WO2015053000A1 - 無線通信装置、無線通信方法、通信制御装置及び通信制御方法 - Google Patents
無線通信装置、無線通信方法、通信制御装置及び通信制御方法 Download PDFInfo
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- WO2015053000A1 WO2015053000A1 PCT/JP2014/072192 JP2014072192W WO2015053000A1 WO 2015053000 A1 WO2015053000 A1 WO 2015053000A1 JP 2014072192 W JP2014072192 W JP 2014072192W WO 2015053000 A1 WO2015053000 A1 WO 2015053000A1
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- wireless communication
- base station
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W36/00—Hand-off or reselection arrangements
- H04W36/0005—Control or signalling for completing the hand-off
- H04W36/0055—Transmission or use of information for re-establishing the radio link
- H04W36/0079—Transmission or use of information for re-establishing the radio link in case of hand-off failure or rejection
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W16/00—Network planning, e.g. coverage or traffic planning tools; Network deployment, e.g. resource partitioning or cells structures
- H04W16/24—Cell structures
- H04W16/32—Hierarchical cell structures
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W36/00—Hand-off or reselection arrangements
- H04W36/08—Reselecting an access point
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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
- H04W52/0203—Power saving arrangements in the radio access network or backbone network of wireless communication networks
- H04W52/0206—Power saving arrangements in the radio access network or backbone network of wireless communication networks in access points, e.g. base stations
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/20—Control channels or signalling for resource management
- H04W72/21—Control channels or signalling for resource management in the uplink direction of a wireless link, i.e. towards the network
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W84/00—Network topologies
- H04W84/02—Hierarchically pre-organised networks, e.g. paging networks, cellular networks, WLAN [Wireless Local Area Network] or WLL [Wireless Local Loop]
- H04W84/10—Small scale networks; Flat hierarchical networks
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W36/00—Hand-off or reselection arrangements
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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
- H04W52/0251—Power saving arrangements in terminal devices using monitoring of local events, e.g. events related to user activity
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W76/00—Connection management
- H04W76/20—Manipulation of established connections
- H04W76/27—Transitions between radio resource control [RRC] states
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W88/00—Devices specially adapted for wireless communication networks, e.g. terminals, base stations or access point devices
- H04W88/08—Access point devices
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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 disclosure relates to a wireless communication device, a wireless communication method, a communication control device, and a communication control method.
- Non-Patent Document 1 proposes active utilization of small cells as one of countermeasures against such risks.
- Macrocells have a relatively large cell size and are placed adjacent to each other to cover a large geographic area, whereas small cells are usually located where macrocell radio waves are weak or where traffic is concentrated. Arranged to cover locally.
- the small cell can be used to complement the macro cell wireless communication service or to provide a unique service.
- the terminal can enjoy better communication quality and a higher data rate by performing handover from the macro cell to the small cell.
- Patent Document 1 proposes a technique for stopping transmission of a radio signal from a small cell base station in a situation where no terminal exists in the vicinity.
- Inter-cell handover is usually based on measurement (measurement) of communication quality for a downlink signal from each cell performed at each terminal. If the terminal does not recognize the presence of the small cell, the measurement for the small cell is not executed, and the opportunity for handover to the small cell is lost.
- Patent Document 1 in response to the above-described problems, by collecting position data of terminals that are measured by a macro cell base station using GPS (Global Positioning System), a terminal located in the vicinity of the small cell base station A method for determining existence is disclosed.
- GPS Global Positioning System
- the GPS positioning accuracy is not sufficiently high as compared with the cell size of the small cell.
- the terminal will not necessarily receive GPS signals. Therefore, it cannot be said that the existing solution can actually solve the above-described problems related to the recognition of the small cell in standby.
- the technology according to the present disclosure focuses on the above-described problems, and improves the capability of detecting a nearby terminal even when the small cell base station is on standby and appropriately providing a handover opportunity.
- the purpose is to provide a mechanism.
- a wireless communication unit that provides a wireless communication service to one or more terminals in a second cell that overlaps the first cell, and an operation mode of the wireless communication unit is set to a standby mode. While detecting a terminal existing in the vicinity by monitoring the strength of the uplink signal transmitted in the first cell, and when detecting a terminal present in the vicinity by the detection unit And a mode setting unit that switches the operation mode of the wireless communication unit to an active mode.
- the operation mode of the wireless communication apparatus is set to a standby mode. While detecting the terminal existing in the vicinity by monitoring the strength of the uplink signal transmitted in the first cell, and when the terminal existing in the vicinity is detected, And switching the operation mode of the wireless communication device to an active mode.
- the wireless communication device is set to the standby mode from the wireless communication device that provides the wireless communication service to one or more terminals in the second cell that overlap with the first cell.
- a communication unit that receives a message indicating that a terminal existing in the vicinity of the wireless communication device is detected in between, and at least one terminal connected to the first cell in response to reception of the message
- a communication control device is provided that includes a control unit that instructs measurement.
- the wireless communication device in standby mode from a wireless communication device that provides a wireless communication service to one or more terminals in the second cell that overlap the first cell.
- Receiving a message indicating that a terminal existing in the vicinity of the wireless communication device has been detected while being set, and in response to receiving the message, at least connected to the first cell There is provided a communication control method including instructing measurement to one terminal.
- the small cell base station even when the small cell base station is on standby, it is possible to detect a terminal in the vicinity of the small cell base station and appropriately provide a handover opportunity.
- the above effects are not necessarily limited, and any of the effects shown in the present specification, or other effects that can be grasped from the present specification, together with or in place of the above effects. May be played.
- FIG. 10 is an explanatory diagram for describing an overview of a wireless communication system to which the technology according to the present disclosure is applied. It is a block diagram which shows an example of a structure of the small cell base station which concerns on 1st Embodiment. It is the 1st explanatory view for explaining the basic principle of the communication control processing concerning a 1st embodiment. It is the 2nd explanatory view for explaining the basic principle of the communication control processing concerning a 1st embodiment. It is the 3rd explanatory view for explaining the basic principle of the communication control processing concerning a 1st embodiment. It is the 4th explanatory view for explaining the basic principle of the communication control processing concerning a 1st embodiment.
- FIG. 1 is an explanatory diagram for describing an overview of a wireless communication system 1 to which the technology according to the present disclosure is applied.
- a wireless communication system 1 includes small cell base stations 10a and 10b, a macro cell base station 20, and terminal devices 30a, 30b, and 30z.
- the number of macro cell base stations, the number of small cell base stations, and the number of terminal devices included in the wireless communication system 1 are not limited to the example of FIG.
- the wireless communication system 1 may include two or more macro cell base stations.
- the macrocell base station 20 is a base station that provides the first wireless communication service within the macrocell 28.
- the macro cell base station 20 can operate the macro cell 28 by using, for example, a frequency channel that is legally authorized or authorized to use.
- the macro cell base station 20 may operate the macro cell 28 by a frequency division duplex (FDD) method, or may operate the macro cell 28 by a time division duplex (TDD) method.
- FDD frequency division duplex
- TDD time division duplex
- a terminal device located in the macro cell 28 can be connected to the macro cell base station 20.
- a plurality of terminal devices 30 z are connected to the macro cell base station 20.
- Small cell base stations 10a and 10b are base stations that provide the second wireless communication service within the macro cell 28, respectively.
- a small cell is a concept including various types of cells that are generally smaller than a macro cell, such as femto cells, nano cells, pico cells, and micro cells.
- the second wireless communication service may be a wireless communication service that is substantially equivalent to the first wireless communication service that enhances the capacity of the first wireless communication service at a hot spot, for example.
- the second wireless communication service may be a wireless communication service that is different from the first wireless communication service (for example, from the viewpoint of a use frequency band, a wireless access technology, a provider, or the like).
- the second wireless communication service may be provided by secondary use of the frequency channel for the first wireless communication service.
- the terminal device 30a located in the small cell 18a can be connected to the small cell base station 10a.
- the terminal device 30b located in the small cell 18b can be connected to the small cell base station 10b.
- two terminal devices 30a are connected to the small cell base station 10a.
- the small cell base station 10 when it is not necessary to distinguish the small cell base stations 10a and 10b from each other, they are collectively referred to as the small cell base station 10 by omitting the alphabet at the end of the code.
- the same applies to other components such as the small cells 18a and 18b (small cell 18) and the terminal devices 30a, 30b and 30z (terminal device 30).
- the macro cell and small cell radio communication services include GSM (Global System for Mobile communications), UMTS (Universal Mobile Telecommunications System) (W-CDMA), LTE (Long Term Evolution), LTE-A (LTE-Advanced), It may be a wireless communication service according to a cellular communication system such as CDMA2000 (EV-DO) or WiMAX. Instead, a wireless communication service in accordance with another type of wireless communication method such as a wireless LAN (Wireless Local Area Network) may be provided.
- GSM Global System for Mobile communications
- W-CDMA Universal Mobile Telecommunications System
- LTE Long Term Evolution
- LTE-A LTE-Advanced
- a wireless communication service in accordance with another type of wireless communication method such as a wireless LAN (Wireless Local Area Network) may be provided.
- a wireless LAN Wireless Local Area Network
- the small cell base station 10 connects to the macro cell base station 20 via a backhaul link (thick line arrow in the figure).
- the backhaul link may be a wired link or a wireless link.
- the macrocell base station 20 is connected to the core network 5.
- the core network 5 includes a plurality of control nodes each having roles such as user information management, terminal mobility management, packet transfer, and gateway.
- the small cell base station 10 may also be connected to the core network 5. Note that the small cell base station 10 may be connected to the core network 5 and the macro cell base station 20 via the Internet 7.
- the small cell base station 10 can operate in at least two operation modes: an active mode and a standby mode.
- the active mode refers to a mode in which the small cell base station 10 transmits at least a signal for causing the terminal to recognize the small cell 18.
- the signal for causing the terminal to recognize the small cell 18 may include, for example, a reference signal (also referred to as a beacon signal, a pilot signal, or a synchronization signal) on the downlink channel.
- a reference signal also referred to as a beacon signal, a pilot signal, or a synchronization signal
- the standby mode is a mode in which the small cell base station 10 does not transmit at least the signal for causing the terminal to recognize the small cell 18.
- the small cell base station 10 intermittently supplies power to the wireless communication circuit, for example, or does not supply power to the wireless communication circuit or the control circuit.
- the concept of standby mode may include idle mode, sleep mode and dormant mode. Note that the small cell base station 10 may be further operable in an operation mode different from the active mode and the standby mode.
- the small cell base station 10a is operating in the active mode.
- the received power or reception quality measured for the reference signal transmitted from the small cell base station 10a is higher than the received power or reception quality measured for the reference signal transmitted from the macrocell base station 20. It is good. Therefore, the terminal device 30a can connect to the small cell base station 10a in order to perform wireless communication at a higher data rate.
- the operation mode of the small cell base station 10b is a standby mode. The small cell base station 10b does not transmit a reference signal. In this situation, it is assumed that the terminal device 30b has moved from the point P1 to the point P2 inside the small cell 18b.
- the reference signal is not transmitted from the small cell base station 10b, even if the terminal device 30b executes cell search or measurement, the information of the small cell 18b is not included in the result. Therefore, although the terminal device 30b is located in the vicinity of the small cell base station 10b, it can continue to be connected to the macro cell base station 20.
- the above-mentioned patent document 1 discloses a solution using GPS for such problems.
- the macro cell base station calculates the distance between the small cell base station and the terminal based on the position data of the terminal measured using GPS, and uses the calculation result.
- the presence of a terminal located in the vicinity of the small cell base station is determined.
- the GPS positioning accuracy is not sufficiently high compared to the size of the small cell.
- the terminal may not necessarily receive GPS signals and output position data. Therefore, it cannot be said that the solution using GPS has actually solved the above-described problems related to recognition of a small cell in standby.
- the small cell base station 10 is present in the vicinity by monitoring the strength of the uplink signal transmitted in the macro cell 28 while the operation mode is set to the standby mode. Detecting a terminal that The small cell base station 10 switches the operation mode to the active mode when a nearby terminal is detected through monitoring. As a result, it is possible to provide a timely handover opportunity to the small cell base station to a terminal that has approached the small cell base station that has been on standby without unnecessarily increasing interference in the macro cell 28. Become. Two exemplary embodiments for implementing such a mechanism are described in more detail in the next section.
- FIG. 2 is a block diagram illustrating an example of a configuration of the small cell base station 10 according to the first embodiment.
- the small cell base station 10 includes a wireless communication unit 110, a network communication unit 120, a storage unit 130, and a control unit 140.
- the wireless communication unit 110 provides a wireless communication service to one or more terminal devices 30 located in the small cell 18 that overlaps with the macro cell 28.
- the radio communication unit 110 transmits a reference signal on the downlink channel in the active mode. By receiving this reference signal, the terminal device 30 can be connected to the small cell 18.
- the terminal device 30 derives the communication quality of the small cell 18 by executing measurement on the reference signal transmitted from the wireless communication unit 110.
- the network communication unit 120 establishes a backhaul link with the macro cell base station 20 and mediates communication between the small cell base station 10 and the macro cell base station 20.
- the backhaul link is also used in communication between the small cell base station 10 and other small cell base stations.
- the storage unit 130 stores a program and data for the operation of the small cell base station 10 using a storage medium such as a hard disk or a semiconductor memory.
- the data stored by the storage unit 130 can include, for example, resource configuration data described later acquired from an external device.
- the control unit 140 controls the overall operation of the small cell base station 10 using a processor such as a CPU (Central Processing Unit) or a DSP (Digital Signal Processor).
- the control unit 140 includes a communication control unit 142, a mode setting unit 144, and a terminal detection unit 146.
- the communication control unit 142 controls the provision of the wireless communication service by the small cell base station 10. For example, the communication control unit 142 causes the uplink data traffic received by the wireless communication unit 110 to be transferred from the network communication unit 120 to the macro cell base station 20 depending on the destination. Further, the communication control unit 142 causes the wireless communication unit 110 to transmit downlink data traffic received from the other nodes by the network communication unit 120 to the destination terminal device 30. In addition, when a handover request is received from the macro cell base station 20 with the small cell base station 10 itself as a target base station, the communication control unit 142 performs admission control and random access from the terminal device 30. Through the procedure, the wireless communication unit 110 establishes a connection with the terminal device 30. In addition, the communication control unit 142 controls the transmission power of the radio signal transmitted in the small cell 18 to suppress interference given to surrounding nodes.
- the mode setting unit 144 sets, in the wireless communication unit 110, an operation mode that can be selected from a set of operation modes that can include an active mode and a standby mode. For example, when the number of terminal devices 30 connected to the wireless communication unit 110 becomes zero, the mode setting unit 144 switches the operation mode of the wireless communication unit 110 from the active mode to the standby mode. Also, the mode setting unit 144 switches the operation mode of the wireless communication unit 110 to the active mode when the terminal detection unit 146 detects a nearby terminal while the operation mode is set to the standby mode.
- the terminal detection unit 146 detects a terminal existing in the vicinity by monitoring the strength of the uplink signal transmitted in the macro cell 28 while the operation mode of the wireless communication unit 110 is set to the standby mode. More specifically, the terminal detection unit 146 acquires resource configuration data for the macro cell 28 from the macro cell base station 20 (or an external device that is an upper node of the macro cell base station 20). And the terminal detection part 146 identifies the uplink resource which should be monitored based on the acquired resource structure data.
- the resource configuration data here may include operating frequency band information for each link direction when the macro cell 28 is operated in a frequency division duplex (FDD) scheme.
- FDD frequency division duplex
- the resource configuration data may include UL-DL configuration information.
- the UL-DL configuration information is, for example, for each of a plurality of subframes (10 subframes in the LTE scheme) constituting a radio frame, whether the subframe is an uplink subframe or a downlink subframe (or Special subframe).
- the terminal detection unit 146 continuously measures the received signal strength on the uplink resource identified based on the resource configuration data, and compares the measured received signal strength with a determination threshold for terminal detection. Received signal strength can typically be measured without demodulating and decoding the received signal.
- Uplink signals that contribute to received signal strength may include both control signals and data signals.
- the terminal detection unit 146 may measure the received signal strength while scanning the entire receivable channel without being based on the resource configuration data. Note that the measurement of the signal strength by the terminal detection unit 146 here may include an arbitrary calculation such as an arithmetic average or a moving average with respect to a direct measurement value.
- the determination threshold for terminal detection may be a fixed value (for example, ⁇ 50 dBm) defined in advance. Instead, the determination threshold for terminal detection may be set larger as the distance between the macrocell base station 20 and the radio communication unit 110 is larger. Generally, a terminal device located at a location farther from the macro cell base station 20 transmits an uplink signal with higher power. On the other hand, the cell size of the small cell 18 does not depend on the distance between the macrocell base station 20 and the radio communication unit 110 in many cases. Therefore, as the distance from the macro cell base station 20 is larger, the determination threshold is set to be larger.
- the terminal detection unit 146 has the small cell base station 10 It is possible to prevent erroneous detection of a terminal that is not located close enough. In addition, it is possible to prevent a terminal located sufficiently near the small cell base station 10 from being detected by the terminal detection unit 146 as a result of the uplink signal strength being too weak in the vicinity of the cell center of the macro cell 28.
- the dynamic setting of the determination threshold may be performed autonomously by the terminal detection unit 146 or may be performed in response to an instruction from an external device.
- the terminal detection unit 146 may dynamically set a determination threshold for terminal detection based on the strength of a downlink signal (for example, a reference signal) received from the macrocell base station 20. Normally, the strength of the downlink signal received from the macrocell base station 20 decreases as the distance between the macrocell base station 20 and the radio communication unit 110 increases. Therefore, with a relatively simple implementation in which the determination threshold is set to be larger as the strength of the downlink signal from the macrocell base station 20 (for example, the received signal strength (RSSI) or the reference signal received power (RSRP)) is smaller, It is possible to prevent erroneous detection of a non-existing terminal and non-detection of a terminal to be detected.
- a downlink signal for example, a reference signal
- the terminal detection unit 146 typically determines that the terminal device 30 exists in the vicinity of the small cell base station 10 when the received signal strength measured on the uplink resource exceeds the determination threshold. According to this threshold determination method, even if a terminal actually exists in the vicinity of the small cell base station 10, the terminal detection unit 146 does not detect the terminal unless the terminal transmits an uplink signal. Terminals that do not transmit uplink data signals or control signals (eg, acknowledgments for downlink data signals) do not affect system capacity regardless of whether they are accommodated in the small cell base station 10, and thus are described above. The threshold judgment method is reasonable.
- the terminal detection unit 146 may determine that there is a terminal in the vicinity of the small cell base station 10 when the received signal strength continuously exceeds the determination threshold for a predetermined time length that can be measured by a timer. According to such a configuration, for example, it is avoided that the small cell base station 10 is activated for a terminal that has temporarily stayed in the small cell 18 (passed through the small cell 18 in a short time). Can do. It is also possible to avoid the small cell base station 10 being activated due to a one-time action such as downloading of e-mail data by the terminal.
- the terminal detection unit 146 may change the determination threshold depending on the read terminal ID. For example, when the terminal ID of a user who frequently stays in the small cell 18 is read, the small threshold wireless communication service can be quickly provided to the user by setting the determination threshold value low. .
- the terminal detection unit 146 may determine that a terminal exists in the vicinity of the small cell base station 10 when the measurement result of the received signal strength matches a predetermined pattern.
- the predetermined pattern may correspond to, for example, some periodicity or continuity, or a combination thereof. According to such a configuration, for example, it is possible to detect a terminal that continues to receive downlink data for a certain period by capturing an acknowledgment (ACK) and a negative acknowledgment (NACK) for the downlink data. Become.
- the terminal detection unit 146 continuously performs uplink signal strength monitoring as described above while the operation mode of the wireless communication unit 110 is set to the standby mode. And the mode setting part 144 switches the operation mode of the radio
- the macro cell base station 20 instructs the measurement to at least one terminal connected to the macro cell base station 20 in response to reception of the message.
- the communication quality higher than the reference signal of the macro cell 28 is measured for the small cell 18 at the terminal actually located in the vicinity of the small cell base station 10, and the handover from the macro cell 28 to the small cell 18 by the terminal is executed. Can be done.
- the mode setting unit 144 may signal the switching of the operation mode to the active mode to an external device that is an upper node of the macro cell base station 20.
- the mode setting unit 144 may switch the operation mode to the standby mode when no terminal is connected to the small cell 18 (for example, handover is not requested) by a certain timing after switching to the active mode.
- the certain timing may be, for example, a timing at which a predetermined time length has elapsed from an arbitrary time point such as detection of a nearby terminal, signaling to the macro cell base station 20, or switching to the active mode.
- the mode setting unit 144 may switch the operation mode to the standby mode when notified from the external device that the handover is not executed as a response to the switching to the active mode.
- the macro cell base station 20 determines that the handover to the small cell 18 should not be executed as a result of the handover determination based on the measurement report from the terminal, the macro cell base station 20 notifies the small cell base station 10 that the handover is not executed. Can do. In any case, the useless transmission of the downlink reference signal can be stopped by quickly switching the operation mode back to the standby mode in a situation where there is no terminal actually connected to the small cell 18. Thereby, generation
- 3A to 3D are explanatory diagrams for explaining the basic principle of the communication control process according to the present embodiment.
- a small cell base station 10b a small cell base station 10b, a macro cell base station 20, and a terminal device 30b are shown.
- the small cell base station 10b is set to the standby mode.
- the terminal device 30b is located at the point P1.
- the point P1 is outside the range of the small cell 18b operated by the small cell base station 10b.
- the uplink signal 32 transmitted from the terminal device 30b to the macro cell base station 20 is received at a level lower than the determination threshold by the small cell base station 10b, or not received at all.
- the terminal device 30b has moved from the point P1 to the point P2.
- the point P2 is inside the small cell 18b.
- the uplink signal 32 transmitted from the terminal device 30b to the macro cell base station 20 is received at a level higher than the determination threshold by the small cell base station 10b.
- the small cell base station 10b monitors the uplink resource of the macro cell 28 even while the standby mode is set, and recognizes that the received signal strength exceeds the determination threshold due to the uplink signal 32. . As a result, the small cell base station 10b detects that the terminal device 30b exists in the vicinity.
- the small cell base station 10b that has detected the presence of the terminal device 30b has transitioned to the active mode.
- the small cell base station 10b starts transmission of the downlink reference signal 12.
- the small cell base station 10b transmits the terminal detection message 42 to the macro cell base station 20 on the backhaul link.
- the terminal detection message 42 may indicate that a terminal existing in the vicinity of the small cell base station 10b has been detected and that the small cell base station 10b has been activated.
- the macro cell base station 20 transmits a measurement instruction message 44 to the terminal device 30b (and other terminals).
- the terminal device 30b executes measurement in response to an instruction from the macro cell base station 20.
- the terminal device 30b measures a quality index such as RSRP or RSRQ for the reference signal 12 from the small cell base station 10b.
- the terminal device 30b transmits a measurement report 46 indicating the measurement result to the macro cell base station 20.
- the measurement report 46 indicates that the communication quality of the small cell 18b is better than that of the macro cell 28
- the macro cell base station 20 sends a handover instruction message 48 with the small cell base station 10b as the target base station to the terminal device.
- a handover instruction message 48 with the small cell base station 10b as the target base station to the terminal device.
- FIG. 4 is a block diagram showing an example of the configuration of the macro cell base station 20 according to the first embodiment.
- the macro cell base station 20 includes a radio communication unit 210, a network communication unit 220, a storage unit 230, and a control unit 240.
- the macrocell base station 20 operates according to the LTE scheme.
- the radio communication unit 210 provides a radio communication service to the terminal device 30 located in the macro cell 28.
- the wireless communication unit 210 transmits a primary synchronization sequence and a secondary synchronization sequence on the downlink channel.
- the pattern of the synchronization sequence corresponds to one of a plurality of cell IDs.
- the small cell base station 10 and the terminal device 30 can acquire synchronization with the macro cell 28 and identify the macro cell 28.
- the radio communication unit 210 transmits a cell-specific reference signal (CRS) also called a pilot signal following the synchronization sequence.
- CRS cell-specific reference signal
- the terminal device 30 derives the communication quality of the macro cell 28 by executing measurement on the reference signal transmitted from the wireless communication unit 210.
- the terminal device 30 can select a cell showing the best communication quality as an optimum serving cell through a procedure called cell selection.
- the network communication unit 220 mediates communication between the macro cell base station 20 and the control node in the core network 5, other macro cell base stations, and the small cell base station 10. For example, the network communication unit 220 establishes communication links called S1-U interface and S1-MME interface with S-GW (Serving-Gateway) and MME (Mobility Management Entity) in the core network 5, respectively. . The network communication unit 220 establishes a communication link called an X2 interface with other base stations. The X2 interface can also be used as the backhaul link described above.
- the storage unit 230 stores a program and data for the operation of the macrocell base station 20 using a storage medium such as a hard disk or a semiconductor memory.
- the data stored by the storage unit 230 may include, for example, resource configuration data distributed to the small cell base station 10.
- the data stored by the storage unit 230 may include identification information for each small cell base station 10 and cell data indicating the current operation mode.
- the control unit 240 controls the overall operation of the macrocell base station 20 using a processor such as a CPU or DSP.
- the control unit 240 includes a communication control unit 242 and a small cell control unit 244.
- the communication control unit 242 controls the provision of a wireless communication service by the macrocell base station 20. For example, the communication control unit 242 receives the uplink data traffic received by the wireless communication unit 210 from the network communication unit 220 to the core network 5 or another macro cell base station or small cell base station, depending on the destination. 10 is transferred. Further, the communication control unit 242 causes the wireless communication unit 210 to transmit downlink data traffic received from the other nodes by the network communication unit 220 to the destination terminal device 30. In addition, when a measurement report is received from the terminal device 30, the communication control unit 242 performs handover determination based on the communication quality of the macro cell 28 (which is a serving cell) and other cells indicated by the measurement report. . For example, when the communication quality of the small cell 18 is better than the communication quality of the macro cell 28, a handover request is transmitted to the small cell base station 10 that operates the small cell 18, and further a handover instruction is sent to the terminal device 30. Send.
- the communication quality of the small cell 18 is better than the communication quality of
- the small cell control unit 244 controls the operation of the small cell base station 10 that operates the small cell 18 that overlaps the macro cell 28. For example, the small cell control unit 244 sends the wireless communication unit 210 to at least one terminal device 30 connected to the macro cell 28 in response to reception of a terminal detection message from the small cell base station 10 by the network communication unit 220. Send a measurement instruction message.
- the terminal detection message may indicate that a terminal existing in the vicinity of the small cell base station 10 is detected while the small cell base station 10 is set in the standby mode.
- the terminal detection message may further indicate that the small cell base station 10 has been activated (in this sense, the terminal detection message may be referred to as an activation notification message).
- the measurement instruction message may be broadcast in the macro cell 28 or may be multicast to a plurality of terminal devices 30. Instead, the measurement instruction message may be unicast to each terminal device 30.
- the measurement instruction message is selectively transmitted to only some terminal devices 30 located near the small cell base station 10 that is the transmission source of the terminal detection message among the plurality of terminal devices 30 existing in the macro cell 28. May be.
- the terminal device 30 executes the measurement in response to the reception of the measurement instruction message, and transmits a measurement report to the macro cell base station 20.
- the small cell control unit 244 executes the handover to the small cell base station 10. You may be notified that it will not. Thereby, the small cell base station 10 can quickly switch the operation mode back to the standby mode, and can stop the useless transmission of the reference signal from the small cell base station 10.
- the small cell control unit 244 may instruct the small cell base station 10 of a determination threshold for terminal detection that should be used by the small cell base station 10.
- the determination threshold for terminal detection may be a fixed value defined in advance as described above, or may be a value that is dynamically set depending on parameters such as the distance between base stations. Also good. Further, the small cell control unit 244 may transmit resource configuration data for identifying uplink resources to be monitored by the small cell base station 10 to the small cell base station 10 via the network communication unit 220.
- the small cell base station 10 may omit the measurement instruction to the terminal and the reception of the measurement report from the terminal.
- the small cell control unit 244 in response to reception of the terminal detection message from the small cell base station 10, transmits to the at least one terminal device 30 connected to the macro cell 28 the small cell that is the transmission source of the terminal detection message. A handover to the base station 10 may be instructed.
- each small cell 18 and macro cell 28 are operated by different base station apparatuses.
- the technology according to the present disclosure can also be applied to an example in which a single base station apparatus operates a plurality of cells.
- a single base station apparatus operates two or more small cells having different cell IDs using a plurality of antennas.
- the operation mode of each small cell can be set separately depending on whether a terminal exists in the vicinity of each small cell.
- FIG. 5 is a flowchart illustrating an example of a terminal detection process executed by the small cell base station 10 according to the first embodiment.
- the terminal detection process illustrated in FIG. 5 is started when the operation mode of the small cell base station 10 is set to the standby mode.
- the terminal detection unit 146 acquires resource configuration data for the macro cell 28 from an external device (step S110). Next, the terminal detection unit 146 identifies uplink resources to be monitored based on the acquired resource configuration data (step S115). Next, the terminal detection unit 146 sets a determination threshold for terminal detection (step S120).
- the terminal detection unit 146 waits for the arrival of the monitoring cycle (step S125).
- the terminal detection unit 146 measures the received signal strength on the uplink resource identified based on the resource configuration data (step S130).
- the terminal detection part 146 detects the terminal which exists in the vicinity of the small cell base station 10 by performing the determination process based on the measured received signal strength (step S140).
- step S140 If a nearby terminal is not detected in step S140, the process returns to step S125 (step S150).
- the mode setting unit 144 switches the operation mode of the wireless communication unit 110 to the active mode, and causes the wireless communication unit 110 to start transmitting a reference signal (step S170).
- the mode setting unit 144 transmits a terminal detection message for signaling switching of the operation mode to the active mode to the macro cell base station 20 (step S175).
- the communication control unit 142 waits for reception of a handover request (step S180).
- the mode setting unit 144 causes the radio communication unit 110 to stop transmitting the reference signal and set the operation mode of the radio communication unit 110 to the standby mode. Switch back (step S185).
- the mode setting unit 144 may switch the operation mode back to the standby mode even when an external device notifies that the handover is not executed. Thereafter, the process returns to step S125.
- the mode setting unit 144 maintains the active mode, and after the handover procedure, the radio communication unit 110 communicates with the terminal device 30. Is established (step S190).
- FIG. 6 is a flowchart showing an example of a detailed flow of the threshold setting process corresponding to step S120 in FIG. Here, an example is shown in which the determination threshold for terminal detection is dynamically set based on the strength of the signal received from the macrocell base station 20.
- the terminal detection unit 146 measures the strength of a downlink signal (for example, a reference signal) received from the macrocell base station 20 by the wireless communication unit 110 (step S121). Then, the terminal detection unit 146 dynamically sets a determination threshold for terminal detection based on the measured downlink signal strength (step S122). For example, the terminal detection unit 146 can set the determination threshold value larger as the measurement result of the signal strength is smaller.
- a downlink signal for example, a reference signal
- FIG. 7A is a flowchart showing a first example of a detailed flow of a determination process corresponding to step S140 in FIG.
- the terminal detection unit 146 determines whether the measured uplink signal strength exceeds a determination threshold (step S141). And the terminal detection part 146 determines with the terminal device 30 existing in the vicinity of the small cell base station 10, when the intensity
- FIG. 7B is a flowchart showing a second example of a detailed flow of the determination process corresponding to step S140 of FIG.
- the terminal detection unit 146 determines whether the measured uplink signal strength continuously exceeds the determination threshold over a predetermined time length (step S142). And the terminal detection part 146 determines with the terminal device 30 existing in the vicinity of the small cell base station 10, when the intensity
- FIG. 7C is a flowchart showing a third example of a detailed flow of the determination process corresponding to step S140 of FIG.
- the terminal detection unit 146 determines whether the measurement result of the measured uplink signal strength (over a certain time window) matches a predetermined pattern (step S143). And the terminal detection part 146 determines with the terminal device 30 existing in the vicinity of the small cell base station 10, when a measurement result suits a predetermined pattern (step S145). On the other hand, if not, the terminal detection unit 146 determines that the terminal device 30 does not exist in the vicinity of the small cell base station 10 (step S146).
- FIG. 8 is a flowchart which shows an example of the flow of the small cell control process performed by the macrocell base station 20 which concerns on 1st Embodiment.
- the small cell control unit 244 waits for reception of a terminal detection message from the small cell base station 10 in standby (step S210). Then, when the terminal detection message is received, the small cell control unit 244 transmits a measurement instruction message to at least one terminal device 30 connected to the macro cell 28 (step S215).
- the wireless communication unit 210 receives a measurement report from the terminal device 30 that has received the measurement instruction message (step S220).
- the measurement report can also be received from the terminal device 30 that periodically executes the measurement regardless of the reception of the measurement instruction message.
- the communication control unit 242 performs handover determination based on the communication quality of the macro cell 28 and other cells indicated by the measurement report (step S225). Although simply shown in the figure, the handover determination can be executed for each terminal device 30 each time a measurement report is received.
- the communication control unit 242 determines whether there is a terminal that should execute the handover based on the result of the handover determination (step S230).
- the communication control unit 242 transmits a handover request to the small cell base station 10 selected as the target base station (step S235).
- the communication control unit 242 transmits a handover instruction to the terminal device 30 that is the transmission source of the measurement report (step S240).
- the small cell control unit 244 notifies the small cell base station 10 that has transmitted the terminal detection message that the handover is not executed ( Step S250).
- Non-Patent Document 1 proposes a scenario in which a plurality of small cells arranged at a high density are clustered, and the small cells in the cluster operate cooperatively with each other.
- the small cell base station 10 belongs to such a cluster will be described.
- FIG. 9 is an explanatory diagram for explaining an overview of the wireless communication system according to the second embodiment.
- the radio communication system 3 includes small cell base stations 10b, 10c, 10d and 10e, a macro cell base station 20, and terminal devices 30b, 30c and 30z. Note that the number of macro cell base stations, the number of small cell base stations, and the number of terminal devices included in the wireless communication system 3 are not limited to the example of FIG.
- Small cell base stations 10 c, 10 d, and 10 e are small cell base stations that belong to one small cell cluster 14.
- the entire small cell cluster 14 is on standby, that is, all the small cell base stations 10c, 10d, and 10e are operating in the standby mode.
- the terminal device 30c has moved from the point P3 to the point P4 in the vicinity of the small cell base station 10c.
- the small cell base station 10 c monitors the strength of the uplink signal transmitted in the macro cell 28 while the operation mode is set to the standby mode. And the small cell base station 10c detects that the terminal device 30c exists in the vicinity.
- any small cell base station 10 in the small cell cluster 14 selected according to some selection criteria transitions to the active mode.
- the small cell base stations 10d and 10e may monitor the uplink signal strength together with the small cell base station 10c, or may not perform the monitoring.
- the transition of the operation mode of the small cell base station 10 in the small cell cluster 14 may be performed depending on a change in traffic load of the macro cell 28 or each small cell 18 in addition to detection of a nearby terminal.
- a plurality of small cell base stations 10 belonging to the same small cell cluster 14 typically operate synchronously at the same frame timing. Each small cell base station 10 periodically transmits a reference signal in the active mode.
- the transmission density of reference signals (and other control signals) from one small cell base station 10 forming a small cell cluster is compared with that from the macro cell base station 20 or the small cell base station 10 operating alone. It may be set lower.
- a plurality of small cell base stations 10 belonging to the same small cell cluster transmit a reference signal in a round-robin manner (alternatively if there are two) in a subframe unit, so that the inside of the macro cell 28 caused by the reference signal Interference can be suppressed.
- the number of terminals connected to the small cell is smaller than that of the macro cell, and its mobility is assumed to be lower. Therefore, it is unlikely that a reduction in the density of the reference signal and control signal transmitted in each small cell will negatively affect the communication performance.
- FIG. 10 is a block diagram illustrating an example of a configuration of the small cell base station 10 according to the second embodiment.
- the small cell base station 10 includes a wireless communication unit 110, a network communication unit 320, a storage unit 330, and a control unit 340.
- the network communication unit 320 establishes a backhaul link with the macro cell base station 20, and mediates communication between the small cell base station 10 and the macro cell base station 20.
- the backhaul link is also used in communication between the small cell base station 10 and another small cell base station (for example, a small cell base station belonging to the same small cell cluster).
- the storage unit 330 stores a program and data for the operation of the small cell base station 10 using a storage medium such as a hard disk or a semiconductor memory.
- the data stored by the storage unit 330 can include, for example, resource configuration data acquired from an external device.
- storage part 330 may contain the data (For example, the subset of the cell data mentioned later) about the small cell cluster to which the small cell base station 10 belongs.
- Control Unit 340 controls the overall operation of the small cell base station 10 using a processor such as a CPU or DSP.
- the control unit 340 includes a communication control unit 142, a mode setting unit 344, and a terminal detection unit 146.
- the mode setting unit 344 sets, in the wireless communication unit 110, an operation mode that can be selected from a set of operation modes that can include an active mode and a standby mode. For example, when the number of terminal devices 30 connected to the wireless communication unit 110 becomes zero, the mode setting unit 344 switches the operation mode of the wireless communication unit 110 from the active mode to the standby mode.
- the mode setting unit 344 is included in the small cell cluster to which the small cell base station 10 belongs when the terminal detection unit 146 detects a nearby terminal while the operation mode is set to the standby mode. A small cell to be activated is selected from the small cells.
- the mode setting unit 344 may refer to the cell data stored in the storage unit 330 and select a small cell to be activated according to the priority for each small cell defined by the cell data.
- a specific example of the cell data configuration will be described later.
- the selection criteria for the small cell to be activated is not limited to a predefined priority, for example, the measured uplink signal strength, cell size, or battery level (when battery powered), etc. Any criteria related to the parameters of
- the mode setting unit 344 switches the operation mode of the wireless communication unit 110 to the active mode when the small cell 18 operated by the own device is selected as a cell to be activated.
- the mode setting unit 344 sends an activation request to the base station of the selected other small cell. Send.
- the activation request may be sent over the backhaul link (eg, over the X2 interface). Instead, the activation request may be transmitted via the wireless communication unit 110 on the random access channel of the destination small cell base station.
- the mode setting unit 344 sets the operation mode of the wireless communication unit 110 when an activation request is received from another small cell base station that has detected a nearby terminal even if the terminal is not detected in the own device. Switch to active mode. Then, the mode setting unit 344 transmits a message for signaling switching of the operation mode to the active mode to the macro cell base station 20 via the backhaul link.
- the selection of a small cell to be activated may be performed by an external device (for example, the macro cell base station 20 or a higher-order node of the macro cell base station 20) instead of the mode setting unit 344 of the small cell base station 10.
- the mode setting unit 344 may transmit a terminal detection message to the external device and receive a small cell selection result from the external device.
- the terminal detection unit 146 performs monitoring of the strength of the uplink signal transmitted in the macro cell 28 while the operation mode of the wireless communication unit 110 is set to the standby mode.
- the standby mode may include a monitoring mode in which uplink signal strength monitoring is performed by the terminal detection unit 146 and a sleep mode in which the monitoring is not performed. In the sleep mode, the terminal detection unit 146 does not perform uplink signal strength monitoring.
- the mode setting unit 344 switches the operation mode of the radio communication unit 110 to the active mode only when a terminal is detected by another small cell base station belonging to the same small cell cluster and an activation request is received. . When the activation request is received via the network communication unit 320, the supply of power to the wireless communication unit 110 can be completely stopped in the sleep mode.
- the mode setting unit 344 determines that the wireless communication unit 110 does not connect any terminal to the small cell 18 by a certain timing after switching to the active mode or when an external device notifies that no handover is executed.
- the operation mode may be switched to the standby mode (monitoring mode or sleep mode).
- FIG. 11 is a block diagram illustrating an example of a configuration of the macro cell base station 20 according to the second embodiment.
- the macro cell base station 20 includes a radio communication unit 210, a network communication unit 220, a storage unit 430, and a control unit 440.
- the storage unit 430 stores a program and data for the operation of the macrocell base station 20 using a storage medium such as a hard disk or a semiconductor memory.
- the data stored by the storage unit 430 can include, for example, resource configuration data distributed to the small cell base station 10. Further, the data stored by the storage unit 430 may include the cell data 431 illustrated in FIG.
- FIG. 12 is an explanatory diagram showing an example of the configuration of the cell data 431.
- Cell data 431 includes six data items: cell ID 432, associated macro cell 433, base station (BS) location 434, current mode 435, cluster ID 436, and activation priority 437.
- the cell ID is an identifier for uniquely identifying each of one or more macro cells and one or more small cells.
- the related macro cell 433 indicates a cell ID of a macro cell associated with each small cell. According to the example of FIG. 12, small cells having cell IDs “SC1” to “SC5” are all associated with a macro cell having cell ID “MC1” (that is, arranged so as to overlap with the macro cell). . If the related macro cell 433 is blank, the record defines information about the macro cell.
- the BS position 434 indicates the geographical position of the base station that operates each cell.
- the current mode 435 represents the current operation mode of each small cell.
- the cluster ID 436 is an identifier for identifying the small cell cluster to which each small cell belongs. In the example of FIG. 12, a small cell having cell IDs “SC1”, “SC2”, and “SC3” belongs to a small cell cluster having a cluster ID “CL11”. A small cell having cell IDs “SC4” and “SC5” belongs to a small cell cluster having a cluster ID “CL12”.
- the activation priority 437 indicates the activation priority of each small cell within the same cluster.
- the cell having the smallest activation priority 437 value A small cell with ID “SC1” may be preferentially activated.
- the control unit 440 controls the overall operation of the macrocell base station 20 using a processor such as a CPU or DSP.
- the control unit 440 includes a communication control unit 242 and a small cell control unit 444.
- the small cell control unit 444 controls the operation of the small cell base station 10 that operates the small cell 18 that overlaps the macro cell 28. For example, the small cell control unit 444 adds a record related to the small cell to the cell data 431 stored in the storage unit 430 at the time of initial registration of each small cell cell 18. In addition, the small cell control unit 444 updates the cell data 431 when the operation mode of the small cell base station 10 changes or the small cell base station 10 moves.
- the small cell control unit 444 may distribute all or a subset of the cell data 431 to each small cell base station 10. Thereby, when each small cell base station 10 detects a terminal existing in the vicinity, the small cell base station 10 can autonomously select a small cell to be activated. Instead, the small cell control unit 444 may select the small cell base station to be activated with reference to the cell data 431 in response to reception of the terminal detection message from each small cell base station 10. When the small cell control unit 444 selects the small cell base station to be activated, the small cell control unit 444 transmits the selection result to the small cell base station 10 that is the transmission source of the terminal detection message, or the selected small cell base station.
- the small cell control unit 444 connects to the macro cell 28 to the wireless communication unit 210 when a message indicating that the small cell 18 is activated in response to the detection of the terminal from the small cell base station 10 is received.
- the measurement instruction message is transmitted to at least one terminal device 30.
- the small cell control unit 444 performs handover to the small cell base station 10. You may notify that it is not performed. Further, the small cell control unit 444 may instruct the small cell base station 10 of a determination threshold value for detecting a terminal to be used by the small cell base station 10. As described above, the determination threshold for terminal detection may be a fixed value defined in advance, or may be a value set dynamically. Further, the small cell control unit 444 may transmit the resource configuration data to the small cell base station 10 via the network communication unit 220.
- the management function for managing the cell data 431 of the macro cell base station 20 described in this section may be implemented in an upper node of the macro cell base station 20 (for example, a control node in the core network 5 or the Internet 7). Regardless of which node is implemented, the management function exchanges signaling with the small cell base station 10 to grasp the current operation mode for each small cell base station 10.
- the association between each small cell base station 10 and the macro cell 28 may be manually registered and updated by an operator. Instead, the association between each small cell base station 10 and the macro cell 28 is the location data reported from the small cell base station 10, the cell ID and quality indicator included in the measurement report received from the terminal device 30, And may be automatically registered and updated based on one or more of the signal strength measurements performed at each base station.
- FIG. 13 is a flowchart illustrating an example of a flow of terminal detection processing executed by the small cell base station 10 according to the second embodiment.
- the terminal detection process illustrated in FIG. 13 is started when the operation mode of the small cell base station 10 is set to the standby mode (monitoring mode).
- the terminal detection unit 146 acquires resource configuration data for the macro cell 28 from an external device (step S110). Next, the terminal detection unit 146 identifies uplink resources to be monitored based on the acquired resource configuration data (step S115). Next, the terminal detection unit 146 sets a determination threshold for terminal detection (step S120).
- the terminal detection unit 146 waits for the arrival of the monitoring cycle (step S125).
- the terminal detection unit 146 measures the received signal strength on the uplink resource identified based on the resource configuration data (step S130). And the terminal detection part 146 detects the terminal which exists in the vicinity of the small cell base station 10 by performing the determination process based on the measured received signal strength (step S140).
- step S150 the mode setting unit 344 determines whether an activation request is received from another node (step S155). If the activation request has not been received, the process returns to step S125. On the other hand, if an activation request is received, the process proceeds to step S170.
- the mode setting unit 344 selects a small cell to be activated among the small cells in the small cell cluster to which the own device belongs (step S160).
- the selection of the small cell may be performed by the mode setting unit 344 referring to a subset of the cell data 431 as described above. Instead, the mode setting unit 344 may inquire the macro cell base station 20 which small cell should be activated.
- the mode setting unit 344 determines whether the small cell operated by the own device has been selected as the cell to be activated (step S162). When another small cell is selected, the mode setting unit 344 transmits an activation request to the small cell base station that operates the other small cell (step S165).
- the mode setting unit 344 switches the operation mode of the wireless communication unit 110 to the active mode and transmits a reference signal to the wireless communication unit 110. Start (step S170). In addition, the mode setting unit 344 signals to the macro cell base station 20 and other small cell base stations that the operation mode has been switched to the active mode (step S175).
- the communication control unit 142 waits for reception of a handover request (step S180).
- the mode setting unit 344 stops the wireless communication unit 110 from transmitting the reference signal, and the wireless communication unit 110 The operation mode is switched back to the standby mode (step S185). Thereafter, the process returns to step S125.
- the mode setting unit 344 maintains the active mode, and after the handover procedure, the radio communication unit 110 communicates with the terminal device 30. Is established (step S190).
- FIG. 13 shows an example of the flow of processing mainly executed in the monitoring mode.
- the processes of steps S110 to S150 and steps S160 to S165 related to monitoring may be omitted.
- a management server having a cell data management function may be realized as an upper node of the macro cell base station 20 in the form of a tower server, a rack server, or a blade server.
- a cell data management function may be realized in a control module (for example, an integrated circuit module configured by one die or a card or a blade inserted in a slot of a blade server) mounted on the management server. .
- the small cell base station 10 and the macro cell base station 20 may be realized as any kind of eNB (evolved Node B).
- the small eNB may be an eNB that covers a cell smaller than a macro cell, such as a pico eNB, a micro eNB, or a home (femto) eNB.
- the small cell base station 10 and the macro cell base station 20 may be realized as other types of base stations such as Node B or BTS (Base Transceiver Station).
- the macrocell base station 20 may include a main body (also referred to as a base station apparatus) that controls wireless communication, and one or more RRHs (Remote Radio Heads) that are arranged at locations different from the main body. Further, various types of terminals described later may operate as the small cell base station 10 by temporarily or semi-permanently executing the base station function.
- the terminal device 30 is a smartphone, a tablet PC (Personal Computer), a notebook PC, a portable game terminal, a mobile terminal such as a portable / dongle type mobile router or a digital camera, or an in-vehicle terminal such as a car navigation device. It may be realized as.
- the terminal device 30 may be realized as a terminal (also referred to as an MTC (Machine Type Communication) terminal) that performs M2M (Machine To Machine) communication.
- a wireless communication module for example, an integrated circuit module configured by one die mounted on the terminal device 30 may be provided.
- FIG. 14 is a block diagram illustrating an example of a schematic configuration of the management server 700 to which the technology according to the present disclosure can be applied.
- the management server 700 includes a processor 701, a memory 702, a storage 703, a network interface 704, and a bus 706.
- the processor 701 may be a CPU (Central Processing Unit) or a DSP (Digital Signal Processor), for example, and controls various functions of the server 700.
- the memory 702 includes a RAM (Random Access Memory) and a ROM (Read Only Memory), and stores programs and data executed by the processor 701.
- the storage 703 may include a storage medium such as a semiconductor memory or a hard disk.
- the network interface 704 is a wired communication interface for connecting the server 700 to the wired communication network 705.
- the wired communication network 705 may be a core network such as EPC (Evolved Packet Core) or a PDN (Packet Data Network) such as the Internet.
- EPC Evolved Packet Core
- PDN Packet Data Network
- the bus 706 connects the processor 701, the memory 702, the storage 703, and the network interface 704 to each other.
- the bus 706 may include two or more buses with different speeds (eg, a high speed bus and a low speed bus).
- the management server 700 shown in FIG. 14 plays a role of managing the cell data 431 as described with reference to FIG. 12, even if a large number of small cells are deployed in the system, the operation mode of these small cells Can be executed in a centralized and cooperative manner.
- FIG. 15 is a block diagram illustrating a first example of a schematic configuration of an eNB to which the technology according to the present disclosure may be applied.
- the eNB 800 includes one or more antennas 810 and a base station device 820. Each antenna 810 and the base station apparatus 820 can be connected to each other via an RF cable.
- Each of the antennas 810 has a single or a plurality of antenna elements (for example, a plurality of antenna elements constituting a MIMO antenna), and is used for transmission and reception of radio signals by the base station apparatus 820.
- the eNB 800 includes a plurality of antennas 810 as illustrated in FIG. 15, and the plurality of antennas 810 may respectively correspond to a plurality of frequency bands used by the eNB 800, for example.
- FIG. 15 illustrates an example in which the eNB 800 includes a plurality of antennas 810, the eNB 800 may include a single antenna 810.
- the base station apparatus 820 includes a controller 821, a memory 822, a network interface 823, and a wireless communication interface 825.
- the controller 821 may be a CPU or a DSP, for example, and operates various functions of the upper layer of the base station apparatus 820. For example, the controller 821 generates a data packet from the data in the signal processed by the wireless communication interface 825, and transfers the generated packet via the network interface 823. The controller 821 may generate a bundled packet by bundling data from a plurality of baseband processors, and may transfer the generated bundled packet. In addition, the controller 821 is a logic that executes control such as radio resource control, radio bearer control, mobility management, inflow control, or scheduling. May have a typical function. Moreover, the said control may be performed in cooperation with a surrounding eNB or a core network node.
- the memory 822 includes RAM and ROM, and stores programs executed by the controller 821 and various control data (for example, terminal list, transmission power data, scheduling data, and the like).
- the network interface 823 is a communication interface for connecting the base station device 820 to the core network 824.
- the controller 821 may communicate with the core network node or other eNB via the network interface 823.
- the eNB 800 and the core network node or another eNB may be connected to each other by a logical interface (for example, an S1 interface or an X2 interface).
- the network interface 823 may be a wired communication interface or a wireless communication interface for wireless backhaul.
- the network interface 823 may use a frequency band higher than the frequency band used by the wireless communication interface 825 for wireless communication.
- the wireless communication interface 825 supports any cellular communication method such as LTE (Long Term Evolution) or LTE-Advanced, and provides a wireless connection to terminals located in the cell of the eNB 800 via the antenna 810.
- the wireless communication interface 825 may typically include a baseband (BB) processor 826, an RF circuit 827, and the like.
- the BB processor 826 may perform, for example, encoding / decoding, modulation / demodulation, and multiplexing / demultiplexing, and each layer (for example, L1, MAC (Medium Access Control), RLC (Radio Link Control), and PDCP).
- Various signal processing of Packet Data Convergence Protocol
- Packet Data Convergence Protocol is executed.
- the BB processor 826 may have some or all of the logical functions described above instead of the controller 821.
- the BB processor 826 may be a module that includes a memory that stores a communication control program, a processor that executes the program, and related circuits. The function of the BB processor 826 may be changed by updating the program. Good.
- the module may be a card or a blade inserted into a slot of the base station apparatus 820, or a chip mounted on the card or the blade.
- the RF circuit 827 may include a mixer, a filter, an amplifier, and the like, and transmits and receives a radio signal via the antenna 810.
- the wireless communication interface 825 includes a plurality of BB processors 826 as illustrated in FIG. 15, and the plurality of BB processors 826 may respectively correspond to a plurality of frequency bands used by the eNB 800, for example. Further, the wireless communication interface 825 includes a plurality of RF circuits 827 as illustrated in FIG. 15, and the plurality of RF circuits 827 may respectively correspond to a plurality of antenna elements, for example. 15 illustrates an example in which the wireless communication interface 825 includes a plurality of BB processors 826 and a plurality of RF circuits 827, the wireless communication interface 825 includes a single BB processor 826 or a single RF circuit 827. But you can.
- FIG. 16 is a block diagram illustrating a second example of a schematic configuration of an eNB to which the technology according to the present disclosure may be applied.
- the eNB 830 includes one or more antennas 840, a base station apparatus 850, and an RRH 860. Each antenna 840 and RRH 860 may be connected to each other via an RF cable. Base station apparatus 850 and RRH 860 can be connected to each other via a high-speed line such as an optical fiber cable.
- Each of the antennas 840 has a single or a plurality of antenna elements (for example, a plurality of antenna elements constituting a MIMO antenna), and is used for transmission / reception of radio signals by the RRH 860.
- the eNB 830 includes a plurality of antennas 840 as illustrated in FIG. 16, and the plurality of antennas 840 may respectively correspond to a plurality of frequency bands used by the eNB 830, for example. 16 shows an example in which the eNB 830 includes a plurality of antennas 840, but the eNB 830 may include a single antenna 840.
- the base station device 850 includes a controller 851, a memory 852, a network interface 853, a wireless communication interface 855, and a connection interface 857.
- the controller 851, the memory 852, and the network interface 853 are the same as the controller 821, the memory 822, and the network interface 823 described with reference to FIG.
- the wireless communication interface 855 supports a cellular communication method such as LTE or LTE-Advanced, and provides a wireless connection to a terminal located in a sector corresponding to the RRH 860 via the RRH 860 and the antenna 840.
- the wireless communication interface 855 may typically include a BB processor 856 and the like.
- the BB processor 856 is the same as the BB processor 826 described with reference to FIG. 15 except that the BB processor 856 is connected to the RF circuit 864 of the RRH 860 via the connection interface 857.
- the wireless communication interface 855 includes a plurality of BB processors 856 as illustrated in FIG.
- the plurality of BB processors 856 may respectively correspond to a plurality of frequency bands used by the eNB 830, for example.
- 16 shows an example in which the wireless communication interface 855 includes a plurality of BB processors 856, the wireless communication interface 855 may include a single BB processor 856.
- connection interface 857 is an interface for connecting the base station device 850 (wireless communication interface 855) to the RRH 860.
- the connection interface 857 may be a communication module for communication on the high-speed line that connects the base station apparatus 850 (wireless communication interface 855) and the RRH 860.
- the RRH 860 includes a connection interface 861 and a wireless communication interface 863.
- connection interface 861 is an interface for connecting the RRH 860 (wireless communication interface 863) to the base station device 850.
- the connection interface 861 may be a communication module for communication on the high-speed line.
- the wireless communication interface 863 transmits and receives wireless signals via the antenna 840.
- the wireless communication interface 863 may typically include an RF circuit 864 and the like.
- the RF circuit 864 may include a mixer, a filter, an amplifier, and the like, and transmits and receives wireless signals via the antenna 840.
- the wireless communication interface 863 includes a plurality of RF circuits 864 as shown in FIG. 16, and the plurality of RF circuits 864 may correspond to, for example, a plurality of antenna elements, respectively. 16 illustrates an example in which the wireless communication interface 863 includes a plurality of RF circuits 864, the wireless communication interface 863 may include a single RF circuit 864.
- the eNB 800 illustrated in FIG. 15 may be used as the small cell base station 10 described in this specification.
- the communication control unit 142, the mode setting unit 144 and the terminal detection unit 146 according to the first embodiment, or the mode setting unit 344 according to the second embodiment may be implemented in the wireless communication interface 825. Further, at least a part of these functions may be implemented in the controller 821.
- the eNB 800 and the eNB 830 illustrated in FIGS. 15 and 16 may be used as the macro cell base station 20 described in this specification.
- the communication control unit 242 and the small cell control unit 244 according to the first embodiment, or the small cell control unit 444 according to the second embodiment includes the radio communication interface 825, the radio communication interface 855, and / or the radio communication interface. 863 may be implemented. Further, at least a part of these functions may be implemented in the controller 821 and the controller 851.
- FIG. 17 is a block diagram illustrating an example of a schematic configuration of a smartphone 900 to which the technology according to the present disclosure can be applied.
- the smartphone 900 includes a processor 901, a memory 902, a storage 903, an external connection interface 904, a camera 906, a sensor 907, a microphone 908, an input device 909, a display device 910, a speaker 911, a wireless communication interface 912, one or more antenna switches 915.
- One or more antennas 916, a bus 917, a battery 918 and an auxiliary controller 919 are provided.
- the processor 901 may be, for example, a CPU or a SoC (System on Chip), and controls the functions of the application layer and other layers of the smartphone 900.
- the memory 902 includes a RAM and a ROM, and stores programs executed by the processor 901 and data.
- the storage 903 can include a storage medium such as a semiconductor memory or a hard disk.
- the external connection interface 904 is an interface for connecting an external device such as a memory card or a USB (Universal Serial Bus) device to the smartphone 900.
- the camera 906 includes, for example, an image sensor such as a CCD (Charge Coupled Device) or a CMOS (Complementary Metal Oxide Semiconductor), and generates a captured image.
- the sensor 907 may include a sensor group such as a positioning sensor, a gyro sensor, a geomagnetic sensor, and an acceleration sensor.
- the microphone 908 converts sound input to the smartphone 900 into an audio signal.
- the input device 909 includes, for example, a touch sensor that detects a touch on the screen of the display device 910, a keypad, a keyboard, a button, or a switch, and receives an operation or information input from a user.
- the display device 910 has a screen such as a liquid crystal display (LCD) or an organic light emitting diode (OLED) display, and displays an output image of the smartphone 900.
- the speaker 911 converts an audio signal output from the smartphone 900 into audio.
- the wireless communication interface 912 supports any cellular communication method such as LTE or LTE-Advanced, and performs wireless communication.
- the wireless communication interface 912 may typically include a BB processor 913, an RF circuit 914, and the like.
- the BB processor 913 may perform, for example, encoding / decoding, modulation / demodulation, and multiplexing / demultiplexing, and performs various signal processing for wireless communication.
- the RF circuit 914 may include a mixer, a filter, an amplifier, and the like, and transmits and receives radio signals via the antenna 916.
- the wireless communication interface 912 may be a one-chip module in which the BB processor 913 and the RF circuit 914 are integrated.
- the wireless communication interface 912 may include a plurality of BB processors 913 and a plurality of RF circuits 914 as illustrated in FIG.
- FIG. 17 shows an example in which the wireless communication interface 912 includes a plurality of BB processors 913 and a plurality of RF circuits 914.
- the wireless communication interface 912 includes a single BB processor 913 or a single RF circuit 914. But you can.
- the wireless communication interface 912 may support other types of wireless communication methods such as a short-range wireless communication method, a proximity wireless communication method, or a wireless LAN (Local Area Network) method in addition to the cellular communication method.
- a BB processor 913 and an RF circuit 914 for each wireless communication method may be included.
- Each of the antenna switches 915 switches the connection destination of the antenna 916 among a plurality of circuits (for example, circuits for different wireless communication systems) included in the wireless communication interface 912.
- Each of the antennas 916 includes a single or a plurality of antenna elements (for example, a plurality of antenna elements constituting a MIMO antenna), and is used for transmission / reception of a radio signal by the radio communication interface 912.
- the smartphone 900 may include a plurality of antennas 916 as illustrated in FIG. Note that although FIG. 17 illustrates an example in which the smartphone 900 includes a plurality of antennas 916, the smartphone 900 may include a single antenna 916.
- the smartphone 900 may include an antenna 916 for each wireless communication method.
- the antenna switch 915 may be omitted from the configuration of the smartphone 900.
- the bus 917 connects the processor 901, the memory 902, the storage 903, the external connection interface 904, the camera 906, the sensor 907, the microphone 908, the input device 909, the display device 910, the speaker 911, the wireless communication interface 912, and the auxiliary controller 919 to each other.
- the battery 918 supplies electric power to each block of the smartphone 900 shown in FIG. 17 through a power supply line partially shown by a broken line in the drawing.
- the auxiliary controller 919 operates the minimum necessary functions of the smartphone 900 in the sleep mode.
- the unit 344 may be implemented in the wireless communication interface 912. In addition, at least a part of these functions may be implemented in the processor 901 or the auxiliary controller 919.
- the smartphone 900 may be used as the terminal device 30.
- FIG. 18 is a block diagram illustrating an example of a schematic configuration of a car navigation device 920 to which the technology according to the present disclosure can be applied.
- the car navigation device 920 includes a processor 921, a memory 922, a GPS (Global Positioning System) module 924, a sensor 925, a data interface 926, a content player 927, a storage medium interface 928, an input device 929, a display device 930, a speaker 931, and wireless communication.
- the interface 933 includes one or more antenna switches 936, one or more antennas 937, and a battery 938.
- the processor 921 may be a CPU or SoC, for example, and controls the navigation function and other functions of the car navigation device 920.
- the memory 922 includes RAM and ROM, and stores programs and data executed by the processor 921.
- the GPS module 924 measures the position (for example, latitude, longitude, and altitude) of the car navigation device 920 using GPS signals received from GPS satellites.
- the sensor 925 may include a sensor group such as a gyro sensor, a geomagnetic sensor, and an atmospheric pressure sensor.
- the data interface 926 is connected to the in-vehicle network 941 through a terminal (not shown), for example, and acquires data generated on the vehicle side such as vehicle speed data.
- the content player 927 reproduces content stored in a storage medium (for example, CD or DVD) inserted into the storage medium interface 928.
- the input device 929 includes, for example, a touch sensor, a button, or a switch that detects a touch on the screen of the display device 930, and receives an operation or information input from the user.
- the display device 930 has a screen such as an LCD or an OLED display, and displays a navigation function or an image of content to be reproduced.
- the speaker 931 outputs the navigation function or the audio of the content to be played back.
- the wireless communication interface 933 supports any cellular communication method such as LTE or LTE-Advanced, and performs wireless communication.
- the wireless communication interface 933 may typically include a BB processor 934, an RF circuit 935, and the like.
- the BB processor 934 may perform, for example, encoding / decoding, modulation / demodulation, and multiplexing / demultiplexing, and performs various signal processing for wireless communication.
- the RF circuit 935 may include a mixer, a filter, an amplifier, and the like, and transmits and receives a radio signal via the antenna 937.
- the wireless communication interface 933 may be a one-chip module in which the BB processor 934 and the RF circuit 935 are integrated.
- the wireless communication interface 933 may include a plurality of BB processors 934 and a plurality of RF circuits 935 as shown in FIG. 18 shows an example in which the wireless communication interface 933 includes a plurality of BB processors 934 and a plurality of RF circuits 935, the wireless communication interface 933 includes a single BB processor 934 or a single RF circuit 935. But you can.
- the wireless communication interface 933 may support other types of wireless communication methods such as a short-range wireless communication method, a proximity wireless communication method, and a wireless LAN method in addition to the cellular communication method.
- a BB processor 934 and an RF circuit 935 may be included for each communication method.
- Each of the antenna switches 936 switches the connection destination of the antenna 937 among a plurality of circuits included in the wireless communication interface 933 (for example, circuits for different wireless communication systems).
- Each of the antennas 937 has a single or a plurality of antenna elements (for example, a plurality of antenna elements constituting a MIMO antenna), and is used for transmission / reception of a radio signal by the radio communication interface 933.
- the car navigation device 920 may include a plurality of antennas 937 as shown in FIG. 18 illustrates an example in which the car navigation apparatus 920 includes a plurality of antennas 937, the car navigation apparatus 920 may include a single antenna 937.
- the car navigation device 920 may include an antenna 937 for each wireless communication method.
- the antenna switch 936 may be omitted from the configuration of the car navigation device 920.
- the battery 938 supplies power to each block of the car navigation apparatus 920 shown in FIG. 18 through a power supply line partially shown by a broken line in the figure. Further, the battery 938 stores electric power supplied from the vehicle side.
- the communication control unit 142, the mode setting unit 144, and the terminal detection unit 146 may be implemented in the wireless communication interface 933. Further, at least a part of these functions may be implemented in the processor 921. In addition, the car navigation device 920 may be used as the terminal device 30.
- the technology according to the present disclosure may be realized as an in-vehicle system (or vehicle) 940 including one or more blocks of the car navigation device 920 described above, an in-vehicle network 941, and a vehicle side module 942.
- vehicle-side module 942 generates vehicle-side data such as vehicle speed, engine speed, or failure information, and outputs the generated data to the in-vehicle network 941.
- the small cell base station can autonomously detect the terminal during standby without relying on a positioning system such as GPS that cannot obtain sufficient positioning accuracy.
- the probability that the terminal that transmits more uplink data is detected more increases. For this reason, even if there is a terminal that hardly transmits a signal in the vicinity of the small cell base station that is on standby, a terminal that does not require such a handover is not detected.
- the above-described mechanism is well suited to the use of a small cell from the viewpoint of distributing the traffic load of a macro cell.
- the terminal may connect to the small cell base station by executing a cell selection procedure without waiting for a handover instruction.
- some small cells selected from the small cell cluster when a terminal is detected by monitoring the strength of the uplink signal transmitted in the macro cell Only the operation mode is switched to the active mode. According to such a configuration, it is possible to eliminate the risk that a plurality of small cells arranged at a high density in a narrow area are simultaneously activated, and as a result, signals interfere with each other and the system capacity decreases. . Thereby, generation
- a series of control processing by each device described in this specification may be realized using any of software, hardware, and a combination of software and hardware.
- the program constituting the software is stored in advance in a storage medium (non-transitory medium) provided inside or outside each device.
- Each program is read into a RAM at the time of execution, for example, and executed by a processor such as a CPU.
- processing described using the flowchart in this specification does not necessarily have to be executed in the order shown in the flowchart. Some processing steps may be performed in parallel. Further, additional processing steps may be employed, and some processing steps may be omitted.
- a wireless communication unit that provides a wireless communication service to one or more terminals in a second cell overlapping the first cell; While the operation mode of the wireless communication unit is set to the standby mode, a detection unit that detects a terminal existing in the vicinity by monitoring the strength of the uplink signal transmitted in the first cell; A mode setting unit that switches the operation mode of the wireless communication unit to an active mode when a terminal in the vicinity is detected by the detection unit;
- a wireless communication device comprising: (2) The wireless communication device according to (1), wherein the detection unit determines that a terminal exists in the vicinity of the wireless communication device when the strength of the uplink signal exceeds a determination threshold.
- the wireless communication apparatus wherein the determination threshold is set to increase as the distance between the base station of the first cell and the wireless communication unit increases.
- the detection unit dynamically sets the determination threshold based on a strength of a downlink signal received from a base station of the first cell. apparatus.
- the detection unit determines that a terminal exists in the vicinity of the wireless communication device when the strength of the uplink signal continuously exceeds the determination threshold for a predetermined time length, (2) to (4) The wireless communication device according to any one of the above.
- the detection unit is any one of (2) to (4), wherein when the measurement result of the uplink signal strength matches a predetermined pattern, the detection unit determines that a terminal exists in the vicinity of the wireless communication device.
- the wireless communication device according to item.
- the wireless communication apparatus according to any one of (1) to (6), wherein the wireless communication unit transmits a signal for causing the terminal to recognize the second cell in the active mode.
- the mode setting unit transmits the active mode of the operation mode to the base station of the first cell or an external device that is an upper node of the base station.
- the wireless communication device according to (7), wherein the switching is signaled.
- the mode setting unit switches the operation mode to the standby mode when no terminal is connected to the second cell by a certain timing after switching to the active mode, according to (8), Wireless communication device.
- the mode setting unit switches the operation mode to the standby mode when notified from the external device that a handover is not executed as a response to the signaling of switching to the active mode.
- the detection unit transmits the uplink signal based on resource configuration data for the first cell acquired from a base station of the first cell or an external device that is an upper node of the base station.
- the wireless communication apparatus according to any one of (1) to (10), wherein an uplink resource is identified.
- the first cell is a macro cell;
- the second cell is a small cell.
- the wireless communication device according to any one of (1) to (11).
- the second cell is one of a plurality of small cells forming a small cell cluster;
- the mode setting unit detects the operation mode when the second unit is selected as a cell to be activated from the small cell cluster when a terminal in the vicinity is detected by the detection unit. Switch to the active mode, The wireless communication device according to (12).
- the mode setting unit when a terminal present in the vicinity is detected by the detection unit, when another small cell is selected as a cell to be activated from the small cell cluster, the selected other The wireless communication device according to (13), wherein an activation request is transmitted to a base station of the small cell.
- the mode setting unit switches the operation mode to the active mode even when an activation request is received from a base station of another small cell that has detected a terminal existing in the vicinity, (13) or ( 14) The wireless communication device described in 14).
- the first mode is set while the operation mode of the wireless communication apparatus is set to the standby mode.
- a wireless communication method including: (17) From a wireless communication device that provides a wireless communication service to one or more terminals in a second cell that overlaps with the first cell, in the vicinity of the wireless communication device while the wireless communication device is set in the standby mode A communication unit that receives a message indicating that a terminal existing in is detected; A control unit that instructs measurement to at least one terminal connected to the first cell in response to reception of the message; A communication control device comprising: (18) The communication control device according to (17), wherein the control unit executes a handover determination for the at least one terminal based on a measurement report from the at least one terminal that has performed the measurement in response to the instruction.
Abstract
Description
なお、上記の効果は必ずしも限定的なものではなく、上記の効果と共に、又は上記の効果に代えて、本明細書に示されたいずれかの効果、又は本明細書から把握され得る他の効果が奏されてもよい。
1.システムの概要
2.第1の実施形態
2-1.スモールセル基地局の構成例
2-2.マクロセル基地局の構成例
2-3.処理の流れ
3.第2の実施形態
3-1.スモールセルクラスタの概要
3-2.スモールセル基地局の構成例
3-3.マクロセル基地局の構成例
3-4.セルデータの管理
3-5.処理の流れ
4.応用例
5.まとめ
図1は、本開示に係る技術が適用される無線通信システム1の概要について説明するための説明図である。図1を参照すると、無線通信システム1は、スモールセル基地局10a及び10b、マクロセル基地局20、並びに端末装置30a、30b及び30zを含む。なお、無線通信システム1に含まれるマクロセル基地局の数、スモールセル基地局の数及び端末装置の数は、図1の例には限定されない。例えば、無線通信システム1は、2つ以上のマクロセル基地局を含んでもよい。
[2-1.スモールセル基地局の構成例]
図2は、第1の実施形態に係るスモールセル基地局10の構成の一例を示すブロック図である。図2を参照すると、スモールセル基地局10は、無線通信部110、ネットワーク通信部120、記憶部130及び制御部140を含む。
無線通信部110は、マクロセル28と重複するスモールセル18内に位置する1つ以上の端末装置30へ無線通信サービスを提供する。例えば、無線通信部110は、アクティブモードにおいて、ダウンリンクチャネル上でリファレンス信号を送信する。このリファレンス信号を受信することにより、端末装置30は、スモールセル18と接続することが可能となる。端末装置30は、無線通信部110から送信されるリファレンス信号についてメジャメントを実行することにより、スモールセル18の通信品質を導出する。
ネットワーク通信部120は、マクロセル基地局20との間でバックホールリンクを確立し、スモールセル基地局10とマクロセル基地局20との間の通信を仲介する。バックホールリンクは、スモールセル基地局10と他のスモールセル基地局との間の通信においても利用される。
記憶部130は、ハードディスク又は半導体メモリなどの記憶媒体を用いて、スモールセル基地局10の動作のためのプログラム及びデータを記憶する。記憶部130により記憶されるデータは、例えば、外部装置から取得される後述するリソース構成データを含み得る。
制御部140は、CPU(Central Processing Unit)又はDSP(Digital Signal Processor)などのプロセッサを用いて、スモールセル基地局10の動作全般を制御する。本実施形態において、制御部140は、通信制御部142、モード設定部144及び端末検出部146を含む。
図4は、第1の実施形態に係るマクロセル基地局20の構成の一例を示すブロック図である。図4を参照すると、マクロセル基地局20は、無線通信部210、ネットワーク通信部220、記憶部230及び制御部240を含む。なお、ここでは、限定ではなく一例として、マクロセル基地局20はLTE方式に従って動作するものとする。
無線通信部210は、マクロセル28内に位置する端末装置30へ、無線通信サービスを提供する。例えば、無線通信部210は、ダウンリンクチャネル上で、プライマリ同期シーケンス及びセカンダリ同期シーケンスを送信する。同期シーケンスのパターンは、複数のセルID(Cell Identity)のいずれかに対応する。これら同期シーケンスを受信することにより、スモールセル基地局10及び端末装置30は、マクロセル28との同期を獲得し、マクロセル28を識別することができる。また、無線通信部210は、同期シーケンスに続けて、パイロット信号とも呼ばれるセル固有のリファレンス信号(CRS:Cell-specific Reference Signal)を送信する。端末装置30は、無線通信部210から送信されるリファレンス信号についてメジャメントを実行することにより、マクロセル28の通信品質を導出する。端末装置30は、複数のマクロセルからの同期シーケンスが検出された場合には、セル選択と呼ばれる手続を通じて、最も良好な通信品質を示すセルを最適なサービングセルとして選択することができる。
ネットワーク通信部220は、マクロセル基地局20と、コアネットワーク5内の制御ノード、他のマクロセル基地局及びスモールセル基地局10との間の通信を仲介する。例えば、ネットワーク通信部220は、コアネットワーク5内のS-GW(Serving-Gateway)及びMME(Mobility Management Entity)との間で、それぞれS1-Uインタフェース及びS1-MMEインタフェースと呼ばれる通信リンクを確立する。また、ネットワーク通信部220は、他の基地局との間でX2インタフェースと呼ばれる通信リンクを確立する。X2インタフェースは、上述したバックホールリンクとしても利用され得る。
記憶部230は、ハードディスク又は半導体メモリなどの記憶媒体を用いて、マクロセル基地局20の動作のためのプログラム及びデータを記憶する。記憶部230により記憶されるデータは、例えば、スモールセル基地局10へ配信されるリソース構成データを含み得る。また、記憶部230により記憶されるデータは、スモールセル基地局10ごとの識別情報及び現在の動作モードを示すセルデータを含み得る。
制御部240は、CPU又はDSPなどのプロセッサを用いて、マクロセル基地局20の動作全般を制御する。本実施形態において、制御部240は、通信制御部242及びスモールセル制御部244を含む。
(1)端末検出処理
図5は、第1の実施形態に係るスモールセル基地局10により実行される端末検出処理の流れの一例を示すフローチャートである。図5に示した端末検出処理は、スモールセル基地局10の動作モードがスタンバイモードに設定された際に開始される。
図6は、図5のステップS120に相当する閾値設定処理の詳細な流れの一例を示すフローチャートである。ここでは、端末検出用の判定閾値がマクロセル基地局20から受信される信号の強度に基づいて動的に設定される例を示す。
図7Aは、図5のステップS140に相当する判定処理の詳細な流れの第1の例を示すフローチャートである。図7Aを参照すると、端末検出部146は、測定されたアップリンク信号の強度が判定閾値を上回るかを判定する(ステップS141)。そして、端末検出部146は、アップリンク信号の強度が判定閾値を上回る場合に、スモールセル基地局10の近傍に端末装置30が存在すると判定する(ステップS145)。一方、端末検出部146は、アップリンク信号の強度が判定閾値を上回らない場合には、スモールセル基地局10の近傍に端末装置30は存在しないと判定する(ステップS146)。
図8は、第1の実施形態に係るマクロセル基地局20により実行されるスモールセル制御処理の流れの一例を示すフローチャートである。
上記非特許文献1は、高い密度で配置される複数のスモールセルをクラスタリングし、クラスタ内のスモールセルが互いに協調的に動作するシナリオを提案している。そこで、本節では、スモールセル基地局10がこうしたクラスタに属する場合の実施形態について説明する。
図9は、第2の実施形態に係る無線通信システムの概要について説明するための説明図である。図9を参照すると、無線通信システム3は、スモールセル基地局10b、10c、10d及び10e、マクロセル基地局20、並びに端末装置30b、30c及び30zを含む。なお、無線通信システム3に含まれるマクロセル基地局の数、スモールセル基地局の数及び端末装置の数は、図9の例には限定されない。
図10は、第2の実施形態に係るスモールセル基地局10の構成の一例を示すブロック図である。図10を参照すると、スモールセル基地局10は、無線通信部110、ネットワーク通信部320、記憶部330及び制御部340を含む。
ネットワーク通信部320は、マクロセル基地局20との間でバックホールリンクを確立し、スモールセル基地局10とマクロセル基地局20との間の通信を仲介する。バックホールリンクは、スモールセル基地局10と他のスモールセル基地局(例えば、同じスモールセルクラスタに属するスモールセル基地局)との間の通信においても利用される。
記憶部330は、ハードディスク又は半導体メモリなどの記憶媒体を用いて、スモールセル基地局10の動作のためのプログラム及びデータを記憶する。記憶部330により記憶されるデータは、例えば、外部装置から取得されるリソース構成データを含み得る。また、記憶部330により記憶されるデータは、スモールセル基地局10が属するスモールセルクラスタについてのデータ(例えば、後述するセルデータのサブセット)を含み得る。
制御部340は、CPU又はDSPなどのプロセッサを用いて、スモールセル基地局10の動作全般を制御する。本実施形態において、制御部340は、通信制御部142、モード設定部344及び端末検出部146を含む。
図11は、第2の実施形態に係るマクロセル基地局20の構成の一例を示すブロック図である。図11を参照すると、マクロセル基地局20は、無線通信部210、ネットワーク通信部220、記憶部430及び制御部440を含む。
記憶部430は、ハードディスク又は半導体メモリなどの記憶媒体を用いて、マクロセル基地局20の動作のためのプログラム及びデータを記憶する。記憶部430により記憶されるデータは、例えば、スモールセル基地局10へ配信されるリソース構成データを含み得る。また、記憶部430により記憶されるデータは、図12に例示したセルデータ431を含み得る。
制御部440は、CPU又はDSPなどのプロセッサを用いて、マクロセル基地局20の動作全般を制御する。本実施形態において、制御部440は、通信制御部242及びスモールセル制御部444を含む。
なお、本節で説明したマクロセル基地局20のセルデータ431を管理する管理機能は、マクロセル基地局20の上位ノード(例えば、コアネットワーク5又はインターネット7内の制御ノード)において実装されてもよい。いずれのノードにおいて実装されるかに関わらず、管理機能は、スモールセル基地局10との間でシグナリングを交換し、スモールセル基地局10ごとの現在の動作モードを把握する。各スモールセル基地局10とマクロセル28との間の関連付けは、オペレータによって手動で登録され及び更新されてもよい。その代わりに、各スモールセル基地局10とマクロセル28との間の関連付けは、スモールセル基地局10から報告される位置データ、端末装置30から受信されるメジャメントレポートに含まれるセルID及び品質指標、及び各基地局において実行される信号強度の測定結果のうちの1つ以上に基づいて、自動的に登録され及び更新されてもよい。
図13は、第2の実施形態に係るスモールセル基地局10により実行される端末検出処理の流れの一例を示すフローチャートである。図13に示した端末検出処理は、スモールセル基地局10の動作モードがスタンバイモード(モニタリングモード)に設定された際に開始される。
本開示に係る技術は、様々な製品へ応用可能である。例えば、マクロセル基地局20の上位ノードとして、セルデータの管理機能を有する管理サーバが、タワーサーバ、ラックサーバ、又はブレードサーバなどの形態で実現されてもよい。また、管理サーバに搭載される制御モジュール(例えば、1つのダイで構成される集積回路モジュール、又はブレードサーバのスロットに挿入されるカード若しくはブレード)において、セルデータの管理機能が実現されてもよい。
図14は、本開示に係る技術が適用され得る管理サーバ700の概略的な構成の一例を示すブロック図である。管理サーバ700は、プロセッサ701、メモリ702、ストレージ703、ネットワークインタフェース704及びバス706を備える。
(第1の応用例)
図15は、本開示に係る技術が適用され得るeNBの概略的な構成の第1の例を示すブロック図である。eNB800は、1つ以上のアンテナ810、及び基地局装置820を有する。各アンテナ810及び基地局装置820は、RFケーブルを介して互いに接続され得る。
図16は、本開示に係る技術が適用され得るeNBの概略的な構成の第2の例を示すブロック図である。eNB830は、1つ以上のアンテナ840、基地局装置850、及びRRH860を有する。各アンテナ840及びRRH860は、RFケーブルを介して互いに接続され得る。また、基地局装置850及びRRH860は、光ファイバケーブルなどの高速回線で互いに接続され得る。
(第1の応用例)
図17は、本開示に係る技術が適用され得るスマートフォン900の概略的な構成の一例を示すブロック図である。スマートフォン900は、プロセッサ901、メモリ902、ストレージ903、外部接続インタフェース904、カメラ906、センサ907、マイクロフォン908、入力デバイス909、表示デバイス910、スピーカ911、無線通信インタフェース912、1つ以上のアンテナスイッチ915、1つ以上のアンテナ916、バス917、バッテリー918及び補助コントローラ919を備える。
図18は、本開示に係る技術が適用され得るカーナビゲーション装置920の概略的な構成の一例を示すブロック図である。カーナビゲーション装置920は、プロセッサ921、メモリ922、GPS(Global Positioning System)モジュール924、センサ925、データインタフェース926、コンテンツプレーヤ927、記憶媒体インタフェース928、入力デバイス929、表示デバイス930、スピーカ931、無線通信インタフェース933、1つ以上のアンテナスイッチ936、1つ以上のアンテナ937及びバッテリー938を備える。
ここまで、図1~図18を用いて、本開示に係る技術の実施形態について詳細に説明した。上述した実施形態によれば、スモールセル内の1つ以上の端末へ無線通信サービスを提供する無線通信装置において、その動作モードがスタンバイモードに設定されている間、スモールセルと重複するマクロセルにおいて送信されるアップリンク信号の強度をモニタリングすることにより近傍に存在する端末が検出され、当該端末の検出に応じて上記無線通信装置の動作モードがアクティブモードに切り替えられる。従って、スタンバイ中のスモールセル基地局が近傍の端末を適時に検出して、当該スモールセルへのハンドオーバの機会を端末へ提供することができる。その際、スタンバイ中のスモールセル基地局からのリファレンス信号又は端末からのアクティブ化要求などの無線信号がやみくもに送信されることが無いため、システム内の干渉は増大せず、システム全体のキャパシティの低下及び電力消費の悪化などの弊害は生じない。
(1)
第1のセルと重複する第2のセル内の1つ以上の端末へ無線通信サービスを提供する無線通信部と、
前記無線通信部の動作モードがスタンバイモードに設定されている間、前記第1のセルにおいて送信されるアップリンク信号の強度をモニタリングすることにより、近傍に存在する端末を検出する検出部と、
前記検出部により近傍に存在する端末が検出された場合に、前記無線通信部の前記動作モードをアクティブモードに切り替えるモード設定部と、
を備える無線通信装置。
(2)
前記検出部は、前記アップリンク信号の強度が判定閾値を上回る場合に、前記無線通信装置の近傍に端末が存在すると判定する、前記(1)に記載の無線通信装置。
(3)
前記判定閾値は、前記第1のセルの基地局と前記無線通信部との間の距離が大きいほど大きく設定される、前記(2)に記載の無線通信装置。
(4)
前記検出部は、前記第1のセルの基地局から受信されるダウンリンク信号の強度に基づいて、前記判定閾値を動的に設定する、前記(2)又は前記(3)に記載の無線通信装置。
(5)
前記検出部は、前記アップリンク信号の強度が所定の時間長にわたって継続的に前記判定閾値を上回る場合に、前記無線通信装置の近傍に端末が存在すると判定する、前記(2)~(4)のいずれか1項に記載の無線通信装置。
(6)
前記検出部は、前記アップリンク信号の強度の測定結果が所定のパターンに適合する場合に、前記無線通信装置の近傍に端末が存在すると判定する、前記(2)~(4)のいずれか1項に記載の無線通信装置。
(7)
前記無線通信部は、前記アクティブモードにおいて、前記第2のセルを端末に認識させるための信号を送信する、前記(1)~(6)のいずれか1項に記載の無線通信装置。
(8)
前記モード設定部は、前記検出部により近傍に存在する端末が検出された場合に、前記第1のセルの基地局又は当該基地局の上位ノードである外部装置へ、前記動作モードの前記アクティブモードへの切り替えをシグナリングする、前記(7)に記載の無線通信装置。
(9)
前記モード設定部は、前記アクティブモードへの切り替えの後のあるタイミングまでにいずれの端末も前記第2のセルに接続しない場合に、前記動作モードを前記スタンバイモードに切り替える、前記(8)に記載の無線通信装置。
(10)
前記モード設定部は、前記アクティブモードへの切り替えの前記シグナリングへの応答としてハンドオーバが実行されないことが前記外部装置から通知された場合に、前記動作モードを前記スタンバイモードに切り替える、前記(8)に記載の無線通信装置。
(11)
前記検出部は、前記第1のセルの基地局又は当該基地局の上位ノードである外部装置から取得される前記第1のセルについてのリソース構成データに基づいて、前記アップリンク信号が送信されるアップリンクリソースを識別する、前記(1)~(10)のいずれか1項に記載の無線通信装置。
(12)
前記第1のセルは、マクロセルであり、
前記第2のセルは、スモールセルである、
前記(1)~(11)のいずれか1項に記載の無線通信装置。
(13)
前記第2のセルは、スモールセルクラスタを形成する複数のスモールセルのうちの1つであり、
前記モード設定部は、前記検出部により近傍に存在する端末が検出された場合において、前記スモールセルクラスタから前記第2のセルがアクティブ化されるべきセルとして選択されたときに、前記動作モードを前記アクティブモードに切り替える、
前記(12)に記載の無線通信装置。
(14)
前記モード設定部は、前記検出部により近傍に存在する端末が検出された場合において、前記スモールセルクラスタから他のスモールセルがアクティブ化されるべきセルとして選択されたときに、選択された当該他のスモールセルの基地局へ、アクティブ化要求を送信する、前記(13)に記載の無線通信装置。
(15)
前記モード設定部は、近傍に存在する端末を検出した他のスモールセルの基地局からアクティブ化要求が受信された場合にも、前記動作モードを前記アクティブモードに切り替える、前記(13)又は前記(14)に記載の無線通信装置。
(16)
第1のセルと重複する第2のセル内の1つ以上の端末へ無線通信サービスを提供する無線通信装置において、当該無線通信装置の動作モードがスタンバイモードに設定されている間、前記第1のセルにおいて送信されるアップリンク信号の強度をモニタリングすることにより、近傍に存在する端末を検出することと、
前記近傍に存在する端末が検出された場合に、前記無線通信装置の前記動作モードをアクティブモードに切り替えることと、
を含む無線通信方法。
(17)
第1のセルと重複する第2のセル内の1つ以上の端末へ無線通信サービスを提供する無線通信装置から、当該無線通信装置がスタンバイモードに設定されている間に当該無線通信装置の近傍に存在する端末が検出されたことを示すメッセージを受信する通信部と、
前記メッセージの受信に応じて、前記第1のセルに接続している少なくとも1つの端末にメジャメントを指示する制御部と、
を備える通信制御装置。
(18)
前記制御部は、前記指示に応じてメジャメントを実行した前記少なくとも1つの端末からのメジャメントレポートに基づいて、前記少なくとも1つの端末についてのハンドオーバ判定を実行する、前記(17)に記載の通信制御装置。
(19)
前記メッセージは、前記無線通信装置がアクティブ化されたことをさらに示す、前記(17)又は前記(18)に記載の通信制御装置。
(20)
通信制御装置において、第1のセルと重複する第2のセル内の1つ以上の端末へ無線通信サービスを提供する無線通信装置から、当該無線通信装置がスタンバイモードに設定されている間に当該無線通信装置の近傍に存在する端末が検出されたことを示すメッセージを受信することと、
前記メッセージの受信に応じて、前記第1のセルに接続している少なくとも1つの端末にメジャメントを指示することと、
を含む通信制御方法。
10 スモールセル基地局
18 スモールセル
110 無線通信部
120,320 ネットワーク通信部
130,330 記憶部
140,340 制御部
142 通信制御部
144,344 モード設定部
146 端末検出部
20 マクロセル基地局
28 マクロセル
210 無線通信部
220 ネットワーク通信部
230,430 記憶部
240,440 制御部
242 通信制御部
244,444 スモールセル制御部
30 端末装置
Claims (20)
- 第1のセルと重複する第2のセル内の1つ以上の端末へ無線通信サービスを提供する無線通信部と、
前記無線通信部の動作モードがスタンバイモードに設定されている間、前記第1のセルにおいて送信されるアップリンク信号の強度をモニタリングすることにより、近傍に存在する端末を検出する検出部と、
前記検出部により近傍に存在する端末が検出された場合に、前記無線通信部の前記動作モードをアクティブモードに切り替えるモード設定部と、
を備える無線通信装置。 - 前記検出部は、前記アップリンク信号の強度が判定閾値を上回る場合に、前記無線通信装置の近傍に端末が存在すると判定する、請求項1に記載の無線通信装置。
- 前記判定閾値は、前記第1のセルの基地局と前記無線通信部との間の距離が大きいほど大きく設定される、請求項2に記載の無線通信装置。
- 前記検出部は、前記第1のセルの基地局から受信されるダウンリンク信号の強度に基づいて、前記判定閾値を動的に設定する、請求項2に記載の無線通信装置。
- 前記検出部は、前記アップリンク信号の強度が所定の時間長にわたって継続的に前記判定閾値を上回る場合に、前記無線通信装置の近傍に端末が存在すると判定する、請求項2に記載の無線通信装置。
- 前記検出部は、前記アップリンク信号の強度の測定結果が所定のパターンに適合する場合に、前記無線通信装置の近傍に端末が存在すると判定する、請求項2に記載の無線通信装置。
- 前記無線通信部は、前記アクティブモードにおいて、前記第2のセルを端末に認識させるための信号を送信する、請求項1に記載の無線通信装置。
- 前記モード設定部は、前記検出部により近傍に存在する端末が検出された場合に、前記第1のセルの基地局又は当該基地局の上位ノードである外部装置へ、前記動作モードの前記アクティブモードへの切り替えをシグナリングする、請求項7に記載の無線通信装置。
- 前記モード設定部は、前記アクティブモードへの切り替えの後のあるタイミングまでにいずれの端末も前記第2のセルに接続しない場合に、前記動作モードを前記スタンバイモードに切り替える、請求項8に記載の無線通信装置。
- 前記モード設定部は、前記アクティブモードへの切り替えの前記シグナリングへの応答としてハンドオーバが実行されないことが前記外部装置から通知された場合に、前記動作モードを前記スタンバイモードに切り替える、請求項8に記載の無線通信装置。
- 前記検出部は、前記第1のセルの基地局又は当該基地局の上位ノードである外部装置から取得される前記第1のセルについてのリソース構成データに基づいて、前記アップリンク信号が送信されるアップリンクリソースを識別する、請求項1に記載の無線通信装置。
- 前記第1のセルは、マクロセルであり、
前記第2のセルは、スモールセルである、
請求項1に記載の無線通信装置。 - 前記第2のセルは、スモールセルクラスタを形成する複数のスモールセルのうちの1つであり、
前記モード設定部は、前記検出部により近傍に存在する端末が検出された場合において、前記スモールセルクラスタから前記第2のセルがアクティブ化されるべきセルとして選択されたときに、前記動作モードを前記アクティブモードに切り替える、
請求項12に記載の無線通信装置。 - 前記モード設定部は、前記検出部により近傍に存在する端末が検出された場合において、前記スモールセルクラスタから他のスモールセルがアクティブ化されるべきセルとして選択されたときに、選択された当該他のスモールセルの基地局へ、アクティブ化要求を送信する、請求項13に記載の無線通信装置。
- 前記モード設定部は、近傍に存在する端末を検出した他のスモールセルの基地局からアクティブ化要求が受信された場合にも、前記動作モードを前記アクティブモードに切り替える、請求項13に記載の無線通信装置。
- 第1のセルと重複する第2のセル内の1つ以上の端末へ無線通信サービスを提供する無線通信装置において、当該無線通信装置の動作モードがスタンバイモードに設定されている間、前記第1のセルにおいて送信されるアップリンク信号の強度をモニタリングすることにより、近傍に存在する端末を検出することと、
前記近傍に存在する端末が検出された場合に、前記無線通信装置の前記動作モードをアクティブモードに切り替えることと、
を含む無線通信方法。 - 第1のセルと重複する第2のセル内の1つ以上の端末へ無線通信サービスを提供する無線通信装置から、当該無線通信装置がスタンバイモードに設定されている間に当該無線通信装置の近傍に存在する端末が検出されたことを示すメッセージを受信する通信部と、
前記メッセージの受信に応じて、前記第1のセルに接続している少なくとも1つの端末にメジャメントを指示する制御部と、
を備える通信制御装置。 - 前記制御部は、前記指示に応じてメジャメントを実行した前記少なくとも1つの端末からのメジャメントレポートに基づいて、前記少なくとも1つの端末についてのハンドオーバ判定を実行する、請求項17に記載の通信制御装置。
- 前記メッセージは、前記無線通信装置がアクティブ化されたことをさらに示す、請求項17に記載の通信制御装置。
- 通信制御装置において、第1のセルと重複する第2のセル内の1つ以上の端末へ無線通信サービスを提供する無線通信装置から、当該無線通信装置がスタンバイモードに設定されている間に当該無線通信装置の近傍に存在する端末が検出されたことを示すメッセージを受信することと、
前記メッセージの受信に応じて、前記第1のセルに接続している少なくとも1つの端末にメジャメントを指示することと、
を含む通信制御方法。
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JP2015541472A JP6394607B2 (ja) | 2013-10-08 | 2014-08-25 | 無線通信装置、無線通信方法、通信制御装置及び通信制御方法 |
EP14853058.7A EP3057361B1 (en) | 2013-10-08 | 2014-08-25 | Wireless communication device, wireless communication method, communication controller, and communication control method |
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US9832701B2 (en) | 2017-11-28 |
JPWO2015053000A1 (ja) | 2017-03-09 |
EP3057361B1 (en) | 2020-09-30 |
US20160249268A1 (en) | 2016-08-25 |
JP6394607B2 (ja) | 2018-09-26 |
EP3057361A1 (en) | 2016-08-17 |
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