WO1999009680A1 - Systeme de communication mobile - Google Patents
Systeme de communication mobile Download PDFInfo
- Publication number
- WO1999009680A1 WO1999009680A1 PCT/JP1997/002890 JP9702890W WO9909680A1 WO 1999009680 A1 WO1999009680 A1 WO 1999009680A1 JP 9702890 W JP9702890 W JP 9702890W WO 9909680 A1 WO9909680 A1 WO 9909680A1
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- WIPO (PCT)
- Prior art keywords
- mobile
- channel
- time slot
- communication system
- mobile station
- Prior art date
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Classifications
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04J—MULTIPLEX COMMUNICATION
- H04J13/00—Code division multiplex systems
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B7/00—Radio transmission systems, i.e. using radiation field
- H04B7/24—Radio transmission systems, i.e. using radiation field for communication between two or more posts
- H04B7/26—Radio transmission systems, i.e. using radiation field for communication between two or more posts at least one of which is mobile
- H04B7/2618—Radio transmission systems, i.e. using radiation field for communication between two or more posts at least one of which is mobile using hybrid code-time division multiple access [CDMA-TDMA]
Definitions
- the present invention uses a Time Division Multiple Access (Time Division Multiple Access; hereinafter referred to as TDMA) system or a time division / code division multiple access (hereinafter referred to as Time Division CDMA) system.
- TDMA Time Division Multiple Access
- CDMA time division / code division multiple access
- the present invention relates to a mobile communication system that includes a function that can use one line as one communication channel (hereinafter referred to as an asymmetric communication channel).
- a mobile communication system mainly includes a mobile station such as a mobile in-vehicle communication device or a mobile portable communication device, and a wireless base station that communicates with the mobile station via a wireless channel.
- a mobile station such as a mobile in-vehicle communication device or a mobile portable communication device
- a wireless base station that communicates with the mobile station via a wireless channel.
- frequency channel sharing sharing of the same radio frequency spectrum by different radio systems
- FDMA Frequency Division Multiple Access
- CDMA frequency division multiple access
- frequency channel sharing between different codes has already been implemented.
- WLL stations wireless base stations using communication devices
- WLL stations wireless base stations using communication devices
- U.S. Pat. No. 5,363,403 is known as a mobile communication system that shares a plurality of CDMA signals. However, the specification does not describe how to handle time-division CDMA signals.
- U.S. Patent No. 5,511,068 is also known, which relates to an adaptive filter in a time-division CDMA signal system. However, the specification does not mention that frequency channels are shared between a CDMA signal and a TDMA signal in one time slot.
- US Pat. No. 5,410,568 is also known as a communication system in which TDMA technology is applied to a CDMA communication system.
- This patent puts a synchronization code (Synchronization code) at the beginning of a CDMA communication frame, that is, at the beginning of a burst, and uses a TDMA control channel to set the frame synchronization. It does not introduce a split CDMA system and does not mention coexistence with the TDMA system. In other words, try to share TDMA and time-division CDMA using TDMA frames. Not something.
- this patent does not take into account any communication channel in which the communication capacity between the uplink and the downlink is asymmetric.
- Japanese Patent Application Laid-Open No. 63-1755752 Japanese Patent Application No. 63-1755752, and Japanese Patent Application No. 5-145477
- Japanese Patent Application Laid-Open No. 7-154 866 and Japanese Patent Application No. 8-186533 are known.
- Japanese Patent Application Laid-Open No. 63-1757552 and Japanese Patent Application Laid-Open No. 63-17555527 the conditions under which the transmission output of the transbonder for satellite communication is limited are limited. However, since it is intended to transmit more signals, such a situation does not occur in land mobile communication, and does not include a description of time division CDMA or high-speed TDMA.
- Japanese Patent Application Laid-Open No. 5-145477 relates to control of the transmission power of a signal in a TDMA time slot, and does not mention matters relating to time division CDMA and TDMA communication at all.
- Japanese Patent Application Laid-Open Nos. Hei 7-154648 and Japanese Patent Laid-open No. Hei 8-18633 are used as a communication channel for a pair of lines having different communication capacities between the uplink and the downlink.
- the former does not specifically describe high-speed TDMA data transmission or low-speed time-division CDMA data / voice transmission, the control information channel for intermittent connection that connects the user and the database while the user is considering it, There is no mention of the increase or decrease in guard time due to the micro-time slot unit of the high-speed TDMA data transmission channel.
- TDD Time Division Duplex
- a mobile communication system composed of one or more radio base stations that communicate with a plurality of mobile stations via radio channels and using the TDMA system and the time division CDMA system includes the various types described above.
- the present invention has been made in order to solve the above-mentioned problems, and introduces a high-speed TDMA channel into a mobile communication system in which a TDMA signal and a time-division CDMA signal coexist.
- An object of the present invention is to realize a mobile communication system compatible with a multimedia environment by allocating a communication line having a symbol as a set of communication channels. Disclosure of the invention
- the mobile communication system according to the first aspect of the present invention is characterized in that a high-speed data channel is introduced, and the communication channel is an asymmetric communication channel having different amounts of information between a downlink and an uplink. .
- This makes it possible to switch the communication speed in units of the frame length required by the user, and to realize a mobile communication system that is suitable for multimedia environments and can flexibly respond to fluctuations in communication capacity. be able to.
- the mobile communication system according to the invention described in claim 2 is characterized in that the ratio of the amount of information in the downlink to the amount of information in the uplink is determined by using a TDD line in a frame time-frequency axis, which is a boundary between the downlink and the uplink. Is changed by changing in the direction of the time axis in the frame.
- the communication channel is an asymmetric communication channel of a high-speed TDMA data overnight channel for the downlink and a low-speed TDMA data overnight channel for the uplink.
- the communication channel is an asymmetric communication channel of a high-speed TDMA data channel on a downlink and a low-speed time-division CDMA data channel on an uplink.
- the communication channel is an asymmetric communication channel of a low-speed TDMA data channel on the downlink and a high-speed TDMA data channel on the uplink.
- the communication channel is an asymmetric communication channel of a low-speed time-division CDMA data channel for a downlink and a high-speed TDMA data channel for an uplink.
- a mobile communication system as set forth in claim 7, wherein at least one TDMA burst signal and at least one time division CDMA burst signal, or at least one of the TDMA burst signal and the control signal, It has what it has.
- the mobile communication system according to the invention described in claim 8 is provided with a mobile switching center for managing an asymmetric communication channel, and for at least one radio base station provided by the mobile switching center, It is designed to instruct a change in the amount of downlink information.
- the mobile communication system according to the invention as defined in claim 9 has an asymmetric communication channel, and when a large amount of data transmission is completed, a large capacity data transmission is completed. It is designed to immediately switch from the transmission channel to the small capacity transmission channel. This prevents a large-capacity communication channel from being wastefully occupied during times when data is not actually being transmitted.
- the mobile communication system according to claim 10 is characterized in that, when the radio base station and the mobile station are connected by a small-capacity data transmission channel, data transmission over the small-capacity data transmission channel is constant. If there is no time, it is immediately switched to the connection control channel.
- the mobile communication system according to the invention as set forth in claim 14 is provided with a mobile switching center for managing an asymmetric communication channel, and the mobile communication center has an asymmetric communication channel with respect to at least one radio base station. It is instructed to switch communication channels.
- a mobile communication system has an asymmetric communication channel, and further includes a downlink and an uplink using a multiframe.
- Each line has its own small data transmission channel.
- this small-capacity data transmission channel as an intermittent connection control channel, it is possible to communicate with the user with minimum control data in human time such as the time for consideration of the user who has received a large amount of data
- a connection can be established with the database provider so that the depth and length of the user's thinking are not affected by the machine's reasons.
- the mobile communication system according to the invention as set forth in claim 16 is characterized in that the small-capacity data transmission channel is used as a control information channel for intermittent connection during a time when data is not transmitted between the radio base station and the mobile station. It is designed to transmit data.
- the mobile communication system according to the invention as set forth in claim 17 is characterized in that the intermittent connection control information channel is transmitted from the radio base station until a large amount of data is sent to the mobile station and a response is received.
- the control data indicating that data is not transmitted between the station and the mobile station is also transmitted.
- the mobile communication system according to the invention as set forth in claim 18 is provided with a mobile switching center for managing a control information channel for intermittent connection, and for at least one radio base station with respect to the mobile switching center.
- the control information channel for intermittent connection is commanded to start, switch, and stop.
- a mobile communication system has an asymmetric communication channel, and further includes a structure of one time slot of a high-speed TDMA data channel, and a plurality of micro time slots. Are connected in series. This makes it possible to have the same structure as the low-speed data processing part except for the speed, thereby simplifying the structure of the entire system and reducing the cost of equipment and design. In addition, it is possible to increase or decrease the guard time in units of micro time slot, so that the guard time suitable for the moving speed of the moving object can be set.
- the mobile communication system according to the invention described in claim 20 is capable of avoiding interference from packets and preventing a decrease in efficiency at the same time as the same time slot as one time slot of a low-speed TDMA data channel. In this configuration, a high-speed TDMA data channel's microphone port time slot is formed.
- the mobile communication system according to the invention described in claim 21 is characterized in that the equalizer for the high-speed TDMA data channel is the same as the equalizer for the low-speed TDMA data channel except for the operation speed. It is composed.
- the mobile communication system according to the invention set forth in claim 22 is such that the guard time of a high-speed TDMA data channel can be changed in units of a microphone opening time slot according to the moving speed of a mobile station. .
- the mobile communication system according to the invention described in claim 23 is provided with a mobile switching center for managing the structure of the micro time slot of the high-speed TDMA data channel, and at least the mobile switching center.
- a command is issued to one radio base station according to its structure, including the guard time length of the high-speed TDMA data channel.
- the mobile communication system according to the invention described in claim 24 has an asymmetric communication channel, and further selects a communication method capable of transmitting a necessary information amount in synchronization with a time slot.
- a switch is provided for at least one radio base station and a plurality of mobile stations.
- the mobile communication system according to the invention described in claim 25 is a communication channel.
- At least one radio base station has a memory that allows the assignment of a channel to be set independently for downlink and uplink to the same mobile station.
- the mobile communication system according to the invention set forth in claim 26 is characterized in that a mobile switching center is provided to manage the assignment of communication channels, and that at least one radio base station is provided to the mobile switching center. It is designed to instruct channel assignment.
- a mobile communication system has a mobile station information memory that has an asymmetric communication channel and registers mobile station information of a mobile station managed by the mobile switching center in a mobile switching center. It is made to have. This makes it possible to easily know the services that can be enjoyed by each mobile station managed by the mobile switching center, and to efficiently operate channel assignment.
- the mobile switching center manages the mobile station information on the mobile station being managed by the mobile switching center, and at least one wireless communication is performed by the mobile switching center.
- the base station is instructed to start, switch, or cancel the service based on the mobile station information.
- the mobile switching center manages mobile station information relating to the mobile station under management, and when the mobile station information is changed, the change is made.
- the mobile station information obtained is transferred via at least one public system to a mobile communication system data base storing mobile station information of mobile stations of the entire mobile communication system. It is.
- a mobile communication system has an asymmetric communication channel and temporarily stores high-speed data transmitted to a mobile station.
- the mobile switching center has a high-speed data communication memory device. As a result, it is possible to quickly respond to a high-speed data transmission request from a user, and it is possible to prevent a loss of high-speed data.
- the mobile station when the transmitted high-speed data is received normally, transmits the normal time slot at which the last high-speed data was received. It detects the number and transmits it to the mobile switching center.
- the mobile communication system according to the invention set forth in claim 32 performs control of high-speed data transmitted to the mobile station, and further includes a normal time slot number subsequent to the normal time slot number transmitted from the mobile station.
- the mobile switching center has the function of storing high-speed data having a time slot number in a high-speed data communication memory device.
- the mobile communication system manages high-speed data transmitted to the mobile station and, when a high-speed data retransmission request is received from the mobile station, performs a normal time slot.
- the mobile switching center has the function of reading out high-speed data with a high slot number following the number from the high-speed data communication memory device and transmitting it to the mobile station.
- the mobile switching center has the function of dividing the high-speed data into blocks for each amount of information that can be transmitted in one time slot, and assigning and managing the accumulated information number for each block. .
- the mobile communication system according to the invention set forth in claim 35 is provided to a mobile station.
- the mobile communication system according to the invention described in claim 36 manages the high-speed transmission to be transmitted to the mobile station, and performs a time slot before the normal time slot number transmitted from the mobile station.
- the mobile switching center has a function to delete high-speed data with a number from the high-speed data communication memory device.
- the mobile communication system according to the invention described in claim 37 manages high-speed data transmitted to the mobile station and, when the mobile station ends communication, remains in the high-speed data communication memory device.
- the mobile switching center has a function to notify the sender of the high-speed data of the amount of information of high-speed data having a time slot number subsequent to the normal time slot number. is there.
- the mobile communication system manages high-speed data transmitted to the mobile station, and transmits high-speed data requested by the mobile station to the radio base station.
- the mobile switching center has a function to request the source of the high-speed data to send the next high-speed data. It is what you have.
- the mobile communication system according to the invention as set forth in claim 39 detects a time slot number at which the high-speed data was transmitted when the transmitted high-speed data was not received normally.
- the mobile station has the function of transmitting it to the mobile switching center as an abnormal time slot number.
- the mobile communication system according to the invention set forth in claim 40 is characterized in that: In addition to managing the transmitted high-speed data and receiving the abnormal time slot number transmitted from the mobile station, the high-speed data having the time slot number is read from the high-speed data communication memory device and re-read.
- the mobile switching center has the function of transmitting to the mobile station.
- a mobile communication system as set forth in claim 41, further comprising a mobile station management memory having an asymmetric communication channel and storing a communication channel management table for managing a communication channel of each mobile station.
- the mobile switching center specifies the time slot corresponding to the transmission type, and after the operation assigned to the time slot corresponding to the current transmission type ends, the mobile station management The time slot assignment is stored in the memory as a history, and if the same transmission type is assigned again, the time slot that has been used in the history of the remaining destination is used. This is what we do. This makes it possible to set up the uplink and downlink independently of each other with different transmission types.
- the time slot name of the same type of transmission evening having no past use history in the mobile station management memory is eliminated.
- the past usage history is deleted from the mobile station management memory and assigned as a time slot used for a new mobile station.
- FIG. 1 is a system configuration diagram showing an overall configuration of a mobile communication system according to Embodiment 1 of the present invention.
- FIG. 2 is an explanatory diagram showing a personal time communication system based on time division CDMA in the first embodiment, and a configuration of a time slot for a cellular phone.
- FIG. 3 is an explanatory diagram showing a time slot configuration in a different form from FIG. 2 in the first embodiment.
- FIG. 4 is an explanatory diagram showing an example of the asymmetric data communication channel composed of the high-speed TDMA channel and the time-division CDMA channel shown in FIG. 3 in the first embodiment.
- FIG. 5 is a flowchart showing a control process of a system having an asymmetric communication channel according to the second embodiment of the present invention.
- FIG. 6 is an explanatory diagram showing a time-sharing CDMA bus structure for PCS according to Embodiment 3 of the present invention.
- FIG. 5 is an explanatory diagram showing a multi-frame structure of a time-sharing CDMA burst for PCS according to the third embodiment.
- FIG. 8 is an explanatory diagram showing a structure of an intermittent connection control channel in a multiframe of a time division CDMA burst for PCS in the third embodiment.
- FIG. 9 is an explanatory diagram showing a micro time slot structure of a high-speed TDMA data channel according to a fourth embodiment of the present invention.
- FIG. 10 is a block diagram showing a configuration of a mobile station according to Embodiment 5 of the present invention.
- FIG. 11 is a block diagram showing a configuration of a radio base station according to the fifth embodiment.
- FIG. 12 is a block diagram showing an interface on the mobile switching center side in the radio base station according to the fifth embodiment.
- FIG. 13 is an explanatory diagram showing the time slot allocation of the communication mode selection switch of the interface section in the radio base station according to the fifth embodiment.
- FIG. 14 is a block diagram showing a configuration of a mobile switching center according to Embodiment 6 of the present invention.
- FIG. 15 is an explanatory diagram showing an example of mobile station information registered in the mobile station information memory according to the sixth embodiment.
- FIG. 16 is a block diagram showing a configuration of a mobile switching center according to Embodiment 7 of the present invention.
- FIG. 17 is an explanatory diagram showing relevant information necessary for managing the contents of the high-speed data communication memory device in the seventh embodiment.
- FIG. 18 is a flowchart showing a control process of the high-speed data communication memory device according to the seventh embodiment.
- FIG. 19 is an explanatory diagram showing an example of a communication channel management table of a mobile station according to Embodiment 8 of the present invention.
- FIG. 1 is a system configuration diagram showing an overall configuration of a mobile communication system to which a time slot sharing / frequency channel sharing system according to the present invention is applied.
- 1, 2 and 3 are radio base stations, and 4 and Reference numeral 5 denotes a radio coverage area (hereinafter, referred to as a cell) formed by the radio base station 1 or 2.
- Cell 4 includes zones 11, 12, and 13, and cell 5 includes zones 21, 22, and 23.
- 3 1, 3 2, 3 3 and 34 communicate with the wireless base stations 1 and 2 via wireless channels, and are conventional types mainly for ordinary voice communication, such as mobile in-vehicle communication devices or mobile portable communication devices.
- the mobile communication device is a normal mobile station (MS), and reference numerals 41 and 42 are WLL stations (WS) that communicate with the radio base stations 1 and 2 via radio channels.
- Reference numerals 51 and 52 denote multimedia stations (DS), which are mobile stations or semi-fixed stations, which communicate with wireless base stations 1 to 3 via medium / high-speed TDMA channels.
- the stations 51 and 52 have a function to communicate by voice or low-speed data via a time-division CDMA channel or a low-speed TDMA data channel in addition to the medium / high-speed TDMA channel described above. ing.
- these normal mobile station (MS), WLL station (WS) and multimedia station (DS) will be collectively called a mobile station.
- Reference numeral 6 denotes a mobile switching center (MSC; Mob i 1 e Swit t c hing C Ent er) that controls the radio base stations 1 and 3
- 7 denotes a mobile switching center that controls the radio base station 2.
- Numeral 8 denotes a public system (PSTN; Clar c Swi t ch l n g T e l e p ho ne N e t wo r k to which the mobile exchanges 6 and 7 are connected by wire.
- PSTN Public Switchi t ch l n g T e l e p ho ne N e t wo r k
- the first embodiment relates to a TDMA / time-division CDMA mobile communication system including a mobile station communicating with a radio base station via a medium / high-speed TDMA channel.
- the frame structure of a mobile communication system having high-speed TDMA data transmission and an asymmetric communication channel will be described.
- the mobile communication system generally includes mobile stations 31 to 34, Frequency shift keying (FSK; Frequency Shift) is performed between mobile stations such as WLL stations 41 and 42 and multimedia stations 51 and 52 and radio base stations 1, 2 and 3. Keying), BPSK, QPSK, DQPSK, 7 ⁇ / 4-DQPSK, etc., phase shift keying (PSK; Phase Shift Keying), or QAMS K, QGMSK, etc.
- FSK Frequency shift keying
- PSK Phase Shift Keying
- QAMS K QGMSK
- TDD time division duplex
- Multi-carrier TDMA multi-carrier Rear Temporary Division Multiple Access
- CDMA / TDD CDMA / TDD
- TDMA / Frequency Division Duplex FDD
- TDMAZTDD TDMAZTDD
- a plurality of multimedia stations having a high-speed TDMA transmission function and a plurality of radio base stations are wirelessly connected by a high-speed TDMA transmission channel, and are connected on a frequency axis.
- a time slot shared with a FDMA / TDMA digital signal and a time slot shared with a frequency channel shared with a FDMA / TDMA digital signal (hereinafter referred to as a shared channel).
- FIG. 2 is an explanatory diagram showing a time slot configuration for PCS and cellular by time division CDMA according to the first embodiment. Only the link is shown.
- # 61-0 to # 61-3 are time slots for PCS
- # 67-0 and # 67-3 indicate time slots for cellular.
- # 64-0 and # 64-3 are time slots for medium-speed TDMA data communication
- # 66-1 and # 66-6 are high-speed TDMA data communication.
- Embodiment 1 at least one of TDMA burst signals or at least one time-division CDMA burst signal or both of them are used as control channels. It has.
- FIG. 3 is an explanatory diagram showing a time slot structure in a form different from that of FIG. 2, and is a mobile communication system in which the transmission capacity of the uplink and downlink such as high-speed TDMA data transmission is asymmetric.
- the components denoted by the same reference numerals as those in FIG. 2 have the same functions, and the description thereof will be omitted.
- # 7 1 — T 0 to # 7 1 — T 3 and # 7 1 1 7 ⁇ , # 7 1 — ⁇ 7 ⁇ , # 7 1 — T 7 C is the downlink from the radio base station to the mobile station
- # 3 1 — R 0 to # 7 1 — R 2 are the time slots used for the uplink from the mobile station to the radio base station. It is a good idea.
- 72 indicates one frame length
- 73 and 74 indicate half-rate lengths of the time-division CDMA channel, the low-speed TDMA channel, and the medium-speed TDMA data channel in the frame. is there.
- ⁇ 5 is the down channel of the high-speed TDMA data channel from the radio base station to the mobile station.
- 76 is the frame length (3 time slot) for the upstream channel from the mobile station to the radio base station of the high-speed channel.
- Reference numerals 77 and 78 denote TDD lines, which are lines in the frame time and one frequency axis, which are boundaries between the downlink from the radio base station to the mobile station and the uplink from the mobile station to the radio base station.
- the feature in this case is that the transmission capacity of the uplink (uplink) from the mobile station to the radio base station is equal to the transmission capacity of the downlink (downlink) from the radio base station to the mobile station.
- Asymmetric high-speed TD MA data transmission channel shown in Fig. 3 # 7 1 — T 0 to # 7 1 —-3, # 7 1- ⁇ 7 ⁇ , # 7 1— ⁇ 7 ⁇ , # 7 1 — T 7 C and # 71-R0 to # 71-R2 show an example of a time slot structure for realizing the above-described request.
- # 7 1 — T 0 to # 7 1 —-3 show an example of a time slot structure for realizing the above-described request.
- the mobile communication system is intended for multimedia, and the downlink high-speed TDMA data channel can be used for transmitting large information amount data such as image information or data bank information to a user.
- large information amount data such as image information or data bank information
- the downlink is useful for transmitting a large amount of data sent from the data source to the user in a short time.
- the user even if the user receives such a large amount of data, it is difficult to decode and interpret the data and immediately conclude, and send back the large amount of data to the data source. This is unlikely, especially when the user is an individual.
- FIG. 4 is an explanatory diagram showing an example of an asymmetric data communication channel in the TDD, which includes the high-speed TDMA data channel and the time-division CDMA channel shown in FIG.
- the length of one frame is 5 ms
- the lower line (downlink) and the upstream line (uplink) of the 2.5 ms half-rate are assigned to each frame.
- the downlink is a high-speed TDMA data channel, and its information transmission rate is 1.024 Mb / s.
- the uplink is a low-speed time-division CDMA data channel, and its information transmission rate is 32 kb / s.
- the communication channel in the mobile communication system is a high-speed TDMA data channel on the downlink from the radio base station to the mobile station, and a low-speed time-division CDMA data on the uplink from the mobile station to the radio base station.
- the asymmetric communication channel is assumed to be a channel, the downlink from the radio base station to the mobile station is a high-speed TDMA data channel, and the uplink from the mobile station to the radio base station is a low-speed TDMA data channel.
- An asymmetric communication channel such as
- the communication channel of the mobile communication system is set to a low-speed TDMA data channel for the downlink from the radio base station to the mobile station, and to a high-speed TDMA data channel for the uplink from the mobile station to the radio base station. It may be an asymmetric communication channel, such as a channel, or even from a radio base station to a mobile station.
- the downlink may be an asymmetric communication channel such as a low-speed time-division CDMA data channel and the uplink from a mobile station to a radio base station may be a high-speed TDMA data channel.
- the TDD line 77 or 78 which is the boundary between the mobile station and the uplink line from the mobile station to the uplink line, in the time axis direction in the frame. It changes the ratio between the amount of information and the amount of information on all uplinks received by the radio base station.
- the management of the asymmetric communication channel is performed by the mobile switching centers 6 and 7, and the change in the ratio of the information amount between the uplink and the downlink is performed by at least one radio base station. Commanded to station 1, 3 or 2.
- a low-speed data / voice communication shared low-speed TDMA system a low-speed data / voice communication shared time-division CDMA system, and a high-speed data communication high-speed TDMA system are included in one system.
- the communication speed required by the user can be switched in frame length units (5 ms in the example shown in FIG. 4), and the above-described different schemes are used for downlink and uplink.
- frame length units 5 ms in the example shown in FIG. 4
- the above-described different schemes are used for downlink and uplink.
- Embodiment 2 of the present invention a control process of the mobile communication system having the uplink and downlink asymmetric communication channels shown in Embodiment 1 will be described.
- FIG. 5 is a flowchart showing a control process of a mobile communication system having an asymmetric communication channel according to Embodiment 2 of the present invention.
- the mobile station and the radio base station set a TDMA control channel, and perform control necessary for communication between the two. Communicate data. That is, the mobile station receives the TDMA control channel of the target radio base station and transmits the uplink (uplink) TDMA control channel to the time slot designated by the radio base station.
- the wireless base station measures the received burst position, sends time slot deviation information from the specified position to the mobile station, and the mobile station corrects the uplink burst position based on the deviation information. To establish synchronization. At the same time, information is exchanged along with the line settings.
- step ST2 a large amount of data is transmitted from the radio base station to the mobile station through the high-speed TDMA data channel.
- the uplink and the downlink are not in the same duplex form as in a normal telephone, and in this step ST2, only in the downlink, the high-speed transmission from the radio base station to the mobile station is performed.
- a large amount of data is transmitted over the TDMA data channel.
- the uplink from the mobile station It is assumed that the same amount of information is transmitted as the transmission of normal voice digital signals.
- a time division CDMA channel or a low-speed TDMA data channel is used for the uplink. In this way, a large amount of data is transmitted on the downlink and a small amount of data is transmitted on the uplink, and an imbalance occurs between the information amount of the uplink and the downlink, and asymmetry occurs.
- step ST3 after the transmission of the large amount of information by the downlink in the above step ST2 is completed, the data transmission of the small amount of information is performed until the transmission of the large amount of information occurs in the uplink.
- the wireless base station and mobile station are connected by overnight transmission.
- the connection between the radio base station and the mobile station is continued using the time-division CDMA channel for the uplink from the mobile station, and the downlink is supported.
- a user of a mobile station receives, for example, a large amount of image data on the high-speed TDMA data channel, displays an image on the screen of the multimedia terminal, and responds to the image content. Is required, it is unlikely that the user will be able to provide a response that requires immediate transmission of a large amount of information. In other words, since it is considered that there is no response during the user's thinking time and there is no response during that time, it is considered that there is often no request to set up the line immediately.
- a small information amount of data transmission is performed until a large information amount of data transmission occurs on the uplink, for example, a time division CDMA channel.
- the base station connects the radio base station and the mobile station terminal.
- step ST4 it is determined whether or not there is communication, and if there is communication, whether the communication is performed with a large capacity or a small capacity. If the result of the determination is that the communication is to be performed with a small capacity, the process returns to step ST3, and the data transmission with a small amount of information is continued, that is, the communication using the time division CDMA channel described above is continued, and the communication is performed with a large capacity If the communication is to be performed, the process returns to step ST2 to resume the transmission of a large amount of data by the high-speed TDMA data channel.
- step ST5. If there is no communication for a certain period of time (for example, 1 minute), the wireless connection between the mobile station and the wireless base station is established. Transition to a control channel for connection via a time-division CDMA control channel for intermittent connection or a low-speed TDMA control channel for connecting only control data via uplink and downlink (hereinafter referred to as a control information channel for intermittent connection). .
- a control information channel for intermittent connection for example, when the user is under consideration, a case where data is not substantially transmitted on the uplink and downlink (apart from control data for wireless connection) may be considered.
- This intermittent connection control information channel is set in such a case.
- the intermittent connection control information channel will be described in detail in the third embodiment.
- step ST5 the control data communication between the radio base station and the mobile station is performed using a time-division CDMA control channel and a multi-frame (eg, 40 frames). Only once per multi-frame). Therefore, it is possible to establish a state in which the mobile stations of 40 users are connected (however, the transmission of information data is interrupted) on one channel of the time division CDMA control channel.
- step ST6 it is determined whether or not the mobile station and the radio base station are in a wireless connection. If not, the series of processes is terminated. On the other hand, if the connection is still established, the same determination as in step ST4 is performed in step ST7.
- step ST5 if it is determined that there is no communication, the process returns to step ST5 to continue the connection using the intermittent connection control information channel.
- step ST3 if it is determined that the communication is performed with a small capacity, the process returns to step ST3 to perform the communication using the time-division CDMA channel, and if it is determined that the communication is performed with a large capacity, Then, the process returns to step ST2 to restart the transmission of a large amount of information through the high-speed TDMA data channel.
- the switching management of this asymmetric communication channel is performed by the mobile switching centers 6 and 7, and the small capacity data transmission channel (time division CDMA channel) of the large capacity data transmission channel (high-speed TDMA data channel) is used. Or a low-speed TDMA data channel), switching to a small-capacity data transmission channel intermittent connection control information channel ⁇ switching to a large-capacity data transmission channel. Switching to the high capacity data transmission channel is performed by this mobile switching center 6 or 7 and directed to at least one radio base station 1, 3 or 2.
- Embodiment 3 As described above, according to the second embodiment, when transmission of a large amount of data is completed, a communication channel having a different transmission capacity is immediately switched, so that data transmission is actually performed. This has the effect of avoiding wasteful occupation of a large-capacity communication channel when not in use.
- Embodiment 3 Next, as a third embodiment of the present invention, a structure of the intermittent connection control information channel as the connection control channel described in the second embodiment will be described.
- FIG. 6 is an explanatory diagram showing a time-sharing CDMA burst structure for PCS according to Embodiment 3 of the present invention, and shows an example of numerical values corresponding to the time-sharing CDMA portion in FIG.
- FIG. 7 is an explanatory diagram showing a multi-frame structure of a time-sharing CDMA burst for PCS according to the third embodiment, showing an example of numerical values corresponding to the time-sharing CDMA frame in FIG.
- FIG. 8 is an explanatory diagram showing a control channel structure for intermittent connection in a multiframe of a time division CDMA burst for PCS according to the third embodiment, which corresponds to the time division CDMA multiframe in FIG. An example of a numerical value is shown.
- Fig. 6 above is an example of a time-division CDMA channel.
- the time slot # 61-0 for the time-division CDMA has a 32 kb / s call using code division technology. Up to 32 channels can be assigned.
- one of the two communication channels is used once for one multi-frame (in the example of Fig. 7, one multi-frame is composed of 40 frames).
- 40 information rate control information channels for intermittent connection of 800 b / s are formed.
- This intermittent connection control information channel is based on a small-capacity overnight transmission channel in which the amount of information in the uplink and downlink is equal, and the mobile station of 40 users uses this intermittent connection control information channel in the following manner. It can be used for connection when not transmitting large amounts of data overnight.
- the multimedia terminal of the mobile station displays a large amount of image data until the user finishes processing the large amount of received data, or displays and displays it as an image. By the end of the process, It is considered that time is required. In such a case, if there is no need to actually transmit a large amount of data at this time, if the control information channel for intermittent connection using such a small-capacity data transmission channel is connected, some information It is easy to resume transmission (regardless of size). -As mentioned above, this intermittent connection control information channel is transmission using multi-frames and its capacity is extremely small.
- the indicated control data may be transmitted together with this intermittent connection control information channel.
- the management of the intermittent connection control information channel is performed by the mobile switching centers 6 and 7, and the activation, switching, and cancellation of the intermittent connection control information channel are performed by the mobile switching center 6 or Therefore, it is instructed to at least one radio base station 1, 3 or 2.
- the control data is transmitted using the intermittent connection control information channel using the multi-frame, so that the display unit of the multimedia terminal of the mobile station is provided.
- the connection between the user and the database provider with minimal control data is used to control the depth and length of the user's thinking.
- the operator performs a service of not charging while using the intermittent connection control information channel transmitting the minimum control data the above-mentioned effect becomes even more effective.
- Embodiment 4 of the present invention a structure of a high-speed TDMA data channel as a high-speed data channel will be described.
- FIG. 9 is an explanatory diagram showing a micro time slot structure of the high-speed TDMA data channel according to the fourth embodiment of the present invention.
- the high-speed TDMA data channel shown in FIGS. 3 and 4 is shown in FIG. This shows the structure of # 71 in more detail.
- the time slot # 71-T of the high-speed data channel of the down link (down link) and the up link (up link) is included.
- # 7 1— ⁇ 3 # 7 1-A 7 A, # 7 1—T 7 B, # 7 1—T 7 C, and # 7 1—R 0 to # 7 1—R 2 Total 1
- Fig. 9 shows the structure of one high-speed data slot # 71-T2.
- the time length of this high-speed data time slot # 71-T2 is 625 s, and its data rate (bit rate) is 12.288 Mbps. s.
- 32 micro time slots consisting of 24 ⁇ bits are connected in series. I understand that it is.
- the micro time slot consisting of 240 bits has a structure similar to the structure of one time slot of the low-speed TDMA data channel.
- the high-speed TDMA data channel has 32 micro time slots # 91 1 to 0 to # 91 1 having a structure equivalent to one time slot of the low-speed TDMA data channel.
- these micro time slots # 91-0 to # 91-31 have a 32-bit control word (CONT ROL WORD) 92 and 32 bits.
- Synchronization word (SYNC Word) 93, 160 bits of information (INFORMAT ION DATA) 94, and 16 bits of error detection code (CRC) 95 Is formed.
- micro-time slots # 91--30 and # 91-31 are indicated by dotted lines.
- This guard time must be increased in proportion to the user's movement speed, but for a pedestrian-like movement, two microslots is sufficient.
- a user running a car needs an additional guard time of about 5 microtime slots.
- the guard time is varied according to the traveling speed of the user, and the guard time data is stored as user data in the memory of the mobile switching centers 6 and 7, and the frame structure is then used. Varying is an effective means from the viewpoint of transmission efficiency.
- the high-speed TDMA data channel is configured by connecting a plurality of low-speed TDMA data channel channels in series.
- a configuration may be employed in which a plurality of time-division CDMA channel structures for low-speed data transmission are connected in series.
- the synchronization word 93 in the micro time slot (240 bits) structure shown in Fig. 9 is the training of an equalizer that removes delay propagation distortion due to multiple propagation paths. It is a sequence. Since the synchronization code 93 is set once every 240 bits, training is performed 30 times in the high-speed TDMA data overnight channel. Since the high-speed TDMA data channel shown as an example in Fig. 9 only connects 32 low-speed TDMA data channels in series, the high-speed equalization for this high-speed TDMA data channel is performed.
- the equalizer is the same as the low-speed equalizer for the low-speed TDMA data channel except that the operation speed is 32 times faster, but this also shows that the fourth embodiment is effective. I have.
- the structure of the micro time slot is managed by the mobile switching centers 6 and 7, and the change according to the structure of the micro time slot including the guard time length is performed.
- the command is issued to at least one radio base station 1, 3 or 2 rather than this mobile switching center 6 or 7.
- the high-speed TDMA data channel connects a plurality of channel structures of a low-speed TDMA data channel or a time-divided CDMA channel for low-speed data transmission in series. It is structurally identical except for the low-speed data processing part of the system and speed, and has the effect of simplifying the overall structure and reducing equipment and design costs. .
- the guard time can be increased or decreased in micro time slots, it is possible to set a guard time appropriate for a high-speed moving object, a low-speed moving object, or a semi-fixed moving object. Can, different evenings This has the effect of avoiding interference from the imslot and at the same time preventing a decrease in efficiency.
- Embodiment 5 since the guard time can be increased or decreased in micro time slots, it is possible to set a guard time appropriate for a high-speed moving object, a low-speed moving object, or a semi-fixed moving object. Can, different evenings This has the effect of avoiding interference from the imslot and at the same time preventing a decrease in efficiency. Embodiment 5.
- Embodiment 5 of the present invention a structure of a mobile station and a radio base station for realizing an asymmetric communication channel including data transmission by low-speed TDMA, time-division CDMAs, and high-speed TDMA will be described.
- FIG. 10 is a block diagram showing a configuration of such a mobile station according to Embodiment 5 of the present invention.
- 101 is an antenna
- 102 is a transmission / reception distribution unit for distributing a signal received by the antenna 101 and a signal transmitted from the antenna 101
- 103 is an antenna 1 RF (Radio Frequency) receiver for amplifying a signal received at 01, RF transmitter for amplifying a signal transmitted from antenna 101;
- the RF receiver 103 has a built-in switch for selecting a transmission method, that is, a communication method capable of transmitting a required amount of information in synchronization with a time slot. The output destination is switched according to the method.
- Reference numeral 106 denotes a demodulator that performs time-sharing on a time-division CDMA channel spread and coded using a spread-coded signal. Multiplied by the spreading code assigned to the station (decoding operation), extracts the original signal that is not spread-coded (correlation reception), and outputs it to the demodulator 105. It is a conversion operation unit. 107 extracts the necessary signal from the format of the signal demodulated by the demodulator 105 (multiplexing). Separation), and a channel reception / TDMA separation unit (hereinafter referred to as a CH reception / TDMA separation unit) that supplies the signal processing unit.
- a CH reception / TDMA separation unit a channel reception / TDMA separation unit
- Reference numeral 108 designates an error in information supplied from the CH reception / TDMA demodulation unit 107, decodes high-speed data and audio signals from the information, and decodes the data into a man-machine input, not shown. Error correction / decoding section that supplies the evening face.
- Reference numeral 109 denotes an error correction / speech encoder that encodes high-speed data and speech signals supplied from a man-machine interface and adds an error correction code thereto.
- 110 decodes the control data separated by the CH reception / TDMA separation section 10 ⁇ , instructs the mobile station to perform various functions based on the control data, and generates control data for a response thereto. It is a control information processor.
- CH transmission ZT DMA multiplexing unit A channel transmission / TDMA multiplexing unit that incorporates and outputs information.
- the CH transmission / TDMA multiplexing unit 111 has a built-in switch for selecting a system to be transmitted, that is, a communication system capable of transmitting a required amount of information in synchronization with a time slot. The output destination is switched according to the communication method.
- 1 1 2 When using low-speed TDMA or high-speed TDMA channels, 1 1 2 modulates information output from the CH transmission / TDMA multiplexing unit 1 1 1 and outputs it to the RF transmission unit 104.
- the information output from the CH transmission / TDMA multiplexing unit 1 1 1 1 3 is applied to the frequency domain using the spreading code assigned to the own station.
- This is a correlation coding / spread coding operation unit that spreads and codes the above, and inputs it to the modulator 112.
- 1 1 4 is the control of the emission time of the radio burst emitted from the own station.
- Burst control / intra-frame time setting to set time in frame to set whether to emit radio waves in the muscle slot, and to measure time to set transmission timing of radio burst It is a measuring unit.
- 1 15 is the burst control / time setting within the frame.
- the time measuring unit 1 14 is the chip rate used for time measurement and the spreading code generator that generates the spreading code assigned to its own station. It is a vessel.
- the mobile station shown in FIG. 10 realizes an asymmetric communication channel.
- a high-speed TDMA system for transmitting a large amount of data on the downlink (downlink) is used.
- a channel is set and a time-division CDMA channel is set for transmitting low-speed data on the uplink (uplink).
- the radio wave of the high-speed TDMA data channel emitted from the radio base station is received by the antenna 101, and is input to the RF reception unit 103 via the transmission / reception distribution unit 102. Since the received signal uses the high-speed TDMA demodulation channel, the RF receiving section 103 directly switches the signal by switching the built-in switch to the demodulator 1005 having an equalizer. Send to The demodulator 105 demodulates the signal from the RF receiver into a digital signal. The digital signal demodulated by the demodulator 105 is input to the CH receiving / TDMA separating unit 100, where it is separated into high-speed data information and control data.
- the separated control data is sent to the control information processor 110, and the high-speed data is sent to the error correction / decoding unit 108.
- the error correction / decoding unit 108 corrects the error of the high-speed data information, decodes it, and passes it to the man-machine interface.
- low-speed data from the man-machine interface is digitally encoded by the error correction / encoding unit 109, and an error correction code is added. It is sent to the CH transmission / TDMA multiplexing unit 111.
- the CH transmission / TDMA multiplexing unit 111 multiplexes the low-speed data from the error correction / encoding unit 109 with the control data from the control information processor 110, and sets a predetermined Incorporated into the muscle slot, burst control / time setting within frame, and output according to the control of the time measurement unit 114.
- the CH transmission / TDMA multiplexing unit 111 switches the built-in switch to correlate coded / spread coded the multiplexed signal. Output to the operation unit 113.
- the correlation coding / spreading coding operation unit 113 performs CDMA coding on the multiplexed signal from the CH transmission / TDMA multiplexing unit 111, and then sends the multiplexed signal to the modulator 112 for modulation.
- the signal modulated by the modulator 112 is sent to the antenna 101 via the RF transmission section 104 and the transmission / reception distribution section 102, and is transmitted to the radio base station.
- the radio wave of the time-division CDMA data channel received by the antenna 101 is transmitted via the transmission / reception distribution unit 102: sent to the RF reception unit 103, and built into the RF reception unit 103. According to the selected switch, it is input to the correlation reception / despreading coding operation unit 106 to receive the correlation.
- the output of the correlation reception / despreading coding operation unit 106 is converted into a digital signal by the demodulator 105 equipped with an equalizer, and the low-speed data is output by the CH reception / TDMA separation unit 107. Separated into information and control data.
- the control data is sent to the control information processor 110, and the low-speed data information is sent to the error correction / decoding unit 108.
- the error correction / decoding unit 108 corrects and decodes the received low-speed data information, and passes it to the interface of the man-machine.
- the data is coded by the coding unit 109 and an error correction code is added thereto, and is multiplexed by the CH transmission / TDMA multiplexing unit 111 with the control data from the control information processor.
- the multiplexed signal is sent to the modulator 112 by selection of a switch built in the CH transmission / TDMA multiplexing unit 111, and is modulated by this modulator 112 to transmit the RF signal.
- Unit 104 is transmitted to the radio base station from antenna 101 via transmission / reception distribution unit 102.
- the mobile station shown in Fig. 10 can be used when the downlink and uplink both handle the high-speed TDMA data channel, when the downlink and uplink both handle the low-speed TDMA data channel, or when the downlink and uplink Both can be applied to a symmetric communication channel such as a case where a low-speed time-division CDMA data channel is handled.
- a description thereof will be omitted.
- FIG. 11 is a block diagram showing a configuration of a radio base station according to Embodiment 5 of the present invention.
- 1 2 1 and 1 2 2 are the mobile stations shown in Fig. 10 excluding the antenna 101, transmission / reception distribution unit 102, RF reception unit 103, and RF transmission unit 104.
- This is a signal processing unit having the same function.
- 1 2 3 and 1 24 are adders for adding signals output from a plurality of signal processing units such as the signal processing units 1 2 1 and 1 2 2, and 1 2 5 is an RF transmission unit and 1
- Reference numeral 26 denotes a 1 ⁇ receiving unit
- reference numeral 127 denotes a transmission / reception distribution unit
- reference numeral 128 denotes an antenna.
- 1 3 0 is an error correction / coding section
- 1 3 1 is a CH transmission / TDMA multiplexing section
- 1 3 2 is a modulator
- 1 3 3 is a modulator.
- Correlation coding / spreading coding calculation section 134 is burst control / intra-frame time setting / time measurement section
- 135 is spreading code generator 'chip rate generator
- 1 36 is demodulator
- 1 3 7 Is a correlation reception / despreading coding operation unit
- 138 is a CH reception / TDMA separation unit
- 139 is an error correction / decoding unit.
- the radio base station shown in FIG. 11 corresponds to an asymmetric communication channel or a symmetric communication channel, and the operation of the signal processing sections 121 and 122 is performed by the mobile station shown in FIG. Same as function.
- the output signal of the modulator 13 2 is a signal in which the intermediate frequency (IF: Inte rme d j a t e F r e c u en c y) is modulated by the information signal. Therefore, the center frequency of the output signal of each of the modulators 13 2 of these signal processing sections 12 1 and 12 2, the occupied bandwidth of the modulated signal, and the time slot of the frame during the frame.
- the structure of the ship is quite diverse, as shown in Figs.
- the signals output from the modulators 13 2 in the signal processing sections 1 2 1 and 1 2 2 are added to the signals output from the other signal processing sections by adders 1 2 3 and 1 24.
- T Supplied to the RF transmitter 125 and transmitted from the antenna 128 via the transmission / reception splitter 127.
- the signal received by the antenna 128 is sent to the RF receiver 126 via the transmission / reception splitter 127, and the signal processor 126, which is sent to the RF receiver 126, by the RF receiver 126. It is input to a demodulator 13 such as 122 or a correlation reception / de-spreading coding operation unit 13 7.
- FIG. 12 is a block diagram showing an outline of an interface section of the radio base station connected to the mobile switching center 6. As shown in FIG.
- 140 is memory for time-division CDMA channel conversion
- 141 is memory for low-speed TDMA data overnight channel conversion
- 144 is memory for high-speed TDMA data overnight channel conversion
- 144 is TDMA memory.
- Time division CDMA memory for control channel conversion. 1 44 are these channel assignments System to select one of the memories 140 to 144 and connect it to the information input of the signal processing unit 121, that is, the system to be transmitted, that is, the communication system that can transmit the required amount of information This is a switch for selecting the time slot in synchronization with the time slot.
- 145 is a memory for time-division CDMA channel conversion
- 146 is a memory for low-speed DMA data channel conversion
- 147 is a memory for high-speed TDMA data channel conversion
- 148 Is a memory for TDMA / time-division CDMA control channel conversion
- 149 connects the information input of the signal processing unit 121 to one selected from these memories 144 to 148. This switch is used to select the communication method.
- 150 is memory for time-division CDMA channel conversion
- 150 is memory for low-speed TDMA data channel conversion
- 152 is memory for high-speed TDMA data channel conversion
- 150 is memory for channel conversion.
- TDMA / time-division CDMA control channel conversion memory 154 selects one of these memories 150-153 and connects to the information input of signal processing unit 122, communication This is a switch for system selection.
- 15 5 is memory for time division CDMA channel conversion
- 15 6 is memory for low speed TDMA data channel conversion
- 15 7 is memory for high speed TDMA data channel conversion
- 15 8 is TDMA 7 time division CDMA control channel conversion.
- Reference numeral 159 denotes a switch for selecting a communication system for connecting the information input of the signal processing unit 122 to one of the memories 154 to 158.
- FIG. 12 shows four switches 144 for selecting the communication method.
- FIG. 13 shows the time slots of the switches 144, 149, 154, 159 for selecting the communication method.
- FIG. 4 is an explanatory diagram showing the assignment of packets in a table format. The operation will be described below with reference to FIG.
- Switch 144 can select three types of communication systems and one control channel. According to evening Lee Mi ranging selection of the first 3 shown in FIG its switch 1 44, the transmission Taimusuro Tsu preparative T f shown in FIG. 3, Sui Tsu Chi 1 44 4 T, i.e. TDMA Method control channel # 6 2—Select TO. Therefore, during the transmission time slot T » the memory 144 is connected to the information input of the signal processing section 121, and the control channel is output from the signal processing section 121.
- switch 144 selects 1T, that is, time-division CDMA channel # 61_ ⁇ 1, and memory 1 is used during this transmission time slot T. 40 is connected to the information input of the signal processing unit 121. Therefore, one of the communication channels in the time-division CDMA channel is frequency-spread by the signal processing unit 121 by a spreading code unique to the communication, and is output after being code orthogonalized. .
- the transmission time slots T2 and! 2 shown in FIG. In 1 The high-speed TDMA data channels # 71-T2 and # 71-T3 are selected.
- one communication channel signal in this time-division CDMA channel transmitted from the mobile station to the radio base station is correlated and detected by the signal processing unit 1221 using the spreading code unique to the communication channel.
- the despread information is output to the network side.
- the time division CDMA channel # 6 1—R 2 is selected, and the signal from the mobile station is detected in the signal processing unit 121 by the spread code peculiar to this channel.
- the spread information is output to the mobile switching center 6 on the network side.
- this channel is a time-division CDMA channel for low-speed data transmission, but a high-speed TDMA channel is allocated to the downlink corresponding to this channel (see the transmission time slot in Fig. 3).
- Call channel # 71-T2 is equivalent), indicating that the uplink and downlink are asymmetric.
- the high-speed TDMA data channel # 71— ⁇ 7 ⁇ is selected by the switch 144.
- the specified transmission time slot # 3 is the downlink, which is the # 7 1- # 3 that handles the high-speed TDMA data channel, and the two downlinks have the same transmission rate.
- the uplink channel is a channel corresponding to two channels in CDMA # 61-R1.
- switches 154 and 159 are similar to those of switches 144 and 149 described above, and therefore description thereof is omitted here.
- the radio base station and the mobile station are provided with a switch for selecting a communication method in synchronization with the time slot, so that the TDD time slot is used.
- Embodiment 6 of the present invention management of mobile station information on services that can be enjoyed by each mobile station will be described.
- FIG. 14 is a block diagram showing the configuration of a mobile switching center having such a mobile station information management function.
- reference numeral 6 denotes a mobile switching center (MSC 01) indicated by the same reference numeral in FIG. 1, and reference numerals 1 and 3 denote radio base stations (BS 1 and BS 3) connected to the mobile switching center 6.
- 8 is a public system (PSTN) in which the mobile switching center 6 is housed.
- PSTN public system
- a mobile station 160 is connected to the public system 8 and stores mobile station information on services that can be enjoyed by each mobile station for all mobile stations of the mobile communication system. Communication system data.
- reference numeral 170 denotes a PSTN interface for transmitting and receiving information to and from the public system 8 and for transmitting and receiving signaling signals such as dial signals, billing information, and password information.
- 171 is a communication path for transmitting information from the public system 8 to the wireless base station where the mobile station of the other party is located, and transmitting information transmitted from the mobile station via the wireless base station to the public system 8. It is an exchange unit.
- 17 2 selects a radio system for connecting the radio base station and the mobile station, and instructs to set it for the radio base station and the mobile station.
- 173 is a signaling processor for processing the number of the mobile station to be connected and a password authentication procedure for charging.
- 174 is a base station interface that communicates with each wireless base station, such as information to be transmitted to the mobile station via the wireless base station, signaling information with the mobile station, and method information for defining wireless connection.
- 1 7 5 is managed by the mobile switching center 6, that is, stays in a cell of a mobile station belonging to the mobile switching center 6 or a radio base station currently managed by the mobile switching center 6 ( Then, the mobile station information of mobile stations connected to those radio base stations is a mobile station information memory in which information is registered.
- FIG. 15 is an explanatory diagram showing an example of the mobile station information registered in the mobile station information memory 1.5 in a table format. The management of mobile station information will be described below with reference to FIG.
- a mobile station (multimedia station 51) with a mobile station subscriber number of DS51-7272 uses three types of communication channels except for the control channel, and a radio base station. It can be set between the station and its own station (multimedia station 51). In a multimedia situation, both mobile stations and wireless base stations should transmit these three communication channels: TDMA voice / low-speed data, time-division CDMA voice / low-speed data transmission, and high-speed TDMA data (transmit / receive). Communication is performed by freely switching according to the information speed. Moreover, in this mobile communication system, the uplink and the downlink can be arbitrarily selected from these three types, and the communication information transmission speed can be changed as required.
- a mobile station having a mobile station subscriber number of MS32-728 has only two types of communication channels except for the control channel.
- This normal mobile station 23 is not required to transmit large amounts of data such as image data, and is a conventional mobile terminal that only communicates voice and low-speed data. It does not have a high-speed data transmission channel. In other words, it has only communication channels for TDMA voice / low-speed data and time-division CDMA voice / low-speed data, but not for high-speed TDMA data.
- this function distinguishes between a mobile station having only reception and a mobile station having both transmission and reception functions.
- the mobile station with the mobile station subscriber number DS 5 1 — 7 27 (multimedia station 5 1) and the mobile station with the mobile station subscriber number WS 4 2 — 7 2 7 (WL L station 4 2) are transmitted.
- the mobile station with a mobile station subscriber number of DS52-728 (multimedia station 52) can only receive high-speed TDMA data overnight communication functions. Mobile station.
- the mobile station information shown in FIG. 15 is transmitted to the mobile switching center 6 from the mobile communication system device 16 ° shown in FIG.
- the mobile communication system data base 160 stores mobile station information of all mobile stations, but the mobile switching station 6 has mobile stations related to the mobile switching station 6 for the time being. Only the station information is transmitted and registered in the mobile station information memory 175 of the mobile switching center 6 concerned.
- the registration of the exchange information in the exchange information memory 175 is performed when the mobile station originates a call from a cell such as the radio base stations 1 and 3 managed by the mobile exchange 6, performs location registration, or performs another registration. Triggered by the mobile switching center inquiring about the location of the specified mobile station.
- the mobile switching center 6 is located in a cell of the mobile station belonging to the mobile switching center 6 or the currently managed wireless base stations 1 and 3, and is connected to these mobile base stations 1 and 3.
- the mobile station information memory 175 is accessed to identify a service that can be enjoyed by the mobile station, and allocate a channel accordingly.
- the mobile station in the area and the wireless base station communicate using the mobile station information registered in the mobile station information memory 175 of the mobile switching center 6, the mobile station information memory having the new information is stored.
- the information about the mobile station at 175 is transferred from the mobile station exchange 6 to the public system 8 and sent to the mobile communication system database 160 via the public system 8. As a result, the content of the mobile station information stored in the mobile communication system database 160 is updated.
- the mobile switching center is provided with the mobile station information memory for registering the mobile station information of the mobile station managed by the mobile switching center. This makes it easier to know the services that can be enjoyed by each mobile station under management, and has the effect that channel allocation can be operated efficiently.
- Embodiment 7 is provided with the mobile station information memory for registering the mobile station information of the mobile station managed by the mobile switching center. This makes it easier to know the services that can be enjoyed by each mobile station under management, and has the effect that channel allocation can be operated efficiently.
- Embodiment 7 of the present invention data transmission of a large amount of information using a high-speed data transmission channel will be described.
- FIG. 16 is a block diagram showing the configuration of a mobile switching center having such a high-speed data management function.
- 1 and 3 are radio base stations (BS 1 and BS 3), 6 is a mobile switching center (MSC 01), and 8 is a public system (PSTN).
- 170 is a PSTN interface
- 171 is a communication path switching unit
- 172 is a method setting processor
- 173 is a signaling processor
- 174 Is the base station interface. Note that these are the parts corresponding to the respective parts denoted by the same reference numerals in the sixth embodiment shown in FIG. 14, and therefore detailed description is omitted.
- the mobile switching center 6 can be connected via a public system 8 in a system that handles transmission data, and here is an example of an environment data overnight and an Italian Tourism Association database. It is shown. In the following description, each kind of database as a source system of such high-speed data is simply called a database.
- the mobile switching center 6 temporarily stores high-speed data transmitted and received between the mobile station and the database 16 1 when the mobile station connects to the database 16 1. It is a memory device for high-speed data communication.
- control information is transmitted from the mobile station to database 161 when the mobile station is connected to database 161.
- a command to stop data transmission is transmitted from the mobile station to the database 161 as the control information.
- this command would require a significant amount of high-speed data before arriving at the database 161 via the radio base station 1 or 3, the mobile switching center 6, and the public system 8. Is expected to be transmitted from the data base 16 1.
- the mobile station user considers the received high-speed data transmission to be instructed by the mobile station user, the mobile station transmits the command. After that, when the user's consideration is completed, the mobile station sends a “data transmission” command to the database 16 1 again. Can be considered.
- a high-speed data communication memory device 176 is provided in the mobile switching center 6 and the high-speed data transmission until the data base 101 stops sending high-speed data to the mobile switching center 6. The data is temporarily stored in the high-speed data memory device 176.
- FIG. 17 is an explanatory diagram showing, in a table form, the minimum necessary information for managing the contents of the high-speed data communication memory device 176.
- the relevant information includes a high-speed data Source database name, earliest reception time among the remaining information received from the database, destination mobile station number, latest transmission time sent to the mobile station, first stored information number of the remaining information And other information such as the last information storage number, the amount of remaining information, and the corresponding control method.
- FIG. 18 is a flowchart showing a control process of the memory device 176 for high-speed data communication.
- the mobile station moves while transmitting high-speed data from the database 161 to the mobile station.
- the following is an example of a case where a “data transmission stop” command is issued from the station.
- step ST 11 When the mobile station issues a command of “deliver overnight”, first in step ST 11, the database 16 1 specified by the command and the mobile switching center 6 are connected via the public system 8. The required high-speed data is received from the database 16 1. Next, in step ST12, the high-speed data received from the database 161 is transmitted to the mobile station via the downlink from the radio base station to the mobile station by the high-speed TDMA data transmission method.
- step ST 13 it is checked whether or not there is an instruction of “stop transmission of data” from the mobile station, and if there is no such instruction, the process returns to step ST 13. As long as there is a “data transmission” command from the mobile station, this database
- the mobile station has sent a command to the database 16 1 to “stop sending data overnight” to the mobile switching center 6 via the radio base station.
- the mobile switching center 6 that has decoded the instruction of “de-evening stop” proceeds from step ST 13 to step ST 14, and stops sending high-speed data to the mobile station. In response, it sends a command to stop sending data.
- the mobile station sends this “data transmission stop” command, if the high-speed data transmitted from the database 16 1 is normally received, the normally received high-speed data is received. The last number of the evening is also transmitted as part of the control signal.
- the mobile station As the last number of the normally received high-speed data, specifically, a series of time slot numbers are repeatedly added to the high-speed data for each multiframe, and the mobile station normally receives the high-speed data. In this case, the time slot number at which the last high-speed data was received is detected and sent to the mobile switching center 6 via the connected wireless base station as the normal time slot number. Things.
- the mobile switching center 6 does not discard the high-speed data sent from the database 161, even after sending the command of "stop sending data" to the database 161, in step ST15.
- the memory device for high-speed data communication 1 76 is stored. That is, the mobile switching center 6 receives the normal time slot number transmitted when the mobile station normally receives the high-speed data, and sets the time slot number subsequent to the normal time slot number.
- the high-speed data is stored in this high-speed data communication memory device 176 without being immediately discarded. When a normal time slot number is received, the time slot number before the normal time slot number is held. One high-speed data is deleted from the high-speed data communication memory device 176.
- step S ⁇ 16 it is checked whether or not a “data transmission” command for instructing the mobile switching center 6 to restart data transmission has been sent again from the mobile station.
- the process returns to step S ⁇ 12, and the normal time slot received from the mobile station, which is stored in the high-speed data communication memory device 176, is stored.
- the high-speed data having the time slot number following the number is read from the high-speed data communication memory device 176, and the transmission of the high-speed data to the mobile station is resumed.
- step S ⁇ 17 the “data transmission” command has not been retransmitted, the flow advances to step S ⁇ 17 to check whether or not the mobile station has turned off the connection. If it has not been turned off yet, the process returns to step ST16 to check for the retransmission of the "data transmission” instruction.
- step ST17 If the user terminates the work and disconnects the line with the high-speed data remaining in the high-speed data communication memory device 176, the process proceeds from step ST17 to step ST18. Going forward, the amount of high-speed data remaining in the high-speed data communication memory device 176, that is, the number following the normal time slot number indicating that the mobile station has successfully received high-speed data
- the information amount of the high-speed data with the subsequent time slot number is transmitted to the database 16 1 via the public system 8. In this way, the data of the residual information amount sent to the database 16 1 is high-speed data transmitted to the mobile switching center 6 but not transmitted to the mobile station. Used by the overnight provider to deduct it from billing the user.
- the mobile switching center 6 When the mobile switching center 6 stores the high-speed data received from the database 16 1 through the public system 8 in the high-speed data communication memory device, the high-speed data is stored in one time slot. For each amount of information that can be transmitted A function is provided for dividing blocks into blocks, assigning a storage information number to each block, and managing it, and receiving the high-speed data from the mobile switching center 6 and transferring it to the mobile station.
- the base station compares the time slot number used when transmitting the high-speed data to the mobile station with the stored information number added by the mobile switching center 6 assigned to the base station, and A function to transmit the time slot number and the stored information number as one set to the mobile switching center 6 is provided, and the control and management of the high-speed data communication memory device 176 are performed based on those functions. Is also good.
- the mobile switching center 6 transmits the high-speed data stored in the high-speed data communication memory device 176 to the mobile station via the connection-destination wireless base station.
- the amount of high-speed data remaining in the device 1 76 becomes less than a certain amount, the subsequent high-speed data transmission is requested to the data 16 1 through the public system 8. .
- the mobile station transmits the time slot from which the high-speed data is transmitted. Is detected as an abnormal time slot number, transmitted from the connected radio base station to mobile switching center 6, and mobile switching center 6 receives the abnormal time slot number.
- the high-speed data having the same time slot number as the abnormal time slot number is read from the high-speed data communication memory device 1 ⁇ 6, and is read to the mobile station via the wireless base station of the connection destination. Transmit again.
- the mobile switching center is provided with a high-speed data communication memory device for temporarily storing high-speed data to be transmitted to the mobile station. Not only can it respond quickly to data transmission requests and can prevent the loss of high-speed data information, but it can also communicate the amount of remaining information to the database to inform users. This has the effect of making it possible to accurately calculate the fee corresponding to the amount of information sent.
- Embodiment 8 of the present invention management of a communication channel in each mobile station will be described.
- FIG. 19 is an explanatory diagram showing an example of a communication channel management table of each mobile station.
- the communication channel of each mobile station managed by the radio base station (BS 1) is shown.
- the management table is shown.
- the mobile switching center and at least one radio base station under its control have a mobile station management memory, and the communication channel management table shown in FIG. 19 is stored in the mobile station management memory. .
- the mobile station (multimedia station 51) having the mobile station name DS51-7272 has a high-speed TDMA data channel on the downlink and an uplink on the uplink.
- Each time-division CDMA low-speed data (or voice) channel is assigned to each.
- the example shown here is a case where different asymmetric communication channels are assigned to the downlink and the uplink.
- the mobile station with the mobile station name WS 4 2 — 7 2 7 (WLL station WS 4 2) has the control information channel for intermittent connection assigned to both the uplink and downlink, and this user is currently considered. It is considered to be in.
- this mobile communication system can handle not only asymmetric communication channels but also symmetric communication channels.
- a time slot is also specified as shown in Fig. 19 above.
- the mobile station name DS 51 — 7 27 Multimedia station 51 Uplink “Time-division CDMA voice / low-speed data channel” Is the time slot name # 6 1 —R 2 —07
- the time slot specified is the force s , which is the same as the time slot number shown in Figure 3. It is.
- this time slot # 6 1-R 2 is the force that is the second time slot from the top of the time slot row at the left end of Fig. 3, and the symbol following it-07 indicates that this time slot
- CD MA code division multiple access
- the mobile station name WS 42-27 27, the WLL station 42 's uplink "control information channel for intermittent connection" has the time slot name # 61-R 3-05: 36 time slot.
- the time slot name is the same as the time slot number shown in Fig. 3, and this time slot # 61-R3 is the left end of Fig. 3. This is the top time slot in the time slot column.
- the following symbol-05 indicates a channel having a spreading code named No. 5 of Code Division Multiple Access (CDMA) that includes a plurality of time slots, and the following symbol: 36 indicates a channel number. This indicates that the information is contained in the third and sixth frames in one multi-frame (consisting of 40 frames) in Fig. 7.
- CDMA Code Division Multiple Access
- the transmission type underlined and the channel with the time slot name underlined are currently in operation. Indicates the middle channel.
- this operating transmission type is changed from moment to moment according to the user's request and the data content of the data transmission to the user.
- the change of the transmission type is characterized in that the uplink and the downlink can be set independently in this mobile communication system.
- FIG. 19 shows two typical examples, but all the subscribers of this mobile communication system have their communication channels set up as shown in FIG. Is determined.
- the mobile switching center when a mobile switching center operates a channel by designating a time slot corresponding to each transmission type, the mobile switching center operates the channel assigned to the time slot corresponding to the current transmission type.
- the time slot assignment is stored as a history in the built-in mobile station management memory. If the same transmission type is assigned again, the mobile switching center specifies a time slot having a record of use in the history stored in the mobile station management memory and performs the transmission. Operate a type of channel.
- the mobile switching center has a past use history of the same type of transmission type. Only when the time slot name no longer exists in the mobile station management memory, the history of the time slot having the past use history is deleted and the time slot used for the new mobile station is deleted. assign. When erasing the history of time slots that have been used as past use history, select the time slot that has the oldest history of use and assign it as the time slot to be used for the new mobile station. You may make it hit.
- the mobile switching center and at least one radio base station under the control of the mobile switching center have the radio communication channel management table as shown in FIG.
- the station management memory By storing in the station management memory, there is an effect that the uplink and downlink between the radio base station and the mobile station can be set independently by different transmission types.
- the mobile communication system employs F DMA / TDMA digital communication and time slot sharing ⁇ Frequency division shared time-division CDMA signal channel (shared channel) for digital modulation between multiple mobile stations and wireless base stations Multimedia environment wirelessly connected by bidirectional communication using FDMA / TDD, Multi-carrier TDMA, CDMA / TDD, or time-division CDMA using modulated signals based on the CDMA system
- Frequency division shared time-division CDMA signal channel shared channel
Landscapes
- Engineering & Computer Science (AREA)
- Computer Networks & Wireless Communication (AREA)
- Signal Processing (AREA)
- Mobile Radio Communication Systems (AREA)
- Time-Division Multiplex Systems (AREA)
Description
Claims
Priority Applications (7)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
DE1997638027 DE69738027T2 (de) | 1997-08-20 | 1997-08-20 | Mobile Kommunkationsanordnung |
CA 2266311 CA2266311C (en) | 1997-08-20 | 1997-08-20 | Mobile communication system including capacity-variable asynchronous data communication channel |
US09/254,714 US6526036B1 (en) | 1997-08-20 | 1997-08-20 | Mobile communication system |
JP51299299A JP3850451B2 (ja) | 1997-08-20 | 1997-08-20 | 移動通信システム |
EP97935837A EP0932267B9 (en) | 1997-08-20 | 1997-08-20 | Mobile communication system |
PCT/JP1997/002890 WO1999009680A1 (fr) | 1997-08-20 | 1997-08-20 | Systeme de communication mobile |
ID973559A ID18084A (id) | 1997-08-20 | 1997-10-30 | Sistim komunikasi mobil |
Applications Claiming Priority (1)
Application Number | Priority Date | Filing Date | Title |
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PCT/JP1997/002890 WO1999009680A1 (fr) | 1997-08-20 | 1997-08-20 | Systeme de communication mobile |
Publications (1)
Publication Number | Publication Date |
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WO1999009680A1 true WO1999009680A1 (fr) | 1999-02-25 |
Family
ID=14180995
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
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PCT/JP1997/002890 WO1999009680A1 (fr) | 1997-08-20 | 1997-08-20 | Systeme de communication mobile |
Country Status (7)
Country | Link |
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US (1) | US6526036B1 (ja) |
EP (1) | EP0932267B9 (ja) |
JP (1) | JP3850451B2 (ja) |
CA (1) | CA2266311C (ja) |
DE (1) | DE69738027T2 (ja) |
ID (1) | ID18084A (ja) |
WO (1) | WO1999009680A1 (ja) |
Cited By (4)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JP2002141888A (ja) * | 2000-11-02 | 2002-05-17 | Matsushita Electric Ind Co Ltd | 非対称無線通信方法 |
CN100361421C (zh) * | 1999-11-03 | 2008-01-09 | 艾利森公司 | 用于在混合tdma通信***中分配资源的方法和设备 |
JP2008271483A (ja) * | 2007-03-23 | 2008-11-06 | Kyocera Corp | 無線通信装置および送信制御方法 |
JP2009171592A (ja) * | 2009-03-06 | 2009-07-30 | Mitsubishi Electric Corp | 移動通信システム、基地局及び加入者局 |
Families Citing this family (34)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
CN1307766A (zh) * | 1999-02-26 | 2001-08-08 | 三菱电机株式会社 | Cdma解调装置及方法、以及cdma移动通信*** |
DE19913086A1 (de) * | 1999-03-23 | 2000-10-19 | Siemens Ag | Verfahren und Einrichtung zur Kanalzuweisung für eine breitbandige Funk-Übertragung |
JP3477520B2 (ja) * | 1999-04-21 | 2003-12-10 | 松下電器産業株式会社 | 移動体通信装置、通信システム、及び通信方法 |
EP1102422A1 (en) * | 1999-11-16 | 2001-05-23 | Alcatel Espana, S.A. | Method and system for improving transmission efficiency in TDMA multi-carrier communication systems |
SE0000720D0 (sv) * | 2000-03-03 | 2000-03-03 | Ericsson Telefon Ab L M | Handover in cellular system utilising norrow and wide beam antennas |
CN1146156C (zh) * | 2000-06-07 | 2004-04-14 | 华为技术有限公司 | 信道估计中训练序列的生成方法 |
JP3388224B2 (ja) * | 2000-06-23 | 2003-03-17 | 松下電器産業株式会社 | 通信端末装置 |
JP4298140B2 (ja) * | 2000-06-29 | 2009-07-15 | 富士通株式会社 | 送受信装置 |
US6961304B1 (en) * | 2000-09-12 | 2005-11-01 | Lucent Technologies Inc. | Dynamic reassignment of code space among multiple modes of operation |
US6711144B1 (en) * | 2000-09-15 | 2004-03-23 | Airvana, Inc. | Multi-user communication of voice and data |
JP3526265B2 (ja) * | 2000-09-29 | 2004-05-10 | 松下電器産業株式会社 | データ通信装置及びデータ通信方法 |
US6775254B1 (en) * | 2000-11-09 | 2004-08-10 | Qualcomm Incorporated | Method and apparatus for multiplexing high-speed packet data transmission with voice/data transmission |
US6952410B2 (en) * | 2001-02-26 | 2005-10-04 | Lucent Technologies Inc. | Semi-static code space division for multiple shared packet data channels in high bandwidth mixed service CDMA systems |
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US8340697B1 (en) * | 2006-01-26 | 2012-12-25 | Nextel Communications Inc. | Method and computer-readable medium for dynamically adjusting a multimedia data resolution in a wireless environment |
US7782836B2 (en) * | 2006-03-24 | 2010-08-24 | Samsung Electronics Co., Ltd. | Method and system for transmission of different types of information in wireless communication |
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US8325686B2 (en) * | 2006-04-20 | 2012-12-04 | Samsung Electronics Co., Ltd. | Method and system for channel time allocation and access control in wireless network for high-definition video transmission |
US8259647B2 (en) * | 2006-06-12 | 2012-09-04 | Samsung Electronics Co., Ltd. | System and method for wireless communication of uncompressed video having a link control and bandwidth reservation scheme for control/management message exchanges and asynchronous traffic |
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US8179805B2 (en) * | 2007-01-19 | 2012-05-15 | Samsung Electronics Co., Ltd. | Method and system for wireless communication by spatial reuse |
US8503968B2 (en) * | 2007-01-19 | 2013-08-06 | Samsung Electronics Co., Ltd. | Method and system for power saving in wireless communications |
US8699421B2 (en) * | 2007-01-19 | 2014-04-15 | Samsung Electronics Co., Ltd. | Method and system for wireless communication using channel selection and bandwidth reservation |
US8135400B2 (en) * | 2007-01-19 | 2012-03-13 | Samsung Electronics Co., Ltd. | Method and system for device discovery in wireless communication |
GB0716966D0 (en) * | 2007-08-31 | 2007-10-10 | Fujitsu Ltd | Wireless communication systems |
US8767631B2 (en) * | 2007-09-25 | 2014-07-01 | Samsung Electronics Co., Ltd. | Method and system for alternate wireless channel selection for uplink and downlink data communication |
JP5527814B2 (ja) * | 2010-04-28 | 2014-06-25 | Necカシオモバイルコミュニケーションズ株式会社 | 通信端末装置、通信システム、通信制御方法、ならびに、プログラム |
US9350770B2 (en) * | 2014-05-30 | 2016-05-24 | Apple Inc. | Redundant transmission channels for real-time applications on mobile devices |
US9325941B2 (en) | 2014-05-30 | 2016-04-26 | Apple Inc. | Communication channel management for real-time applications |
Citations (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JPH07154866A (ja) * | 1993-08-28 | 1995-06-16 | Alcatel Sel Ag | 無線システム |
JPH08130766A (ja) * | 1994-09-09 | 1996-05-21 | Mitsubishi Electric Corp | 移動通信システム |
JPH08186533A (ja) * | 1994-12-28 | 1996-07-16 | Toshiba Corp | 無線通信システム |
Family Cites Families (11)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
CA1258545A (en) * | 1986-04-09 | 1989-08-15 | Toshimitsu Shimizu | Communication network capable of automatically informing a subscriber of occurrence of an idle channel |
US4641304A (en) * | 1986-06-06 | 1987-02-03 | Rca Corporation | Announced retransmission random access system |
US4785450B1 (en) * | 1987-08-06 | 1999-10-12 | Interdigital Tech Corp | Apparatus and method for obtaining frequency agility in digital communication system |
US5181200A (en) * | 1990-10-29 | 1993-01-19 | International Business Machines Corporation | Handoff method and apparatus for mobile wireless workstation |
US5297142A (en) * | 1991-07-18 | 1994-03-22 | Motorola, Inc. | Data transfer method and apparatus for communication between a peripheral and a master |
US5260967A (en) | 1992-01-13 | 1993-11-09 | Interdigital Technology Corporation | CDMA/TDMA spread-spectrum communications system and method |
US5384777A (en) * | 1993-04-19 | 1995-01-24 | International Business Machines Corporation | Adaptive medium access control scheme for wireless LAN |
FI933129A0 (fi) * | 1993-07-08 | 1993-07-08 | Nokia Mobile Phones Ltd | Dataoeverfoeringsfoerfarande foer ett digitalt cellulaert mobiltelefonsystem och ett digitalt cellulaert mobiltelefonsystem |
US6088590A (en) * | 1993-11-01 | 2000-07-11 | Omnipoint Corporation | Method and system for mobile controlled handoff and link maintenance in spread spectrum communication |
US5638399A (en) * | 1994-11-15 | 1997-06-10 | Stanford Telecommunications, Inc. | Multi-beam satellite communication system with user terminal frequencies having transceivers using the same set of frequency hopping |
US5515366A (en) * | 1994-11-17 | 1996-05-07 | International Business Machines Corporation | Method and apparatus for direct communication in a TDMA radio communication system |
-
1997
- 1997-08-20 DE DE1997638027 patent/DE69738027T2/de not_active Expired - Lifetime
- 1997-08-20 CA CA 2266311 patent/CA2266311C/en not_active Expired - Lifetime
- 1997-08-20 US US09/254,714 patent/US6526036B1/en not_active Expired - Lifetime
- 1997-08-20 EP EP97935837A patent/EP0932267B9/en not_active Expired - Lifetime
- 1997-08-20 WO PCT/JP1997/002890 patent/WO1999009680A1/ja active IP Right Grant
- 1997-08-20 JP JP51299299A patent/JP3850451B2/ja not_active Expired - Lifetime
- 1997-10-30 ID ID973559A patent/ID18084A/id unknown
Patent Citations (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JPH07154866A (ja) * | 1993-08-28 | 1995-06-16 | Alcatel Sel Ag | 無線システム |
JPH08130766A (ja) * | 1994-09-09 | 1996-05-21 | Mitsubishi Electric Corp | 移動通信システム |
JPH08186533A (ja) * | 1994-12-28 | 1996-07-16 | Toshiba Corp | 無線通信システム |
Non-Patent Citations (1)
Title |
---|
M. SERIZAWA et al., "Broadband Multi-Media Communication System with Asymmetric Wireless Access Link, SDL-Net", 1996 IEEE INTERNATIONAL CONFERENCE ON COMMUNICATIONS, Volume 2, pages 735-739. * |
Cited By (5)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
CN100361421C (zh) * | 1999-11-03 | 2008-01-09 | 艾利森公司 | 用于在混合tdma通信***中分配资源的方法和设备 |
JP2002141888A (ja) * | 2000-11-02 | 2002-05-17 | Matsushita Electric Ind Co Ltd | 非対称無線通信方法 |
JP2008271483A (ja) * | 2007-03-23 | 2008-11-06 | Kyocera Corp | 無線通信装置および送信制御方法 |
JP2009171592A (ja) * | 2009-03-06 | 2009-07-30 | Mitsubishi Electric Corp | 移動通信システム、基地局及び加入者局 |
JP4602456B2 (ja) * | 2009-03-06 | 2010-12-22 | 三菱電機株式会社 | 移動通信システム、基地局及び加入者局 |
Also Published As
Publication number | Publication date |
---|---|
CA2266311A1 (en) | 1999-02-25 |
EP0932267A4 (en) | 2000-05-17 |
EP0932267A1 (en) | 1999-07-28 |
JP3850451B2 (ja) | 2006-11-29 |
EP0932267B9 (en) | 2008-10-08 |
EP0932267B1 (en) | 2007-08-15 |
US6526036B1 (en) | 2003-02-25 |
CA2266311C (en) | 2003-04-29 |
DE69738027T2 (de) | 2008-04-30 |
DE69738027D1 (de) | 2007-09-27 |
ID18084A (id) | 1998-02-26 |
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