WO2005039228A1 - 通信システム、基地局、端末局、通信装置、通信管理方法、制御プログラムおよびそれを記録したコンピュータ読み取り可能な記録媒体 - Google Patents
通信システム、基地局、端末局、通信装置、通信管理方法、制御プログラムおよびそれを記録したコンピュータ読み取り可能な記録媒体 Download PDFInfo
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- WO2005039228A1 WO2005039228A1 PCT/JP2004/014249 JP2004014249W WO2005039228A1 WO 2005039228 A1 WO2005039228 A1 WO 2005039228A1 JP 2004014249 W JP2004014249 W JP 2004014249W WO 2005039228 A1 WO2005039228 A1 WO 2005039228A1
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- WIPO (PCT)
- Prior art keywords
- transmission cycle
- base station
- terminal station
- periodic signal
- terminal
- Prior art date
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Classifications
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. TPC [Transmission Power Control], power saving or power classes
- H04W52/02—Power saving arrangements
- H04W52/0209—Power saving arrangements in terminal devices
- H04W52/0212—Power saving arrangements in terminal devices managed by the network, e.g. network or access point is master and terminal is slave
- H04W52/0216—Power saving arrangements in terminal devices managed by the network, e.g. network or access point is master and terminal is slave using a pre-established activity schedule, e.g. traffic indication frame
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. TPC [Transmission Power Control], power saving or power classes
- H04W52/02—Power saving arrangements
- H04W52/0209—Power saving arrangements in terminal devices
- H04W52/0212—Power saving arrangements in terminal devices managed by the network, e.g. network or access point is master and terminal is slave
- H04W52/0219—Power saving arrangements in terminal devices managed by the network, e.g. network or access point is master and terminal is slave where the power saving management affects multiple terminals
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02D—CLIMATE CHANGE MITIGATION TECHNOLOGIES IN INFORMATION AND COMMUNICATION TECHNOLOGIES [ICT], I.E. INFORMATION AND COMMUNICATION TECHNOLOGIES AIMING AT THE REDUCTION OF THEIR OWN ENERGY USE
- Y02D30/00—Reducing energy consumption in communication networks
- Y02D30/70—Reducing energy consumption in communication networks in wireless communication networks
Definitions
- the present invention relates to a communication system such as a wireless LAN (Local Area Network), a base station, a terminal station, a communication device, a communication management method, a control program, and a computer-readable recording medium storing the control program.
- a communication system such as a wireless LAN (Local Area Network), a base station, a terminal station, a communication device, a communication management method, a control program, and a computer-readable recording medium storing the control program.
- a base station periodically transmits a beacon signal, and information for identifying a terminal station, presence or absence of data to be transmitted to the terminal station, and a transmission cycle of the next beacon signal are transmitted. It is included in the beacon signal and notified. Therefore, the terminal station must always receive the beacon signal.
- Patent Document 1 Japanese Patent Laid-Open Publication No. 9-162798 (publication date: June 20, 1997)
- the base station determines the amount of data transmitted to the terminal station.
- Patent Document 2 Japanese Patent Laid-Open Publication No. 2003-124940 (published : April 25, 2003)
- the base station determines the polling interval time associated with the data amount range according to the data received from the external network. A technique for shortening the polling interval time has been disclosed.
- the terminal station checks the beacon signal, and when there is no data addressed to the own station, sets the terminal to the low power consumption mode until the next beacon signal.
- S. Implemented as an IEEE 802.11 power save mode. Have been.
- Patent Document 3 Japanese Patent Laid-Open Publication No. 2004-128949 (published on April 22, 2004) discloses power saving depending on the operation mode of an application in a wireless terminal device.
- a wireless terminal device and a wireless communication system using the same for the purpose of improving communication quality and reducing packet delay of applications requiring real-time performance such as power saving and voice communication have been disclosed. I have.
- Patent Document 3 differs from the present invention as follows.
- the setting is changed only on the terminal station side, not on the base station side. That is, in the technology described in Patent Document 3, since the beacon transmission interval of the base station does not change, for example, the default beacon transmission interval of the base station is currently widespread.
- VoIP voice over IP
- the packet transmission period of G.711 which is a general voice codec of VoIP that is currently widely used, is 20 msec. Is performed in intermittent reception mode, audio data that should have been sent at intervals of 20 msec is received at intervals of 100 msec, causing a delay and degrading audio quality.
- the technology described in Patent Document 3 cannot execute an application that requires a cycle shorter than the default beacon transmission interval of the base station by intermittent reception.
- the beacon transmission cycle is optimally set in the base station according to the type of application and / or communication characteristics (communication pattern). The ability to execute without intermittent reception is possible.
- the setting range of the intermittent reception interval is determined by DTIM.
- the range of the intermittent reception interval is the shortest beacon interval including TIM, the longest is the beacon interval including DTIM, and the setting of the beacon interval including DTIM is performed by the base station.
- DTIM Delivery Traffic Indication Map
- TSF Timing Synchronization Function
- a communication system is a communication system for notifying a terminal station of a transmission cycle of a periodic signal transmitted from a base station.
- a terminal-side wireless communication unit that transmits a request for setting a periodic signal transmission cycle to the base station, and the base station determines a periodic signal transmission cycle based on the setting request received from the terminal station.
- This is a configuration including a communication control unit for changing.
- the period of the periodic signal transmitted from the base station can be controlled from the terminal station.
- the terminal station can optimize the periodic signal reception cycle according to its own situation.
- the power supply to the communication circuit can be turned off until the terminal station receives a periodic signal, thereby reducing power consumption.
- by dynamically changing the periodic signal transmission cycle and setting it to an optimal value according to the device to be the terminal station and the application executed by the terminal station it has responsiveness and suppresses power consumption. Can be obtained.
- the communication system, base station, terminal station, communication device, and communication management method according to the present invention are applicable to wireless communication and / or wired communication.
- FIG. 1 is a functional block diagram showing a detailed configuration of a wireless communication system according to an embodiment of the present invention.
- FIG. 1 is a functional block diagram showing a detailed configuration of a wireless communication system according to an embodiment of the present invention.
- FIG. 2 is a functional block diagram showing a detailed configuration of a wireless communication system according to an embodiment of the present invention.
- FIG. 3 is a schematic diagram showing an outline of the wireless communication system shown in FIGS. 1 and 2.
- FIG. 4 is a schematic diagram schematically showing the wireless communication system shown in FIGS. 1 and 2.
- FIG. 6 is a flowchart showing the operation of the terminal-side wireless communication section of the terminal station in the wireless communication system shown in FIG.
- Garden 7 is a flowchart showing the operation of the base station of the wireless communication system shown in FIG. 1.
- FIG. 8 is a sequence diagram showing an operation of the wireless communication system shown in FIG. 1, showing a case where an application is an e-mail.
- FIG. 9 is a sequence diagram showing an operation of the wireless communication system shown in FIG. 1, showing a case where an application is an e-mail.
- FIG. 10 is a sequence diagram showing an operation of the wireless communication system shown in FIG. 1, showing a case where an application is streaming.
- FIG. 11 is a sequence diagram showing an operation of the wireless communication system shown in FIG. 1, showing a case where an application is streaming.
- FIG. 12 is a sequence diagram showing an operation of the wireless communication system shown in FIG. 1, showing a case where an application is an IP telephone.
- FIG. 13 is a sequence diagram showing an operation of the wireless communication system shown in FIG. 1, showing a case where an application is an IP telephone.
- FIG. 14 is a sequence diagram showing an operation of the wireless communication system shown in FIG. 1, showing a case where an IP phone is executed during execution of mail as an application of the terminal station, and the IP phone is terminated first.
- FIG. 16 The operation of the terminal-side wireless communication unit of a terminal station when there are a plurality of terminal stations as shown in FIG. It is a flowchart which shows a work.
- FIG. 19 is a flowchart showing an operation of a terminal-side wireless communication unit of the terminal station in the wireless communication system shown in FIGS. 1 and 2.
- Garden 20 is a flowchart showing the operation of the terminal-side wireless communication unit when there are a plurality of terminal stations as shown in FIG.
- Garden 21 is a flowchart showing the operation of the base station when there are a plurality of terminal stations as shown in FIG.
- FIG. 22 is an explanatory view showing an example of a management table stored in the communication control unit of the base station of the wireless communication system shown in FIGS. 1 and 2, in which the types of applications are associated with the beacon transmission periods. .
- FIG. 23 shows an example of a management table stored in a communication control unit of a base station of the wireless communication system shown in FIGS. 1 and 2 and associating application types and communication patterns with a beacon transmission cycle.
- FIG. 24 is a description showing an example of a management table in which a type and a state of an application are associated with a beacon transmission cycle stored in a communication control unit of a base station of the wireless communication system shown in FIGS. 1 and 2 FIG.
- FIG. 25 A management table stored in the communication control unit of the base station of the wireless communication system shown in FIGS. 1 and 2 and in which the type of application, the type of terminal station device, and the beacon transmission cycle are associated with each other. It is explanatory drawing which shows an example.
- FIG. 26 is a flowchart showing an operation of the terminal station when the beacon transmission cycle of the base station is changed to be short in the wireless communication system shown in FIGS. 1 and 2.
- FIG. 27 is a flowchart showing an operation of the terminal station when the beacon transmission cycle of the base station is changed to be long in the wireless communication system shown in FIGS. 1 and 2.
- FIG. 28 In the wireless communication system shown in FIG. 1 and FIG. 9 is a flowchart showing an operation of the base station when a change request of the base station is received.
- FIG. 29 is a flowchart showing an operation of the terminal station when the terminal station issues a request to shorten the beacon transmission cycle in the wireless communication system shown in FIGS. 1 and 2.
- FIG. 30 is a flowchart showing an operation of the terminal station when the terminal station issues a request to change the beacon transmission cycle longer in the wireless communication system shown in FIGS. 1 and 2.
- FIG. 31 is a diagram showing an example of a sequence in a case where there are a plurality of terminal stations in the wireless communication system shown in FIGS. 1 and 2.
- FIG. 32 is a diagram showing an example of a sequence in the case of a plurality of terminal stations in the wireless communication system shown in FIGS. 1 and 2.
- FIG. 33 is a flowchart showing an operation of the base station when a beacon transmission cycle change request is received from a terminal station in the wireless communication system shown in FIGS. 1 and 2.
- FIG. 34 is a diagram showing an example of a sequence in a case where there are a plurality of terminal stations in the wireless communication system shown in FIGS. 1 and 2.
- the present invention may include a communication device, a communication system, a base station, and a terminal station that perform communication by wired connection in a network.
- FIG. 3 and FIG. 4 are schematic diagrams schematically illustrating the wireless communication system 1 according to the present embodiment.
- a base station 10 performs wireless communication with one or more terminal stations 30 (30 8 '308' 30 ') by using an operating system.
- the base station 10 relays communication between the external network 2 and the terminal station 30. That is, the wireless communication system 1 includes the base station 10 and the terminal station 30, and specifies the terminal station 30 from the base station 10 based on a beacon signal (periodic signal) periodically transmitted from the base station 10. Then, the presence / absence of data to be transmitted to the specified terminal station 30 and the transmission cycle of the next beacon signal are notified by the beacon signal.
- a beacon signal periodic signal
- FIG. 1 and FIG. 2 are functional block diagrams showing a detailed configuration of the wireless communication system 1.
- Na FIG. 1 shows a case where the terminal station 30 executes one application.
- FIG. 2 shows a case where the terminal station 30 executes a plurality of applications.
- the base station 10 includes at least an external interface unit 11, a base-side wireless communication unit 12, and an antenna 19.
- the external interface unit 11 connects to the external network 2 from a dedicated line or a telephone line via a wired LAN or a modem, and performs data transfer with a server on a network such as the Internet.
- the antenna 19 transmits and receives a radio signal exchanged with the terminal station 30.
- the base-side wireless communication unit 12 includes a control unit 13, a transmission unit 17, and a reception unit 18. Transmitter
- the receiving unit 18 receives a signal from the terminal station 30 via the antenna 19 under the control of the communication control unit 15.
- the control unit 13 includes a storage unit (buffer) 14, a communication control unit (transmission cycle setting means) 15, and a timer unit 16.
- the storage unit 14 temporarily buffers data received from the external network 2.
- the timer section 16 performs timing for transmitting a beacon signal to the terminal station 30.
- the communication control unit 15 performs control for wireless communication.
- the communication control unit 15 changes the cycle of transmitting a beacon signal in response to a beacon cycle change request from the terminal station 30. That is, the communication control unit 15 sets the transmission period of the beacon signal based on the setting request received from the terminal station 30.
- the communication control unit 15 determines the transmission cycle of the beacon signal in accordance with the terminal station 30 requiring the shortest cycle.
- a request for a free buffer size is received from the terminal station 30, the free buffer size in the storage unit 14 is obtained and transmitted to the terminal station 30. This empty buffer size may be transmitted by being included in the beacon signal, or may be transmitted separately by a signal for notification.
- the terminal station 30 includes at least an input unit 31, an output unit 32, an application unit 33, a terminal-side wireless communication unit (transmission cycle setting request unit) 36, a power supply unit 43, and an antenna 44.
- the input unit 31 and the output unit 32 are provided for the user of the terminal station 30 to operate the terminal station 30. It is a user interface. Specifically, the input unit 31 is an input device such as a button, a key, a mouse, and a tablet.
- the output unit 32 is an output device such as a display or a speaker. The user of the terminal station 30 can use an application operating in the application unit 33 using the input unit 31 and the output unit 32.
- the antenna 44 transmits and receives a radio signal exchanged with the base station 10.
- the power supply unit 43 is a power supply that supplies power to the communication circuit 40 of the terminal-side wireless communication unit 36.
- the application unit 33 includes an application execution unit (application execution means) 34 and a communication interface unit (communication interface means) 35.
- the application execution unit 34 executes an application that communicates with the outside via the base station 10. That is, the application execution unit 34 executes applications such as mail, streaming, and IP telephone. The application executed by the application execution unit 34 can be appropriately selected according to the use of the terminal station 30.
- the communication interface unit 35 is operated by the user by operating the input unit 31.
- the application is executed, and a control instruction is issued to the terminal side wireless communication unit 36 according to the status of the running application. That is, the communication interface unit 35 notifies the terminal-side wireless communication unit 36 of the transmission cycle of the beacon signal according to the type and / or the communication characteristics of the application executed by the application execution unit 34.
- “communication characteristics” include (a) a communication pattern of an application, (b) a state of an application, (c) a type of a device serving as a terminal station, and (d) ) (a) -the combination of (c), etc. Then, the “communication characteristics” and “application type” are used as information for determining a beacon cycle (beacon cycle determination information (transmission cycle determination information)).
- the automatic mail reception check interval set by the user is an element that determines communication characteristics.
- the type of application is streaming, the data rate of streaming reproduction and the buffer size of the base station 10 are factors that determine communication characteristics.
- the type of application is an IP phone, the reception check interval in the standby state and the packet transmission interval in the call state are factors that determine communication characteristics.
- the communication interface unit 35 acquires the status of the application being executed by the application execution unit 34, and determines the transmission cycle of the beacon signal according to the status. Further, the communication interface unit 35 determines the transmission cycle of the beacon signal based on the buffer size of the base station 10. When a plurality of applications are executed by one terminal station 30, the communication interface unit 35 determines the transmission cycle of the beacon signal in accordance with the application that requires the shortest cycle.
- the communication interface unit 35 may hold a table (not shown) in which conditions such as an automatic mail reception check interval and a data rate of reproduction are associated with each application.
- the recording in this table can be performed when the application is installed on the terminal station 30 or when the execution is terminated.
- the application section 33 can operate a plurality of applications (application execution sections 34, 348, 34). At this time, the communication interface section 35 executes application execution.
- the communication interface unit 35 may be provided for each unit 34, or a plurality of application execution units 34 may share one communication interface unit 35 as shown in FIG.
- the terminal-side wireless communication unit 36 includes a transmission control unit 37, a timer unit 38, a reception control unit 39, a transmission unit 41, and a reception unit 42.
- the terminal-side wireless communication unit 36 transmits to the base station 10 a request for setting the transmission cycle of the beacon signal notified from the communication interface unit 35.
- Transmission control section 37 controls transmission section 41 in accordance with an instruction from communication interface section 35, and transmits a signal to base station 10 via antenna 44.
- the reception control unit 39 controls the reception unit 42 according to an instruction from the communication interface unit 35.
- Timer section 38 takes timing to receive a beacon signal transmitted from base station 10.
- the communication circuit 40 includes the transmission unit 41 and the reception unit 42.
- the power supply from the power supply unit 43 to the communication circuit 40 is controlled by the reception control unit 39. That is, the reception control unit 39 turns on the power supply from the power supply unit 43 to the communication circuit 40 only when the beacon signal is received. It turns off during the other periods.
- the beacon period that is optimal for the application executed by the terminal station 30 is set.
- the optimal beacon cycle is set according to the communication pattern and status of the running application.
- FIG. 5 is a flowchart showing the operation of the application unit 33 when there is one application.
- FIG. 6 is a flowchart showing the operation of the terminal-side wireless communication unit 36 when there is one application.
- FIG. 7 is a flowchart showing the operation of the base station 10 when there is one application.
- Figures 5, 6, and 7 show a single application for email, streaming, and IP phone applications.
- FIG. 8 is a sequence diagram showing an operation of changing the beacon period when the application is an e-mail
- FIG. 9 is a sequence diagram in which the operation of receiving e-mail data is added thereto.
- the terminal station 30 When the application is mail, the terminal station 30 requests the base station 10 to change to a beacon period that matches the automatic mail reception check interval set in the application. As a result, the terminal station 30 can perform intermittent reception with a minimum period required for checking the reception of mail. Therefore, the terminal station 30 optimizes the reception cycle of its own beacon, thereby turning off the power supply from the power supply section 43 to the communication circuit 40 until the timing of receiving the beacon signal, thereby suppressing power consumption. it can.
- the application execution unit 34 activates the S-mail application (S11)
- the communication interface unit 35 notifies the terminal side wireless communication unit 36 of the activation of the mail application, and the mail application is started.
- Automatic mail reception check set for the application Request to set the beacon period of the base station 10 at intervals (for example, 60 seconds) (S13, S23
- the beacon period may be set in advance in the communication interface unit 35 for each application, or may be notified from the application execution unit 34 to the communication interface unit 35 each time it is necessary to set the beacon period. Good.
- the terminal-side wireless communication unit 36 When the terminal-side wireless communication unit 36 receives the mail application activation notification from the application unit 33 together with the designation of the beacon period (S32), the terminal-side wireless communication unit 36 changes the beacon period to the base station 10 including the requested beacon period in the beacon signal. Submit the request.
- the communication control unit 15 changes the beacon period to the specified beacon period (S69).
- the base station 10 transmits the beacon signal addressed to the terminal station 30 with the next beacon period to the terminal station 30.
- the reception control unit 39 confirms that the setting of the beacon period included in the beacon signal is the requested one, and sets the beacon signal reception period (S44). That is, the beacon reception cycle will be 60 seconds from the next time. If the beacon signal contains information indicating that the data is addressed to the own station, the data is received and passed to the application unit 33 (S40-S42).
- the application execution section 34 upon receiving the data from the terminal side wireless communication section 36 (S15), the application execution section 34 causes the output section 32 to output the data (S16).
- the communication interface unit 35 sends an application end notification to the terminal side wireless communication unit 36, and requests the base station 10 to return the beacon cycle to the original (before starting mail). (S25, S47, S50).
- FIG. 9 additionally shows at which timing a signal for data communication is sent in a sequence for changing the beacon period. That is, as shown in FIG. If there is mail data in the base station 10 (in the case of “notification of the arrival of new mail from the mail server”), the mail data is sent as a signal for data communication following the beacon signal. As described above, the presence or absence of mail data to be transmitted from base station 10 to terminal station 30 can be notified by the beacon signal.
- the terminal station 30 turns on the communication circuit 40 and turns on the power from the base station 10.
- the beacon signal is received, a new mail is inquired to the mail server, and if there is a new mail, the mail data is received, and then the communication circuit 40 is turned off. Thereafter, when the changed beacon reception time comes, the power of the communication circuit 40 is turned on, a beacon signal from the base station 10 is received, and a mail server is inquired of a new mail. After receiving the mail data, the operation of turning off the power of the communication circuit 40 is repeated. As described above, when the terminal station 30 finishes receiving the signal transmitted from the base station 10, it turns off the power supply of the communication circuit 40 until it is time to receive the next beacon signal. That is, the terminal station 30 turns off the power of the communication circuit 40 when no signal is received.
- FIG. 10 is a sequence diagram showing the operation of changing the beacon period when the application is streaming
- FIG. 11 is a sequence diagram showing the operation of receiving the streaming data.
- the terminal station 30 checks the buffer (storage unit 14) size of the base station 10, and calculates the longest beacon period that does not cause data playback failure from the streaming playback data rate and the buffer size. Then, it requests the base station 10 to change the obtained beacon period. As a result, the terminal station 30 can perform intermittent reception at a period that does not cause data failure. Therefore, the terminal station 30 optimizes the reception cycle of its own beacon, thereby turning off the power supply from the power supply unit 43 to the communication circuit 40 until the timing of receiving the beacon signal, and thereby reducing the power consumption during the streaming reproduction. Can be suppressed.
- the communication interface unit 35 sets the data rate of the reproduction set for the streaming application (eg, the reproduction data rate). : 480 Kbps) (S14), and notifies the terminal side wireless communication unit 36 of the activation of the streaming application, and requests the base station 10 to notify the free buffer size (S19).
- the data rate of the reproduction may be set in advance in the communication interface unit 35 for each application, or the application execution unit 34 notifies the communication interface unit 35 each time the setting is required. May be.
- the terminal-side wireless communication unit 36 When the terminal-side wireless communication unit 36 receives the streaming application activation notification from the application unit 33 together with the buffer size notification request of the base station 10 (S32), the base station 10 transmits the beacon signal including the buffer size notification request. Send to
- the communication control unit 15 upon receiving the buffer size notification request from the terminal station 30 (S66), the communication control unit 15 obtains the free buffer size (eg, 30 KByte) of the storage unit 14 and transmits it. It is included in the beacon signal and transmitted to the terminal station 30 (S67).
- the free buffer size eg, 30 KByte
- the data rate eg, 480 Kbps
- the subsequent processing is the same as the processing of changing the beacon period in the case of a mail application, and thus the description is omitted.
- the terminal station 30 receives the free buffer size of the base station 10 and calculates the optimum beacon period.
- the process of calculating the beacon period may be performed by the base station 10.
- the terminal station 30 notifies the base station 10 of the streaming playback data rate. To do.
- FIG. 11 additionally shows at what timing a signal for data communication is sent in the sequence of changing the beacon period. That is, as shown in FIG. 11, when there is streaming data in base station 10 (when “storage data is present in storage unit”), streaming data is transmitted as a signal for data communication following the beacon signal. As described above, the presence or absence of streaming data to be transmitted from base station 10 to terminal station 30 can be notified by the beacon signal.
- the terminal station 30 notifies the empty buffer size while turning on / off the communication circuit 40 at the beacon reception time before the change. It sends a request, receives a free buffer size, and sends a request to change the beacon period. After the beacon period is changed, when the beacon reception time comes, the operation of turning on the power of the communication circuit 40, receiving the beacon signal and the streaming data from the base station 10, and then turning off the power of the communication circuit 40 is repeated. . As described above, when the terminal station 30 finishes receiving the signal transmitted from the base station 10, it turns off the power supply of the communication circuit 40 until it is time to receive the next beacon signal. That is, the terminal station 30 turns off the power of the communication circuit 40 when no signal is received.
- FIG. 12 is a sequence diagram showing the operation of changing the beacon period when the application is an IP phone
- FIG. 13 is a sequence diagram showing the incoming call operation.
- the terminal station 30 When the application is an IP phone, the terminal station 30 sets a beacon period of, for example, 1 sec during standby, and a value that is not affected by a delay according to a packet transmission interval during a call (eg, 20 msec). Set to. As a result, the terminal station 30 can perform intermittent reception according to the packet transmission interval. Therefore, the terminal station 30 optimizes the reception cycle of its own beacon, thereby turning off the power supply from the power supply unit 43 to the communication circuit 40 until the timing of receiving the beacon signal, thereby reducing the power consumption during a call. Can be suppressed.
- a beacon period for example, 1 sec during standby, and a value that is not affected by a delay according to a packet transmission interval during a call (eg, 20 msec). Set to.
- the terminal station 30 can perform intermittent reception according to the packet transmission interval. Therefore, the terminal station 30 optimizes the reception cycle of its own beacon, thereby turning off the power supply from the power supply unit 43 to the communication circuit 40 until the timing of receiving
- the application execution unit 34 activates an IP telephone application (S11)
- the communication interface unit 35 notifies the terminal-side wireless communication unit 36 of the activation of the IP telephone application, and the IP telephone application is activated.
- the beacon periods during standby and during a call may be set in advance in the communication interface unit 35 for each application, or each time a request for changing the beacon period is issued from the application execution unit 34 to the communication interface unit. You may notify 35.
- the communication control unit 15 changes the beacon period to the specified beacon period (S69). At this time, the communication control unit 15 transmits a beacon signal notifying the changed beacon period at the timing of the beacon period before the change, and then starts transmitting a beacon signal at the timing of the changed beacon period.
- the terminal station 30 turns on the power of the communication circuit 40 and receives a beacon signal of 10 base stations (S33—S35). Turn off the power of 40.
- the reception control unit 39 confirms that the setting of the beacon cycle included in the beacon signal is the requested one, and sets the beacon signal reception cycle (S44). In other words, the beacon reception cycle is set to lsec for standby from the next time. Also, if the beacon signal contains information indicating that there is data addressed to the own station, the data is received and passed to the application unit 33 (S40-S42).
- the application execution unit 34 notifies the incoming call by sound or display on the output unit 32 (S
- the terminal station 30 changes the beacon period during the call to Ta (eg, 20 ms ec) in the same manner as the above-described process of changing the beacon period during the standby. Furthermore, when the user goes off-hook and returns to the standby state, Beacon period Ta (eg, lsec). As described above, when the application is an IP phone, the terminal station 30 changes the beacon cycle according to the standby / call state.
- FIG. 13 additionally shows at what timing a signal for data communication is sent in the sequence of changing the beacon period. That is, as shown in FIG. 13, when base station 10 has voice data of an IP telephone (“data transmission”), voice data is transmitted as a signal for data communication following a beacon signal. As described above, the presence or absence of audio data to be transmitted from the base station 10 to the terminal station 30 can be notified from the beacon signal.
- data transmission voice data of an IP telephone
- the terminal station 30 turns on the power of the communication circuit 40 when the beacon reception time at the standby time comes, and the base station 30 After receiving the beacon signal from 10 and receiving the incoming call signal when there is an incoming call, the operation of turning off the power of the communication circuit 40 is repeated. Also, during a call, when the beacon reception time at the time of the call comes, the power of the communication circuit 40 is turned on, the beacon signal from the base station 10 is received, and after receiving the voice data, the power of the communication circuit 40 is turned off. Turn OFF Repeat the operation. As described above, when the terminal station 30 finishes receiving the signal transmitted from the base station 10, it turns off the power supply of the communication circuit 40 until it is time to receive the next beacon signal. That is, the terminal station 30 turns off the power of the communication circuit 40 when no signal is received.
- the beacon period is set to match the application requiring a shorter beacon period. I do.
- the application terminates the shortest beacon period among other running applications is set to the beacon period that matches the application that needs it.
- FIG. 14 is a sequence diagram showing an operation of changing an beacon period when an IP phone is executed while an email is being executed as an application and the IP phone is terminated first.
- FIG. 15 is a flowchart showing the operation of the terminal-side wireless communication unit 36 when there are a plurality of applications. Note that Figure 15 summarizes the cases of S-mail, streaming, and IP phone applications. [0085]
- the wireless communication system 1 shown in Fig. 2 a case where an IP phone is executed by the application execution unit 34B while the mail is being executed by the application execution unit 34A, and the IP phone is terminated first. explain.
- the terminal station 30 has been described in (1) [IP phone].
- the mail of the application execution unit 34A and the communication of the IP telephone of the application execution unit 34B are performed while changing the beacon period according to the beacon period according to the standby / call state of the IP telephone of the application execution unit 34B.
- the terminal station 30 Timing to receive a beacon signal by optimizing the reception cycle of your beacon By turning off the power supply from the power supply unit 43 to the communication circuit 40, power consumption can be reduced.
- the communication interface unit 35 may hold, for example, a table (not shown) that manages the correspondence between the running application and the beacon cycle requested by the application. Thereby, the communication interface unit 35 can recognize the application that requires the shortest beacon period and can set the beacon period in accordance with the application.
- the power at which the terminal station 30 determines the shortest beacon period may be determined at the base station 10. In this case, the base station 10 is notified of the beacon cycle requested by each application running on the terminal station 30.
- the beacon period is set to a terminal station 30 that requires a shorter beacon period.
- the shortest beacon period among the other terminal stations 30 that are executing the application is set to a beacon period that matches the terminal station 30 that needs it.
- FIG. 16 is a flowchart showing the operation of terminal-side wireless communication section 36 when there are a plurality of terminal stations 30.
- FIG. 17 is a flowchart showing the operation of base station 10 when there are a plurality of terminal stations 30.
- Figures 16 and 17 summarize the cases of application mail, streaming, and IP phone calls.
- the beacon cycle of the base station 10 is performed according to the automatic mail reception check interval of the mail by the processing described in (1) [mail].
- Example: 60sec is set.
- the application execution unit 34B of the terminal station 30B performs the reception check interval when the application execution unit 34B of the terminal station 30B is in the standby state for the IP telephone by the processing described in (1) [IP telephone].
- the communication control unit 15 transmits the beacon requested by the terminal station 30B.
- the cycle is compared with the beacon cycle at that time (SI39) (S140), and a shorter beacon cycle is selected (S141).
- the beacon period in the IP phone standby state is shorter than the e-mail beacon period, so the beacon period in the IP phone standby state is changed.
- the communication control unit 15 transmits a beacon signal notifying the changed beacon period to the terminal stations 30 ⁇ and 30B at the timing of the beacon period before the change, and then transmitting the beacon signal at the timing of the changed beacon period.
- the communication interface unit 35 of the terminal station 30B causes the terminal-side wireless communication unit 36 to transmit the end of the IP telephone application to the base station 10 ( S120).
- the terminal station 30 when the terminal station 30 receives a termination notification from one terminal station 30 when the power is three or more as described in the case of two terminal stations 30, the terminal station 30 communicates with the other terminal stations 30. Determine if you are.
- the communication control unit 15 may manage, for example, a table (not shown) that manages the correspondence between the communicating terminal station 30 and the beacon cycle requested by the terminal station 30. Thereby, the communication control unit 15 can determine the terminal station 30 that requires the shortest beacon period, and can set the beacon period in accordance with the terminal station 30.
- FIG. 18 is a flowchart showing an operation of the terminal-side wireless communication unit 36 when a plurality of terminal stations 30 execute a plurality of applications.
- the communication interface unit 35 transmits the shortest beacon period to the base station 10 when there is an application running on its own station, and transmits an end notification to the base station 10 when there is no application running.
- the flowchart showing the operation of base station 10 in this case is the same as FIG.
- the terminal station 30 sends to the base station 10 information for the base station 10 to determine the beacon period instead of the beacon period (beacon period determination information (Transmission period determination information) will be described.
- the “communication characteristics” include (a) the communication pattern of the application, (b) the state of the application, (c) the type of device to be a terminal station, and (d) ( a) —Depends on the combination of (c). Then, in the wireless communication system 1, the “communication characteristics” and the “type of application” are used as information for determining the beacon period (beacon period determination information).
- FIG. 22 is an example of a management table in which types of applications are associated with beacon transmission periods.
- a management table as shown in FIG. 22 is stored in the communication control unit 15 of the base station 10 in advance. Then, the terminal station 30 transmits to the base station 10 information indicating the type of the application (mail, browser, and the like) executed by the application execution unit 34 as beacon cycle determination information.
- the communication control unit 15 determines and sets the beacon transmission cycle with reference to the management table based on the information indicating the type of application received as the beacon cycle determination information.
- the beacon transmission period is set to 60 seconds when the application type is e-mail and 1 second when the application type is a browser.
- FIG. 23 is an example of a management table in which types of applications and communication patterns are associated with beacon transmission periods.
- the terminal station 30 transmits the information indicating the type of application (such as streaming) executed by the application execution unit 34 and the information indicating the communication pattern (the data rate of streaming playback is 300 Kbps or the like) to the beacon period. It is transmitted to base station 10 as decision information.
- the communication control unit 15 determines and sets the beacon transmission cycle with reference to the management table based on the information indicating the type of application and the communication pattern received as the beacon cycle determination information.
- the beacon transmission cycle is 40msec. Period will be set.
- FIG. 24 is an example of a management table in which types and states of applications are associated with beacon transmission periods.
- a management table as shown in FIG. 24 is stored in advance.
- the terminal station 30 uses the information indicating the type of the application (such as an IP telephone) executed by the application execution unit 34 and the information indicating the state (standby, call, etc.) as the beacon period determination information as the base station 10 Send to
- the communication control unit 15 determines and sets the beacon transmission period based on the information indicating the type and state of the application received as the beacon period determination information, referring to the management table.
- the application type is an IP phone
- the beacon transmission cycle is set to 1 sec when the application is in a standby state and 20 msec for a call.
- FIG. 25 is an example of a management table in which the types of applications and the types of devices of the terminal station 30 are associated with the beacon transmission cycle.
- the communication control unit 15 of the base station 10 stores a management table as shown in FIG. 25 in advance.
- the terminal station 30 receives information indicating the type of application (e.g., mail) executed by the application execution unit 34 and information indicating the type of device of the terminal station 30 (such as a mobile phone, a portable information terminal, or a notebook computer).
- the communication control unit 15 determines and sets the beacon transmission cycle with reference to the management table based on the information indicating the application type and the device type received as the beacon cycle determination information.
- the beacon transmission cycle is set so that the application type is e-mail and the device type is lOsec when the device type is a mobile phone, and 60 sec when the device type is a portable information terminal or laptop computer. Will be done.
- the terminal station 30 transmits a beacon period change request including information for beacon period determination (beacon period determination information) to the base station 10 instead of the beacon period. Can be. Then, as the beacon period determination information, only “application type” may be used, only “communication characteristics” may be used, or both may be used. Of course, the more information, the more accurate the beacon period can be set. [0109] Note that the terminal station according to the present invention communicates information for determining a transmission cycle of a periodic signal (beacon signal) to the transmission cycle setting request means (terminal-side wireless communication unit 36).
- the transmission cycle setting request means is configured to transmit a request for setting a periodic signal transmission cycle notified from the communication interface means to the base station.
- the terminal station may be configured such that the information for determining the periodic signal transmission cycle is the type of application executed in the terminal station. Further, the terminal station may have information communication characteristics for determining a periodic signal transmission cycle. Further, the information for determining the periodic signal transmission cycle of the terminal station may be a combination of the type of application executed in the terminal station and the communication characteristics.
- FIGS. 1 to 4 and FIGS. 19 to 21 Another embodiment of the present invention will be described below with reference to FIGS. 1 to 4 and FIGS. 19 to 21. Note that, for convenience of description, members having the same functions as those described in Embodiment 1 above are given the same reference numerals, and descriptions thereof will be omitted.
- terminal station 30 dynamically changes its beacon reception cycle depending on the type of application executed and / or the communication characteristics (communication pattern or state of the application). Change to That is, it differs from the first embodiment in that the beacon period of base station 10 is not changed.
- the outline and detailed configuration of the wireless communication system 1 are the same as those in FIGS. 1 to 4.
- the communication interface unit 35 (communication interface means) notifies the terminal-side wireless communication unit 36 of a beacon signal reception cycle according to the type and / or communication characteristics of the application executed by the application execution unit 34. .
- the communication interface unit 35 acquires the status of the application being executed by the application execution unit 34, and determines the reception cycle of the beacon signal according to the status.
- the communication interface unit 35 determines a beacon signal reception cycle based on the size of the buffer of the base station 10.
- the communication interface When a plurality of applications are executed by one terminal station 30, the source unit 35 determines the reception cycle of the beacon signal in accordance with the application requiring the shortest cycle.
- the beacon reception cycle is changed only by the processing of the terminal station 30.
- the beacon reception cycle is a multiple of the beacon cycle of the base station 10.
- Base station 10 may transmit the same beacon signal until receiving a reception acknowledgment signal (ACK) from terminal station 30.
- ACK reception acknowledgment signal
- the base station 10 transmits a beacon signal having the same content a plurality of times during the beacon reception cycle of the terminal station 30.
- the base station 10 may set an upper limit on a multiple of the beacon period set by the terminal station 30 in order to limit the number of retransmissions of the same content beacon signal.
- FIG. 19 is a flowchart showing the operation of the terminal-side wireless communication unit 36.
- Figure 19 summarizes the cases where the application is mail, streaming, or IP phone.
- the communication interface unit 35 sets the beacon reception cycle to 60 seconds which is an integral multiple of the beacon transmission cycle of the base station 10 of 100 msec.
- the communication interface unit 35 sets the beacon reception cycle to 500 msec which is an integral multiple of the beacon transmission cycle of the base station 10 of 100 msec. Note that the beacon reception cycle of each terminal station 30 is not notified to the base station 10 or other terminal stations 30.
- the communication interface unit 35 notifies the terminal-side wireless communication unit 36 of the start of the mail application, and transmits the mail. Requests to set the beacon reception cycle at the automatic mail reception check interval (eg, 60 sec) set for the application.
- the automatic mail reception check interval eg, 60 sec
- the communication interface unit 35 determines the beacon reception cycle for which a change request is made as follows.
- the beacon reception cycle suitable for the application is shorter than the default, no change is made (NO in S198). If the beacon reception cycle suitable for the application is not the default integer multiple (for example, 60. Olsec) (NO in S200), set the value to the closest integer multiple of the default and not to exceed the requested value. (S202).
- terminal-side wireless communication section 36 sets the beacon reception cycle in accordance with a request from communication interface section 35. After that, when the beacon reception time comes, the terminal-side wireless communication unit 36 turns on the power of the communication circuit 40, receives the beacon signal from the base station 10, and turns off the power of the communication circuit 40. At this time, if the beacon signal contains information indicating that there is data addressed to the own station, the data is received and passed to the application unit 33 (S190-S192).
- the communication interface unit 35 Upon termination of the S-mail of the user (S196), the communication interface unit 35 sends an application end notification to the terminal side wireless communication unit 36, and returns the beacon reception cycle to the default (before starting the mail) (S199). ).
- the communication interface unit 35 Upon termination of the S-mail of the user (S196), the communication interface unit 35 sends an application end notification to the terminal side wireless communication unit 36, and returns the beacon reception cycle to the default (before starting the mail) (S199).
- the beacon period Tr is changed.
- the communication interface unit 35 changes the reproduction data rate (eg, 480 Kbps) set for the streaming application. At the same time, it notifies the terminal-side wireless communication unit 36 of the activation of the streaming application and requests the base station 10 to notify the free buffer size (S195).
- the communication interface unit 35 calculates the closest beacon among the default integer multiples as described above. Set a value that does not exceed the beacon reception cycle (S198, S200, S201, S202). For example, do not change if the calculated beacon reception cycle is shorter than the default. If the calculated beacon reception cycle is not the default integer multiple, such as 512 msec, set the value to 500 ms ec, which is the closest among the default integer multiples and does not exceed 512 msec.
- the terminal-side wireless communication unit 36 sets the beacon reception cycle in accordance with a request from the communication interface unit 35. After that, when the beacon reception time comes, the terminal-side wireless communication unit 36 turns on the power of the communication circuit 40, receives the beacon signal from the base station 10, and turns off the power of the communication circuit 40. At this time, if the beacon signal contains information indicating that there is data addressed to the own station, the data is received and passed to the application section 33 (S190-S192).
- the communication interface unit 35 sends an application end notification to the terminal side wireless communication unit 36, and returns the beacon reception cycle to the default (before starting streaming) ( S199).
- the beacon reception cycle of the terminal station 30 is a multiple of the beacon cycle of the base station 10.
- the difference from (1) is that the base station 10 determines and notifies the beacon reception cycle of each terminal station 30. Since the transmission cycle of the beacon signal of the base station 10 is constant, it does not affect the other terminal stations 30.
- FIG. 20 is a flowchart showing the operation of the terminal-side wireless communication unit 36.
- FIG. 21 is a flowchart showing the operation of the base station 10.
- Figures 20 and 21 show the application Rules, streaming, and IP phones.
- the beacon reception cycle is set to 60 seconds, which is an integral multiple of the beacon transmission cycle of the base station 10 of 100 msec.
- the communication interface unit 35 sets the beacon reception cycle to 500 msec which is an integral multiple of the beacon transmission cycle of the base station 10 of 100 msec.
- the communication interface unit 35 notifies the terminal side wireless communication unit 36 of the start of the mail application, and the mail
- the base-side wireless communication unit 12 is requested to set the beacon reception cycle to the automatic mail reception check interval (eg, 60 seconds) set for the application (S228, S229).
- the reception control unit 39 confirms that the setting of the beacon period included in the beacon signal is the requested one, and Period (S224). That is, the beacon reception cycle will be 60 seconds from the next time. If the beacon signal contains information indicating that there is data addressed to the own station, the data is received and passed to the application unit 33 (S220-S222). Upon receiving the data from the terminal-side wireless communication unit 36, the application unit 33 outputs the data to the output unit 32.
- the communication interface unit 35 sends an application end notification to the terminal side wireless communication unit 36, and sends the base station 10 the beacon period based on the beacon period (before starting the mail). ) (S230).
- the beacon reception cycle of the terminal station 30A returns to 100 msec.
- the configuration is such that the beacon reception cycle determined by the plurality of terminal stations 30 ... is transmitted to the base station 10, and the beacon signal received from the base station 10 confirms the changed beacon reception cycle. You can also. Thereby, when a plurality of applications are executed by a plurality of terminal stations 30, it is possible to set an optimal beacon reception cycle at a plurality of terminal stations 30, while keeping the beacon cycle of the base station 10.
- the terminal station 30 optimizes the reception cycle of its own beacon according to the communication pattern and state of its own application, thereby reducing the consumption of the terminal station 30. Power can be reduced. Also, the terminal station 30 informs the base station 10 of the communication pattern and status of its own application and optimizes the beacon transmission cycle. Thus, the power consumption of the terminal station 30 can be suppressed. Further, in applications such as streaming playback and IP phone calls, the power consumption of the terminal station 30 can be suppressed by intermittently receiving data without being affected by data loss or delay. In addition, when a plurality of applications are executed or a plurality of terminal stations 30 communicate, the power consumption of the terminal station 30 can be suppressed by optimizing the beacon reception cycle.
- the terminal-side wireless communication unit 36 in the terminal station 30 such as a mobile device can freely perform power saving control. This enables optimal low power consumption control according to the usage of the mopile device.
- the base station 10 shortens the beacon transmission cycle in response to a request from one terminal station 30A, the other terminal station 30B sets its own beacon signal reception cycle to a multiple of the transmission cycle. Change to the optimal length inside.
- the base station 10 accepts requests from all terminal stations in the case of a request to shorten the beacon transmission cycle, but receives the immediately preceding request in the case of a request to change the beacon transmission cycle. Only requests from attached terminal stations are accepted. As a result, communication of the terminal station 30 that is executing in a short beacon transmission cycle is not affected by other terminal stations 30.
- the setting of the beacon transmission cycle of the base station 10 is the same as that described in Embodiment 1 and the setting of the beacon reception cycle of the terminal station 10 is the same as that described in Embodiment 2 above. Detailed description is omitted.
- the other terminal station 30B changes the beacon reception period of its own station to the base station 10 Change to an optimal length within multiples of the beacon transmission cycle.
- FIG. 26 is a flowchart showing the operation of the terminal station 30 when the beacon transmission cycle of the base station 10 is changed to be short.
- the beacon transmission cycle Tb of the base station 10 has been changed short (YES in S261).
- the beacon transmission cycle Tb is not optimal for the application (N ⁇ in S263)
- the beacon reception cycle Tr of the own station is set to an integral multiple of the beacon transmission cycle Tb. Is set to a value that is closest to and does not exceed (S264).
- the other terminal station 30B changes the beacon transmission cycle of the base station 10 to an optimal length for its own station. A request may be issued.
- the terminal station 30A having a long beacon reception cycle changes the beacon reception cycle to an optimum length within a multiple of the beacon transmission cycle of the base station 10 by the above-described processing (FIG. 26), and The beacon receiving cycle can be maintained and power consumption can be suppressed.
- terminal station 30 [0146] The operation of terminal station 30 at this time will be specifically described with reference to FIG. Figure 27 shows the base station
- 10 is a flowchart showing the operation of the terminal station 30 when the beacon transmission cycle of the ten is changed to be long.
- the base station 10 changes the beacon transmission cycle in response to requests from all the terminal stations 30, and the terminal stations 30B other than the terminal station 30A that issued the request transmit the beacon.
- the reception period may be changed to an optimum length among multiples of the beacon transmission period.
- the base station 10 accepts only the request from the terminal station 30A that issued the request to set the current beacon transmission cycle, except in the case of changing from the default, and other than that.
- the request from the terminal station 30B may not be accepted.
- the terminal station 30B which has not received the request to change the beacon transmission cycle longer, sets its own beacon reception cycle to twice the current beacon transmission cycle. If you change to the optimal length among the numbers ,.
- FIG. 28 is a flowchart showing the operation of base station 10 when receiving a request to change the beacon transmission cycle from terminal station 30.
- a change request for shortening the beacon transmission cycle Tb is transmitted to the base station 10 (S291), and thereafter, a response from the base station 10 is received (S292).
- a request to change the beacon transmission period Tb to be longer is transmitted to the base station 10 (S301), and thereafter, a response is received from the base station 10 (S302).
- the beacon reception cycle Tr is set to a value that is closest to and does not exceed the value requested by the base station 10 within an integral multiple of the current beacon transmission cycle Tb. (S304).
- FIG. 31 is a sequence diagram showing the operation of terminal station 30 and base station 10 at this time.
- the terminal station 30A In a state where the beacon transmission cycle of the base station 10 is 100ms (default), the terminal station 30A requests a beacon transmission cycle of 20ms, and the base station 10 receives it (til). Next, the terminal station 30A receives a response indicating that the request is valid from the base station 10 (tl2). At this time, the base station 10 changes the beacon transmission cycle to 20 ms, and all terminal stations Broadcast to 30.
- the other terminal station 30B requests a beacon transmission cycle of 1000 ms, and the base station 10 receives it (tl3).
- the base station 10 invalidates the request because the request is longer than the current beacon transmission cycle and is not a change request from the terminal station 30A that has requested the change to the current beacon transmission cycle.
- the fact is transmitted to the terminal station 30B (tl4).
- the terminal station 30B sets the beacon reception cycle 1000 ms, which is an integral multiple of the current beacon transmission cycle 20 ms.
- the terminal station 30A requests a beacon transmission cycle of 1000 ms, and the base station 10 receives the request (tl5).
- the base station 10 makes the request longer than the current beacon transmission cycle, but since it is a change request from the terminal station 30A that has requested a change to the current beacon transmission cycle, the request is considered valid.
- a message to that effect is transmitted to the terminal station 30A (tl 5).
- the base station 10 changes the beacon transmission cycle to 1000 ms, and broadcasts that effect to all the terminal stations 30.
- the value requested by the terminal station 30A that has issued the request to set the current beacon transmission cycle is longer than the value requested by the other terminal station 30B.
- another terminal station 30B issues a request to change the beacon transmission cycle shorter.
- the state may not be optimal for the other terminal station 30B.
- FIG. 32 is a sequence diagram showing operations of the terminal station 30 and the base station 10.
- Fig. 32 shows a case where another terminal station 30B requests a beacon transmission cycle of 500ms instead of the beacon transmission cycle of 1000ms at tl3 in Fig. 31 (tW).
- the base station 10 invalidates the request because the request is longer than the current beacon transmission cycle and is not a change request from the terminal station 30A that has requested the change to the current beacon transmission cycle. Then, the fact is transmitted to the terminal station 30B (tl4).
- the terminal station 30B receives a response indicating that the change request is invalidated from the base station 10 (tl4), the terminal station 30B transmits the current beacon transmission cycle 2 Set the beacon reception cycle to 500 ms, which is an integral multiple of Oms.
- terminal station 30A requests a beacon transmission period of 1000 ms, and base station 10 receives it (tl5).
- the base station 10 makes a request longer than the current beacon transmission cycle, but since it is a change request from the terminal station 30A that has requested a change to the current beacon transmission cycle, the base station 10 It is valid, and that effect is transmitted to terminal station 30A (tl 5).
- the base station 10 changes the beacon transmission cycle to 1000 ms, and transmits that effect to all the terminal stations 30 by broadcast.
- the terminal station 30B requests the base station 10 for the beacon transmission cycle of 500 ms because the beacon transmission cycle is 100 Oms with respect to the beacon reception cycle of 500 ms (tl7).
- the base station 10 changes the beacon transmission cycle to 500 ms (tl8).
- the optimum beacon for the terminal station 30B is set. It is not in the transmission cycle.
- the base station 10 communicates with another terminal station 30B, and If it is communicating, the beacon transmission cycle requested by the other terminal station 30B is compared with the beacon transmission cycle requested by the terminal station 30A that issued the request for setting the current beacon transmission cycle.
- the beacon transmission cycle is changed to the shorter value, while if communication is not being performed, the beacon transmission cycle is changed to the value requested by the terminal station 30A that issued the request for setting the current beacon transmission cycle. You may do so.
- all the terminal stations 30 can set the optimal beacon reception interval for their own stations, and can suppress power consumption.
- the communication control unit 15 performs the process of selecting the shortest beacon transmission cycle among the terminal stations 30 in communication as described above. Specifically, when receiving a request to change the beacon transmission cycle longer than the current time, the communication control unit 15 determines whether or not the request is from the terminal station 30 that issued the request to change to the current beacon transmission cycle. Judge. If the communication control unit 15 determines that the request is from the terminal station that issued the request to change to the current transmission cycle, the communication control unit 15 changes the beacon transmission cycle according to the request. In addition, communication system The control unit 15 holds the beacon transmission cycle requested by all the terminal stations 30 in communication. Then, the communication control unit 15 selects the shortest value in the beacon transmission periods requested by all the terminal stations 30 that are communicating.
- FIG. 33 is a flowchart showing the operation of base station 10 when receiving a request for changing the beacon transmission cycle from terminal station 30. Note that the flowchart of the terminal station 30 is the same as in FIGS. 29 and 30.
- beacon transmission cycle Tb when there is a beacon transmission cycle Tb requested by another terminal station 30 during communication that is shorter than the newly received beacon transmission cycle Tb (YES in S311 and S312 (NO), responds to the terminal station 30 that the change request is invalid (S286), and changes to the value of the beacon transmission cycle Tb '(S313). As a result, the beacon transmission cycle Tb can be changed to the shortest beacon transmission cycle Tb among the communicating terminal stations 30.
- FIG. 34 is a sequence diagram showing the operations of terminal station 30 and base station 10 at this time.
- terminal station 30A requests a beacon transmission cycle of 20ms, and base station 10 receives it (t21). Next, the terminal station 30A receives a response indicating that the request is valid from the base station 10 (t22). At this time, the base station 10 changes the beacon transmission cycle to 20 ms, and all terminal stations Broadcast to 30.
- the other terminal station 30B requests a beacon transmission cycle of 500ms, and the base station 10 receives it (t23).
- the base station 10 invalidates the request because the request is longer than the current beacon transmission cycle and is not a change request from the terminal station 30A that has requested the change to the current beacon transmission cycle.
- the fact is transmitted to the terminal station 30B (t24).
- the terminal station 30B sets the beacon reception cycle to 500 ms, which is an integral multiple of the current beacon transmission cycle of 20 ms.
- the terminal station 30A requests a beacon transmission cycle of 1000 ms, and the base station 10 receives the request (t25).
- the base station 10 requests that the current beacon transmission period be longer than the current beacon transmission period and that the terminal station 30A has requested a change to the current beacon transmission period. Since there is another terminal station 30B and the beacon transmission cycle 500 ms requested by the terminal station 30B is shorter, the change request from the terminal station 30A is invalidated, and the fact is transmitted to the terminal station 30A ( t26).
- the base station 10 changes the beacon transmission cycle to 500 ms, which is the shortest among the communicating terminal stations 30, and broadcasts the fact to all the terminal stations 30.
- the terminal station 30A sets the beacon reception cycle 1000 ms, which is an integral multiple of the current beacon transmission cycle 500 ms.
- the terminal station according to the present invention is composed of a base station and at least two terminal stations, and notifies the terminal station of the transmission cycle of a periodic signal (beacon signal) transmitted from the base station.
- the terminal station A issues a request to the base station to set a shorter transmission cycle to the base station by the transmission cycle setting request means (terminal side wireless communication unit 36), and the base station receives the request from the terminal station A. If the transmission period of the periodic signal is changed to a shorter period based on the setting request, the reception period for receiving the periodic signal in the terminal stations other than terminal station A is changed by the base station to the periodic signal transmission period.
- It may be configured to include a reception cycle setting means (terminal-side wireless communication unit 36) for setting a multiple of the transmission cycle for transmission.
- the base station when the setting request is a request to change the transmission period of the periodic signal longer than the current one, a request from the terminal station that issued the request to change to the current transmission period.
- a terminal station determining means (communication control unit 15) for determining whether the request is a request may be provided. Further, the base station according to the present invention, when the terminal station determining means determines that the request is from a terminal station that has issued a request to change to the current transmission period, sets the periodic signal transmission period to May be changed.
- the base station determines, by the terminal station determining means, that the request is from a terminal station that has issued a request to change to the current transmission cycle, a terminal other than the terminal station that has issued the request. It has communication judgment means (communication control unit 15) for judging whether or not it is communicating with the terminal station. If the communication judgment means judges that communication with another terminal station is being performed, May be changed to the requested transmission cycle of the shortest value among the terminal stations.
- the wireless communication system changes the beacon cycle according to the communication pattern and status of the application, and also changes the type of the device serving as the terminal station (mobile phone, mobile information terminal, notebook computer, It may be performed according to the combination of the type of device and the type of application.
- the communication interface unit 35 is located between the application unit 33 and the terminal-side wireless communication unit 36 and functions as middleware. Then, the communication interface unit 35 may be configured to be provided for each application, or may be configured to be shared by a plurality of applications (FIG. 2).
- the communication interface unit 35 When the communication interface unit 35 is provided for each application, the communication interface unit 35 can be configured integrally with the application. When configured in this way, the application will be able to add to its normal functionality as an email or streaming app. In other words, the communication interface unit 35 has a function of acquiring the communication pattern and status of the application, and a function of controlling the terminal-side wireless communication unit 36 to change the beacon period based on the application. It becomes.
- the application is a general-purpose application as long as it has only a normal function as a mail application or a streaming application.
- the communication interface unit 35 can be provided in the terminal-side wireless communication unit 36.
- the middleware acquires the communication pattern or state of the application and changes the beacon period. .
- the application operating on the terminal station 30 is not limited to one realized by software, and may be realized by hardware, or realized by a combination of hardware and software. May be performed.
- the wireless communication system includes a base station and a terminal station, and specifies the terminal station from the base station based on a beacon signal periodically transmitted from the base station.
- a wireless communication system for notifying the terminal station of the presence or absence of data to be transmitted and the transmission cycle of the next beacon signal, wherein the terminal station issues a request for setting the transmission cycle of the beacon signal to the base station.
- a means for transmitting (terminal-side wireless communication unit 36) and a means for setting the transmission cycle of the beacon signal based on the setting request (communication control unit 15) at the base station may be provided.
- the request for setting the transmission cycle of the beacon signal may be determined according to a communication pattern of an application executed by a terminal station.
- the request for setting the transmission period of the beacon signal may be determined according to the type of application executed by the terminal station.
- the request for setting the transmission cycle of the beacon signal may be determined according to a state of an application executed by the terminal station.
- the request for setting the transmission cycle of the beacon signal may be determined according to a type of a device serving as a terminal station.
- the request for setting the transmission cycle of the beacon signal is a combination of a type of a device serving as a terminal station and an application to be executed. It may be determined depending on the situation.
- the wireless communication system may include a unit (communication control unit 15) for checking a buffer size of the base station.
- the transmission cycle of the beacon signal may be adjusted to the application that requires the shortest cycle. Further, in the case where there are a plurality of terminal stations, the wireless communication system may adjust the transmission cycle of the beacon signal to a terminal station requiring the shortest cycle. Further, in the wireless communication system, when there are a plurality of terminal stations, the beacon reception cycle of each terminal station may be changed without changing the transmission cycle of the beacon signal of the base station. In the wireless communication system, the beacon reception cycle of the terminal station may be a multiple of the beacon signal transmission cycle of the base station.
- a communication management method in a wireless communication system comprises a base station and a terminal station, and specifies the terminal station from the base station based on a beacon signal periodically transmitted from the base station.
- a communication management method in a wireless communication system for notifying the presence or absence of data to be transmitted and a transmission cycle of the next beacon signal to the terminal station, wherein the terminal station transmits a request for setting the transmission cycle of the beacon signal to the base station.
- a step of setting the transmission period of the beacon signal based on the setting request in the base station, including the step of transmitting to the base station.
- the request for setting the transmission period of the beacon signal may be determined according to a communication pattern of an application executed in the terminal station.
- the request for setting the transmission cycle of the beacon signal may be determined according to a type of an application executed in the terminal station.
- the request for setting the transmission cycle of the beacon signal may be determined according to a state of an application executed in the terminal station.
- the request for setting the transmission cycle of the beacon signal may be determined according to the type of a device serving as a terminal station.
- the request for setting the transmission cycle of the beacon signal may be determined according to a combination of a type of a device serving as a terminal station and an application to be executed.
- the communication management method may check a buffer size of the base station, and determine a request for setting a transmission cycle of the beacon signal according to the buffer size.
- the communication management method described above allows the transmission cycle of the beacon signal to be adjusted to the application requiring the shortest cycle when executing a plurality of applications. Good. Further, in the above communication management method, when there are a plurality of terminal stations, the transmission cycle of the beacon signal may be adjusted to the terminal station requiring the shortest cycle. Further, in the above communication management method, when there are a plurality of terminal stations, the beacon reception cycle of each terminal station may be changed without changing the transmission cycle of the beacon signal of the base station. In the communication management method, the beacon reception cycle of the terminal station may be a multiple of the beacon signal transmission cycle of the base station.
- the terminal station includes a base station and a terminal station, and specifies each terminal station from the base station based on a beacon signal periodically transmitted from the base station.
- a terminal station in a wireless communication system that notifies the specified terminal station of the presence / absence of data to be transmitted and the transmission cycle of the next beacon signal, and sends a request for setting the transmission cycle of the beacon signal to the base station. (Terminal-side wireless communication unit 36).
- the base station includes a base station and a terminal station, and specifies the terminal station from the base station based on a beacon signal periodically transmitted from the base station. Means for setting the transmission cycle of the beacon signal based on the setting request, wherein the base station in the wireless communication system notifies the terminal station of the presence / absence of data to be transmitted and the transmission cycle of the next beacon signal.
- the communication control unit 15 is provided.
- the terminal station is a terminal station in a wireless communication system that includes a base station and a terminal station, and performs communication between the base station and the terminal station, and that performs communication control.
- a control instruction unit (communication interface unit 35) for issuing a control instruction to the unit (terminal side wireless communication unit 36) may be provided.
- the terminal station may be instructed by the control instruction means according to a communication pattern of an application executed by the terminal station.
- the instruction by the control instruction means may be determined according to the type of application executed by the terminal station.
- the instruction by the control instruction means may be determined according to the state of an application executed by the terminal station.
- the terminal station may be instructed by the control instructing means in accordance with the type of the device serving as the terminal station. Further, the terminal station may be determined by the control instruction means according to a combination of a type of a device serving as the terminal station and an application to be executed.
- the wireless communication system is a wireless communication system that includes a base station and a terminal station, and performs communication between the base station and the terminal station.
- a terminal station communication control unit terminal side wireless communication unit 36 for performing control for performing communication, and a control instruction unit (communication interface unit 35) for issuing a control instruction to the terminal station communication control unit.
- a base station communication control means control unit 13 for controlling communication with the terminal station, and a means for controlling the base station communication control means based on an instruction from the control instruction means of the terminal station (communication control 15).
- the instruction by the control instruction means may be determined according to a communication pattern of an application executed in the terminal station.
- the instruction by the control instruction means may be determined according to the type of the application executed in the terminal station.
- the instruction by the control instruction means may be determined according to the state of an application executed by the terminal station.
- the instruction by the control instruction means may be determined according to the type of a device serving as a terminal station.
- the instruction by the control instruction unit may be determined according to a combination of a type of a device serving as a terminal station and an application to be executed.
- the wireless communication system may include a unit (communication control unit 15) for checking a buffer size of the base station.
- an object of the present invention is to provide a communication management program (a control program for the base station 10 and a control program for the terminal station 30) which is software for realizing the above-described functions.
- a source program is supplied to a system or device by a computer, and a computer (or CPU, MPU, or DSP) of the system or device is recorded on the recording medium by a program code.
- a computer or CPU, MPU, or DSP
- the program code itself read from the recording medium realizes the above-described function, and the recording medium on which the program code is recorded constitutes the present invention.
- the communication control unit 15 of the base station 10 executes a predetermined program stored in a memory (not shown) of the base station 10 by executing the predetermined program by a microprocessor or the like of the base station 10. Is achieved.
- the communication interface unit 35, the transmission control unit 37, and the reception control unit 39 of the terminal station 30 execute a predetermined program stored in a memory (not shown) of the terminal station 30 by a microprocessor of the terminal station 30 or the like. It is realized by executing.
- the recording medium for supplying the program code can be configured to be separable from the system or the device. Further, the recording medium may be a medium that fixedly carries the program code so that the program code can be supplied.
- the recording medium may be a program reading device connected to the system or the device as an external storage device, even if the recording medium is mounted on the system or the device so that the computer can directly read the recorded program code. It may be mounted so that it can be read through.
- the recording medium includes tapes such as a magnetic tape and a cassette tape, magnetic disks such as a floppy (registered trademark) disk / hard disk, and CD-ROM / MO / MD / DVD / CD-R.
- the program code is recorded so that the computer can read out from the recording medium and directly execute the program code. After the program code is transferred from the recording medium to the program storage area of the main memory, It may be recorded so that the computer can read out from the main memory and execute it.
- the system or the device may be configured to be connectable to a communication network, and the program code may be supplied via the communication network.
- the communication network is not particularly limited. Specifically, the Internet, intranet, extranet, LAN, ISDN, VAN, CATV communication network, virtual private network, telephone line network, and mobile network A body communication network, a satellite communication network, or the like can be used.
- the transmission medium that constitutes the communication network is not particularly limited, and specific examples include IEEE1394, USB, power line carrier, cable TV line, telephone line, ADSL line, and other wired media such as IrDA and remote control. Infrared, Bluetooth (registered trademark), 802.11 wireless, HDR, mobile phone network, satellite line, terrestrial digital network, etc., can also be used.
- the present invention can also be realized in the form of a carrier wave or a data signal sequence in which the program code is embodied by electronic transmission.
- a program for reading the program code from the recording medium and storing the program code in the main storage is provided.
- the program for downloading the program code from the program and the communication network shall be stored in a system or apparatus which is executable by a computer.
- the program code read from the recording medium is written in a memory provided in a function expansion board mounted on a computer or a function expansion unit connected to the computer. After that, based on the instructions of the program code, the CPU provided in the function expansion board or the function expansion unit performs part or all of the actual processing.
- the communication system according to the present invention is a communication system that notifies a terminal station of a transmission cycle of a periodic signal transmitted from a base station.
- the periodic signal is a signal periodically transmitted from the base station to the terminal station in order to control communication between the base station and the terminal station.
- a "beacon signal" It is called.
- the periodic signal transmission cycle is transmitted at least when a notification request is sent from the terminal station to the base station. This transmission cycle may be transmitted by being included in the periodic signal, or may be transmitted separately by a signal for notification.
- the periodic signal may include information indicating whether there is data to be transmitted from the base station to the terminal station.
- the period of the periodic signal transmitted from the base station can be controlled from the terminal station.
- the terminal station can optimize the periodic signal reception cycle according to its own situation. Therefore, power supply to the communication circuit can be turned off until the terminal station receives a periodic signal, and power consumption can be reduced.
- periodic signal transmission is performed according to the device that is the terminal station or the application that the terminal station executes. By dynamically changing the signal cycle and setting it to an optimal value, it becomes possible to respond quickly and reduce power consumption.
- the communication system is characterized in that, in said terminal station, an application executing means for executing an application for communicating with the outside via said base station, and an application executing in said abbreviation executing means.
- Communication interface means for notifying the transmission cycle setting request means of the periodic signal transmission cycle according to the type and / or communication characteristics of the communication cycle, and the transmission cycle setting request means is provided by the communication interface means. The notified request for setting the periodic signal transmission cycle may be transmitted to the base station.
- the “communication characteristics” include (a) the communication pattern of the application, (b) the state of the application, (c) the type of device to be a terminal station, and (d) (a)-(c) It depends on the combination, etc.
- the “communication characteristics” and “application type” are used as information (transmission cycle determination information) for determining the periodic signal transmission cycle. For example, in the case of S-mail, which is the type of application, the automatic mail reception check interval set by the user is a factor that determines communication characteristics. If the type of application is streaming, the data rate of streaming playback and the buffer size of the base station are factors that determine communication characteristics. If the type of application is an IP phone, the reception check interval in the standby state and the packet transmission interval in the call state are factors that determine the communication characteristics.
- the terminal station when the application is mail, the terminal station requests the base station to change to a transmission cycle that matches the automatic mail reception check interval set in the application. As a result, the terminal station can perform intermittent reception with a minimum period required for checking reception of mail. Therefore, by optimizing the period for receiving the periodic signal, the terminal station can turn off the power supply to the communication circuit until the timing for receiving the periodic signal, thereby suppressing power consumption.
- the communication is conventionally always performed in a communication state. However, according to the communication system, a periodic signal transmission cycle is performed so as not to be affected by data failure or delay. , It is possible to intermittently receive data by setting a period during which communication is not performed. Therefore, power consumption can be reduced.
- the communication interface unit acquires a state of an application executed by the application execution unit, and transmits the period of the periodic signal transmission according to the state. May be determined.
- the terminal station can optimize the period of receiving a periodic signal according to the state of the application. Therefore, power consumption can be reduced according to the state of the application.
- the terminal station sets a transmission cycle of, for example, lsec during standby, and a value that does not have a delay effect according to the packet transmission interval during a call (eg, 20 msec). Set to.
- the terminal station can perform intermittent reception according to the packet transmission interval. Therefore, by optimizing the period for receiving the periodic signal, the terminal station can turn off the power supply to the communication circuit until the timing for receiving the periodic signal to reduce the power consumption during a call. it can.
- the terminal station by detecting the on-hook operation by the user, it is possible to detect that the user is in a call state.
- the communication interface means may determine the periodic signal transmission cycle based on a buffer size of the base station.
- the terminal station can optimize the periodic signal reception period even in an application that uses the buffer of the base station during data transmission, such as streaming playback. . Therefore, power consumption can be reduced according to the size of the buffer of the base station.
- the terminal station when the application is streaming, the terminal station obtains the buffer size of the base station, calculates the longest transmission cycle at which data reproduction does not break down from the data rate and buffer size of streaming reproduction, and obtains it. Request the base station to change to the specified transmission cycle. As a result, the terminal station can perform intermittent reception at a period that does not cause data failure. Shi Therefore, the terminal station optimizes the period for receiving the periodic signal, thereby turning off the power supply to the communication circuit until the timing for receiving the periodic signal to reduce the power consumption during streaming playback. be able to.
- the communication interface means adjusts the periodic signal transmission cycle to an application requiring the shortest cycle. May be determined.
- the terminal station optimizes the period for receiving the periodic signal, and thus, until the timing for receiving the periodic signal. By turning off the power supply to the communication circuit, power consumption can be reduced.
- the transmission cycle setting means determines the periodic signal transmission cycle in accordance with the terminal station requiring the shortest cycle. It may be.
- the communication circuit is optimized until the timing of receiving the periodic signal by optimizing the period of receiving the periodic signal. By turning off the power supply, power consumption can be reduced.
- the base station notifies the transmission cycle setting request means of transmission cycle determination information for determining the transmission cycle of the periodic signal.
- Communication interface means wherein the transmission cycle setting request means sends the periodic signal transmission cycle setting request to the base station, including the transmission cycle determination information notified from the communication interface means. It is something to send.
- transmission cycle determination information can be further transmitted from the terminal station, and the base station can determine a periodic signal transmission cycle based on the transmission cycle determination information. Therefore, it is not necessary for the terminal station to determine a periodic signal transmission cycle, and the configuration of the terminal station is simplified.
- the “application type” and Z or “communication characteristics” that are executed in the terminal station can be used.
- the “communication characteristics” include (a) the communication pattern of the application, (b) the state of the application, (c) the type of device to be a terminal station, (d) It depends on the combination of (a)-(c).
- the communication system wherein the terminal station includes application executing means for executing an application for performing communication with the outside via the base station, and the transmission cycle determination information includes the application execution means.
- the base station can further determine the periodic signal transmission cycle according to the type of application being executed in the terminal station and / or the communication characteristics.
- the base station according to the present invention is a base station in a communication system for notifying a terminal station of a transmission cycle of a periodic signal transmitted from the base station, and A transmission cycle setting means for changing the periodical signal transmission cycle based on a request for setting a signal transmission cycle.
- the terminal station according to the present invention is a terminal station in a communication system for notifying a terminal station of a transmission cycle of a periodic signal transmitted from a base station, and And a transmission cycle setting requesting unit for transmitting the setting request to the base station.
- the terminal station includes a communication interface means for notifying the transmission cycle setting request means of transmission cycle determination information for the base station to determine a transmission cycle of the periodic signal.
- the transmission cycle setting request means for transmitting the periodic signal transmission cycle setting request to the base station, including the transmission cycle determination information notified from the communication interface means. It may be.
- the terminal station comprises: an application executing means for executing an application for communicating with the outside via the base station; a type of application executed by the application executing means; Or a communication interface means for notifying the transmission cycle setting request means of the periodic signal transmission cycle according to the communication characteristics, wherein the transmission cycle setting request means is notified by the communication interface means.
- a request for setting a periodic signal transmission cycle may be transmitted to the base station.
- the terminal station according to the present invention turns on the power supply of the communication circuit at the timing of receiving the periodic signal, and when the terminal station has finished receiving the signal transmitted from the base station, the terminal station of the communication circuit starts to operate. The power supply may be turned off.
- the communication management method is a communication management method by a communication system for notifying a terminal station of a periodic transmission period of a signal transmitted from a base station.
- Transmission cycle setting request step of transmitting a request for setting a periodic signal transmission cycle to the base station, and the base station changes the periodic signal transmission cycle based on the setting request received from the terminal station
- the method may include a transmission cycle setting step.
- the terminal station transmits transmission cycle determination information for the base station to determine the periodic signal transmission cycle.
- the base station transmits in the transmission cycle setting step, the base station determines the periodic signal transmission cycle based on the transmission cycle determination information. It may be.
- the communication management method according to the present invention is characterized in that the terminal station transmits the periodic signal according to a type and / or a communication characteristic of a running application that communicates with the outside via the base station.
- the method may include a transmission cycle determination step of determining a transmission cycle.
- the terminal station according to the present invention is a terminal station in a communication system in which a periodic signal is transmitted from the base station to the terminal station.
- the base station is provided with a reception cycle setting means for setting the transmission cycle to a multiple of the transmission cycle for transmitting the periodic signal.
- the base station may transmit the same periodic signal until receiving a reception confirmation signal (ACK) from the terminal station.
- ACK reception confirmation signal
- the base station transmits a periodic signal having the same content a plurality of times during the reception cycle of the terminal station.
- the terminal station comprises: an application executing means for executing an application for communicating with the outside via the base station; and a type and / or type of the application executed by the application executing means. Or a communication interface means for notifying the reception cycle setting means of the periodic signal reception cycle according to the communication characteristics.
- the “communication characteristics” include (a) the communication pattern of the application, (b) the state of the application, (c) the type of the device to be the terminal station, and (d) (a)-(c) It depends on the combination, etc.
- the “communication characteristics” and “application type” are used as information (transmission cycle determination information) for determining the periodic signal transmission cycle. For example, in the case of S-mail, which is the type of application, the automatic mail reception check interval set by the user is a factor that determines communication characteristics. If the type of application is streaming, the data rate of streaming playback and the buffer size of the base station are factors that determine communication characteristics. If the type of application is an IP phone, the reception check interval in the standby state and the packet transmission interval in the call state are factors that determine the communication characteristics.
- the terminal station when the application is mail, the terminal station requests the base station to change to a reception cycle that matches the automatic mail reception check interval set in the application. As a result, the terminal station can perform intermittent reception with a minimum period required for checking reception of mail. Therefore, the terminal station optimizes its own reception cycle, The power supply to the communication circuit can be turned off until the timing of receiving a proper signal, thereby reducing power consumption.
- the communication system has always been executed in the communication state.
- the terminal station transmits the signal periodically to prevent the influence of data failure or delay. It is possible to set intermittent data reception by setting a period for receiving data and providing a period during which communication is not performed. Therefore, power consumption can be reduced.
- the communication interface means acquires the status of the application being executed by the application execution means, and receives the period of the periodic signal reception according to the status. May be determined.
- the terminal station can optimize its own reception cycle according to the state of the application. Therefore, power consumption can be reduced according to the state of the application.
- the terminal station sets a reception cycle of, for example, lsec during standby, and a value that does not affect the delay according to the packet transmission interval during a call (eg, 20 msec). Set to.
- the terminal station can perform intermittent reception according to the packet transmission interval. Therefore, by optimizing its own reception cycle, the terminal station can turn off the power supply to the communication circuit until the timing of receiving a periodic signal, thereby reducing power consumption during a call. .
- the terminal station by detecting the on-hook operation by the user, it is possible to detect that the user is in a call state.
- the communication interface means may determine the periodic signal reception cycle based on a buffer size of the base station.
- the terminal station can optimize its own reception cycle even in the case of an application that uses the buffer of the base station during data transmission, such as streaming playback. Therefore, power consumption can be reduced according to the size of the buffer of the base station.
- the terminal station when the application is streaming, the terminal station obtains the buffer size of the base station, and performs data playback based on the data rate and buffer size of streaming playback. The longest reception cycle that does not fail is calculated, and a change to the obtained reception cycle is requested to the base station. As a result, the terminal station can perform intermittent reception at a period that does not cause data failure. Therefore, by optimizing its own reception cycle, the terminal station can turn off the power supply to the communication circuit until the timing of receiving the periodic signal to reduce the power consumption during streaming playback. it can.
- the terminal interface according to the present invention when the communication interface means executes a plurality of applications in one terminal station, the terminal interface according to the present invention adjusts the periodic signal reception cycle to an application requiring the shortest cycle. May be determined.
- the terminal station optimizes its own reception cycle, thereby reducing the power to the communication circuit until the timing of receiving a periodic signal. By turning off the power supply, power consumption can be reduced.
- the terminal station according to the present invention is a terminal station in a communication system in which a periodic signal is transmitted from the base station to the terminal station. Is provided with a reception cycle setting means for setting the transmission cycle to a multiple of the transmission cycle for transmitting the periodic signal.
- the terminal station can turn on the power supply of the communication circuit only during a period in which communication with the base station is performed, thereby achieving low power consumption.
- the communication management method according to the present invention is a communication management method by a communication system in which a periodic signal is transmitted from a base station to a terminal station, and the terminal station receives the periodic signal.
- the receiving cycle may be set to a multiple of the transmitting cycle at which the base station transmits the periodic signal.
- the communication management method according to the present invention is characterized in that, in the terminal station, the periodic signal is transmitted in accordance with the type and / or communication characteristics of an application being executed that communicates with the outside via the base station.
- the method may include a receiving cycle determining step of determining a receiving cycle.
- the communication system is a communication system that includes a base station and at least two terminal stations, and notifies a terminal station of a transmission cycle of a periodic signal transmitted from the base station.
- the request for setting the periodic signal transmission cycle is sent to the base station.
- Transmission cycle setting request means for transmitting a signal to the base station
- a base station comprising transmission cycle setting means for changing a transmission cycle of the periodic signal based on the setting request received from the terminal station.
- the station receives the periodic signal when a transmission cycle at which the base station transmits the periodic signal is shorter than an appropriate reception cycle at which the terminal station should receive the periodic signal. It may be configured to include a reception cycle setting unit that sets a reception cycle to a multiple of a transmission cycle in which the base station transmits the periodic signal.
- a terminal station issues a request to the base station to set a shorter transmission cycle than the current one, and the base station shortens the periodic signal transmission cycle based on the setting request received from the terminal station. Even if it is changed, other terminal stations set the reception cycle for receiving the periodic signal to a multiple of the transmission cycle for the base station to transmit the periodic signal, The timing for receiving an appropriate signal can be adjusted appropriately.
- the transmission cycle setting means of the base station changes the transmission cycle of the periodic signal in response to the setting request received from the terminal station to be longer than the current time. At this time, it is determined whether or not the terminal station and the terminal station that issued the setting request to change to the current transmission cycle are the same terminal station. If the terminal station is the same terminal station, the periodic transmission cycle of the above signal is determined. May be changed.
- the transmission cycle setting means of the base station includes: If the terminal station that has issued the setting request to change the cycle is the same terminal station, the cycle may be changed to the shortest transmission cycle received from the communicating terminal station.
- the communication device is a communication device that transmits a periodic signal, and changes the periodic signal transmission period based on a transmission period setting request. May be.
- the communication device may be a communication device that receives a periodic signal, and may transmit the request for setting the transmission period of the periodic signal.
- the communication device is a communication device that receives a periodic signal, and sets the reception cycle for receiving the periodic signal to a multiple of the period of the periodic signal. It may be something.
- the base station, the terminal station, and the communication device can be realized by a computer
- the above devices can be realized by a computer by operating the computer as the above means.
- the control program (communication management program) for each of the above-described devices and a computer-readable recording medium that records the program are also included in the scope of the present invention.
- the communication system of the present invention can optimally set the cycle of receiving a beacon signal in a terminal station according to the type of application and Z or communication characteristics (communication pattern, communication status, etc.). It can be suitably used for wireless communication systems such as wireless LAN using telephones, portable information terminals, notebook computers, and portable TVs. Further, the communication system of the present invention is also applicable to a wired communication system.
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Abstract
Description
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Applications Claiming Priority (8)
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JP2004151031A JP3701663B2 (ja) | 2003-09-30 | 2004-05-20 | 通信システム、端末局、通信管理方法、制御プログラムおよびそれを記録したコンピュータ読み取り可能な記録媒体 |
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US10/921,984 | 2004-08-20 | ||
US10/921,984 US7586864B2 (en) | 2003-09-30 | 2004-08-20 | Communication system, base station, terminal, communication device, communication management method, control program, and computer-readable recording medium containing the same |
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Cited By (4)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JP2008016974A (ja) * | 2006-07-03 | 2008-01-24 | Sony Computer Entertainment Inc | 通信装置、通信中継装置およびゲーム装置 |
JP2012513162A (ja) * | 2008-12-18 | 2012-06-07 | マイクロソフト コーポレーション | 複数のアプリケーションによる制御をサポートする無線アクセスポイント |
US8619666B2 (en) | 2006-09-21 | 2013-12-31 | Sony Corporation | Wireless communications system and wireless communications device |
JP2014529818A (ja) * | 2011-08-30 | 2014-11-13 | サムスン エレクトロニクスカンパニー リミテッド | 端末及びその端末におけるアプリケーション管理方法 |
Families Citing this family (44)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
EP2330778A3 (en) * | 2004-08-12 | 2011-11-02 | Interdigital Technology Corporation | Method and system for controlling access to a wireless communication medium |
JP4415789B2 (ja) * | 2004-08-20 | 2010-02-17 | 株式会社日立製作所 | 無線通信システム |
JP4310253B2 (ja) * | 2004-09-21 | 2009-08-05 | キヤノン株式会社 | 通信装置及び通信方法 |
KR100713145B1 (ko) * | 2005-02-18 | 2007-05-02 | 삼성전자주식회사 | 무선 센서 네트워크에서의 전력소모를 최소화하는 네트워크형성방법 |
JP4335181B2 (ja) * | 2005-07-27 | 2009-09-30 | シャープ株式会社 | センサネットワークシステム及びそのセンサデバイス制御方法 |
US7583984B2 (en) * | 2005-08-12 | 2009-09-01 | Lg Electronics Inc. | Method of providing notification for battery power conservation in a wireless system |
JP2007081836A (ja) * | 2005-09-14 | 2007-03-29 | Toshiba Corp | 無線通信装置、無線通信方法及び無線通信プログラム |
JP4640812B2 (ja) * | 2005-09-29 | 2011-03-02 | 株式会社エヌ・ティ・ティ・ドコモ | 無線通信装置及び無線通信方法 |
US7500119B2 (en) * | 2005-12-21 | 2009-03-03 | Intel Corporation | Power saving techniques for use in communication systems, networks, and devices |
US7916687B2 (en) * | 2006-03-03 | 2011-03-29 | Qualcomm Incorporated | Standby time improvements |
US8880104B2 (en) * | 2006-03-03 | 2014-11-04 | Qualcomm Incorporated | Standby time improvements for stations in a wireless network |
EP1993311B1 (en) * | 2006-03-08 | 2014-12-17 | NEC Corporation | Mobile communication terminal, communication system, communication method, and control program |
US8270932B2 (en) | 2006-03-28 | 2012-09-18 | Samsung Electronics Co., Ltd. | Method and apparatus for discontinuous reception of connected terminal in a mobile communication system |
US8185726B2 (en) * | 2006-04-27 | 2012-05-22 | Qualcomm Incorporated | Sleep optimization based on system information block scheduling |
US8433374B2 (en) | 2006-04-27 | 2013-04-30 | Qualcomm Incorporated | Method and system for selecting a sleep interval to improve battery life |
WO2007144956A1 (ja) | 2006-06-16 | 2007-12-21 | Mitsubishi Electric Corporation | 移動体通信システム及び移動端末 |
KR101499118B1 (ko) * | 2006-09-14 | 2015-03-05 | 마벨 월드 트레이드 리미티드 | 애드혹 네트워크 절전 시스템 및 방법 |
JP4634524B2 (ja) * | 2007-09-18 | 2011-02-16 | 株式会社エヌ・ティ・ティ・ドコモ | 報知情報送信方法、無線基地局及び移動局 |
US8090963B2 (en) * | 2008-02-19 | 2012-01-03 | Research In Motion Limited | Automated power management of a peripheral device |
EP2395810A1 (en) * | 2009-02-06 | 2011-12-14 | NTT DoCoMo, Inc. | Mobile terminal and mobile terminal data relay method |
JP5574618B2 (ja) * | 2009-05-11 | 2014-08-20 | キヤノン株式会社 | 通信装置、通信装置の制御方法およびプログラム |
US9306813B2 (en) | 2009-12-23 | 2016-04-05 | Apple Inc. | Efficient service advertisement and discovery in a peer-to-peer networking environment with cooperative advertisement |
CN101801072B (zh) * | 2010-02-02 | 2012-09-05 | 华为终端有限公司 | 提供低功耗服务的方法和设备及通信系统 |
JP5488062B2 (ja) * | 2010-03-10 | 2014-05-14 | 株式会社リコー | 無線通信装置及び無線通信方法 |
JP5438212B2 (ja) | 2010-04-30 | 2014-03-12 | 富士通株式会社 | 情報処理装置及び消費電力管理プログラム |
JP2012004881A (ja) * | 2010-06-17 | 2012-01-05 | Ricoh Co Ltd | 無線通信装置及び方法 |
CN102076065B (zh) | 2010-11-19 | 2013-04-24 | 华为终端有限公司 | 一种数据交互的方法及装置 |
WO2012081079A1 (ja) | 2010-12-13 | 2012-06-21 | 富士通株式会社 | 情報処理装置、電力制御方法、および電力制御プログラム |
JP5614347B2 (ja) * | 2011-03-18 | 2014-10-29 | 富士通株式会社 | 情報処理装置、電力制御方法、および電力制御プログラム |
US10504360B2 (en) | 2011-04-08 | 2019-12-10 | Ross Gilson | Remote control interference avoidance |
WO2012159188A1 (en) * | 2011-05-20 | 2012-11-29 | Research In Motion Limited | Hybrid automatic repeat request using multiple receiver- coordinated transmitters |
US9351176B2 (en) * | 2012-01-09 | 2016-05-24 | Qualcomm Incorporated | Phase and amplitude tracking in the presence of a walking pilot signal |
US10321512B2 (en) | 2012-08-03 | 2019-06-11 | Huawei Device Co., Ltd. | Service control method, terminal, and network device |
US9183110B2 (en) * | 2012-11-26 | 2015-11-10 | Google Inc. | Centralized dispatching of application analytics |
US9270109B2 (en) * | 2013-03-15 | 2016-02-23 | Schweitzer Engineering Laboratories, Inc. | Exchange of messages between devices in an electrical power system |
US9065763B2 (en) | 2013-03-15 | 2015-06-23 | Schweitzer Engineering Laboratories, Inc. | Transmission of data over a low-bandwidth communication channel |
US9620955B2 (en) | 2013-03-15 | 2017-04-11 | Schweitzer Engineering Laboratories, Inc. | Systems and methods for communicating data state change information between devices in an electrical power system |
KR102280465B1 (ko) * | 2013-06-14 | 2021-07-22 | 삼성전자 주식회사 | 단말 및 그 단말에서 애플리케이션 동기화 방법 |
US9585097B2 (en) | 2014-03-21 | 2017-02-28 | Apple Inc. | Synchronized low-energy detection technique |
US20150372919A1 (en) * | 2014-06-20 | 2015-12-24 | Qualcomm Incorporated | Systems and methods for enhanced signaling for beacon load reduction |
CN104283579A (zh) * | 2014-10-21 | 2015-01-14 | 成都天奥信息科技有限公司 | 一种双频段手持式对空电台 |
JP6832794B2 (ja) * | 2017-06-05 | 2021-02-24 | ルネサスエレクトロニクス株式会社 | 無線通信システム |
US10819727B2 (en) | 2018-10-15 | 2020-10-27 | Schweitzer Engineering Laboratories, Inc. | Detecting and deterring network attacks |
US11991649B2 (en) * | 2021-08-18 | 2024-05-21 | Charter Communications Operating, Llc | Power budget control via wireless communication management |
Citations (6)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JP2002369255A (ja) * | 2001-06-08 | 2002-12-20 | Sony Corp | 無線通信方法、無線通信システム、並びに無線伝送装置 |
JP2003060652A (ja) * | 2001-04-27 | 2003-02-28 | Matsushita Electric Ind Co Ltd | 無線伝送装置 |
JP2003087856A (ja) * | 2001-06-28 | 2003-03-20 | Sony Corp | 無線基地局、無線端末、通信方法およびプログラム |
JP2003110582A (ja) * | 2001-10-01 | 2003-04-11 | Matsushita Electric Ind Co Ltd | 間欠通信方法及び間欠通信装置 |
JP2004128949A (ja) * | 2002-10-03 | 2004-04-22 | Nec Corp | 無線端末装置及びそれを用いた無線通信システム |
JP2004260386A (ja) * | 2003-02-25 | 2004-09-16 | Nec Corp | 無線端末装置および無線通信システム |
Family Cites Families (8)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JPH05327586A (ja) | 1991-04-30 | 1993-12-10 | Nippon Telegr & Teleph Corp <Ntt> | 間欠受信方式 |
US5509035A (en) * | 1993-04-14 | 1996-04-16 | Qualcomm Incorporated | Mobile station operating in an analog mode and for subsequent handoff to another system |
JP3629077B2 (ja) | 1995-12-08 | 2005-03-16 | 富士通株式会社 | 無線通信システム,無線通信システム用基地局および間欠電源投入型移動局 |
US5768257A (en) * | 1996-07-11 | 1998-06-16 | Xylan Corporation | Input buffering/output control for a digital traffic switch |
US5963870A (en) * | 1997-03-26 | 1999-10-05 | Nortel Networks Corporation | Process for switching between IS-95 forward power control and fast forward power control |
FR2809554B1 (fr) | 2000-05-23 | 2002-08-16 | Mitsubishi Electric Telecom Eu | Procede de synchronisation d'au moins une station mobile dans un reseau de telecommunication mobile ayant une structure de canal de synchronisation modifiee |
US7778281B2 (en) * | 2001-04-27 | 2010-08-17 | Panasonic Corporation | Wireless communication apparatus |
JP2003124940A (ja) | 2001-10-19 | 2003-04-25 | Fujitsu General Ltd | 無線lanシステム |
-
2004
- 2004-08-20 US US10/921,984 patent/US7586864B2/en not_active Expired - Fee Related
- 2004-09-29 WO PCT/JP2004/014249 patent/WO2005039228A1/ja active Application Filing
Patent Citations (6)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JP2003060652A (ja) * | 2001-04-27 | 2003-02-28 | Matsushita Electric Ind Co Ltd | 無線伝送装置 |
JP2002369255A (ja) * | 2001-06-08 | 2002-12-20 | Sony Corp | 無線通信方法、無線通信システム、並びに無線伝送装置 |
JP2003087856A (ja) * | 2001-06-28 | 2003-03-20 | Sony Corp | 無線基地局、無線端末、通信方法およびプログラム |
JP2003110582A (ja) * | 2001-10-01 | 2003-04-11 | Matsushita Electric Ind Co Ltd | 間欠通信方法及び間欠通信装置 |
JP2004128949A (ja) * | 2002-10-03 | 2004-04-22 | Nec Corp | 無線端末装置及びそれを用いた無線通信システム |
JP2004260386A (ja) * | 2003-02-25 | 2004-09-16 | Nec Corp | 無線端末装置および無線通信システム |
Cited By (5)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JP2008016974A (ja) * | 2006-07-03 | 2008-01-24 | Sony Computer Entertainment Inc | 通信装置、通信中継装置およびゲーム装置 |
US9025513B2 (en) | 2006-07-03 | 2015-05-05 | Sony Corporation | Communication apparatus |
US8619666B2 (en) | 2006-09-21 | 2013-12-31 | Sony Corporation | Wireless communications system and wireless communications device |
JP2012513162A (ja) * | 2008-12-18 | 2012-06-07 | マイクロソフト コーポレーション | 複数のアプリケーションによる制御をサポートする無線アクセスポイント |
JP2014529818A (ja) * | 2011-08-30 | 2014-11-13 | サムスン エレクトロニクスカンパニー リミテッド | 端末及びその端末におけるアプリケーション管理方法 |
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US20050085279A1 (en) | 2005-04-21 |
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