WO1998043387A1 - Method for synchronization - Google Patents

Method for synchronization Download PDF

Info

Publication number
WO1998043387A1
WO1998043387A1 PCT/FI1998/000254 FI9800254W WO9843387A1 WO 1998043387 A1 WO1998043387 A1 WO 1998043387A1 FI 9800254 W FI9800254 W FI 9800254W WO 9843387 A1 WO9843387 A1 WO 9843387A1
Authority
WO
WIPO (PCT)
Prior art keywords
synchronization
frame
bits
state
data frame
Prior art date
Application number
PCT/FI1998/000254
Other languages
English (en)
French (fr)
Swedish (sv)
Inventor
Jyri Suvanen
Original Assignee
Nokia Telecommunications Oy
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 Nokia Telecommunications Oy filed Critical Nokia Telecommunications Oy
Priority to EP98910767A priority Critical patent/EP0937350A1/en
Priority to AU65022/98A priority patent/AU6502298A/en
Publication of WO1998043387A1 publication Critical patent/WO1998043387A1/en
Priority to US09/198,166 priority patent/US6320880B1/en

Links

Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L7/00Arrangements for synchronising receiver with transmitter
    • H04L7/04Speed or phase control by synchronisation signals
    • H04L7/041Speed or phase control by synchronisation signals using special codes as synchronising signal
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04JMULTIPLEX COMMUNICATION
    • H04J3/00Time-division multiplex systems
    • H04J3/02Details
    • H04J3/06Synchronising arrangements
    • H04J3/0602Systems characterised by the synchronising information used
    • H04J3/0605Special codes used as synchronising signal

Definitions

  • the present invention relates to a synchronization method in a tele- communication system, advantageously in a cellular radio system.
  • pan-European GSM mobile communications system for example, there is need, in addition to the presently-used data transfer rates of 9.6 kbit/s and 4.8 kbit/s, for higher transfer rates, such as 14.4 kbit/s, which is required by data services of the public switched telephone network PSTN, for example the modem and telefax terminals of class G3.
  • Figure 1 in the accompanying drawings shows a simplified block diagram of the pan-European GSM mobile communications system.
  • the network subsystem comprises a mobile services switching centre MSC which communicates with other mobile services switching centres, and either directly or via the system interface of a gateway mobile services switching centre (GMSC), the mobile communications system is connected to other networks, such as the public switched telephone network (PSTN), an integrated services digital network (ISDN), other mobile communications networks such as the public land mobile network (PLMN) and packet-switched public data networks (PSPDN) and circuit-switched public data networks (CSPDN).
  • PSTN public switched telephone network
  • ISDN integrated services digital network
  • PLMN public land mobile network
  • PSPDN packet-switched public data networks
  • CSPDN circuit-switched public data networks
  • the mobile services switching centre comprises network interworking functions (IWF) by means of which the GSM network can be adapted to other networks.
  • IWF network interworking functions
  • the IWF comprises an echo cancellation part, modems for modulating the signal originating from the mobile communications network as required before sending it over the system interface to other networks and, correspondingly, for de- modulating the signal received from other networks into a PCM signal.
  • the IWF comprises rate adaptation for adapting the transfer rate to be suitable for other networks, and, correspondingly, for adapting the signal rate from other networks for the GSM network.
  • the network subsystem NSS is connected via the A-interface to the base station subsystem (BSS) which comprises base station controllers BSC, each controlling the base stations BTS that are connected to them.
  • the interface between the BSC and the base stations BTS connected thereto is the Abis interface.
  • the base stations BTS for their part communicate on the radio path with mobile stations MS over the radio interface.
  • the transcoder/rate adaptor unit is a part of the base station subsystem BSS and may be located at the base station controller BSC, as shown in Figure 1 , or alternatively at the mobile services switching centre MSC.
  • the transcoders convert speech from a digital format to another, for example 64kbit/s PCM received over the A-interface from the MSC, into data to be transmitted to the base station, and vice versa.
  • One 64 kbit/s PCM chan- nel carries four speech/data connections, which means that the rate of one speech/data channel on this link is 16 kbit/s.
  • the TAF block Terminal Adaptation Function
  • the mobile station MS connected to the data terminal 12 transmits user data over the radio interface on the radio channel at 9.6 kbit/s or 4.8 kbit/s, as specified in the standard.
  • the base station BTS receives the data of the traffic channel and transfers it to the 64 kbit/s timeslot of the PCM circuit.
  • the three other traffic channels of the same carrier are inserted into the same timeslot, i.e.
  • the TRAU converts the coded 16 kbit/s digital information into the 64 kbit/s channel, and on this channel the data is transferred into the IWF unit at the MSC.
  • the IWF carries out the necessary modulation and rate adaptation, after which the data is transmitted to some other network.
  • user data is transferred over fixed connections in the uplink direction from the BTS to the BSC and the MSC, and correspondingly, the data to be transmitted to the MS is transferred in the downlink direction from the MSC via the BSC to the BTS and from thereon over the radio interface to the MS.
  • the channel codec unit (CCU) of the base station carries out the conversion of the signal received on the radio channel into the channel of the PCM timeslot in the trunk circuit over the Abis interface, and the conversion of the signal received over the Abis interface into the form transmitted to the radio path.
  • the TRAU carries out the conversion operations for the signals to be transferred over the A-interface.
  • the user data is transferred over the Abis interface from the BTS to the TRAU in a fixed-length TRAU frame.
  • the TRAU frame comprises 40 octets numbered 0,...,39, its total length thus being 320 bits and duration 20 ms.
  • Figure 2 shows in bit diagram form a TRAU data frame used to transfer a signal at the data rate of 9.6 kbit/s or 4.8 kbit/s.
  • Synchronization between the unit that transmits the TRAU frame and the one that receives it is achieved with synchronization bits that are shown in Figure 2 as 0-bits and 1-bits.
  • the 0- bits in the first two octets of the TRAU data frame are used for carrying out the actual synchronization, and the 1-bits in the first bit position in the other octets except the first, second, and fourth, are used to ensure that elsewhere in the data frame there are no two-octet-long sequences of successive 0-bits that would look like a synchronization sequence.
  • the TRAU frame of Figure 2 shows control bits C1- C15, and the user data bits denoted with X.
  • Control bit C6 is used to transfer information on the data rate, such as 8 kbit/s or 16 kbit/s.
  • the octets containing user data are separated by dotted lines into sections containing 63 data bits, the total length of such a section, including the synchronization bits, being 72 bits.
  • Unused data bits are set to 1 -state, for example, for the duration of breaks in the data transmission.
  • the TRAU frame according to Figure 2 is as such unsuitable for transfer of signals at 14.4 kbit/s, because 288 data bits would have to be inserted into one frame.
  • an extended TRAU data frame has been proposed whose structure is shown by Figure 3.
  • An extended TRAU data frame is also suitable for transfer of signals at 7.2 kbit/s.
  • the user data bits D3 - D286 are for the sake of simplicity marked with X.
  • the 288 bits in a 14.4 kbit/s data rate signal are thus inserted into user data bits D1 - D288.
  • the synchronization bits in the first bit position of octets 4 - 39 in the normal TRAU data frame have been replaced by user data bits in the extended TRAU frame, and the control bits C14 and C15 have been replaced by bits S1 and S2.
  • the S1 bit is used to carry information on the number of the half in multiframe transmission
  • the S2 bit is used to convey information on discontinuous transmission DTX
  • the S bits indicate the multiframe numbering.
  • a synchronization frame formed from a normal TRAU data frame of Figure 2 by setting the user data bits to 1 -state is used in a separate synchronization procedure, to be described below, in order to ensure synchronization when 7.2 and 14.4 kbit/s signals are transferred.
  • Figure 4 shows a synchronization frame thus formed.
  • the channel codec unit CCU of the base station BTS transmits at the beginning of a 7.2 or 14.4 kbit/s transmission a synchronization frame of Figure 4 to the TRAU, the control bits of the synchronization frame indicating the frame type used, e.g.
  • the transcoder TRAU responds with an identical synchronization frame, after which the CCU begins the actual transmission by transmitting an extended TRAU data frame. Data transfer continues to both directions by transmitting extended TRAU data frames.
  • the synchronization frames are transmitted as described above when the data rate on the traffic channel changes during the transmission from another data rate to the rate of 7.2 or 14.4 kbit/s.
  • the transmitting and receiving units must be mutually synchronized.
  • the transcoder unit TRAU receives its synchronization from the BTS.
  • the transcoder TRAU transmits information on it to the BTS in the TRAU frame to be transmitted next by using an Uplink Frame Error (UFE) parameter.
  • UFE Uplink Frame Error
  • the UFE parameter is disclosed to be inserted into control bit C6 in the extended TRAU frame, the con- trol bit C6 being in 1 -state during normal synchronization and in 0-state when synchronization in the uplink direction has been lost.
  • the channel codec unit at the BTS reacts to receiving the UFE parameter by transmitting a synchronization frame to the TRAU, acknowledged by the TRAU by a corresponding synchronization frame. If the CCU detects synchronization loss in the downlink direction, it starts a corresponding synchronization procedure.
  • User data at 9.6 kbit/s and , 8 kbit/s in the transmission line between the IWF of the MSC and the TRAU unit in the BSS is normally transferred in an 80-bit V.110 frame according to the ITU-T Recommendation V.110, the structure of such a frame being shown in Figure 5.
  • the frame com- prises 10 octets numbered 0, ..., 9.
  • the frame duration is 5 ms.
  • the bits of the first octet and the first bit of every octet are synchronization bits.
  • the 0-bits in the first octet constitute the actual frame synchronization, and as in a TRAU frame, the 1 -state of the first bit in the other octets is used to ensure that elsewhere in the frame there are no eight suc- cessive 0-bits that might be taken for frame synchronization.
  • an idle V.110 data frame shown in Figure 6 is transmit- ted, all the data bits of which have been set to 1 -state.
  • the D1 and X bits in Figure 5 are data bits, 63 of which can be accommodated by a single V.110 frame. Thus, four V.110 frames are required to transfer the bits of a normal TRAU data frame.
  • the synchronization frame formed correspondingly in connection with the imaginary extended V.110 frame according to the synchronization frame used in connection with the extended TRAU frame would be identical to the idle V.110 frame shown in Figure 6, because the V.110 frames do not include any control bits whatsoever that would indicate the data rate of the information. In such a case, the unit that receives the frame could not distinguish the synchronization of the extended V.110 frame from a normal V.110 idle transmission.
  • the purpose of the present invention is to obtain a simple and reli- able synchronization method for transferring data rates higher than those presently used, in data frames that have relatively few synchronization bits.
  • This new type of synchronization is achieved by the inventive method in a telecommunication system that includes a transmitting unit, a receiving unit and a transmission link between these two.
  • the information to be transmitted in the telecommunication system is transferred from the transmitting unit to the receiving unit in a data frame that includes an information section and a synchronization section.
  • the bits of the synchronization section are in each consecutive data frame always in the same state as in the previous data frame, and the synchronization section consists of at least one syn- chronization bit in a selected logical state.
  • the transmitting and receiving units of the data frame are mutually synchronized with synchroniza- tion bits.
  • the method is characterized by forming a synchronization frame that includes at least as many synchronization bits as there are bits in the data frame, and the synchronization frame containing bits in the same logical state as the data frame synchronization bits of the selected logical state, the number of the bits being no higher than the number of said data frame synchronization bits in the selected logical state, subtracted by one, whereby the other bits in the synchronization frame are in a complement state with regard to the selected logical state, and transferring said synchronization frame over the transmission link to mutually synchronize the transmitting unit and the receiving unit.
  • the invention is based on the idea of transferring data frames over the transmission line, in which the proportion of synchronization bits is low, and, by using a separate synchronization procedure, a synchronization frame that mainly consists of bits in the same state.
  • the inventive synchronization frame is comprised of at least as many bits as the data frame.
  • the data frame comprises, in addition to the information section, a synchronization section that contains at least one synchronization bit.
  • the bits to be positioned into the synchronization frame are chosen so that it only comprises bits that are in the same logical state, or bits in a selected logical state no more than the number corresponding to the number of bits in this selected logical state in the data frame synchronization section, subtracted by one.
  • the present invention is particularly suitable for transferring 14.4 kbit/s user data in a 16 kbit/s channel by using extended V.110 frames and the inventive synchronization frame.
  • Such a synchronization method provides the advantage that it is simple and its implementation only requires minor changes to the prior art synchronization procedures.
  • a further advantage of the synchronization method of the invention is that the setting of the synchronization of an extended V.110 frame is explicit and reliable also in various kinds of transmission change situations.
  • the synchronization method of the invention provides the advantage that the synchronization frame transferred on a transmission link can easily be recognized as it is always distinguishable from a data frame.
  • Figure 1 shows the essential parts of a mobile communications network, from the point of view of the present invention
  • Figure 2 shows the structure of a TRAU data frame
  • Figure 3 shows the structure of an extended TRAU data frame
  • Figure 4 shows the structure of a synchronization frame used in the transmission of an extended TRAU data frame
  • Figure 5 shows the structure of a frame according to the Recommendation V.110
  • Figure 6 shows the structure of an idle frame according to the Recommendation V.110
  • Figure 7 shows the primary embodiment of an extended V.110 frame formed from a frame according to the Recommendation V.110
  • Figure 8 shows the primary embodiment of the structure of the inventive synchronization frame used in the transmission of an extended
  • V.110 frame Figure 9 shows the secondary embodiment of an extended V.110 frame formed from a frame according to the Recommendation V.110, Figure 10 shows the secondary embodiment of the structure of the inventive synchronization frame used in the transmission of an extended
  • V.110 frame, and Figures 11a - 11c show the resynchronization procedure between the transcoder TRAU and the network interworking function IWF.
  • FIG. 1 shows the simplified structure of the GSM network, described above.
  • GSM Recommendations and "The GSM System for Mobile Communications" by M. Mouly & M. Pautet, Palaiseau, France, 1992, ISBN: 2-9507190-0-7.
  • FIG. 7 shows an extended V.110 frame suitable for 14.4 kbit/s data transfer, e.g. for transferring data between the transcoder TRAU and the IWF unit at the mobile services switching centre.
  • the extended V.110 frame comprises two 36 data bit sections D1 - D36 and Df - D36', i.e. 72 data bits in all, control bits H and M, an UFE parameter in the downlink direction and, in a corresponding bit position, an 1-bit in the uplink direction, as well as five synchronization bits.
  • Four of such extended V.110 frames can accommodate the 14.4 kbit/s user data of the extended TRAU frame.
  • the UFE parameter is used to send information on synchronization loss in the uplink direction as described above in connection with the prior art description of a TRAU frame.
  • the H-bit is set to 1- state in every fourth extended V.110 frame to indicate the first extended V.110 frame from the four extended V.110 frames formed from the extended TRAU data frame.
  • S1 bit is placed into the M bit when the H-bit is in 1 -state, and S2 bit when the H-bit is in 0-state.
  • the S-bits indicate multiframe numbering for transparent data and the half of multiframe transmission and DTX information for non-transparent data, in a similar way as described above in connection with the prior art description.
  • the synchronization bits shown by Figure 7 four are positioned at the beginning of the first octet and the fifth is placed as the first bit in the second octet.
  • the synchronization bits may also be inserted into the frame in some other way, because as far as frame synchronization is concerned, the only significant matter is that the synchronization bits are located in the same position in successive frames.
  • the number of synchronization bits in other embodiments is set to conform to the frame but nevertheless so that the synchronization section comprises at least one synchronization bit.
  • one of the synchronization bits is in 1 -state and the others in 0-state.
  • the bit in the 1 -state in the synchronization section is selected as the sign bit on the basis of which the structure of the inventive synchronization frame is determined.
  • Figure 8 shows a synchronization frame according to the invention, used in a separate synchronization procedure to synchronize the transmission of the extended V.110 frame shown in Figure 7.
  • the synchronization frame of the invention comprises bits in the same logical state as the sign bit selected from the synchronization section in the extended V.110 frame, the total number of these bits not exceeding the number that corresponds to the number of synchronization bits of the same logical state as the sign bit in the synchroni- zation section of the extended V.110 frame, subtracted by one.
  • the synchronization section of the extended V.110 frame does not have other synchronization bits in the same 1 -state as the selected sign bit; accordingly there may be no bits in 1 -state in the synchronization frame, but all the bits of the synchronization frame are in 0-state.
  • the synchronization frame according to the invention comprises at least as many bits as the extended V.110 frame, advantageously the synchronization frame comprises as many bits as the extended V.110 frame, and consequently the synchronization frame never looks like an extended V.110 frame or a normal V.110 frame, but these frames always differ from each other.
  • FIG. 9 shows an extended V.110 frame according to the secondary embodiment of the invention, corresponding to the extended V.110 frame according to the primary embodiment of Figure 7 disclosed above, except for the synchronization section.
  • the synchronization section in the extended V.110 frame of Figure 9 comprises one synchronization bit in 0-state and four synchronization bits in 1 -state.
  • the only 0-bit in the synchronization section is selected as the sign bit, on the basis of which the synchronization frame of Figure 10 cannot have any bits in 0-state, but all the bits in the synchronization frame are in 1 -state.
  • the synchronization frame and the extended V.110 frame as well as the normal V.110 are always easily recognizable on the basis of the bit structure.
  • the synchronization section of the extended V.110 frame can be carried out e.g. by setting more than one of the synchronization bits to 1 -state, selected as the state of the sign bit. If two of the synchronization bits are set to 1 -state, the synchronization frame of the invention is formed by setting one of the bits to 1 -state and the other bits to 0- state or by setting all the bits to 0-state. If a synchronization bit in 0-state has been selected as the sign bit, it is similarly possible to set e.g.
  • the inventive synchronization frame is formed by setting one of the bits to 0- state and the other bits to 1 -state or by setting all the bits to 1 -state. All of the synchronization bits in the synchronization section of the extended V.110 frame may also be in the same logical state.
  • the transmission link is synchronized at the beginning of the connection with the inventive synchronization frame as in prior art by transmitting an inventive synchronization frame from the synchronization master unit, such as the transcoder TRAU, to the receiving unit in the network, e.g. the IWF unit at the mobile services switching centre.
  • the unit that receives the synchronization frame transmits a synchronization frame of a corresponding form back to the master unit in order to acknowledge the synchronization, after which the master unit transmits an extended V.110 frame comprising user data.
  • the extended V.110 frames are transferred on the transmission link until one of the units taking part in the transfer detects loss of synchronization, for example during a handover in the mobile communications system, after which a resyn- chronization of the link is carried out.
  • the resynchronization in the synchronization method of the invention may be activated e.g. by transmitting an inven- tive synchronization frame or by setting the UFE parameter to 0-state in the downlink direction.
  • Figures 11a - 11c show various methods to carry out resynchronization on the connection between the transcoder TRAU and the IWF unit.
  • the IWF detects loss of synchronization in the uplink direction and, at step 21 , transmits an extended V.110 frame to the TRAU, the UFE parameter of the frame having been set to 0-state.
  • the TRAU reacts to the information it has received by transmitting an inventive synchronization frame at step 22 to the IWF which acknowledges the synchronization by transmitting an identical synchronization frame to the TRAU at step 23. After this, transmission may continue with extended V.110 frames (steps 24 and 25).
  • the IWF detects loss of uplink synchronization and, at step 31 , transmits an inventive TRAU frame to the TRAU.
  • the TRAU responds to the received information by transmitting an inventive synchronization frame to the IWF at step 32, after which transmission may continue with extended V.110 frames (steps 33 and 34).
  • the TRAU detects loss of downlink synchronization and, at step 41 , transmits an inventive synchronization frame to the IWF which the IWF acknowledges by transmitting an identical synchronization frame to the TRAU at step 42. After this, transmission may continue with extended V.110 frames (steps 43 and 44).
  • the resynchronization according to the invention by means of the synchronization frame of the invention is carried out utilizing one of the methods described above even when the transmission of normal V.110 frames is in the middle of the transmission replaced by transmission of extended V.110 frames, e.g. when the transfer rate of user data is converted from another rate to 14.4 kbit/s.
  • the conversion from transmitting extended V.110 frames to transmitting normal V.110 frames is performed e.g. when the user data is converted from a 14.4 kbit/s signal to a 9.6 kbit/s signal.
  • the transcoder TRAU begins to transmit normal V.110 frames in the middle of the connection, to which the IWF reacts by setting the UFE parameter to 0-state in order to indicate loss of synchronization.
  • the transcoder TRAU still transmits normal V.110 frames to the IWF.
  • the IWF finds the normal V.110 frame synchronization, it begins to transmit V.110 frames back to the TRAU. After this, data transfer continues with normal V.110 frames.
  • the invention is above explained mainly in association with data transfer between the transcoder TRAU and the interworking function IWF of the mobile services switching centre, it is applicable to other kinds of data transfer between two units in a network.
  • the invention is suitable for data transfer at other data rates than 14.4 kbit/s also over other interfaces than the A-interface of the examples above.

Landscapes

  • Engineering & Computer Science (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Signal Processing (AREA)
  • Mobile Radio Communication Systems (AREA)
  • Synchronisation In Digital Transmission Systems (AREA)
PCT/FI1998/000254 1997-03-24 1998-03-23 Method for synchronization WO1998043387A1 (en)

Priority Applications (3)

Application Number Priority Date Filing Date Title
EP98910767A EP0937350A1 (en) 1997-03-24 1998-03-23 Method for synchronization
AU65022/98A AU6502298A (en) 1997-03-24 1998-03-23 Method for synchronization
US09/198,166 US6320880B1 (en) 1998-03-23 1998-11-23 Method for synchronization

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
FI971230 1997-03-24
FI971230A FI103308B1 (fi) 1997-03-24 1997-03-24 Synkronointimenetelmä

Related Child Applications (1)

Application Number Title Priority Date Filing Date
US09/198,166 Continuation US6320880B1 (en) 1998-03-23 1998-11-23 Method for synchronization

Publications (1)

Publication Number Publication Date
WO1998043387A1 true WO1998043387A1 (en) 1998-10-01

Family

ID=8548459

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/FI1998/000254 WO1998043387A1 (en) 1997-03-24 1998-03-23 Method for synchronization

Country Status (4)

Country Link
EP (1) EP0937350A1 (fi)
AU (1) AU6502298A (fi)
FI (1) FI103308B1 (fi)
WO (1) WO1998043387A1 (fi)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2001045354A1 (en) * 1999-12-17 2001-06-21 Nokia Corporation Data call routing on ip connections

Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPH06209311A (ja) * 1993-01-12 1994-07-26 Mitsubishi Electric Corp フレーム同期方法及び伝送装置
US5687199A (en) * 1993-09-06 1997-11-11 Alcatel Mobile Communication France Substitution of synchronization bits in a transmission frame

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPH06209311A (ja) * 1993-01-12 1994-07-26 Mitsubishi Electric Corp フレーム同期方法及び伝送装置
US5687199A (en) * 1993-09-06 1997-11-11 Alcatel Mobile Communication France Substitution of synchronization bits in a transmission frame

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2001045354A1 (en) * 1999-12-17 2001-06-21 Nokia Corporation Data call routing on ip connections
US7372847B2 (en) 1999-12-17 2008-05-13 Nokia Corporation Data call routing on IP connections

Also Published As

Publication number Publication date
FI971230A (fi) 1998-09-25
FI103308B (fi) 1999-05-31
FI103308B1 (fi) 1999-05-31
FI971230A0 (fi) 1997-03-24
AU6502298A (en) 1998-10-20
EP0937350A1 (en) 1999-08-25

Similar Documents

Publication Publication Date Title
CA2270930C (en) Transporting user data over a-bis and a-interfaces within a mobile telecommunications network
EP0801853B1 (en) High-speed data transmission in mobile communication networks
KR100417169B1 (ko) 음성및데이터신호를무선통신채널상으로전송하는회로
US6785557B2 (en) Method of transmitting data, in particular GSM data
US6674741B1 (en) High speed data transmission in mobile communication networks
EP0935853B1 (en) Method for propagation delay control
EP0938797B1 (en) Method and equipment for transmitting terminal interface user data and status information
JP2000349755A (ja) 無線通信装置、無線通信方法、無線通信システム、及び記憶媒体
CA2295608C (en) High-speed data transmission in a mobile communications system
US6320880B1 (en) Method for synchronization
EP0938787B1 (en) Method for reducing interference within signaling data over an air interface
EP0937350A1 (en) Method for synchronization
US6985470B1 (en) Data transmission in a telecommunication system
EP0739573B1 (en) Method and equipment for adapting ct2 calls for an isdn subscriber line
WO2000010347A1 (en) Data transmission in a telecommunication system
KR100301581B1 (ko) 통신 시스템의 교환기내 브이5 정합장치

Legal Events

Date Code Title Description
AK Designated states

Kind code of ref document: A1

Designated state(s): AL AM AT AU AZ BA BB BG BR BY CA CH CN CU CZ DE DK EE ES FI GB GE GH GM GW HU ID IL IS JP KE KG KP KR KZ LC LK LR LS LT LU LV MD MG MK MN MW MX NO NZ PL PT RO RU SD SE SG SI SK SL TJ TM TR TT UA UG US UZ VN YU ZW

AL Designated countries for regional patents

Kind code of ref document: A1

Designated state(s): GH GM KE LS MW SD SZ UG ZW AM AZ BY KG KZ MD RU TJ TM AT BE CH DE DK ES FI FR GB GR IE IT LU MC NL PT SE BF BJ CF CG CI CM GA GN ML MR NE SN TD TG

WWE Wipo information: entry into national phase

Ref document number: 1998910767

Country of ref document: EP

WWE Wipo information: entry into national phase

Ref document number: 09198166

Country of ref document: US

121 Ep: the epo has been informed by wipo that ep was designated in this application
REG Reference to national code

Ref country code: DE

Ref legal event code: 8642

WWP Wipo information: published in national office

Ref document number: 1998910767

Country of ref document: EP

NENP Non-entry into the national phase

Ref country code: CA

NENP Non-entry into the national phase

Ref country code: JP

Ref document number: 1998540926

Format of ref document f/p: F

WWW Wipo information: withdrawn in national office

Ref document number: 1998910767

Country of ref document: EP