WO1999005827A1 - Systeme de transmission multiplex et procede de commande de bande - Google Patents
Systeme de transmission multiplex et procede de commande de bande Download PDFInfo
- Publication number
- WO1999005827A1 WO1999005827A1 PCT/JP1998/003279 JP9803279W WO9905827A1 WO 1999005827 A1 WO1999005827 A1 WO 1999005827A1 JP 9803279 W JP9803279 W JP 9803279W WO 9905827 A1 WO9905827 A1 WO 9905827A1
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- WIPO (PCT)
- Prior art keywords
- bandwidth
- quality class
- connection
- allocated
- ratio
- Prior art date
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Classifications
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L12/00—Data switching networks
- H04L12/28—Data switching networks characterised by path configuration, e.g. LAN [Local Area Networks] or WAN [Wide Area Networks]
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L12/00—Data switching networks
- H04L12/54—Store-and-forward switching systems
- H04L12/56—Packet switching systems
- H04L12/5601—Transfer mode dependent, e.g. ATM
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L12/00—Data switching networks
- H04L12/54—Store-and-forward switching systems
- H04L12/56—Packet switching systems
- H04L12/5601—Transfer mode dependent, e.g. ATM
- H04L2012/5629—Admission control
- H04L2012/5631—Resource management and allocation
- H04L2012/5632—Bandwidth allocation
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L12/00—Data switching networks
- H04L12/54—Store-and-forward switching systems
- H04L12/56—Packet switching systems
- H04L12/5601—Transfer mode dependent, e.g. ATM
- H04L2012/5638—Services, e.g. multimedia, GOS, QOS
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L12/00—Data switching networks
- H04L12/54—Store-and-forward switching systems
- H04L12/56—Packet switching systems
- H04L12/5601—Transfer mode dependent, e.g. ATM
- H04L2012/5672—Multiplexing, e.g. coding, scrambling
Definitions
- the present invention relates to ATM transmission, and more particularly to a bandwidth control method in ATM transmission for performing transmission satisfying respective service qualities.
- cells with different quality conditions such as delay and cell loss rate are multiplexed on the output transmission line for transmission.
- Packets with different quality conditions are also multiplexed and transmitted in the same ATM cell. In order to perform such transmission, it is necessary to provide a plurality of buffers for each quality class before the multiplexing processing on ATM cells.
- ATM Adaptation Layer type 2 (AAL type 2)
- up to 248 users can be multiplexed and transmitted on one virtual channel (VC) connection.
- VC virtual channel
- the quality class is usually required for each user's connection, it is required to prepare a plurality of quality classes in the VC connection and transmit with the quality suitable for each user connection.
- a device configuration in which a packet composed of a plurality of connections is multiplexed and mounted on an ATM cell see, for example, an international application filed by the present applicant (International Publication No. (July 3) "MULTIPLEX TRANSMITTER FOR MICRO-FRAME" and others. To do this, when a packet is input to the multiplexing device, it is distributed to multiple buffers for each quality class and input, and packets are taken out from the buffer according to the set order. Is disclosed.
- the bandwidth allocated to each quality class is determined by the speed of extracting cells / packets from each buffer.
- the bandwidth set for the quality class is limited, there are cases where the user connection requested to be set cannot be set even though there is room in the bandwidth of the entire transmission path. .
- packets with different quality conditions are divided into multiple buffers, input, and multiplexed into ATM cells, enabling transmission with different quality for each.
- the bandwidth of the transmission path is assigned to each quality class.
- the bandwidth ratio for each quality class is determined based on the predicted traffic characteristics, and packets or cells are taken out at a take-out speed that can realize the determined bandwidth ratio.
- connection is required to perform transmission satisfying the quality of service. I can't accept Chillon.
- the set bandwidth ratio can be changed, transmission that satisfies the quality of service becomes possible while keeping the delay and cell loss rate low, and it will be possible to accept more connections.
- An object of the present invention is to provide a multiplexing device that multiplexes and outputs a signal on a transmission line, thereby controlling the change of a band, thereby reducing irregular traffic characteristics of services having various quality conditions in a real environment.
- the purpose is to realize a corresponding and efficient use of the transmission path.
- the present invention provides a multiplex transmission system in which ATM cells are multiplexed and transmitted, having a different buffer for each quality class, and separately inputting transmission contents from a plurality of connections to the buffer.
- the ratio of the extraction speed from the buffer can be changed, and the ratio of the band allocated to the transmission path can be changed for each quality class by changing the ratio of the extraction speed.
- the transmission content from the multiple connections may be an ATM cell and a bucket. No ,.
- the packet is extracted from the buffer, multiplexed into an ATM cell, and output. Moreover, it can also be comprised as a combination of these.
- the ratio of the bandwidth allocated to the transmission line is changed for each quality class.
- the quality class The ratio of the bandwidth allocated to the transmission path is changed.
- the bandwidth allocated to the quality class to which the connection belongs is added to the new connection, and if the bandwidth required for the quality class exceeds, The ratio of the bandwidth allocated to the transmission line can be changed for each class.
- the ratio of the bandwidth allocated to the transmission line for each quality class can be changed.
- FIG. 1 is a diagram showing a relationship between a virtual path connection, a no-channel channel connection, and a user connection.
- FIG. 2 is a conceptual diagram comparing a required band, which is a band required for each quality class, and a bandwidth actually allocated to a transmission path for each quality class.
- FIG. 3 is a block diagram showing a configuration of a multiplexer for multiplexing ATM cells and transmitting the multiplexed cells to a transmission path.
- FIG. 4 is a block diagram showing a configuration of a multiplexing apparatus that multiplexes and mounts a packet on an ATM cell and transmits the multiplexed packet to a transmission line.
- FIG. 5 is a block diagram showing a configuration of a multiplexing device when the multiplexing of FIG. 3 and the multiplexing of FIG. 4 are simultaneously performed.
- FIG. 6 is a conceptual diagram showing an allocated band when the multiplexer shown in FIG. 5 is used.
- FIG. 7 is a diagram showing a sequence of processing of the bandwidth management control unit and processing of the extraction unit.
- FIG. 8 is a flowchart showing the processing of bandwidth change control when a connection is set.
- FIG. 9 is a flowchart showing the processing of the bandwidth change control when the connection is released.
- FIG. 10 is a diagram showing the required bandwidth before and after the connection setting, the bandwidth already allocated to the transmission path, and the bandwidth allocated after the allocated bandwidth change process.
- FIG. 11 is a flowchart illustrating another band change control process when a connection is set in another embodiment.
- FIG. 12 is a diagram showing the required bandwidth before and after the connection setting, the bandwidth already allocated to the transmission path, and the bandwidth allocated after the allocated bandwidth change processing.
- FIG. 13 is a flowchart showing a connection accepting process at the time of setting a connection according to the third embodiment.
- FIG. 14 is a diagram showing a processing sequence of the cell loss rate monitoring unit to the band management control unit for starting the band change process.
- FIG. 1 is a diagram showing a relationship between a virtual path'connection (VP), a virtual channel'connection (VC), and a user'connection used in the present invention.
- Virtual path on physical transmission pathConnection Inside there is a virtual channel 'connection with an ATM cell.
- the connection may represent a user's connection, or a packet forming a user connection may be multiplexed and transmitted on an ATM cell composed of virtual channel connections. You can also.
- Figure 1 shows a case where multiple user connections are set up on a virtual channel connection.
- the user's connection consisting of the virtual channel connection by the ATM cell and the user-connection by the packet multiplexed in the ATM cell are dynamically adjusted so as to satisfy the respective levels of service quality. The band is controlled. This will be described in detail below.
- Figure 2 is a conceptual diagram comparing the required bandwidth, which is the bandwidth required for each quality class, and the bandwidth actually allocated to the transmission path (virtual path 'connection, virtual channel' connection) for each quality class.
- the bandwidth allocation can be optimally performed by dynamically controlling the bandwidth allocation to each transmission path.
- the multiplexing device described below attempts to realize this optimal bandwidth allocation.
- FIG. 3 is a block diagram showing a configuration example of a multiplexer 100 that multiplexes ATM cells forming a connection requesting different service qualities and transmits the multiplexed cells to a transmission path (virtual path 'connection).
- the cells input to the multiplexer 100 by the input connections 1 to n101 have quality conditions.
- This packet is distributed to the buffer 104 for each quality class by the distribution unit 102.
- a common waiting time for outputting a cell is set in advance according to the quality condition. For this reason, buckets existing in the buffer 104 beyond the allowable waiting time are sequentially discarded.
- the cell loss rate monitoring unit 103 has a function of observing the cell loss rate in the buffer 104.
- the bandwidth management control unit 150 determines the optimum ratio of the extraction speed for each buffer from the ratio of the band allocated to each quality class, and notifies the extraction processing unit 105 of the extraction information. Extraction information is information that determines from which buffer cells are extracted.
- the removal processing unit 105 removes the cell in accordance with the notified removal information.
- the extracted ATM cell is sent from the sending unit 107 to the output line 108.
- FIG. 4 is a block diagram showing a configuration example of a multiplexing apparatus 200 for multiplexing and transmitting buckets forming different user's connections to ATM cells forming a virtual channel connection.
- the buckets input to the multiplexing device 200 by the input user connections 1 to n 201 have quality conditions, respectively. This bucket is distributed to the buffer 204 for each quality class by the distribution unit 202.
- the bucket discard rate monitoring unit 203 has a function of observing the packet discard rate in the notifier 204.
- the area management control unit 250 determines the optimum ratio of the extraction speed for each buffer from the ratio of the bandwidth allocated to each quality class, and notifies the extraction processing unit 205 of the extraction information.
- the extraction information is information that determines from which buffer the packet is extracted.
- the fetch processing unit 205 fetches the bucket according to the notified fetch information.
- Many The packet extracted by the multiplexing processing unit 206 is multiplexed into ATM cells.
- the multiplexed ATM cells are sent from the sending unit 207 to the output line 208.
- FIG. 5 is a block diagram showing the configuration of the multiplexing apparatus 300 when the multiplexing of FIG. 3 and the multiplexing of FIG. 4 are performed simultaneously.
- FIG. 6 is a conceptual diagram showing an allocated band when the multiplexing device in FIG. 5 is used.
- components having the same reference numerals as those in FIGS. 3 and 4 have similar functions.
- user's connection 101 forms a connection to the ATM cell.
- the packet from the user connection 201 is sent to the ATM by the distribution unit 202, the buffer 204, the extraction unit 205, and the multiplex processing unit 206. It is multiplexed into cells. No ,.
- the ATM cell with the multiplexed packet is stored in the buffer m + 1 of the buffer 304.
- the ATM cell stored in the buffer m + 1 is extracted together with the other ATM cells by the extracting unit 107 from the buffer 304 at a ratio of the extraction speed according to the allocated band. .
- the extracted ATM cell is multiplexed with an ATM cell from another by a multiplex processing unit 310 if necessary, and output from the transmission unit 307 to the output line 308.
- the bandwidth management control unit 250 transmits packets from the buffer 204 so that each user channel becomes Bl 'to Bm, which are indicated by the virtual channel (VC) bandwidth in FIG. Controls the speed ratio of ejection.
- the bandwidth management control unit 150 sets the speed ratio of the ATM cell extraction from the buffer 304 to Xl to Xm + l as shown in the virtual path 'connection (VP) bandwidth in FIG. Control.
- FIG. 5 and 6 show the case where there is only one type of virtual channel connection that multiplexes packets. However, there may be a configuration in which a packet is multiplexed on a plurality of virtual channel connections. At this time, 201 to 206 and the battery The number of files (m + 1) is equal to the number of virtual channel 'connections.
- FIG. 7 is a diagram showing a sequence relating to the processing of the band management control units 150 and 250 and the processing of the extraction units 105 and 205 in FIGS. 3 to 5.
- the bandwidth management control sections 150 and 250 manage connection connections for each quality class (S302), and use the conversion data or conversion algorithm prepared in advance.
- the necessary bandwidth B1,...: Bm,, B1 to Bm
- the allocated bandwidth X1 to Xm
- the allocated bandwidth ratio is converted into extracted information (S306).
- the extraction units 105 and 205 of the multiplexing device perform extraction processing in accordance with the extraction information notified from the bandwidth management control unit 150 (S308), thereby guaranteeing the bandwidth of each quality class. Guaranteeing the bandwidth guarantees the quality of each connection or packet.
- the guaranteed bandwidth can be changed by changing the extraction information by the bandwidth management controllers 150 and 250.
- the bandwidth management controllers 150 and 250 may be outside the multiplexer (for example, an ATM switch) or may be inside the multiplexer. Depending on the function, the multiplexing device may be located inside and outside the multiplexing device.
- FIGS. 3 to 5 show a case where the bandwidth management control units 150 and 250 are arranged outside the multiplexing device.
- Each function and processing of the multiplexing apparatus and the bandwidth management control units 150 and 250 in FIGS. 3 to 5 are realized by a computer (not shown).
- the configuration of the multiplexers 100, 200, and 300 shown in Figs. 3 to 5 various controls are possible depending on when the band change processing is performed. It is. In the following description of the control example, the control processing will be described. In the description of these control examples, the basic configuration is shown in FIGS.
- FIGS 8 to 10 are diagrams for explaining the operation of the control example 1 in which the band management processing of the band management control units 150 and 250 is performed for each connection setting.
- FIG. 8 is a diagram depicting a processing flow showing a processing of the band change control at the time of setting a connection
- FIG. 9 is a diagram showing a processing flow showing a processing of a band change control method at the time of connection release in the control example 1.
- FIG. 10 is a diagram showing the required bandwidth before and after the connection setting, the bandwidth already allocated to the transmission path, and the bandwidth allocated after the allocated bandwidth change processing in the control example 1.
- the bandwidth management control unit 150 adds the connection for which the setting was requested to the connection currently being set, and then transmits the connection. Calculate the total bandwidth required for the transmission path, which is a wide band.
- the bandwidth (bx) required per connection is determined by quality conditions such as maximum speed, average speed, minimum speed, average cell transfer delay, delay fluctuation, and cell loss rate.
- the method of calculating the required bandwidth (Bl to Bm) for each quality class may be simply the accumulation of the bandwidth required for one connection, or the connection connection taking into account the statistical multiplexing effect when connecting multiple connections.
- the conversion data with the required band or the one obtained by the conversion algorithm may be used.
- the required total bandwidth of the transmission line is the required bandwidth calculated for each quality class.
- the calculated total bandwidth required for the transmission path is compared with the available bandwidth for the transmission path that can be allocated to the transmission path (S404), and if the total required bandwidth for the transmission path does not exceed the available bandwidth for the transmission path,
- the bandwidth (Xl to Xm) assigned to each quality class is changed to the optimal bandwidth ratio (X'1 to X'm) when the connection is added (S406), and the request
- the set connection is set (S408).
- the allocated bandwidth for each quality class after the change can be set to be equal to or greater than the required bandwidth, so that the service quality of the set connection and the connection during communication can be guaranteed. If the total bandwidth required for the transmission path exceeds the allocatable bandwidth, the connection setting is not permitted (S410) to guarantee the service quality of the connection during communication.
- the bandwidth management control unit 150 releases the transmission path for which the connection has been released, and reallocates the bandwidth allocated to the transmission path. (S506).
- Fig. 10 shows, in the same manner as Fig. 4, the required bandwidth after the connection setting before Z in the processing of Fig. 8, the bandwidth already allocated to the transmission line, and the bandwidth allocated after the allocated bandwidth change processing.
- connection release request When there is a connection release request, the connection is released, and the allocated bandwidth for each quality class is changed to the optimal bandwidth ratio by the same calculation method as when the connection is set, thereby optimizing the allocated bandwidth. Measure.
- control example 2 will be described in detail with reference to FIG. 11 and FIG.
- FIG. 11 is a processing flow showing the processing of the bandwidth change control method when the connection is set in control example 2.
- FIG. 12 is a diagram showing the required bandwidth before the connection setting Z in Control Example 2, the bandwidth already allocated to the transmission path, and the bandwidth allocated after the allocated bandwidth change processing.
- the bandwidth management control unit calculates the required bandwidth of the quality class of the connection after adding the connection requested to be set.
- Bandwidth required per connection (bx) is the declared value at the time of connection setting such as maximum speed, average speed, minimum speed, cell transfer average delay, delay fluctuation, etc., and quality conditions such as cell loss rate and allowable delay determined by service type Is determined by
- the required bandwidth (Bl to Bm) for each quality class can be calculated by always stacking the required bandwidth per connection, or by using connection connections that take into account the statistical multiplexing effect when connecting multiple connections. It may be obtained by conversion data with a band or by a conversion algorithm. Then, the calculated required bandwidth ( ⁇ ' ⁇ ) is compared with the allocated bandwidth ( ⁇ ) allocated to the transmission path for the quality class (S704), and the required bandwidth determines the allocated bandwidth. If not, the required connection is set (S708). At this time, since the allocated bandwidth for each quality class is set to be equal to or greater than the required bandwidth, the service quality of the set connection and the connection during communication is guaranteed.
- the bandwidth management control unit calculates the required bandwidth of each quality class and then calculates the total required bandwidth of the transmission line.
- the required total bandwidth of the transmission line is obtained from the sum of the required bandwidth calculated for each quality class.
- the calculated required total bandwidth of the transmission line is compared with the available bandwidth of the transmission line that can be allocated to the transmission line (S706). If the required total bandwidth of the transmission line does not exceed the available bandwidth of the transmission line, the quality is determined.
- the bandwidth (Xl to Xm) allocated to each class is changed to the optimal bandwidth ratio (X'1 to X'm) when the connection is added (S710), and the requested connection is changed. Settings are made (S708).
- the allocated bandwidth for each quality class after the change can be set to the required bandwidth or more, so that the service quality of the set connection and the connection during communication can be guaranteed. . If the total bandwidth required for the transmission path exceeds the allocatable bandwidth, the connection setting is not permitted and the connection Guarantee the service quality of the service.
- Fig. 12 shows the required bandwidth before and after the connection setting in Control Example 2, the bandwidth already allocated to the transmission path, and the bandwidth allocated after the allocated bandwidth change processing, as in Fig. 10. It is.
- the bandwidth change processing or the calculation of the total bandwidth required for the transmission path is performed only when the required bandwidth of the quality class of the connection for which the setting request has been made exceeds the allocated bandwidth. By doing so, the processing load can be reduced while maintaining the quality of service that should be guaranteed.
- control example 3 the bandwidth management control unit is only activated when the cell discard rate monitoring unit 103, 203 requests a bandwidth change to the bandwidth management control unit 150, 250. 150 and 250 perform band change processing. By performing processing in this way, it is possible to reduce the processing load while maintaining the service quality to be guaranteed.
- control example 3 will be described in detail with reference to FIG. 13 and FIG.
- FIG. 13 is a processing flow of the band management control units 150 and 250 showing the processing of connection admission control at the time of connection setting.
- FIG. 14 is a diagram showing a processing sequence of the cell loss rate monitoring units 103 and 203 and the band management control units 150 and 250 for starting the band change process in the control example 3.
- the bandwidth management control unit 1 50 and 250 calculate the total bandwidth required for the transmission path, which is the bandwidth required for transmission after adding the connection requested to be set to the currently set connection.
- the bandwidth required per connection (bX) is determined by the declared values when setting the connection, such as the maximum speed, average speed, and minimum speed, and by quality conditions such as the service type and cell loss rate.
- the method of calculating the required bandwidth (B 1 to B m) for each quality class may be simply the accumulation of the bandwidth required for one connection, or a connection connection that takes into account the statistical multiplexing effect when connecting multiple connections. Conversion data between the required bandwidth and the required bandwidth or a conversion algorithm may be used.
- the required total bandwidth of the transmission line is obtained from the sum of the required bandwidth calculated for each quality class.
- the calculated total bandwidth required for the transmission path is compared with the available transmission path bandwidth that can be allocated to the transmission path (S904). If the total required transmission path bandwidth does not exceed the available transmission path bandwidth, the request The specified connection is set (S906). If the required total bandwidth of the transmission path exceeds the allocatable bandwidth, connection setting is not permitted (S908) to guarantee the service quality of the connection during communication. In the processing at the time of the connection setting request, the bandwidth allocation is not changed. The process of changing the bandwidth allocation is explained in Fig.14.
- the cell discard rate monitoring unit constantly monitors the packet discard rate in the buffer, and when the packet discard rate exceeds a preset threshold, a bandwidth change request is sent to the bandwidth management control unit. Is notified (S1002).
- the threshold is a value specified in relation to the service quality. By setting the threshold to a value equal to or less than the packet loss rate in the guaranteed service quality, the service quality of the connection during communication is guaranteed.
- the bandwidth management control unit calculates the required bandwidth for each quality class, and changes the bandwidth allocated to each quality class to an optimal bandwidth ratio (S1004). As described above, in the control example 3, the bandwidth management control unit performs the bandwidth change process only when the cell discard rate monitoring unit requests the bandwidth management control unit to change the bandwidth. I have.
- cell Z packets having different quality conditions such as delay and cell loss rate are divided into a plurality of buffers to be input, and the quality of the user's connection is satisfied.
- ATM transmission which enables the transmission of data, it is possible to change the bandwidth of each quality class to be allocated to the transmission path by changing the speed at which cell Z packets are extracted from the buffers of each quality class. It is possible to cope with irregular traffic characteristics of services with various quality conditions in the environment.
- the allocated bandwidth at the time of setting and releasing the user's connection it is possible to always allocate the optimal bandwidth, and the required bandwidth exceeds the bandwidth allocated to the quality class of the set connection.
- the control processing load can be reduced while satisfying the service quality of each communication.
- the minimum bandwidth change according to the actual traffic It is only necessary to perform the processing, and it is possible to reduce the control processing load of the band change while satisfying the service quality of each communication.
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Description
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Priority Applications (4)
Application Number | Priority Date | Filing Date | Title |
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JP1999508458A JP3630692B6 (ja) | 1997-07-23 | 1998-07-22 | 多重送信システムおよび帯域制御方法 |
CA 2266440 CA2266440C (en) | 1997-07-23 | 1998-07-22 | Multiplex transmission system and band control method |
US09/147,911 US6560231B1 (en) | 1997-07-23 | 1998-07-22 | Multiplex transmission system and bandwidth control method |
EP19980933894 EP0935369B1 (en) | 1997-07-23 | 1998-07-22 | Multiplex transmission system and band control method |
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
JP9/196982 | 1997-07-23 | ||
JP19698297 | 1997-07-23 |
Publications (1)
Publication Number | Publication Date |
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WO1999005827A1 true WO1999005827A1 (fr) | 1999-02-04 |
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ID=16366875
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
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PCT/JP1998/003279 WO1999005827A1 (fr) | 1997-07-23 | 1998-07-22 | Systeme de transmission multiplex et procede de commande de bande |
Country Status (6)
Country | Link |
---|---|
US (1) | US6560231B1 (ja) |
EP (1) | EP0935369B1 (ja) |
KR (1) | KR100334508B1 (ja) |
CN (1) | CN1193551C (ja) |
CA (1) | CA2266440C (ja) |
WO (1) | WO1999005827A1 (ja) |
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- 1998-07-22 EP EP19980933894 patent/EP0935369B1/en not_active Expired - Lifetime
- 1998-07-22 WO PCT/JP1998/003279 patent/WO1999005827A1/ja active IP Right Grant
- 1998-07-22 US US09/147,911 patent/US6560231B1/en not_active Expired - Lifetime
- 1998-07-22 KR KR1019997002444A patent/KR100334508B1/ko not_active IP Right Cessation
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Also Published As
Publication number | Publication date |
---|---|
EP0935369A4 (en) | 2003-02-12 |
EP0935369A1 (en) | 1999-08-11 |
CA2266440A1 (en) | 1999-02-04 |
CN1193551C (zh) | 2005-03-16 |
KR20000068611A (ko) | 2000-11-25 |
JP3630692B2 (ja) | 2005-03-16 |
KR100334508B1 (ko) | 2002-04-26 |
EP0935369B1 (en) | 2012-05-02 |
US6560231B1 (en) | 2003-05-06 |
CA2266440C (en) | 2004-09-14 |
CN1234934A (zh) | 1999-11-10 |
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