WO2018189882A1 - 無線通信装置、無線通信方法、及び無線通信システム - Google Patents
無線通信装置、無線通信方法、及び無線通信システム Download PDFInfo
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- WO2018189882A1 WO2018189882A1 PCT/JP2017/015272 JP2017015272W WO2018189882A1 WO 2018189882 A1 WO2018189882 A1 WO 2018189882A1 JP 2017015272 W JP2017015272 W JP 2017015272W WO 2018189882 A1 WO2018189882 A1 WO 2018189882A1
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- 238000004891 communication Methods 0.000 title claims abstract description 146
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- 230000005540 biological transmission Effects 0.000 claims abstract description 311
- 238000012545 processing Methods 0.000 claims description 52
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- 101100166333 Homo sapiens CPQ gene Proteins 0.000 description 4
- 238000010295 mobile communication Methods 0.000 description 4
- 238000005516 engineering process Methods 0.000 description 3
- 230000014509 gene expression Effects 0.000 description 2
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/50—Allocation or scheduling criteria for wireless resources
- H04W72/54—Allocation or scheduling criteria for wireless resources based on quality criteria
- H04W72/542—Allocation or scheduling criteria for wireless resources based on quality criteria using measured or perceived quality
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L1/00—Arrangements for detecting or preventing errors in the information received
- H04L1/12—Arrangements for detecting or preventing errors in the information received by using return channel
- H04L1/16—Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
- H04L1/18—Automatic repetition systems, e.g. Van Duuren systems
- H04L1/1867—Arrangements specially adapted for the transmitter end
- H04L1/1887—Scheduling and prioritising arrangements
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W28/00—Network traffic management; Network resource management
- H04W28/02—Traffic management, e.g. flow control or congestion control
- H04W28/0231—Traffic management, e.g. flow control or congestion control based on communication conditions
- H04W28/0236—Traffic management, e.g. flow control or congestion control based on communication conditions radio quality, e.g. interference, losses or delay
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W76/00—Connection management
- H04W76/10—Connection setup
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L1/00—Arrangements for detecting or preventing errors in the information received
- H04L2001/0092—Error control systems characterised by the topology of the transmission link
- H04L2001/0097—Relays
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L47/00—Traffic control in data switching networks
- H04L47/10—Flow control; Congestion control
- H04L47/24—Traffic characterised by specific attributes, e.g. priority or QoS
- H04L47/2441—Traffic characterised by specific attributes, e.g. priority or QoS relying on flow classification, e.g. using integrated services [IntServ]
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W80/00—Wireless network protocols or protocol adaptations to wireless operation
- H04W80/02—Data link layer protocols
Definitions
- the present invention relates to a wireless communication device, a wireless communication method, and a wireless communication system.
- mobile terminal In the current network, mobile terminal (smartphone and future phone) traffic occupies most of the network resources. In addition, the traffic used by mobile terminals tends to continue to expand.
- next-generation communication standards for example, 5G (5th generation mobile communication)
- 4G (4th generation mobile communication 4th generation mobile communication
- 3GPP working groups eg, TSG-RAN WG1, TSG-RAN WG2, etc.
- eMBB Enhanced Mobile BroadBand
- Massive MTC Machine Type Communications
- URLLC Ultra-Reliable
- 5G next generation communication standards
- 5G next generation communication standards
- the specification is defined as a protocol stack (also referred to as a layered protocol) in which the wireless communication function is divided into a series of layers.
- the physical layer is defined as the first layer
- the data link layer is defined as the second layer
- the network layer is defined as the third layer.
- the second layer is divided into a plurality of sublayers, from the MAC (Medium Access Control) layer, the RLC (Radio Link Control) layer, and the PDCP (Packet Data Convergence Protocol) layer. Composed.
- the first layer is configured by a PHY (Physical) layer
- the third layer is configured by an RRC (Radio Resource Control) layer (the RRC layer is a control plane only).
- the MAC layer, RLC layer, and PDCP layer are sublayers of the second layer as described above, and thus may be referred to as a MAC sublayer, an RLC sublayer, and a PDCP sublayer.
- Each layer in the transmission device of the wireless communication system performs processing based on a predetermined protocol such as attaching a header to a data block (also referred to as service data unit (SDU)) from an upper layer.
- a protocol data unit (PDU: Protocol Data Unit), which is an information unit exchanged between peer processes in the receiving device, is generated and transferred to the lower layer.
- a PDCP-PDU that is a data block from the PDCP layer, which is an upper layer is defined as an RLC-SDU, and a plurality of RLC-SDUs are included within a range that is within the TB (TransportTransBlock) length notified from the lower layer RLC-PDUs are generated by concatenating and the like.
- Such an RLC-PDU is transferred to the lower-layer MAC layer with an RLC header having a sequence number (SN) in the RLC layer attached.
- Each layer in the receiving apparatus of the wireless communication system receives the data block (also referred to as PDU) from the lower layer, and removes the header to remove the data block (also referred to as SDU) to the upper layer. Forward.
- PDU data block
- SDU data block
- it is stored in one RLC-PDU with reference to the RLC header attached to the data block (also referred to as MAC-SDU, RLC-PDU) from the lower layer MAC layer.
- a process such as reconfiguring a plurality of RLC-SDUs is performed, and the RLC-SDUs are transferred to the PDCP layer, which is an upper layer.
- an ordering process based on the RLC sequence number included in the RLC header is performed in the reconfiguration of the RLC-SDU. Then, when it is detected that a missing RLC sequence number has occurred, RLC retransmission control for requesting the transmitter to retransmit the RLC-PDU is executed.
- next generation communication system such as 5G
- various use cases are assumed as described above.
- transmission / reception processing in each layer to cope with various assumed use cases, for example, transmission / reception processing in each layer to cope with a plurality of data (for example, eMBB data and URLLC data) having different allowable delays.
- a plurality of data for example, eMBB data and URLLC data
- the disclosed technology has been made in view of the above, and an object of the present invention is to provide a wireless communication device, a wireless communication system, and a wireless communication method that can perform desirable transmission / reception processing regarding data having different allowable delay amounts.
- a wireless communication device that transmits data to another wireless communication device that is wirelessly connected using a packet including a transmission number, and the transmission condition indicating a condition related to the transmission of the data is the first transmission condition
- the data is
- the control unit classifies the data into second data, and the data is the first data
- a transmission unit that transmits in the first transmission mode in the layer related to the wireless connection, and transmits in the second transmission mode in the layer related to the wireless connection when the data is the second data.
- One disclosure is to perform desirable transmission / reception processing regarding data having different allowable delay amounts.
- FIG. 1 is a diagram illustrating a configuration example of a radio communication system according to the first embodiment.
- FIG. 2 is a diagram illustrating a configuration example of the wireless communication system 10.
- FIG. 3 is a diagram illustrating a configuration example of the base station apparatus 200.
- FIG. 4 is a diagram illustrating a configuration example of the terminal device 100.
- FIG. 5 is a diagram illustrating an example of data transmission / reception processing in the wireless communication system 10.
- FIG. 6 is a diagram illustrating an example of a process flowchart of the data type classification process S101.
- FIG. 7 is a diagram illustrating an example of a process flowchart of the data transmission process S102.
- FIG. 8 is a diagram illustrating an example of a process flowchart of the transmission mode determination process S104.
- FIG. 1 is a diagram illustrating a configuration example of a radio communication system according to the first embodiment.
- FIG. 2 is a diagram illustrating a configuration example of the wireless communication system 10.
- FIG. 3
- FIG. 9 is a diagram illustrating an example of a process flowchart of the first transmission mode reception process S105.
- FIG. 10 is a diagram illustrating an example of a process flowchart of the second transmission mode reception process S111.
- FIG. 11 is a diagram illustrating an example of data transmission / reception processing in the wireless communication system 10.
- FIG. 12 is a diagram illustrating an example of a process flowchart of the data transmission process S200.
- FIG. 13 is a diagram illustrating an example of a process flowchart of the second transmission mode reception process S204.
- FIG. 14 is a diagram illustrating an example of a protocol stack according to the fourth embodiment.
- FIG. 15 is a diagram illustrating an example of a process flowchart of the data transmission process S300.
- FIG. 16 is a diagram illustrating an example of a process flowchart of the transmission mode determination process S400.
- the wireless communication system 10 in the first embodiment includes wireless communication devices 100-1 and 100-2.
- the wireless communication device 100-1 is a transmission-side wireless communication device that transmits data
- the wireless communication device 100-2 is a reception-side wireless communication device that receives data.
- the wireless communication device 100-1 transmits data to the wireless communication device 100-2 to be wirelessly connected using a packet including a transmission number that is a continuous number indicating the transmission order. Further, when the transmission condition indicating the condition regarding data transmission is the first transmission condition, the wireless communication device 100-1 classifies the data as the first data, and the data transmission condition is different from the first transmission condition. In the case of the second transmission condition, a control unit that classifies data into second data is included. Further, when the data is the first data, the wireless communication device 100-1 transmits in the first transmission mode in the layer related to the wireless connection, and when the data is the second data, the second transmission in the layer related to the wireless connection. A transmitter for transmitting in the mode;
- the wireless communication device 100-2 receives data transmitted using a packet including a transmission number from the wireless communication device 100-1 that is wirelessly connected.
- the wireless communication device 100-2 includes a receiving unit that receives a packet including data.
- the wireless communication device 100-2 performs the first reception process when the received packet is transmitted in the first transmission mode, and performs the second reception when the received packet is transmitted in the second transmission mode.
- a processing unit for performing processing In the first reception process, when receiving a packet having a transmission number that is continuous with the packet received in advance, the processing unit executes a process corresponding to the data included in the received packet, and is not continuous with the packet received in advance. When a packet having a transmission number is received, processing corresponding to data included in the received packet is not executed.
- the processing unit receives a packet with a transmission number that is continuous or not continuous with the packet received in advance in the second reception process (that is, regardless of the transmission number of the received packet), the processing unit The process corresponding to the included data is executed.
- FIG. 1 is a diagram illustrating a configuration example of a wireless communication system 10 according to the first embodiment.
- the wireless communication system 10 includes wireless communication devices 100-1 and 100-2.
- the wireless communication devices 100-1 and 100-2 are connected via wireless, and transmit and receive data using packets, for example.
- Radio communication apparatus 100-1 is, for example, a base station apparatus.
- the wireless communication device 100-2 is, for example, a terminal device such as a mobile phone, or a computer such as a server or a host machine. Further, for example, the wireless communication device 100-1 may be a terminal device or a computer, and the wireless communication device 100-2 may be a base station device.
- the wireless communication devices 100-1 and 100-2 are, for example, a transmission-side wireless communication device (wireless communication device 100-1 in FIG. 1) and a reception-side wireless communication device (wireless communication device 100-2 in FIG. 1). You may have the structure of both apparatuses.
- the wireless communication devices 100-1 and 100-2 communicate with each other based on, for example, TCP (Transmission Control Protocol) / IP (Internet Protocol).
- the wireless communication devices 100-1 and 100-2 have a processor, a storage, and a memory (not shown), load a program stored in the storage into the memory, and execute the program loaded by the processor.
- the transmission unit 102, the reception unit 103, and the processing unit 104 are constructed, and each process is executed.
- the wireless communication device 100-1 generates data to be transmitted to the wireless communication device 100-2 or receives it from another device, and starts data transmission processing.
- the control unit 101 classifies the data into the first data.
- the control unit 101 sets the data to the second data. Classify into data.
- the transmission condition is, for example, a condition related to a transmission time such as a time until data reaches the wireless communication apparatus 100-2 that is a transmission destination.
- the transmission condition is a condition related to the transmission time, for example, it is an allowable delay time indicating an allowable time until the data reaches an application program (for example, the wireless communication apparatus 100-2) that uses the data to be transmitted. .
- the transmission condition may be, for example, data importance or urgency.
- the importance level and the urgency level are set by, for example, an application program or device that generates data, and may be included in a part of data or a header part for transmitting data.
- the first data and second data are classified according to the difference in transmission conditions.
- the second data is more urgent data than the first data.
- the allowable delay time of the second data is shorter than the allowable delay time of the first data.
- the control unit 101 classifies the data as first data. For example, when the allowable delay time (transmission condition) is equal to or greater than a predetermined threshold (second transmission condition), the control unit 101 classifies the data as second data.
- the transmission unit 102 transmits in the first transmission mode in the layer related to the wireless connection, and when the data is the second data, the transmission unit 102 transmits in the second transmission mode in the layer related to the wireless connection.
- the layer related to wireless connection is, for example, an RLC layer that is one of the data link layers (second layer).
- the RLC layer is, for example, a layer that manages the packet transmission order using sequence numbers and performs packet retransmission control.
- the transmission mode is, for example, a transmission mode related to an ACK (acknowledgement) packet that is a reception confirmation notifying the transmission source device that the data reception side device has received the data when the layer related to the wireless connection is the RLC layer.
- the first transmission mode is AM (Acknowledged Mode).
- AM is a transmission mode for requesting a receiving side device to transmit an ACK.
- the second transmission mode is UM (Unacknowledged Mode).
- the UM is a transmission mode that does not require the receiving side apparatus to transmit an ACK.
- the time until the transmission side apparatus recognizes the completion of data transmission is different.
- the transmitting apparatus does not recognize transmission completion in the AM until it receives an ACK for the transmitted data.
- the transmission side device recognizes the completion of transmission when data is transmitted. That is, since UM can transmit data with fewer procedures than AM, transmission completion time is short, and for example, it may be suitable for transmission of highly urgent data.
- the second transmission mode may be TM (Transparent Mode).
- TM is a mode that transmits through the RLC layer itself, and is a transmission mode that does not require the receiving side device to transmit ACK, as in UM.
- the transmission unit 102 transmits, for example, first data in AM (first transmission mode), and transmits second data having an allowable delay time shorter than the first data in UM (second transmission mode).
- first transmission mode first transmission mode
- second transmission mode second transmission mode
- the receiving unit 103 of the wireless communication device 100-2 receives data transmitted in the first transmission mode or the second transmission mode.
- the processing unit 104 performs the first reception process when the received packet is transmitted in the first transmission mode.
- the processing unit 104 executes a process corresponding to data included in the received packet when receiving a packet having a transmission number continuous with the packet received in advance, and continues with the packet received in advance.
- processing corresponding to data included in the received packet is not executed.
- the packet received in advance is, for example, the packet transmitted most recently (that is, the transmission number is the largest) among the packets that have executed processing corresponding to the data included in the packet.
- the process corresponding to the data is, for example, an application program that the wireless communication apparatus 100 has, and is a process that delivers the received data to the application program that uses the data.
- the application program is an AP (Application Program) 105 in FIG.
- the process corresponding to the data may be a process of transferring data to a higher layer (for example, the third RRC layer) when the layer related to the wireless connection is the RLC layer, for example.
- the wireless communication device 100-2 receives packets in the order of transmission numbers 1, 2, 5, 4, 3 in the first reception process.
- the wireless communication apparatus 100-2 receives the packets with the transmission numbers 1 and 2 in the order of transmission, and delivers the data with the transmission numbers 1 and 2 to the AP 105.
- the wireless communication device 100-2 receives the packet with the transmission number 5, but the packet with the largest transmission number (the packet received in advance) among the packets with the data delivered to the AP 105 is not continuous. Therefore, the data of the packet with the transmission number 5 is suspended.
- the wireless communication device 100-2 also holds the data of the packet with the transmission number 4.
- the wireless communication apparatus 100-2 receives the packet with the transmission number 3, it is continuous with the transmission number 2 of the packet received in advance. Data is transferred to the AP 105.
- processing unit 104 performs the second reception process when the received packet is transmitted in the second transmission mode.
- the processing unit 104 executes a process corresponding to data included in the received packet when a packet having a transmission number that is continuous or not continuous with the packet received in advance is received.
- the wireless communication device 100-2 receives the packet with the transmission number 4 in the second reception process. However, it is assumed that the wireless communication apparatus 100-2 receives packets with transmission numbers 1 and 2 in the first transmission mode. In this case, the wireless communication device 100-2 receives the packet data of the transmission number 4 as the target application program even if the transmission number 4 of the received packet is not continuous with the packet of the transmission number 2 received in advance. To hand over.
- the wireless communication device 100-2 when receiving a packet in the first transmission mode, the wireless communication device 100-2 delivers the packet to the AP 105 if the transmission number of the received packet is a continuous number, but the transmission number of the received packet is a non-consecutive number In this case, it is suspended without being delivered to the AP 105 and waits for reception of a serial number packet.
- the wireless communication device 100-2 when receiving a packet transmitted in the second transmission mode, the wireless communication device 100-2 delivers data to the AP 105 without waiting for reception of another packet regardless of the transmission number.
- a process corresponding to the data (for example, a process handed over to the application program) can be executed in advance.
- FIG. 2 is a diagram illustrating a configuration example of the wireless communication system 10.
- the wireless communication system 10 includes a terminal device 100, a base station device 200, and a network 300.
- the wireless communication system 10 is a communication system that supports, for example, LTE (Long Term Evolution) communication standards.
- LTE Long Term Evolution
- the terminal device 100 is a wireless communication device such as a mobile terminal or a computer.
- the terminal device 100 is wirelessly connected to the base station device 200 and communicates with the network 300 via the base station device 200.
- the terminal device 100 downloads data from the base station device 200 or the network 300 or receives a service.
- the terminal device 100 communicates with the base station device 200 and the network 300 based on, for example, TCP / IP.
- the base station device 200 is a wireless communication device that relays packets transmitted and received by the terminal device 100.
- the base station apparatus 200 is a base station apparatus such as eNodeB (evolvedeNode B) in LTE, for example.
- Base station apparatus 200 may be a network device such as a switch or a router.
- the base station device 200 may be a wireless communication device that performs wireless communication with the terminal device 100.
- the network 300 may be, for example, the Internet or an intranet configured with a dedicated line.
- the base station apparatus 200 receives data from the network 300 and transmits the received data to the terminal apparatus 100.
- the data may be transmitted from the terminal apparatus 100 to the base station apparatus 200.
- FIG. 3 is a diagram illustrating a configuration example of the base station apparatus 200.
- the base station apparatus 200 includes a CPU (Central Processing Unit) 210, a storage 220, a memory 230 such as a DRAM (Dynamic Random Access Memory), a NIC (Network Interface Card) 240, and an RF (Radio Frequency) circuit 250.
- a CPU Central Processing Unit
- storage 220 a storage 220
- memory 230 such as a DRAM (Dynamic Random Access Memory), a NIC (Network Interface Card) 240, and an RF (Radio Frequency) circuit 250.
- a memory 230 such as a DRAM (Dynamic Random Access Memory), a NIC (Network Interface Card) 240, and an RF (Radio Frequency) circuit 250.
- a RF Radio Frequency
- the storage 220 is an auxiliary storage device such as a flash memory, an HDD (Hard Disk Drive), or an SSD (Solid State Drive) that stores programs and data.
- the storage 220 stores a communication control program 221 and a transmission side sequence number information table 222.
- the transmission side sequence number information table 222 is a table that stores a sequence number assigned to a transmitted packet.
- the base station apparatus 200 stores the sequence number of the last transmitted packet in the transmission-side sequence number information table 222.
- the memory 230 is an area for loading a program stored in the storage 220.
- the memory 230 is also used as an area for storing data.
- the NIC 240 is a network interface connected to the network 300.
- the base station device 200 relays communication of the terminal device 100 by transmitting and receiving packets to and from other communication devices and the network 300 via the NIC 240.
- the RF circuit 250 is a device that performs wireless communication (wireless connection) with the terminal device 100.
- the RF circuit 250 has an antenna, for example, and receives a packet (radio wave) transmitted from the terminal apparatus 100 or transmits a packet (radio wave) to the terminal apparatus 100.
- the CPU 210 is a processor that loads a program stored in the storage 220 into the memory 230, executes the loaded program, and realizes each process.
- the CPU 210 performs a communication control process by executing the communication control program 221.
- the communication control process is a process for relaying communication performed by the terminal device 100 or performing communication with the terminal device 100.
- the base station apparatus 200 transmits, for example, a packet received from the terminal apparatus 100 to the packet transmission destination.
- the base station apparatus 200 receives, for example, a packet addressed to the terminal apparatus 100 from the network 300, and transmits the received packet to the terminal apparatus 100.
- the CPU 210 executes a data type classification module 2211 included in the communication control program 221 to construct a control unit and perform data type classification processing.
- the data type classification process is a process for classifying the data type of data to be transmitted to the terminal device 100.
- the data type is a type for identifying a transmission mode in which data is transmitted. Data transmitted in the first transmission mode is referred to as first data, and data transmitted in the second transmission mode is referred to as second data.
- the base station apparatus 200 classifies the data type based on the transmission condition of the data to be transmitted. In the second embodiment, the base station apparatus 200 uses the allowable delay time of data as an example of the transmission condition and classifies the data type.
- the CPU 210 executes a data transmission module 2212 included in the communication control program 221 to construct a transmission unit and perform data transmission processing.
- the data transmission process is a process in which the base station apparatus 200 transmits data in a transmission mode corresponding to the data type of data transmitted by the terminal apparatus 100.
- the transmission mode indicates the type of transmission method in a layer related to wireless connection (for example, an RLC layer which is one of network layers).
- base station apparatus 200 transmits data using AM as an example of the first transmission mode and UM as an example of the second transmission mode.
- FIG. 4 is a diagram illustrating a configuration example of the terminal device 100.
- the terminal device 100 includes a CPU 110, a storage 120, a memory 130 such as a DRAM, and an RF circuit 150.
- the storage 120 is an auxiliary storage device such as a flash memory, HDD, or SSD that stores programs and data.
- the storage 120 stores a communication program 121 and a receiving side sequence number information table 122.
- the receiving side sequence number information table 122 is a table that stores the sequence numbers of received packets.
- the terminal device 100 stores, for example, the sequence number of the last received packet or the last executed sequence corresponding to the data and the sequence number of the pending packet in the reception side sequence number information table 122.
- a process corresponding to data a process of transferring data to an application program that uses data is used.
- the memory 130 is an area for loading a program stored in the storage 120.
- the memory 130 is also used as an area for storing data by the program.
- the RF circuit 150 is a device that performs wireless communication (wireless connection) with the base station device 200.
- the RF circuit 150 has, for example, an antenna, and transmits a packet (radio wave) to the base station apparatus 200 and receives a packet (radio wave) from the base station apparatus 200.
- the CPU 110 is a processor that loads a program stored in the storage 120 into the memory 130, executes the loaded program, and realizes each process.
- the CPU 110 performs communication processing by executing the communication program 121.
- the communication process is a process of communicating with the network 300 via the base station apparatus 200 or communicating with the base station apparatus 200.
- the CPU 110 executes a transmission mode determination module 1211 included in the communication program 121 to construct a reception unit and perform transmission mode determination processing.
- the transmission mode determination process is a process for determining the transmission mode transmitted by the base station apparatus 200 of the packet received by the terminal apparatus 100.
- the terminal device 100 performs determination using an LCH (Link Channel) number of the packet.
- the CPU 110 executes the first transmission mode reception module 1212 included in the communication program 121 to construct a processing unit and perform a first transmission mode reception process.
- the first transmission mode reception process is a process for handing over or holding the received packet data to the target application based on the sequence number of the packet received by the terminal device 100.
- the CPU 110 executes a second transmission mode reception module 1213 included in the communication program 121 to construct a processing unit and perform a second transmission mode reception process.
- the second transmission mode reception process is a process of delivering the received packet data to the target application regardless of the sequence number of the packet received by the terminal device 100.
- FIG. 5 is a diagram illustrating an example of data transmission / reception processing in the wireless communication system 10.
- the sequence in FIG. 5 is an example of a sequence in which data used by the application program of the terminal device 100 is transmitted from the base station device 200 to the terminal device 100.
- Base station apparatus 200 receives data to be transmitted to terminal apparatus 100 from network 300 (not shown).
- Base station apparatus 200 receives data to be transmitted in the order of data D1, D2, D3, and D4.
- Data D1, D2, and D3 are data types of the first data
- data D4 is data type of the second data.
- the base station apparatus 200 When the base station apparatus 200 receives the data D1 addressed to the terminal apparatus 100, the base station apparatus 200 performs a data type classification process (S101).
- FIG. 6 is a diagram illustrating an example of a process flowchart of the data type classification process S101.
- the base station apparatus 200 confirms the allowable delay time of data transmitted to the terminal apparatus 100 (S101-1). Then, if the allowable delay time of data is less than the predetermined threshold (Yes in S101-2), the base station apparatus 200 classifies the data to be transmitted as second data (S101-3). On the other hand, when the allowable delay time of the data is not less than the predetermined threshold (No in S101-2), the base station apparatus 200 classifies the data to be transmitted as the first data (S101-4).
- the base station apparatus 200 can classify the data urgency level, for example, by classifying the data type based on the allowable delay time.
- the base station apparatus 200 classifies the data D1 as the first data in the data type classification process S101 (S101-4 in FIG. 6), and performs the data transmission process (S102).
- FIG. 7 is a diagram illustrating an example of a process flowchart of the data transmission process S102.
- the base station apparatus 200 selects the LCH corresponding to the first transmission mode (S102-2).
- the base station apparatus 200 newly generates an LCH corresponding to the first transmission mode.
- the base station apparatus 200 generates a packet including transmission data and a sequence number (S102-3), and transmits the packet generated in the first transmission mode (S102-4).
- the base station apparatus 200 selects the LCH corresponding to the second transmission mode (S102-5).
- the base station apparatus 200 generates a packet including transmission data and a sequence number (S102-6), and transmits the packet generated in the second transmission mode (S102-7).
- the base station apparatus 200 When transmitting the packet, the base station apparatus 200 updates the transmission-side sequence number information table 222 (S102-8) and ends the process.
- the base station apparatus 200 performs a data transmission process S102, and transmits a packet to the terminal apparatus 100 (S103).
- the packet S103 has a sequence number of 1 and an LCH number of 1.
- a sequence number whose sequence number is x (x is an integer) may be represented as SNx
- an LCH whose LCH number is y (y is an integer) may be represented as LCHy.
- LCHy since the LCH corresponding to the first transmission mode is LCH1, the packet S103 of SN1 and LCH1 is transmitted.
- the terminal device 100 When receiving the packet, the terminal device 100 performs a transmission mode determination process (S104).
- FIG. 8 is a diagram illustrating an example of a process flowchart of the transmission mode determination process S104.
- the terminal device 100 confirms the LCH number of the received packet (S104-1).
- the terminal device 100 performs the first transmission mode reception process (S104-3), and the LCH corresponds to the second transmission mode. If it is the LCH number (No in S104-2), the second transmission mode reception process is performed (S104-4), and the process is terminated.
- the terminal device 100 performs a transmission mode determination process S104 and performs a first transmission mode reception process (S105, S104-3 of FIG. 8).
- FIG. 9 is a diagram illustrating an example of a process flowchart of the first transmission mode reception process S105.
- the terminal device 100 determines whether there is pending data (S105-). 2).
- the terminal device 100 When there is no pending data (No in S105-2), the terminal device 100 delivers the received packet data to the application program (S105-3). On the other hand, when there is pending data (Yes in S105-2), the terminal device 100 delivers the pending data and the received packet data to the application program (S105-4).
- the terminal device 100 holds the received packet data (S105-5).
- the terminal device 100 updates the receiving side sequence number information table 122 (S105-6), and ends the process.
- the terminal device 100 determines that the packet is the first received packet and is therefore continuous with the sequence number of the packet received in advance (S105— in FIG. 9). (Yes in 1), since there is no pending data (No in S105-2 in FIG. 9), the data D1 included in the packet is delivered to the application program (S106, S105-3 in FIG. 9).
- the base station apparatus 200 performs the data type classification process S101 whenever an opportunity to transmit data to the terminal apparatus 100 occurs, but the description of the data type classification process S101 is omitted in the sequence of FIG.
- the terminal device 100 performs the transmission mode determination process S104 every time a packet is received, but the description of the transmission mode determination process S104 is omitted in the sequence of FIG.
- the base station apparatus 200 receives the data D2 and D3, performs the same processing as the transmission of the packet S103, and transmits the SN2, LCH1 packet, and the SN3, LCH1 packet to the terminal apparatus 100 (S107, S109).
- the terminal device 100 receives the packet S107 in the same manner as when receiving the packet S103, and delivers the data D2 included in the packet S107 to the application program (S108). However, in the sequence of FIG. 5, for example, the packet S109 does not reach the terminal device 100 due to deterioration of the radio wave state in the wireless section.
- the base station apparatus 200 When the base station apparatus 200 receives the data D4 whose data type is the second data (for example, data whose allowable delay time is less than the predetermined threshold), the base station apparatus 200 supports the second transmission mode in the data transmission process S102.
- LCH2 to be selected is selected (S102-5 in FIG. 7), and SN4 and LCH2 packets are transmitted to the terminal device 100 (S110, S102-6 and 7 in FIG. 7).
- the terminal device 100 When receiving the packet S110, the terminal device 100 determines that LCH2 is an LCH corresponding to the second transmission mode (No in S104-2 in FIG. 8), and performs a second transmission mode reception process (S111, FIG. 8). S104-4).
- FIG. 10 is a diagram illustrating an example of a process flowchart of the second transmission mode reception process S111.
- the terminal device 100 delivers the received packet data to the application program (S111-1). Then, the receiving side sequence number information table 122 is updated (S111-2). In the second transmission mode reception process S111, the terminal device 100 performs data without determining whether the received sequence numbers are continuous (that is, whether the sequence numbers are continuous or discontinuous). To the application program.
- the terminal device 100 delivers the data D4 included in the packet S110 to the application program in the second transmission mode reception process S111 (S112, S111-1 of FIG. 10).
- the data transmission side device uses different transmission modes in the RLC layer according to the allowable delay time of data to be transmitted.
- the data transmission side apparatus can transmit data in the transmission mode according to the data transmission condition, and can cope with transmission of various data.
- the data reception side device performs processing corresponding to the received data regardless of the sequence number.
- the data receiving side device receives, for example, emergency data that is highly urgent and should be processed immediately, even if the data transmitted before the emergency data has not arrived, the data is processed first. can do.
- FIG. 11 is a diagram illustrating an example of data transmission / reception processing in the wireless communication system 10.
- the sequence in FIG. 11 is an example of a sequence in which data used by an application program included in the terminal device 100 is transmitted from the base station device 200 to the terminal device 100.
- a difference between the data transmission process S102 in the sequence of FIG. 5 and the data transmission process S200 of the sequence in FIG. 11 will be described below.
- FIG. 12 is a diagram illustrating an example of a process flowchart of the data transmission process S200.
- the base station apparatus 200 selects the LCH corresponding to the first transmission mode (S200-2).
- processing S200-3, 4 and processing S200-8 are the same as processing S102-3, 4 and processing S102-8 in FIG.
- the base station apparatus 200 selects the LCH corresponding to the second transmission mode (S200-5).
- the base station apparatus 200 generates a packet including transmission data and a sequence number (S200-6), and transmits a predetermined number of generated packets in the second transmission mode (S200-7).
- the predetermined number is, for example, 2 or more.
- the base station apparatus 200 can improve the probability that the packet including the second data reaches the terminal apparatus 100 by transmitting a plurality of packets including the second data.
- the data transmission process S200 is the same process as the data transmission process S102 in FIG.
- the base station apparatus 200 When the base station apparatus 200 receives the data D4 whose data type is the second data, in the data transmission process S200, the base station apparatus 200 selects the LCH corresponding to the second transmission mode (S200-5 in FIG. 12), SN4, LCH2 The predetermined number (for example, 3) of packets is transmitted to the terminal device 100 (S201 to S203, S200-6 and 7 in FIG. 12). Then, the terminal device 100 receives the packet S201, the packet S202, and the packet S203, and performs a second transmission mode reception process (S204).
- the terminal device 100 receives the packet S201, the packet S202, and the packet S203, and performs a second transmission mode reception process (S204).
- FIG. 13 is a diagram illustrating an example of a process flowchart of the second transmission mode reception process S204.
- the terminal apparatus 100 confirms whether or not a packet having the same sequence number as the received packet has been received (S204-1).
- the terminal device 100 hands over the received packet data to the application program (S204-2).
- the receiving side sequence number information table 122 is updated (S204-3).
- the terminal device 100 when the terminal device 100 has received a packet having the same sequence number as the sequence number of the received packet (Yes in S204-1), the terminal device 100 discards the received packet data (S204-4) and performs processing. finish.
- the terminal device 100 delivers the data D4 included in the packet S201 to the application program (S112). Since the terminal device 100 has received the packet S202 and has already received the packet S201 that is the packet having the same sequence number (SN4) (Yes in S204 in FIG. 13), the data D4 included in the received packet S202. Is discarded (S204-4 in FIG. 13). Similarly, the terminal device 100 discards the data D4 included in the packet S203.
- the base station apparatus 200 transmits a plurality of packets including the second data, thereby improving the probability that the packet including the second data reaches the terminal apparatus and improving the reliability. And the terminal device 100 prevents the same second data from being duplicately delivered to the application program by discarding the packet data of the same sequence number.
- FIG. 14 is a diagram illustrating an example of a protocol stack in the fourth embodiment.
- a new layer (hereinafter sometimes referred to as a new layer L1) may be defined in the second layer.
- the base station apparatus 200 performs marking for the second data in the new layer L1 (for example, New AS sublayer or SDAP (Service Data Adaptation Protocol)) located at the top of the second layer. Execute.
- FIG. 15 is a diagram illustrating an example of a process flowchart of the data transmission process S300.
- the base station apparatus 200 performs a process of transmitting the first data (S300-2 to S300-4).
- Processes S300-2 to S300-5 are the same processes as processes S102-2 to S102-4 in FIG.
- the base station apparatus 200 performs marking indicating that the second data exists in the new layer L1 (S300-6). For example, the base station apparatus 200 sets a flag for second data (for example, 1 indicates that it is second data) in the header part of the new layer L1, and sets the flag to 1. Also, the base station apparatus 200 may set a flag for the second data in the header part of the lower layer PDCP layer and set the flag to 1, for example. However, if the flag of the header part of the lower layer PDCP layer is set to 1, the data consistency of the PDCP layer is impaired (for example, generated using the header part data such as parity and authentication random number). Data exists). In this case, the new layer L1 requests the PDCP layer processing to reconstruct (recalculate) data by changing the header part, or reconstruct the PDCP layer data in the processing in the new layer L1. It is necessary to do.
- the new layer L1 requests the PDCP layer processing to reconstruct (recalculate) data by changing the header part, or reconstruct the PDCP layer data in the processing in
- the base station apparatus 200 performs a process of transmitting the second data (S300-7 to S300-9), updates the transmission side sequence number information table 222 (S300-5), and ends the process. Note that the processing from S300-7 to S300-9 is the same as the processing from S102-5 to S102-7 in FIG.
- FIG. 16 is a diagram illustrating an example of a process flowchart of the transmission mode determination process S400.
- the terminal device 100 determines whether or not the marking indicating the second data of the received packet is performed (S400-1).
- the determination as to whether or not marking indicating the second data is performed is performed by, for example, confirming the value of the second data flag set in the header portion of the PDCP layer. Further, the determination as to whether or not the marking indicating the second data is made is performed by, for example, confirming the value of the flag for the second data set in the header portion of the new layer L1.
- the terminal device 100 If the terminal device 100 is marked to indicate the second data (Yes in S400-1), the terminal device 100 performs the second transmission mode reception process (S400-2), and indicates the second data. If not (No in S400-1), the first transmission mode reception process is performed (S400-3).
- the base station apparatus 200 performs marking indicating that the data to be transmitted is the second data as a process of the new layer defined in the second layer. Thereby, the base station apparatus 200 can realize transmission according to the data type even when a new layer is defined.
- the base station apparatus 200 performs marking indicating that the data is second data, and uses different transmission modes depending on the data type. However, when the marking indicating that the data is the second data is performed, the base station apparatus 200 does not need to perform the transmission mode depending on the data type. Further, the terminal device 100 determines the data type (or transmission mode) based on whether or not the marking indicating that the data is the second data is performed. For example, as illustrated in the second embodiment, the LCH The transmission mode may be determined by number.
- the base station apparatus may perform part or all of the processing in the first to fourth embodiments.
- the terminal device may perform part or all of the processing in the first to fourth embodiments.
- DESCRIPTION OF SYMBOLS 10 ... Wireless communication system 100 ... Terminal device (wireless communication apparatus) 101 ... Control unit 102 ... Transmitting unit 103 ... Receiving unit 104 ... Processing unit 105 ... AP 110 ... CPU DESCRIPTION OF SYMBOLS 120 ... Storage 121 ... Communication program 1211 ... Transmission mode determination module 1212 ... 1st transmission mode reception module 1213 ... 2nd transmission mode reception module 122 ... Reception side sequence number information table 130 ... Memory 150 ... RF circuit 200 ... Base station apparatus 210 ... CPU 220 ... Storage 221 ... Communication control program 2211 ... Data type classification module 2212 ... Data transmission module 222 ... Transmission side sequence number information table 230 ... Memory 240 ... NIC 250 ... RF circuit 300 ... Network
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Abstract
Description
最初に第1の実施の形態について説明する。
次に、第2の実施の形態について説明する。
図2は、無線通信システム10の構成例を示す図である。無線通信システム10は、端末装置100、基地局装置200、及びネットワーク300を有する。無線通信システム10は、例えば、LTE(Long Term Evolution)の通信規格に対応した通信システムである。
図3は、基地局装置200の構成例を示す図である。基地局装置200は、CPU(Central Processing Unit)210、ストレージ220、DRAM(Dynamic Random Access Memory)などのメモリ230、NIC(Network Interface Card)240、及びRF(Radio Frequency)回路250を有する。
図4は、端末装置100の構成例を示す図である。端末装置100は、CPU110、ストレージ120、DRAMなどのメモリ130、及びRF回路150を有する。
図5は、無線通信システム10におけるデータ送受信処理の例を示す図である。図5のシーケンスは、基地局装置200から端末装置100に、端末装置100が有するアプリケーションプログラムが使用するデータを送信するシーケンスの例である。なお、基地局装置200は、端末装置100に送信するデータをネットワーク300(図示しない)から受信する。基地局装置200は、データD1、D2、D3、D4の順で送信するデータを受信する。そして、データD1、D2、及びD3は、データ種別が第1データであり、データD4は、データ種別が第2データであるものとする。
次に、第3の実施の形態について説明する。
図11は、無線通信システム10におけるデータ送受信処理の例を示す図である。図11のシーケンスは、基地局装置200から端末装置100に、端末装置100が有するアプリケーションプログラムが使用するデータを送信するシーケンスの例である。図5のシーケンスのデータ送信処理S102と、図11のシーケンスのデータ送信処理S200との差異について以下に説明する。
次に、第4の実施の形態について説明する。
各実施の形態における処理は、それぞれ組み合わせてもよい。
100…端末装置(無線通信装置)
101…制御部
102…送信部
103…受信部
104…処理部
105…AP
110…CPU
120…ストレージ
121…通信プログラム
1211…送信モード判定モジュール
1212…第1送信モード受信モジュール
1213…第2送信モード受信モジュール
122…受信側シーケンスナンバ情報テーブル
130…メモリ
150…RF回路
200…基地局装置
210…CPU
220…ストレージ
221…通信制御プログラム
2211…データ種別分類モジュール
2212…データ送信モジュール
222…送信側シーケンスナンバ情報テーブル
230…メモリ
240…NIC
250…RF回路
300…ネットワーク
Claims (17)
- 送信番号を含むパケットを用いて無線接続する他の無線通信装置にデータを送信する無線通信装置であって、
前記データの送信に関する条件を示す送信条件が第1送信条件である場合、前記データを第1データに分類し、前記データの送信条件が前記第1送信条件とは異なる第2送信条件である場合、前記データを第2データに分類する制御部と、
前記データが第1データである場合、前記無線接続に関するレイヤにおける第1送信モードで送信し、前記第2データが第2データである場合、前記無線接続に関するレイヤにおける第2送信モードで送信する送信部と
を有する無線通信装置。 - 前記第1送信モードは、前記他の無線通信装置が事前に受信したパケットと連続した送信番号のパケットを受信したとき、前記他の無線通信装置に前記受信したパケットに含まれるデータに対応する処理を実行させ、前記他の無線通信装置が事前に受信したパケットと連続しない送信番号のパケットを受信したとき、前記他の無線通信装置に事前に受信したパケットと連続した送信番号のパケットを受信するまで前記受信したパケットに含まれるデータに対応する処理を実行させない送信モードであり、
前記第2送信モードは、前記他の無線通信装置が事前に受信したパケットと連続した、あるいは連続しない送信番号のパケットを受信したとき、前記他の無線通信装置に前記受信したパケットに含まれるデータに対応する処理を実行させる送信モードである
請求項1記載の無線通信装置。 - 前記データに対応する処理は、前記データを使用するアプリケーションプログラムであって、前記他の無線通信装置が有するアプリケーションプログラムに前記データを引き渡す処理である
請求項2記載の無線通信装置。 - 前記送信条件は、前記データの送信において許容される遅延時間を示す許容遅延時間であり、
前記第2送信条件は、前記第1送信条件よりも短い許容時間である
請求項1ないし3記載の無線通信装置。 - 前記第2送信モードにおける前記パケットの送信が完了するまでの送信完了時間は、前記第1送信モードにおける送信完了時間よりも短い
請求項1ないし4記載の無線通信装置。 - 前記送信部は、前記データを前記第1送信モードで送信するとき、第1無線チャネルを使用し、前記データを前記第2送信モードで送信するとき、前記第1無線チャネルとは異なる第2無線チャネルを使用する
請求項1ないし5記載の無線通信装置。 - 前記第1送信モードは、前記他の無線通信装置に対して、パケットを受信したことを示す受信確認を送信するよう要求する送信モードであり、
前記第2送信モードは、前記他の無線通信装置に対して、前記受信確認を要求しない送信モードである
請求項1ないし6記載の無線通信装置。 - 前記第1送信モードは、AM(Acknowledged Mode)であり、
前記第2送信モードは、UM(Unacknowledged Mode)である
請求項7記載の無線通信装置。 - 前記第2送信モードは、前記UM又はTM(Transparent Mode)である
請求項8記載の無線通信装置。 - 前記無線接続に関するレイヤは、RLC(Radio Link Control)レイヤである
請求項1ないし9記載の無線通信装置。 - 前記送信部は、前記データを前記第2送信モードで送信するとき、複数の前記無線接続に関するレイヤのうち、最上位のレイヤにおいて、前記データが第2データであることを示す情報を、前記データを送信するパケットに含める
請求項1ないし10記載の無線通信装置。 - 前記最上位のレイヤは、New AS サブレイヤまたはSDAPである
請求項11記載の無線通信装置。 - 前記送信部は、前記データを前記第2送信モードで送信するとき、前記データを複数回送信する
請求項1ないし12記載の無線通信装置。 - 無線接続する他の無線通信装置から、送信番号を含むパケットを用いて送信されたデータを受信する無線通信装置であって、
前記データを含むパケットを受信する受信部と、
前記受信したパケットが、前記データの送信に関する条件を示す送信条件が第1送信条件である第1データであるときに使用される第1送信モードで送信されている場合、第1受信処理を行い、前記受信したパケットが、前記送信条件が第2送信条件である第2データであるときに使用される第2送信モードで送信されている場合、第2受信処理を行う処理部と、
を有する無線通信装置。 - 前記受信部は、受信したパケットに使用されている無線チャネルが、
前記データを第1送信モードで送信するとき使用される第1無線チャネルであるとき、前記受信したパケットは第1送信モードで送信されたと判定し、
前記データを第2送信モードで送信するとき使用される前記第1無線チャネルとは異なる第2無線チャネルであるとき、前記受信したパケットは第2送信モードで送信されたと判定する
請求項14記載の無線通信装置。 - 第1の無線通信装置と、送信番号を含むパケットを用いて無線接続する前記第1の無線通信装置にデータを送信する第2の無線通信装置を有する無線通信システムであって、
前記第2の無線通信装置は、
前記データの送信に関する条件を示す送信条件が第1送信条件である場合、前記データを第1データに分類し、前記データの送信条件が前記第1送信条件とは異なる第2送信条件である場合、前記データを第2データに分類する制御部と、
前記データが第1データである場合、前記無線接続に関するレイヤにおける第1送信モードで送信し、前記第2データが第2データである場合、前記無線接続に関するレイヤにおける第2送信モードで送信する送信部とを有し、
前記第1の無線通信装置は、
前記データを含むパケットを受信する受信部と、
前記受信したパケットが第1送信モードで送信されている場合、第1受信処理を行い、前記受信したパケットが第2送信モードで送信されている場合、第2受信処理を行う処理部とを有する
無線通信システム。 - 送信番号を含むパケットを用いて無線接続する他の無線通信装置にデータを送信する無線通信装置における無線通信方法であって、
前記データの送信に関する条件を示す送信条件が第1送信条件である場合、前記データを第1データに分類し、前記データの送信条件が前記第1送信条件とは異なる第2送信条件である場合、前記データを第2データに分類し、
前記データが第1データである場合、前記無線接続に関するレイヤにおける第1送信モードで送信し、前記第2データが第2データである場合、前記無線接続に関するレイヤにおける第2送信モードで送信する
無線通信方法。
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US20230300871A1 (en) | 2023-09-21 |
JP7227510B2 (ja) | 2023-02-22 |
CN110506436B (zh) | 2023-11-14 |
CN110506436A (zh) | 2019-11-26 |
US11700631B2 (en) | 2023-07-11 |
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