against a known line for example in cases where the multi-cross indication is not available. The setup changes in the following way: The first member of a concatenation group is switched to the known line. The second member is switched to the port under
consideration. Either both peer ends of the two ports are placed into line loopback, when link is not in service or the VCG member can be locally switched back to the line in the switching matrix. The latter is the preferred option for the known port.
In figure 3, first network node NI has a tributary line card LC, a first SDH port Pl , and a second SDH port Pl '. Via SDH network N, network node N 1 is connected from SDH port Pl to SDH port P2 of network node N2 and from port PT to port P3 of network node N3. For this embodiment, it is assumed that the latency of the link between node Nl and N 3 is known. Concatenation termination unit T creates as in the first embodiment a virtual concatenation group with two VC4s and sends these to switching matrix Sl . The first VC4 is switched to SDH port Pl ' and the second to SDH port Pl . The first VC is received at port P3 of network node N3 and forwarded to switching matrix S3, where it is looped back to SDH port P3. The first VC4 hence travels back through network N to port Pl ', from where it is switched back to tributary line card LC. The second VC4 is received at port P2 of network node N2, which has activated a line loopback function and hence the VC4 is sent back via network N to port Pl , from where it is switched back to tributary line card LC, too. Concatenation termination unit T using its deskewing buffer B determines the time difference between receipt of the two corresponding VC4.
The delta measured between the two lines must be taken into account together with the known latency of the known link. The delta can hence be negative or positive as long it is in the range of the buffer size. Figure 4 shows α timing diagram of the measurement. At time TO, both VC4s VC4_1 and VC4_2 are sent from line card LC to switching matrix Sl . After the switching latency, the VC4s are received at time T1 at their respective SDH ports Pl , Pl '. Since the port latency is usually the same for different ports, both VC4s are transmitted simultaneously at time T2 to their respective transmission lines.
VC4_1 is received after time T3 at port P3 and after lapse of a loopback latency, which is essentially the ingress and egress port latency plus the switching latency of switching matrix S3 (due to the fact that node N3 has activated matrix loopback), VC4_1 is transmitted at time T4 back to the transmission line. At time T5, it is received at port Pl ' and after adding port latency (T6) and switching latency is received back at time T7 at tributary line card LC.
VC4_2 is received after time T3' at port P2 of network node N2. The loopback latency of port P2 is then added and VC4_2 is transmitted at time T4' back to the transmission line. At time T5' it is received at port Pl and after port latency and switching latency it is finally received back at the tributary line card LC at time T7'. The measured latency is the difference between VC4_1 and VC4_2, i.e. the difference between T7 and T7'. With the known latency of the
transmission line between Nl and N3, the latency of the transmission line under consideration can be easily determined.
The characteristics of the known transmission line can either be measured in advance using external measurement equipment or can be deduced using known geographical properties. It would also be possible that the known line is just a segment of the line to be measured or the other way round, that the line to be measured is a segment of the known line. The invention allows hence allows to measure a line and all its segments.
Figure 5 shows a third embodiment of a measurement. In this embodiment, a virtual concatenation of three VC4 is formed at a first network node NT. The first element of the virtual concatenation is looped back locally. The second and third VC4 are transmitted via the same output port to a common optical line, which interconnects network element NT via a second intermediate network element NE2' to a third network element NE3'. The second of the three VC4 is looped back at network node NE2' and the third of the three VC4 is looped back at network node NE3'. This way, using more than two elements of a virtual concatenation, the line from NEl ' to NE3' and the segment between NEl ' and NE2' can be measured at the same time. Knowing the latency between NET and NE2' and between NET and NE3', the latency of the segment between NE2' and NE3' can easily be calculated as the difference between the two. This approach can also be extended to a line with more than two segments using a concatenation of more than three VC4. It is hence possible to measure a line and all its segments in one step from a single place in the network.
Figure 6 shows yet a further embodiment. As in the before embodiment, a virtual concatenation of three VC4 is formed at a first network node Nl ". The first element of the virtual concatenation is looped back locally. The second and third VC4 are transmitted via different output ports to two different optical lines, which connect network element Nl " to a second intermediate network element NE2" and to a third network element NE3", respectively. The respective VC4s are looped back at network nodes NE2', NE3', respectively. This way, using more than two elements of a virtual concatenation at a time, the measurement of figure 1 can be performed in parallel to measure several different lines at the same time. This way, using a virtual concatenation of N elements, it will be possible to measure N-I lines in parallel from a single point in the network.
In order to measure a higher number of lines and segments in parallel from a single point in the network, it could be advantageous to use smaller multiplex units where available to have an even higher number of multiplex units available to form a virtual concatenation. It would be possible for example, to use the VC-3, which is the higher order multiplex unit in SONET (the ANSI equivalent of SDH), and form a virtual concatenation VC-3nv of n VC-3 and locally loop back the different VC-3s.
As already discussed above, the configuration steps necessary to carry out the invention can be implemented in either a control plane element if the SDH network is equipped with a distributed GMPLS control plane or can be implemented into a central network management system. In the former case, each network node has a GMPLS controller and the GMPLS controller of network node Nl is equipped with a software extension that configures upon execution the network node Nl to perform the respective steps and is also capable to instruct the GMPLS controller of network node N2, respectively network nodes N2 and N3 to configure the loopback in either switching matrix or line card, depending on which alternative is chosen. Conversely, in the latter case, the central network management system is equipped with a software extension, which upon execution initiates the necessary configuration and measurement steps in all involved network nodes.
Those skilled in the art would readily recognize that steps of various above- described methods can be performed by programmed computers. Herein, some embodiments are also intended to cover program storage devices, e.g., digital data storage media, which are machine or computer readable and encode machine-executable or computer-executable programs of instructions, wherein said instructions perform some or all of the steps of said above- described methods. The program storage devices may be, e.g., digital memories, magnetic storage media such as a magnetic disks and magnetic tapes, hard drives, or optically readable digital data storage media. The embodiments are also intended to cover computers programmed to perform said steps of the above-described methods. The description and drawings merely illustrate the principles of the invention. It will thus be appreciated that those skilled in the art will be able to devise various arrangements that, although not explicitly described or shown herein, embody the principles of the invention and are included within its spirit and scope. Furthermore, all examples recited herein are principally intended expressly to be only for pedagogical purposes to aid the reader in
understanding the principles of the invention and the concepts contributed by the inventor(s) to furthering the art, and are to be construed as being without limitation to such specifically recited examples and conditions. Moreover, all statements herein reciting principles, aspects, and embodiments of the invention, as well as specific examples thereof, are intended to encompass equivalents thereof.
The above embodiments have been described in the context of networks and network equipment of the well known Synchronous Digital Hierarchy (SDH).
However, similar mechanisms of virtual concatenation also exist for instance in the Optical Transport Network (OTN) and the above described measurement principles can equally be applied in these and other networks, which provide virtual concatenation of multiplexing units, in particular, in any kind of transport network which are based on circuit switching technology, time division multiplexing of multiplexing units of equal length, and which provide functionality equivalent to virtual concatenation as explained above. Moreover, underlying transport networks, which transports these concatenated TDM services, such as WDM networks, can be measured in the described way.

Claims

Claims
1. A method of measuring the latency of a transport connection between a first network node (Nl ) and a second network node (N2), comprising the steps of:
- at said first network node (Nl ), creating a virtual concatenation group comprising at least two multiplexing units (VC4_1 , VC4J2);
- using a first of the multiplexing units (VC4_1 ) as reference for a latency measurement;
- sending a second of said multiplexing units (VC4_2) to the second network node (N2); and
- at said first network node, determining a latency difference between said first and second multiplexing units (VC4_1 , VC4_2) using a buffer (B) available in said first network node (Nl ) for re-aligning members of a virtual concatenation group,
wherein
- said second multiplexing unit (VC4_2) is looped back at said second
network node to said first network node (Nl) and
- said first multiplexing unit (VC4_1 ) is internally switched back to a line
card, where the virtual concatenation group is terminated.
2. A method according to claim 1 , wherein the latency of said transport connection to be measured is determined by subtracting a known equipment latency and dividing the remainder by 2.
3. A method according to claim 1 , wherein said virtual concatenation group is an already existing virtual concatenation group to which said first and second multiplexing units (VC4_1 , VC4_2) are added as inactive members.
4. A method according to claim 1 , wherein the measurement is performed during said transmission connection is in service and wherein the loopback is performed in a switching matrix (S2) of said second network node (N2).
5. A method according to claim 1 , wherein the measurement is performed during said transmission connection is out of service and wherein the loopback is performed through a line loopback function at a receiving port (P2) of said second network node (N2).
6. A method according to claim 1 , wherein said virtual concatenation group is created on a line card for packet services (LC) of said first network node (Nl ) and wherein said line card for packet services (LC) also contains said buffer (B) for re-aligning members of a virtual concatenation group.
7. A method according to claim 1 , further comprising an indicator capable of counting overflow events of said buffer (B), and wherein for each buffer overflow, a fixed value is added to the determined latency difference, which value corresponds to the size of the buffer (B).
8. A method according to claim 1 , wherein multiple multiplexing units of a virtual concatenation group are used to measure the latency of a line and one or more segments along that line by looping back different multiplexing units of said virtual concatenation group at intermediate network nodes.
9. A method according to claim 1 , wherein multiple elements of a virtual concatenation group are used to measure the latency of multiple lines in parallel.
10. A controller of a distributed control plane controlling a first network node (Nl ), wherein said controller comprises a function for measuring the latency of a transport connection between the first network node (Nl ) and a second network node (N2) and wherein upon execution, said function configures said first network node (Nl )
- to create a virtual concatenation group comprising at least two
multiplexing units (VC4J , VC4_2);
- to use a first of the multiplexing units (VC4_1 ) as reference for a latency measurement; and
- to send a second of said multiplexing units (VC4_2) to a second network node (N2);
wherein said function further instructs a second controller of said second network node (N2) to configure said second network node to loop said second multiplexing units (VC4_2) back to said first network node (Nl ) and
wherein said function further configures said first network node (Nl ) to switch said first multiplexing unit (VC4_1 ) internally back to a line card, where the virtual concatenation group is terminated and to determine a latency difference between said first and second multiplexing units (VC4_1 , VC4_2) using a buffer available in said first network node (Nl ) for re-aligning members of a virtual concatenation group.
1 1. A controller according to claim 10, wherein said function makes use of a protocol of the Generalized Multi-Protocol Labels Switching protocol suite and in particular the Link Management Protocol to instruct said second controller.
12. A network management system comprising a maintenance function, which upon execution configures a first network element (Nl ) and a second network element (N2) to perform the steps of the method according to any of claims 1 to 10.
PCT/EP2010/056608 2009-06-30 2010-05-12 Method and apparatus for line latency measurement in transport networks Ceased WO2011000625A1 (en)

Priority Applications (3)

Application Number Priority Date Filing Date Title
JP2012518055A JP2012531862A (en) 2009-06-30 2010-05-12 Method and apparatus for measuring line latency in a transport network
CN201080029627XA CN102474373A (en) 2009-06-30 2010-05-12 Method and apparatus for line delay measurement in a transmission network
US13/378,098 US20120087252A1 (en) 2009-06-30 2010-05-12 Method and apparatus for line latency measurement in transport networks

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
EP09305624.0 2009-06-30
EP09305624A EP2278738B1 (en) 2009-06-30 2009-06-30 Method and apparatus for line latency measurement in transport networks

Publications (1)

Publication Number Publication Date
WO2011000625A1 true WO2011000625A1 (en) 2011-01-06

Family

ID=41258921

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/EP2010/056608 Ceased WO2011000625A1 (en) 2009-06-30 2010-05-12 Method and apparatus for line latency measurement in transport networks

Country Status (7)

Country Link
US (1) US20120087252A1 (en)
EP (1) EP2278738B1 (en)
JP (1) JP2012531862A (en)
KR (1) KR20120032545A (en)
CN (1) CN102474373A (en)
AT (1) ATE525820T1 (en)
WO (1) WO2011000625A1 (en)

Families Citing this family (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN105247826B (en) * 2013-01-11 2018-07-13 华为技术有限公司 The network function of the network equipment virtualizes
TWI528755B (en) 2013-12-06 2016-04-01 財團法人工業技術研究院 A controller for delay measurement, a delay measurement system and a delay measurement method in sdn
WO2017098950A1 (en) 2015-12-10 2017-06-15 ソニー株式会社 Receiver and data processing method
US10193765B2 (en) 2016-05-19 2019-01-29 Ciena Corporation Protection switching systems and methods in a packet network based on signal degrade
CN110417503B (en) * 2019-07-31 2021-03-05 锐捷网络股份有限公司 Method for testing clock network delay and digital communication equipment
US11604751B1 (en) * 2021-05-10 2023-03-14 Xilinx, Inc. Optimizing hardware design throughput by latency aware balancing of re-convergent paths

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2000332715A (en) * 1999-05-19 2000-11-30 Nec Corp System and method for measuring inter-node distance in sdh transmission
US6545979B1 (en) * 1998-11-27 2003-04-08 Alcatel Canada Inc. Round trip delay measurement
WO2003063396A1 (en) * 2002-01-16 2003-07-31 Agilent Technologies, Inc. Method and apparatus for measuring differential delay in a sonet/sdh-system using virtual concatenation
WO2004068750A1 (en) * 2003-01-30 2004-08-12 Samsung Electronics Co., Ltd. Apparatus and method for measuring and compensating delay between main base station and remote base station interconnected by an optical cable
US20050265251A1 (en) * 2004-05-25 2005-12-01 Swarup Acharya Link delay determination using virtual concatenation

Family Cites Families (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5781597A (en) * 1995-02-16 1998-07-14 Alcatel Sel Aktiengesellschaft Synchronous digital transmission system having justification circuit that counts frame bytes, calculates offsets, compares thresholds, and initiates justification action
JP2751883B2 (en) * 1995-08-15 1998-05-18 日本電気株式会社 Inter-station transmission delay time measurement method
JP3479248B2 (en) * 1999-12-17 2003-12-15 日本電気株式会社 ATM transmission test equipment
JP2002374301A (en) * 2001-06-14 2002-12-26 Hitachi Ltd Communication quality measurement service and equipment
IL152314A (en) * 2002-10-16 2007-07-04 Eci Telecom Ltd Handling traffic in a synchronous communication network
JP4390568B2 (en) * 2004-01-19 2009-12-24 富士通株式会社 Delay measurement system
JP4966779B2 (en) * 2007-07-27 2012-07-04 富士通株式会社 Network delay measurement method and communication system
JP2010141683A (en) * 2008-12-12 2010-06-24 Mitsubishi Electric Corp Optical transmission apparatus and dispersion compensator
US8774232B2 (en) * 2010-01-08 2014-07-08 Ciena Corporation Systems and methods of measuring latency and routing thereon in optical networks

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6545979B1 (en) * 1998-11-27 2003-04-08 Alcatel Canada Inc. Round trip delay measurement
JP2000332715A (en) * 1999-05-19 2000-11-30 Nec Corp System and method for measuring inter-node distance in sdh transmission
WO2003063396A1 (en) * 2002-01-16 2003-07-31 Agilent Technologies, Inc. Method and apparatus for measuring differential delay in a sonet/sdh-system using virtual concatenation
WO2004068750A1 (en) * 2003-01-30 2004-08-12 Samsung Electronics Co., Ltd. Apparatus and method for measuring and compensating delay between main base station and remote base station interconnected by an optical cable
US20050265251A1 (en) * 2004-05-25 2005-12-01 Swarup Acharya Link delay determination using virtual concatenation

Also Published As

Publication number Publication date
ATE525820T1 (en) 2011-10-15
EP2278738B1 (en) 2011-09-21
JP2012531862A (en) 2012-12-10
KR20120032545A (en) 2012-04-05
US20120087252A1 (en) 2012-04-12
EP2278738A1 (en) 2011-01-26
CN102474373A (en) 2012-05-23

Similar Documents

Publication Publication Date Title
US10594395B2 (en) Systems and methods for compensating coherent optics delay asymmetry in a packet optical network
EP1463370B1 (en) Transport network restoration method
EP3531588B1 (en) Method and device for building flexible ethernet group
US10826604B2 (en) Fault localization using tandem connection monitors in optical transport network
US8559812B2 (en) Methods and systems for the hierarchical mesh restoration of connections in an automatically switched optical network
US8699886B2 (en) Externally synchronized optical transport network systems and associated methods
JP5506931B2 (en) Method and apparatus for automatic discovery in an optical transport network
EP2278738B1 (en) Method and apparatus for line latency measurement in transport networks
US20040076114A1 (en) Method and apparatus for shared protection in an optical transport network ring based on the ODU management
US7688717B2 (en) Transport network restoration method supporting extra traffic
JP3721039B2 (en) Transmission system and its traffic control method and transmission apparatus
EP1489784A1 (en) Restoration in an automatically switched optical transport network
CN113542935A (en) A kind of signal frame processing method and related equipment
US20080298800A1 (en) Transmission device and route verifying method
EP2466767B1 (en) Adapting equipment and method
US7706268B2 (en) Transmission device
US20140294377A1 (en) Proactive delay measurement for optical transport network
US8014296B1 (en) Method and apparatus for enabling LCAS-like feature through embedded software
CN1753341B (en) A method and device for protecting data services based on SDH/SONET
EP1696639B1 (en) Failure management and propagation in a telecommunication network
CN103368839A (en) Method and device for suppressing broadcast storm of SDH (synchronous digital hierarchy) services
Hamad Performance analysis and management of RPR (resilient packet ring) rings attached to an new large layer 2 (L2) networks (NLL2N)
Imamovic et al. Practical benchmark analysis of traffic protection with Ethernet-over-SDH transmission
YangA et al. Performance analysis of line differential protection using MPLS networks
Berger et al. Versatile bandwidth management: The design, development, and deployment of LambdaUnite®

Legal Events

Date Code Title Description
WWE Wipo information: entry into national phase

Ref document number: 201080029627.X

Country of ref document: CN

121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 10718235

Country of ref document: EP

Kind code of ref document: A1

WWE Wipo information: entry into national phase

Ref document number: 13378098

Country of ref document: US

WWE Wipo information: entry into national phase

Ref document number: 2012518055

Country of ref document: JP

NENP Non-entry into the national phase

Ref country code: DE

ENP Entry into the national phase

Ref document number: 20127002520

Country of ref document: KR

Kind code of ref document: A

122 Ep: pct application non-entry in european phase

Ref document number: 10718235

Country of ref document: EP

Kind code of ref document: A1