WO2009119857A1 - 無線通信システム、移動局、基地局、無線通信方法 - Google Patents
無線通信システム、移動局、基地局、無線通信方法 Download PDFInfo
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- WO2009119857A1 WO2009119857A1 PCT/JP2009/056398 JP2009056398W WO2009119857A1 WO 2009119857 A1 WO2009119857 A1 WO 2009119857A1 JP 2009056398 W JP2009056398 W JP 2009056398W WO 2009119857 A1 WO2009119857 A1 WO 2009119857A1
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- base station
- mobile station
- handover
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W36/00—Hand-off or reselection arrangements
- H04W36/04—Reselecting a cell layer in multi-layered cells
Definitions
- the present invention relates to a radio communication system, a mobile station, a base station, and a radio communication method for executing a handover between a micro cell base station and a macro cell base station in a communication environment in which the micro cell and the macro cell are overlapped.
- a wireless communication system such as PHS (Personal Handy Phone system) that divides a communication area into a plurality of microcells, provides a base station for each microcell, and performs wireless communication within the communication area
- the microcells straddle the microcells. It is difficult to maintain communication quality because so-called handovers frequently occur when base stations to be communicated change due to movement.
- handover between microcell base stations is not in time and call disconnection has occurred.
- a technique in which a micro cell and a macro cell are provided in a communication area so as to overlap each other and a cell is selected according to the communication status at that time (for example, Japanese Patent Application Laid-Open No. 2004-535143). Also disclosed is a technique for calculating the mobile station speed using a micro cell stay period (for example, Japanese Patent Laid-Open No. 9-139974) and a speed sensor, and switching between the micro cell and the macro cell according to the speed. .
- the above-described conventional technology requires a special program for measuring the stay period and special electronic equipment such as a speed sensor in order to grasp the speed of the mobile station.
- special electronic equipment such as a speed sensor
- complicated calculation processing is required to calculate a one-way scalar amount from a three-axis speed sensor, which has been a major obstacle to cost reduction, size reduction, and weight reduction of the mobile station.
- PHS Personal Handy Phone System
- ARIB Association of Radio Industries and Businesses
- PHS MoU Morandum of Understanding
- an OFDM Orthogonal Frequency Division Multiplexing
- Such OFDM is classified as one of the multiplexing schemes, and uses a large number of carriers on the unit time axis, and a part of the carrier band is used so that the phase of the signal wave to be modulated is orthogonal between adjacent carriers. This is a method of effectively using the frequency band by superimposing.
- OFDM assigns subchannels for each individual user in a time division manner, a plurality of users share all subchannels and OFDMA (Orthogonal Frequency) assigns subchannels with the highest transmission efficiency for each user.
- OFDMA Orthogonal Frequency
- an anchor channel for exchanging various control signals in advance between the mobile station and the base station is prepared in FM-mode (Fast access channel based on Map-Mode), and adaptive modulation is performed.
- An MCS (Modulation and Coding Scheme), an extra channel map, and the like are shown.
- SD Shift
- Direction an adjustment signal for adjusting the reception timing of data of the base station, which is included in the anchor channel as in the above-described MCS and map, and uses SD to make it complicated. It has been found that it is possible to easily select an appropriate base station without requiring an expensive program or additional electronic equipment.
- the present invention estimates the moving speed of a mobile station using a signal prepared in advance for the standard to be used and selects an appropriate base station, thereby enabling wireless communication regardless of the moving speed of the mobile station. It is an object of the present invention to provide a radio communication system, a mobile station, a base station, and a radio communication method that can improve the stability of the radio communication.
- One aspect of the present invention is a mobile station and a plurality of base stations including a microcell base station that can wirelessly communicate with the mobile station and forms a microcell and a macrocell base station that forms a macrocell larger than the microcell; A control server that controls handover between a plurality of base stations, and the base station adjusts the reception timing of data from the mobile station to a desired timing in order to advance or delay the data transmission timing in the mobile station.
- the mobile station is a wireless communication system including a timing adjustment unit that receives the adjustment signal and adjusts the data transmission timing in response to the adjustment signal, and the wireless communication system determines the amount of deviation of the adjustment signal.
- a deviation amount calculation unit to calculate, a deviation amount that is equal to or greater than a predetermined first threshold value, and the mobile station is performing wireless communication. If the station is a micro cell base station, a carrier sense execution unit that performs carrier sense for switching to connection with the macro cell base station, and one macro cell base station from one or more macro cell base stations extracted by carrier sense A handover request unit that requests the control server to perform handover to the selected macro cell base station, and the control server performs wireless communication with the mobile station in response to the handover request.
- a handover execution unit configured to execute handover from the station to the selected macro cell base station.
- the adjustment signal may be SD in an anchor channel of the PHS communication standard MoU.
- the mobile station may include the deviation amount calculation unit, the carrier sense execution unit, and the handover request unit.
- the macro cell is arranged in an umbrella structure with respect to the micro cell, and when the mobile station is stopped or moving at a low speed, the communication quality by the micro cell is ensured during normal times.
- the range is expanded.
- a signal (adjustment signal) prepared in advance for the standard to be used is used, and handover from the micro cell to the macro cell is executed based on the deviation amount of the adjustment signal.
- the frequency of handover during high-speed movement can be reduced, and the stability of wireless communication can be improved.
- the carrier sense execution unit is connected to the micro cell base station if the deviation amount is equal to or less than a predetermined second threshold value lower than the first threshold value and the base station with which the mobile station is performing radio communication is a macro cell base station.
- the handover request unit selects one microcell base station from one or a plurality of microcell base stations extracted by the carrier sense, and performs handover to the selected microcell base station.
- the handover execution unit may execute a handover from the macro cell base station that is performing radio communication with the mobile station to the selected micro cell base station.
- a mobile station whose communication range has been switched from a microcell to a macrocell due to high-speed movement requests to return to the microcell in order to improve the communication quality when the moving speed becomes low, that is, when the amount of deviation is below the second threshold. In this way, it is possible to improve the stability of wireless communication regardless of the moving speed of the mobile station.
- the amount of deviation may be the number of consecutive adjustment signals that are advanced or delayed. With such a configuration, the continuity of the adjustment signal can be grasped, and a reliable and quick handover between the micro cell and the macro cell can be performed.
- the amount of deviation may be the frequency of any adjustment signal that is advanced or delayed.
- the frequency of the adjustment signal can be obtained from the average value of the adjustment signal and the result of low-pass filtering.
- the microcell base station and the macrocell base station may have an identifier that can identify which base station.
- Another aspect of the present invention is a mobile station capable of wireless communication with a plurality of base stations including a microcell base station that forms a microcell and a macrocell base station that forms a macrocell larger than the microcell, and performs wireless communication
- a timing adjustment unit that adjusts the data transmission timing in response to an adjustment signal transmitted from the base station in order to adjust the reception timing of data from the mobile station to a desired timing in the base station, and a bias of the adjustment signal If the deviation amount is greater than or equal to a predetermined first threshold and the base station with which the mobile station is wirelessly communicating is a microcell base station, the deviation amount calculation unit for calculating the amount is connected to the macrocell base station.
- Carrier sense execution unit for executing carrier sense for switching, and one or a plurality of macro cell bases extracted by carrier sense Select 1 macrocell base station from, characterized in that it comprises a handover to the selected macro cell base station, a handover request unit which requests the control server to control the handover between the plurality of base stations, a.
- Still another aspect of the present invention is any one of a plurality of base stations including a micro cell base station that forms a micro cell and a macro cell base station that forms a macro cell larger than the micro cell.
- an adjustment signal transmission unit that transmits an adjustment signal that advances or delays the data transmission timing in the mobile station, and a deviation amount that calculates the deviation amount of the adjustment signal A calculation unit, and a carrier sense command unit that causes the mobile station to perform carrier sense for switching to the connection with the macro cell base station if the amount of deviation is equal to or greater than a predetermined first threshold and is itself a micro cell base station;
- Select one macro cell base station from one or more macro cell base stations extracted by carrier sense Allowed characterized in that it comprises a handover request unit which requests the control server to handover to the macro cell base station selected.
- Still another aspect of the present invention provides a mobile station and a plurality of base stations including a micro cell base station capable of wireless communication with the mobile station and forming a micro cell and a macro cell base station forming a macro cell larger than the micro cell.
- a control server that controls handover between a plurality of base stations, and a wireless communication method for performing handover using a wireless communication system, wherein the base station desires reception timing of data from a mobile station Therefore, the mobile station transmits an adjustment signal that advances or delays the data transmission timing in the mobile station, the mobile station receives the adjustment signal, adjusts the data transmission timing, and either the mobile station or the base station adjusts the data transmission timing.
- the control server requests the macro cell base station selected from the micro cell base station that performs wireless communication with the mobile station. It is characterized in that the handover is executed. Further, the mobile station may perform the calculation of the bias amount, the execution of the carrier sense, and the request for the handover.
- the components corresponding to the technical idea in the above-described wireless communication system and the description thereof can be applied to the mobile station, the base station, and the wireless communication method.
- the mobile station's moving speed is estimated by using a signal prepared in advance for the standard to be used, and an appropriate base station is selected, so that the mobile station's moving speed can be selected. It becomes possible to improve the stability of wireless communication.
- FIG. 1 is a system configuration diagram showing a configuration of a wireless communication system. It is explanatory drawing for demonstrating the frame structure of the data transmitted / received in PHS MoU. It is the functional block diagram which showed the hardware constitutions of the PHS terminal. It is the perspective view which showed the external appearance of the PHS terminal. It is a timing chart for demonstrating operation
- Wireless communication system 110 ... PHS terminal (mobile station) 120, 720 ... micro cell base station 122, 722 ... macro cell base station 140 ... control server 150 ... micro cell 152 ... macro cell 330 ... timing adjustment unit 332, 732 ... bias amount calculation unit 334 ... carrier sense execution unit 336, 736 ... handover Request unit 732 ... Deviation amount calculation unit 734 ... Carrier sense command unit
- a mobile station represented by a PHS terminal constructs a wireless communication system that performs wireless communication with a base station that is fixedly arranged at a predetermined interval.
- a micro cell in which a communication area is divided into small areas and a macro cell defined in a large area including a plurality of micro cells are managed as the same network, and each base station has its own base station. Is disposed.
- the entire wireless communication system will be described first, and then specific configurations of a PHS terminal as a mobile station, a base station, and a control server will be described.
- a PHS terminal is cited as a mobile station.
- the mobile station is not limited to a PHS terminal, but a mobile phone, a notebook personal computer, a PDA (Personal Digital Assistant), a digital camera, a music player, a car navigation system, a portable TV, a game
- a mobile phone a notebook personal computer
- PDA Personal Digital Assistant
- a digital camera a digital camera
- music player a music player
- a car navigation system a portable TV
- a game Various electronic devices capable of wireless communication, such as devices, DVD players, and remote controllers, can also be used as mobile stations.
- FIG. 1 is an explanatory diagram showing a schematic connection relationship of the wireless communication system 100.
- the wireless communication system 100 includes a PHS terminal 110 (110A, 110B), a microcell base station 120 (120A, 120B, 120C), a macrocell base station 122, an ISDN (Integrated Services Digital Network) line, the Internet, and a dedicated line.
- the communication network 130 is configured to include a control server 140.
- the PHS terminal 110A when a user connects a communication line from his / her PHS terminal 110A to another PHS terminal 110B, the PHS terminal 110A requests a wireless connection request from the microcell base station 120A within the communicable range. I do.
- the microcell base station 120A that has received the wireless connection request requests the control server 140 to establish a communication connection with the communication partner via the communication network 130.
- the control server 140 refers to the location registration information of the other PHS terminal 110B, selects, for example, the microcell base station 120B within the wireless communication range of the PHS terminal 110B, and selects the microcell base station 120A and the microcell base station 120B. And establish communication between the PHS terminal 110A and the PHS terminal 110B.
- the PHS terminal 110B which is the communication partner, moves, the distance between the PHS terminal 110B and the microcell base station 120B increases, and wireless communication with the microcell base station 120B finally becomes difficult.
- the PHS terminal 110B predicts that wireless communication becomes difficult due to the conversion of the electric field strength of the signal of the microcell base station 120B, performs carrier sense again, and performs wireless communication with the microcell base station 120C with high electric field strength. Request to the microcell base station 120B.
- the control server 140 performs a handover from the micro cell base station 120B to the micro cell base station 120C. In the present embodiment, not only such a handover between the microcell base stations 120 but also a handover between the microcell base station 120 and the macrocell base station 122 is supported.
- FIG. 2 is a system configuration diagram showing the configuration of the wireless communication system 100.
- two types of cells a plurality of microcells 150 and a macrocell 152 having a larger communicable range than the microcells 150, are overlapped to form an umbrella structure.
- the two types of cells are managed by the same control server 140 in the same wireless communication system 100.
- the PHS terminal 110A in the communicable range of the microcell base station 120A can select radio communication with the macrocell base station 122 in addition to the microcell base station 120A. Handover with the macrocell base station 122 is also possible.
- the microcell 150 and the macrocell 152 have the following advantages according to the size of the communicable range.
- the transmission power of the PHS terminal 110 can be suppressed, and the battery by reducing power consumption can be reduced. Can be used for a long time.
- the transmission power of the microcell base station 120 can be reduced, the microcell base station 120 can be reduced in size and weight, and can be installed in a small occupied area.
- the frequency use efficiency can be improved, the radio capacity per unit area can be increased.
- the macro cell 152 has a wide allowable communication range with the PHS terminal 110, it is not necessary to frequently change the macro cell base station 122 to be communicated even when the PHS terminal 110 moves at high speed. Significant reduction is possible.
- the PHS terminal 110 selects one of the cells according to the communication environment and the movement state of the PHS terminal 110 itself.
- next-generation PHS communication technology such as ARIB STD T95 and PHS MoU is adopted, and TDD (Time Division Duplex: both time division) is used between the PHS terminal 110 and the micro base station 120 or the macro cell base station 122.
- Wireless communication based on the (direct transmission system) / OFDMA (or TDD / OFDM) system.
- FIG. 3 is an explanatory diagram for explaining a frame structure of data transmitted and received in the PHS MoU.
- OFDMA (or OFDM) has a two-dimensional map in the time axis direction and the frequency direction, and a plurality of channels 200 are arranged with a uniform baseband distance in the frequency axis direction.
- a PRU 210 is arranged for each TDMA slot 202.
- the PRU 210 is defined by an occupation band of 900 kHz corresponding to the baseband distance and a time length of 625 ⁇ sec by time division.
- a frame used for communication with a specific PHS terminal 110 includes an anchor channel (ANCH) 220 related to a control signal and an extra channel (EXCH) 222 that stores data.
- ANCH anchor channel
- EXCH extra channel
- the anchor channel 220 is an FM-Mode control signal, and includes, for example, MI (Mcs Indicator), MR (Mcs Requirement), ACK field, map, and SD (Shift Direction).
- MI Mcs Indicator
- MR Mcs Requirement
- ACK ACK field
- map maps
- SD SD
- MI indicates the MCS identifier of MCS when data is modulated.
- MR is an MCS request for data transmitted to itself.
- MI indicates MCS used for modulation of data transmitted simultaneously with the MCS identifier
- MR indicates desired MCS after the next time.
- the ACK field indicates the error detection result of the demodulated data.
- the map and SD exist only in the transmission frame from the microcell base station 120 or the macrocell base station 122 to the PHS terminal 110, the map indicates the allocation of the extra channel 222, and SD indicates the data from the PHS terminal 110.
- the extra channel 222 is a PRU 210 assigned to each user as a communication path in FM-Mode, and a plurality of extra channels 222 can be assigned to one PHS terminal 110 as shown by a broken line in FIG.
- the allocation of the extra channel 222 is performed through carrier sense for determining whether or not the PRU 210 is used by another user.
- the assigned results are shown in the anchor channel 220 map as described above.
- the microcell base station 120 and the macrocell base station 122 are performing wireless communication with a plurality of PHS terminals 110 having different distances, their own communication timing cannot be changed. Therefore, the delay time of the communication signal that changes according to the communication distance should be corrected in the PHS terminal 110.
- the microcell base station 120 or the macrocell base station 122 transmits SD to the PHS terminal 110, and when the reception timing of data from the PHS terminal 110 is advanced, the transmission timing is delayed. When it becomes late, it operates to advance the transmission timing. That is, the microcell base station 120 or the macrocell base station 122 and the PHS terminal 110 perform closed-loop control of data transmission / reception timing via SD.
- the time at which the timing is shifted is not derived, but the actual shift is on / off controlled by a feedback signal every 5 msec.
- SD is composed of a 2-bit flag.
- “2 (2Step Forward)” or “1 (1Step Forward)” is transmitted depending on the degree, and the current timing is maintained.
- “0 (Stay)” is transmitted when the operation is performed, and “ ⁇ 1 (Shift Back)” is transmitted when the operation is delayed.
- the microcell base station 120 and the macrocell base station 122 can always adjust the data reception timing to an appropriate timing regardless of the distance from the PHS terminal 110 that is the communication target, and maintain orthogonality in OFDM. It becomes possible.
- a specific configuration and operation of each device in the present embodiment will be described.
- FIG. 4 is a functional block diagram showing a hardware configuration of the PHS terminal 110
- FIG. 5 is a perspective view showing an appearance of the PHS terminal 110.
- the PHS terminal 110 includes a terminal control unit 310, a terminal memory 312, a display unit 314, an operation unit 316, a voice input unit 318, a voice output unit 320, and a terminal wireless communication unit 322. .
- the terminal control unit 310 manages and controls the entire PHS terminal 110 by a semiconductor integrated circuit including a central processing unit (CPU). In addition, the terminal control unit 310 performs a call function, a mail transmission / reception function, an imaging function, a music playback function, and a TV viewing function using the program in the terminal memory 312.
- CPU central processing unit
- the terminal memory 312 is composed of ROM, RAM, EEPROM, nonvolatile RAM, flash memory, HDD (Hard Disk Drive), and the like, and stores programs processed by the terminal control unit 310, audio data, and the like.
- the display unit 314 includes a liquid crystal display, an EL (Electro Luminescence) display, or the like, stored in the terminal memory 312 or provided from an application relay server (not shown) via the communication network 130,
- the GUI Graphic User Interface
- the operation unit 316 includes switches such as a keyboard, a cross key, and a joystick, and accepts user operation input.
- the voice input unit 318 is composed of voice recognition means such as a microphone, and converts the user's voice input during a call into an electrical signal that can be processed in the PHS terminal 110.
- the voice output unit 320 is constituted by a speaker, and converts the voice signal of the other party received by the PHS terminal 110 into voice and outputs the voice.
- a ring tone, an operation sound of the operation unit 316, an alarm sound, and the like can be output.
- the terminal wireless communication unit 322 establishes wireless communication with the microcell base station 120 and the macrocell base station 122 in the communication network 130, and transmits and receives data.
- Such wireless communication can use the above-mentioned ARIB STD T95 or PHS MoU.
- the terminal control unit 310 also functions as a timing adjustment unit 330, a deviation amount calculation unit 332, a carrier sense execution unit 334, and a handover request unit 336.
- the timing adjustment unit 330 When the timing adjustment unit 330 receives SD, which is a data transmission timing adjustment signal, from the microcell base station 120 or the macrocell base station 122, the timing adjustment unit 330 advances or delays the transmission timing by a predetermined time in the time direction indicated by the SD. .
- SD which is a data transmission timing adjustment signal
- the deviation amount calculation unit 332 calculates the SD deviation amount received by the timing adjustment unit 330. For example, when the PHS terminal 110 is stopped at a predetermined position, the radio wave distance to the microcell base station 120 or the macrocell base station 122 does not change, and there is no need to change the transmission timing. However, when the PHS terminal 110 moves in one direction, the transmission timing is changed at any time, and the contents of the SD tend to be either advanced or delayed. Further, when the moving speed is increased, the frequency of the command to be advanced or delayed is increased. Therefore, it is possible to grasp that the PHS terminal 110 is moving at a high speed in the same direction by calculating the deviation and frequency of the contents of the SD as the deviation amount.
- the amount of deviation can be set to the number of consecutive adjustment signals that advance or delay.
- the continuity of the adjustment signal can be grasped, and a reliable and quick handover between the micro cell and the macro cell can be performed.
- FIG. 6 is a timing chart for explaining the operation of the deviation amount calculation unit 332.
- FIG. 6 (a) shows the SD transition 350 received from the microcell base station 120 or the macrocell base station 122
- FIG. 6 (b) is based on FIG. 6 (a).
- second threshold continuity is interrupted
- the bias amount can be set to the frequency of any adjustment signal that is advanced or delayed, and the frequency of the adjustment signal can be obtained from the average value of the adjustment signal or the result of low-pass filtering.
- FIG. 7 is a timing chart for explaining another operation of the deviation amount calculation unit 332.
- FIG. 7A shows a transition 370 when SD received from the microcell base station 120 or the macrocell base station 122 is filtered by a low-pass filter (LPF), and FIG. 7B shows FIG. 6B.
- LPF low-pass filter
- FIG. 7A shows a transition 352 of a base station from which a handover request unit 336 described later requests a handover.
- the transition 370 in the case of such filtering indicates the moving speed of the PHS terminal 110 in general.
- the deviation amount calculation unit 332 performs the handover by filtering from the micro cell base station 120 to the macro cell base station 122 at the time point 374 when the filtered transition 370 becomes a first threshold 372, for example, the absolute value thereof is 0.5 or more. Is handed over from the macro cell base station 122 to the micro cell base station 120 at a time 378 when the absolute value of the second threshold 376 becomes 0.3 or less.
- the carrier sense execution unit 334 Carrier sense for switching to connection with the macrocell base station 122 is executed. Also, if the deviation amount is equal to or less than a predetermined second threshold and the base station with which the PHS terminal 110 is wirelessly communicating is the macrocell base station 122, carrier sense for switching to connection with the microcell base station 120 Execute.
- the handover request unit 336 selects one macro cell base station 122 from one or a plurality of macro cell base stations 122 extracted by the carrier sense of the carrier sense execution unit 334, and controls handover to the selected macro cell base station 122. Request to 140. When the base station extracted by carrier sense is one or a plurality of microcell base stations 120, one microcell base station 120 is selected from the one or a plurality of microcell base stations 120 and selected. A handover to the microcell base station 120 is requested.
- the communication quality by the microcell 150 is ensured at the normal time when the PHS terminal 110 is stopped or moving at a low speed, and when the high-speed movement is grasped, the communication allowable range by the macrocell 152 is expanded. .
- a signal SD adjusted signal prepared in advance for a standard to be used is used, and a handover from the microcell 150 to the macrocell 152 is executed based on the deviation amount of the SD.
- the frequency of handover during high-speed movement can be reduced, and the stability of wireless communication can be improved regardless of the moving speed of the PHS terminal 110.
- FIG. 8 is a block diagram showing a schematic configuration of the microcell base station 120.
- the microcell base station 120 includes a base station control unit 410, a base station memory 412, a base station wireless communication unit 414, and a base station wired communication unit 416.
- the configuration of the macro cell base station 122 is substantially the same as that of the micro cell base station 120, the description of the micro cell base station 122 will be described here with the description of the micro cell base station 120.
- the base station control unit 410 manages and controls the entire microcell base station 120 using a semiconductor integrated circuit including a central processing unit (CPU). In addition, the base station control unit 410 uses the program in the base station memory 412 to control communication connections to each server connected to the communication network 130 and other PHS terminals 110.
- CPU central processing unit
- the base station control unit 410 transmits an SD that is an adjustment signal for advancing or delaying the data transmission timing in the PHS terminal 110 in order to match the reception timing of data from the PHS terminal 110 with a desired timing. Also functions as 420.
- the base station memory 412 is composed of ROM, RAM, EEPROM, nonvolatile RAM, flash memory, HDD, and the like, and stores programs processed by the base station control unit 410, time information, and the like.
- the base station wireless communication unit 414 establishes communication with the PHS terminal 110 and transmits / receives data.
- the microcell base station 120 has an identifier that can be distinguished from the macrocell base station 122, and transmits the identifier when the PHS terminal 110 performs carrier sense.
- Such an identifier may be included in a CS (Cell Station) ID that is an identifier of the microcell base station 120 itself, or may be provided separately.
- the base station wired communication unit 416 can be connected to various servers including the control server 140 via the communication network 130.
- FIG. 9 is a block diagram illustrating a schematic configuration of the control server 140.
- the control server 140 includes a server control unit 510, a server memory 512, and a server wired communication unit 514.
- the server control unit 510 manages and controls the entire control server 140 by a semiconductor integrated circuit including a central processing unit (CPU). In addition, the server control unit 510 selects the microcell base station 120 within the wireless communication range of the PHS terminal 110 requested as a communication partner using the program in the server memory 512 and the location registration information of each PHS terminal 110. Then, communication between the PHS terminals 110 is established.
- CPU central processing unit
- the server control unit 510 also functions as a handover execution unit 520.
- the handover execution unit 520 performs a handover between the micro cell base stations 120 or between the macro cell base stations 122 that perform radio communication with the PHS terminal 110 or between the micro cell base stations 120 and the macro cell. A handover between the base stations 122 is executed.
- the server memory 512 is composed of ROM, RAM, EEPROM, nonvolatile RAM, flash memory, HDD, and the like, and stores programs processed by the server control unit 510, time information, and the like.
- the server wired communication unit 514 can be connected to the microcell base station 120 or the macrocell base station 122 via the communication network 130.
- control server 140 performs handover independently of the microcell base station 120 or the like is described, but the present invention is not limited to this, and the microcell base station 120 or the macrocell base station 122 is used. May have the function of the control server 140, and the micro cell base station 120 and the macro cell base station 122 communicating with the PHS terminal 110 access the handover destination base stations 120 and 122 designated by the PHS terminal 110. Then, the communication may be established and communication between itself and the PHS terminal 110 may be disconnected.
- FIG. 10 shows the process of the microcell base station 120
- FIG. 11 shows the process of the PHS terminal 110, particularly the process of taking the number of times the same adjustment signal is continued in SD as the amount of deviation.
- the microcell base station 120 first measures the reception timing of data from the PHS terminal 110 (S600), and compares the reception timing with a desired reception timing (S602). When the reception timing from the PHS terminal 110 is late, SD (“2” or “1”) that advances the timing according to the timing deviation amount is transmitted (S604). If the reception timing is early, SD (“ ⁇ 1”) for delaying the timing is transmitted (S606). If none of these applies, the current status maintenance SD (“0”) is transmitted (S608).
- the PHS terminal 110 extracts SD from the anchor channel from the microcell base station 120 or the macrocell base station 122 (S650), and determines whether the value of the SD is “2” or “1”. (S652).
- the timing adjustment unit 330 advances the transmission timing by the time corresponding to the numerical value “2” or “1” (S654).
- the counter 1 for counting a command for advancing the transmission timing is incremented, and the counter 2 for counting a command for delaying the transmission timing is reset (S656).
- the SD determination (S652), if the SD is not “2” or “1”, it is determined whether the SD is “ ⁇ 1” (S658). If the SD is “ ⁇ 1”, the timing adjustment is performed. The unit 330 delays the transmission timing by the time corresponding to the numerical value “ ⁇ 1” (S660). Then, the counter 2 is incremented and the counter 1 is reset (S662).
- SD determination when SD is not “ ⁇ 1”, SD is regarded as “0”, that is, a current state maintenance command, and the transmission timing is maintained at the current state (S664). Reset is performed (S666).
- the count value of either the counter 1 or the counter 2 is a predetermined value, which is 5 or more here (S670), and is 5 or more, and the base on which the PHS terminal 110 is wirelessly communicating If the station is the microcell base station 120 (S672), carrier sense is executed (S674), and a handover to the macrocell base station 122 is requested (S676).
- the base station with which the PHS terminal 110 is wirelessly communicating is the macrocell base station 122 (S678), and the PHS terminal If the base station 110 wirelessly communicates with is the macrocell base station 122, carrier sense is executed (S680), and a handover to the microcell base station 120 is requested (S682).
- the control server 140 executes handover between the PHS terminal 110 and the microcell base station 120 or the macrocell base station 122 in response to such a handover request from the PHS terminal 110.
- the wireless communication method described above by estimating the moving speed of the PHS terminal 110 using a signal prepared in advance for the standard to be used and selecting an appropriate base station, the wireless communication method can be used regardless of the moving speed of the PHS terminal 110. Communication stability can be improved.
- the PHS terminal 110 calculates the amount of deviation of the SD that is the adjustment signal, and determines high-speed movement.
- the SD deviation amount can be calculated not only on the SD receiving side but also on the micro cell base station 720 or the macro cell base station 722 on the SD transmitting side.
- the deviation amount of the SD transmitted to the PHS terminal 110 instead of the PHS terminal 110 is calculated, and the moving speed of the PHS terminal 110 is determined.
- FIG. 12 is a block diagram showing a schematic configuration of the microcell base station 720.
- the microcell base station 720 includes a base station control unit 710, a base station memory 412, a base station wireless communication unit 414, and a base station wired communication unit 416. Since the base station memory 412, the base station wireless communication unit 414, and the base station wired communication unit 416 already described in the first embodiment have substantially the same functions, a duplicate description is omitted here.
- the station control unit 710 will be mainly described.
- the macro cell base station 722 has substantially the same configuration as the micro cell base station 720, and therefore, the description of the micro cell base station 720 will be used as the description of the macro cell base station 722 here.
- the base station control unit 710 manages and controls the entire microcell base station 720 by a semiconductor integrated circuit including a central processing unit (CPU), and also includes an adjustment signal transmission unit 420, a deviation amount calculation unit 732, a carrier sense command unit 734, It functions as a handover request unit 736.
- CPU central processing unit
- the base station control unit 710 manages and controls the entire microcell base station 720 by a semiconductor integrated circuit including a central processing unit (CPU), and also includes an adjustment signal transmission unit 420, a deviation amount calculation unit 732, a carrier sense command unit 734, It functions as a handover request unit 736.
- CPU central processing unit
- the adjustment signal transmission unit 420 transmits SD as an adjustment signal for advancing or delaying the data transmission timing in the PHS terminal 110 in order to adjust the data reception timing from the PHS terminal 110 to a desired timing.
- the deviation amount calculation unit 732 calculates the deviation amount of the SD transmitted by itself.
- the carrier sense command unit 734 informs the PHS terminal 110 to communicate with the macrocell base station 722. Carrier sense for switching to connection is executed. Further, if the cell itself is not the microcell base station 720 but the macrocell base station 722, the PHS terminal 110 is caused to execute carrier sense for switching to the connection with the microcell base station 720.
- the handover request unit 736 selects one macro cell base station 722 or micro cell base station 720 from one or a plurality of macro cell base stations 722 or micro cell base stations 720 extracted by carrier sense, and selects the selected macro cell base station 722. Alternatively, the control server 140 is requested to perform handover to the microcell base station 720.
- the processing load on the PHS terminal 110 can be significantly reduced. It is possible to improve the stability of the wireless communication according to the embodiment without receiving a processing load of high-speed movement determination.
- the micro cell base station 720 or the macro cell base station 722 calculates the deviation amount.
- the macro cell base station 720 or the macro cell base station 722 may further make a request for carrier sense and handover to the control server 140.
- each step in the wireless communication method of the present specification does not necessarily have to be processed in time series in the order described in the flowchart, and may include processing in parallel or by a subroutine.
- the present invention can be used in a radio communication system, a mobile station, a base station, and a radio communication method for executing a handover between a micro cell base station and a macro cell base station in a communication environment in which the micro cell and the macro cell are overlapped.
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Abstract
Description
110 …PHS端末(移動局)
120、720 …マイクロセル基地局
122、722 …マクロセル基地局
140 …制御サーバ
150 …マイクロセル
152 …マクロセル
330 …タイミング調整部
332、732 …偏倚量計算部
334 …キャリアセンス実行部
336、736 …ハンドオーバ要求部
732 …偏倚量計算部
734 …キャリアセンス指令部
図1は、無線通信システム100の概略的な接続関係を示した説明図である。当該無線通信システム100は、PHS端末110(110A、110B)と、マイクロセル基地局120(120A、120B、120C)と、マクロセル基地局122と、ISDN(Integrated Services Digital Network)回線、インターネット、専用回線等で構成される通信網130と、制御サーバ140とを含んで構成される。
図4は、PHS端末110のハードウェア構成を示した機能ブロック図であり、図5は、PHS端末110の外観を示した斜視図である。PHS端末110は、端末制御部310と、端末メモリ312と、表示部314と、操作部316と、音声入力部318と、音声出力部320と、端末無線通信部322とを含んで構成される。
ラムや音声データ等を記憶する。
図8は、マイクロセル基地局120の概略的な構成を示したブロック図である。マイクロセル基地局120は、基地局制御部410と、基地局メモリ412と、基地局無線通信部414と、基地局有線通信部416とを含んで構成される。また、マクロセル基地局122も、構成はマイクロセル基地局120と実質的に等しいので、ここでは、マイクロセル基地局120の説明をもってマクロセル基地局122の説明とする。
図9は、制御サーバ140の概略的な構成を示したブロック図である。制御サーバ140は、サーバ制御部510と、サーバメモリ512と、サーバ有線通信部514とを含んで構成される。
図10および図11は、無線通信方法の処理の流れを示したフローチャートである。特に、図10は、マイクロセル基地局120の処理を、図11は、PHS端末110の処理、特に、SDにおいて同一の調整信号が連続した回数を偏倚量とする処理を示している。
上述した第1の実施形態においては、PHS端末110が調整信号であるSDの偏倚量を計算し、高速移動を判断している。しかし、SDの受信側だけでなく、SDの送信側であるマイクロセル基地局720またはマクロセル基地局722においてもSDの偏倚量を計算することができる。本実施形態のマイクロセル基地局720またはマクロセル基地局722では、PHS端末110の代わりにPHS端末110に送信したSDの偏倚量を計算し、そのPHS端末110の移動速度を判定する。
第2の実施形態では、第1の実施形態と異なり、マイクロセル基地局720またはマクロセル基地局722にて偏倚量の計算を行っている。 しかし、マクロセル基地局720またはマクロセル基地局722はさらに、キャリアセンスおよびハンドオーバの要求を制御サーバ140に対して行ってもよい。
Claims (11)
- 移動局と、該移動局と無線通信可能であり、マイクロセルを形成するマイクロセル基地局および該マイクロセルより大きなマクロセルを形成するマクロセル基地局を含む複数の基地局と、該複数の基地局間のハンドオーバを制御する制御サーバと、を含み、該基地局は、該移動局からのデータの受信タイミングを所望するタイミングに合わせるため、該移動局におけるデータの送信タイミングを早めるまたは遅らせる調整信号を送信する調整信号送信部を備え、該移動局は、該調整信号を受けて該データの送信タイミングを調整するタイミング調整部を備える無線通信システムであって、
当該無線通信システムは、
前記調整信号の偏倚量を計算する偏倚量計算部と、
前記偏倚量が所定の第1閾値以上であり、かつ当該移動局が無線通信している基地局がマイクロセル基地局であれば、マクロセル基地局との接続に切り換えるためのキャリアセンスを実行するキャリアセンス実行部と、
前記キャリアセンスにより抽出された1または複数のマクロセル基地局から1のマクロセル基地局を選択し、該選択されたマクロセル基地局へのハンドオーバを前記制御サーバに要求するハンドオーバ要求部と、
を備え、
前記制御サーバは、
前記ハンドオーバ要求に応じて、前記移動局と無線通信を実行しているマイクロセル基地局から前記選択されたマクロセル基地局へのハンドオーバを実行するハンドオーバ実行部を備える無線通信システム。 - 前記偏倚量計算部、キャリアセンス実行部およびハンドオーバ要求部は前記移動局が備える請求項1に記載の無線通信システム。
- 前記キャリアセンス実行部は、前記偏倚量が前記第1閾値より低い所定の第2閾値以下であり、かつ当該移動局が無線通信している基地局がマクロセル基地局であれば、マイクロセル基地局との接続に切り換えるためのキャリアセンスを実行し、
前記ハンドオーバ要求部は、前記キャリアセンスにより抽出された1または複数のマイクロセル基地局から1のマイクロセル基地局を選択し、該選択されたマイクロセル基地局へのハンドオーバを要求し、
前記ハンドオーバ実行部は、前記ハンドオーバ要求に応じて、前記移動局と無線通信を実行しているマクロセル基地局から前記選択されたマイクロセル基地局へのハンドオーバを実行する請求項1または2に記載の無線通信システム。 - 前記偏倚量は、早めるまたは遅らせる、いずれかの調整信号が連続した回数である請求項1または3に記載の無線通信システム。
- 前記偏倚量は、早めるまたは遅らせる、いずれかの調整信号の頻度である請求項1または3に記載の無線通信システム。
- 前記マイクロセル基地局とマクロセル基地局とは、どちらの基地局であるかを識別可能な識別子を有する請求項1から5のいずれか1項に記載の無線通信システム。
- 前記調整信号はPHS通信規格MoUのアンカーチャネルにおけるSD(Shift Direction)である請求項1から6のいずれか1項に記載の無線通信システム。
- マイクロセルを形成するマイクロセル基地局および該マイクロセルより大きなマクロセルを形成するマクロセル基地局を含む複数の基地局と無線通信可能な移動局であって、
無線通信を実行している基地局において当該移動局からのデータの受信タイミングを所望するタイミングに合わせるため、該基地局から送信される調整信号を受けて該データの送信タイミングを調整するタイミング調整部と、
前記調整信号の偏倚量を計算する偏倚量計算部と、
前記偏倚量が所定の第1閾値以上であり、かつ当該移動局が無線通信している基地局がマイクロセル基地局であれば、マクロセル基地局との接続に切り換えるためのキャリアセンスを実行するキャリアセンス実行部と、
前記キャリアセンスにより抽出された1または複数のマクロセル基地局から1のマクロセル基地局を選択し、該選択されたマクロセル基地局へのハンドオーバを、前記複数の基地局間のハンドオーバを制御する制御サーバに要求するハンドオーバ要求部と、
を備えることを特徴とする移動局。 - 移動局と無線通信可能であり、マイクロセルを形成するマイクロセル基地局および該マイクロセルより大きなマクロセルを形成するマクロセル基地局を含む複数の基地局のいずれかであって、
前記移動局からのデータの受信タイミングを所望するタイミングに合わせるため、該移動局におけるデータの送信タイミングを早めるまたは遅らせる調整信号を送信する調整信号送信部と、
前記調整信号の偏倚量を計算する偏倚量計算部と、
前記偏倚量が所定の第1閾値以上であり、かつ自体がマイクロセル基地局であれば、前記移動局にマクロセル基地局との接続に切り換えるためのキャリアセンスを実行させるキャリアセンス指令部と、
前記キャリアセンスにより抽出された1または複数のマクロセル基地局から1のマクロセル基地局を選択させ、該選択されたマクロセル基地局へのハンドオーバを制御サーバに要求するハンドオーバ要求部と、
を備えることを特徴とする基地局。 - 移動局と、該移動局と無線通信可能であり、マイクロセルを形成するマイクロセル基地局および該マイクロセルより大きなマクロセルを形成するマクロセル基地局を含む複数の基地局と、該複数の基地局間のハンドオーバを制御する制御サーバと、を含む無線通信システムを用いてハンドオーバを実行する無線通信方法であって、
前記基地局は、前記移動局からのデータの受信タイミングを所望するタイミングに合わせるため、該移動局におけるデータの送信タイミングを早めるまたは遅らせる調整信号を送信し、
前記移動局は、
前記調整信号を受けて該データの送信タイミングを調整し、
前記移動局または前記基地局のいずれかは、
前記調整信号の偏倚量を計算し、
前記偏倚量が所定の第1閾値以上であり、かつ当該移動局が無線通信している基地局がマイクロセル基地局であれば、マクロセル基地局との接続に切り換えるためのキャリアセンスを実行し、
前記キャリアセンスにより抽出された1または複数のマクロセル基地局から1のマクロセル基地局を選択し、該選択されたマクロセル基地局へのハンドオーバを前記制御サーバに要求し、
前記制御サーバは、前記移動局からのハンドオーバ要求に応じて、前記移動局と無線通信を実行しているマイクロセル基地局から前記選択されたマクロセル基地局へのハンドオーバを実行することを特徴とする無線通信方法。 - 前記偏倚量の計算、前記キャリアセンスの実行、前記ハンドオーバの要求は前記移動局が行う請求項10に記載の無線通信方法。
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- 2009-03-27 KR KR1020107023146A patent/KR101103185B1/ko not_active Expired - Fee Related
- 2009-03-27 WO PCT/JP2009/056398 patent/WO2009119857A1/ja active Application Filing
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Cited By (6)
Publication number | Priority date | Publication date | Assignee | Title |
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US20180242311A1 (en) * | 2011-04-01 | 2018-08-23 | Mitsubishi Electric Corporation | Communication system |
CN102883328A (zh) * | 2011-07-15 | 2013-01-16 | 上海贝尔股份有限公司 | 调整微小区的范围扩展偏置值的方法和装置 |
JP2014525199A (ja) * | 2011-07-21 | 2014-09-25 | アルカテル−ルーセント | 同一チャネル・ネットワーク内でハンドオーバを制御する方法およびシステム |
JPWO2015020179A1 (ja) * | 2013-08-09 | 2017-03-02 | 三菱電機株式会社 | 通信システム |
US11012903B2 (en) | 2013-08-09 | 2021-05-18 | Mitsubishi Electric Corporation | Communication system |
JP2017063269A (ja) * | 2015-09-24 | 2017-03-30 | Necネットワーク・センサ株式会社 | 通信システム、主局装置、従局装置及び通信方法 |
Also Published As
Publication number | Publication date |
---|---|
KR101103185B1 (ko) | 2012-01-04 |
US20110287768A1 (en) | 2011-11-24 |
CN101981965A (zh) | 2011-02-23 |
JPWO2009119857A1 (ja) | 2011-07-28 |
EP2257102A1 (en) | 2010-12-01 |
KR20100126814A (ko) | 2010-12-02 |
JP5118192B2 (ja) | 2013-01-16 |
EP2257102A4 (en) | 2012-01-11 |
US8213407B2 (en) | 2012-07-03 |
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