WO2019095925A1 - 一种通讯方法、网络设备及终端设备 - Google Patents
一种通讯方法、网络设备及终端设备 Download PDFInfo
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- WO2019095925A1 WO2019095925A1 PCT/CN2018/110797 CN2018110797W WO2019095925A1 WO 2019095925 A1 WO2019095925 A1 WO 2019095925A1 CN 2018110797 W CN2018110797 W CN 2018110797W WO 2019095925 A1 WO2019095925 A1 WO 2019095925A1
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/0091—Signaling for the administration of the divided path
- H04L5/0094—Indication of how sub-channels of the path are allocated
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0032—Distributed allocation, i.e. involving a plurality of allocating devices, each making partial allocation
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L27/00—Modulated-carrier systems
- H04L27/26—Systems using multi-frequency codes
- H04L27/2601—Multicarrier modulation systems
- H04L27/2602—Signal structure
- H04L27/26025—Numerology, i.e. varying one or more of symbol duration, subcarrier spacing, Fourier transform size, sampling rate or down-clocking
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0037—Inter-user or inter-terminal allocation
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0044—Arrangements for allocating sub-channels of the transmission path allocation of payload
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0058—Allocation criteria
- H04L5/0064—Rate requirement of the data, e.g. scalable bandwidth, data priority
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/0091—Signaling for the administration of the divided path
- H04L5/0092—Indication of how the channel is divided
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/0091—Signaling for the administration of the divided path
- H04L5/0096—Indication of changes in allocation
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W56/00—Synchronisation arrangements
- H04W56/001—Synchronization between nodes
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/0001—Arrangements for dividing the transmission path
- H04L5/0028—Variable division
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0048—Allocation of pilot signals, i.e. of signals known to the receiver
Definitions
- the present application relates to the field of wireless communication technologies, and in particular, to a communication method, a network device, and a terminal device in a wireless communication system.
- LAA Licensed Assisted Access
- R-13 Enhanced Authorized Spectrum Assisted Access
- R-14 Release 14
- Enhanced LAA, eLAA technology that maximizes the use of unlicensed spectrum resources by assisting the spectrum.
- 5G 5th-generation
- NR new radio
- the embodiment of the present application provides a communication method, a network device, and a terminal device, and proposes a channel resource division method to adapt to a flexible bandwidth application scenario.
- the embodiment of the present application provides the following technical solutions:
- the application provides a network device-based communication method, where channel resources are divided according to a specific rule, where the method includes: the network device determines at least two channels, and two adjacent channels of the at least two channels The spacing of the center frequency points is a positive integer multiple of the subcarrier spacing or a positive integer multiple of a resource block (RB) interval; the network device communicates via at least one of the at least two channels.
- the method includes: the network device determines at least two channels, and two adjacent channels of the at least two channels The spacing of the center frequency points is a positive integer multiple of the subcarrier spacing or a positive integer multiple of a resource block (RB) interval; the network device communicates via at least one of the at least two channels.
- RB resource block
- the predetermined rule is that the spacing of the center frequency points of the adjacent two channels is determined according to the bandwidth of the channel and the subcarrier spacing, or the spacing of the center frequency points of the adjacent two channels is determined according to the bandwidth of the channel and the resource block RB interval. .
- the application provides a terminal device-based communication method, including: a terminal device searches for a synchronization signal from a network device to perform random access; and when accessing the network device, the terminal device is in at least one channel. Communicating, the center frequency of each of the at least one channel and another channel adjacent to the network device configuration are positive integer multiples of the subcarrier spacing or positive integer multiples of the resource block RB.
- the spacing between the center frequency points of two adjacent channels in at least two channels conforms to the following formula:
- Nominal channel spacing represents the spacing between the center frequencies of the two channels
- BW channel (1) and BW channel (2) respectively represent the bandwidth of the two carriers
- BW CR represents the channel grid
- SCS represents the subcarrier spacing
- LCM (BW CR , SCS) represents the least common multiple of BW CR and SCS.
- the spacing between the center frequency points of the adjacent two channels conforms to any of the following formulas:
- the spacing between the center frequency points of two adjacent channels of the at least two channels conforms to the following formula:
- the Nominal channel spacing represents the spacing between the center frequency points of the two channels
- the BW channel (1) and the BW channel (2) respectively represent the bandwidth of the two carriers
- the BW CR represents the channel grid
- the BW RB represents the RB interval.
- LCM (BW CR , BW RB ) represents the least common multiple of BW CR and BW RB .
- the spacing between the center frequency points of the adjacent two channels meets any of the following conditions:
- the present application provides a network device, including a processor and a transceiver connected to the processor via a bus, wherein at least two channels are determined, and a center frequency of two adjacent channels of the at least two channels
- the spacing of the points is a positive integer multiple of the subcarrier spacing or a positive integer multiple of the resource block RB spacing; the transceiver is configured to communicate over at least one of the at least two channels.
- an embodiment of the present application provides a communication apparatus, where the synchronization signal sending apparatus has a function of implementing a network device in the foregoing method embodiment.
- This function can be implemented in hardware or in hardware by executing the corresponding software.
- the hardware or software includes one or more modules corresponding to the functions described above.
- an embodiment of the present application provides a terminal device, including a transceiver, including a transceiver and a processor: the transceiver is configured to search for a synchronization signal from a network device for random access; When the network device is configured, the processor is configured to control the transceiver to communicate on at least one channel, and a center frequency of each of the at least one channel is adjacent to another channel configured by the network device Is a positive integer multiple of the subcarrier spacing or a positive integer multiple of the resource block RB.
- an embodiment of the present application provides a communication apparatus, where the synchronization signal transmission apparatus has a function of implementing a network device in the foregoing method embodiment.
- This function can be implemented in hardware or in hardware by executing the corresponding software.
- the hardware or software includes one or more modules corresponding to the functions described above.
- an embodiment of the present application provides a computer readable storage medium comprising instructions that, when executed on a computer, cause the computer to perform the method of the first aspect or the second aspect above.
- a computer program product comprising instructions, when executed on a computer, causes the computer to perform the method of the first aspect or the second aspect.
- FIG. 1 is a schematic diagram of a possible network architecture provided by an embodiment of the present application
- FIG. 2 is a schematic diagram of a simplified communication flow according to an embodiment of the present application.
- FIG. 3 is a schematic diagram of a process interaction of a method provided by an embodiment of the present application.
- FIG. 4 is a schematic diagram showing simplified channel division according to an embodiment of the present application.
- FIG. 5 is a schematic diagram showing simplified channel division according to another embodiment of the present application.
- FIG. 6 is a schematic diagram showing simplified channel division according to another embodiment of the present application.
- FIG. 7 is a schematic diagram showing simplified channel division according to another embodiment of the present application.
- FIG. 8 is a simplified schematic diagram of a network device according to an embodiment of the present application.
- FIG. 9 is a simplified schematic diagram of a terminal device according to an embodiment of the present application.
- the network architecture may be a network architecture of a wireless communication system, and may include a network device and a terminal device.
- the network device and the terminal device are connected by using a wireless communication technology.
- the number and the configuration of the terminal device and the network device shown in FIG. 1 do not constitute a limitation on the embodiments of the present application.
- one network device can be connected to one or more terminal devices.
- the network device can also be connected to a core network device, which is not shown in FIG.
- the wireless communication system mentioned in the embodiments of the present application includes, but is not limited to, a narrow band-internet of things (NB-IoT), and a global system for mobile communications (GSM).
- GSM global system for mobile communications
- EDGE Enhanced data rate for GSM evolution
- WCDMA wideband code division multiple access
- CDMA2000 code division multiple access
- TD-SCDMA Time division-synchronization code division multiple access
- LTE long term evolution
- future mobile communication system includes, but is not limited to, a narrow band-internet of things (NB-IoT), and a global system for mobile communications (GSM).
- EDGE Enhanced data rate for GSM evolution
- WCDMA wideband code division multiple access
- CDMA2000 code division multiple access
- TD-SCDMA Time division-synchronization code division multiple access
- LTE long term evolution
- future mobile communication system future mobile communication system.
- the foregoing network device is a device deployed in a radio access network to provide a wireless communication function for the terminal device.
- the network device may include, but is not limited to, a base station (BS), a network controller, a transmission and reception point (TRP), a mobile switching center, or a wireless access point in wifi, etc., by way of example, wirelessly
- the device through which the channel communicates directly with the terminal device is typically a base station.
- the base station may include various forms of macro base stations, micro base stations, relay stations, access points, or Radio Radio Units (RRUs).
- RRUs Radio Radio Units
- the wireless communication with the terminal device may also be another network device having a wireless communication function, which is not limited in this application.
- the names of devices with base station functions may be different in different systems, for example, in an LTE network, called an evolved NodeB (eNB or eNodeB), in the third generation (the In the 3rd generation, 3G) network, it is called Node B (Node B), etc.
- eNB evolved NodeB
- Node B Node B
- 5G base station 5G base station
- a terminal device also called a user equipment (UE), a mobile station (MS), a mobile terminal (MT), etc.
- UE user equipment
- MS mobile station
- MT mobile terminal
- a handheld device with wireless connectivity an in-vehicle device
- a wearable device a computing device, or other processing device linked to a wireless modem.
- terminal devices are: mobile phones, tablets, laptops, PDAs, mobile internet devices (MIDs), wearable devices, virtual reality (VR) devices, enhancements.
- MIDs mobile internet devices
- VR virtual reality
- Augmented reality (AR) equipment wireless terminals in industrial control, wireless terminals in self driving, wireless terminals in remote medical surgery, smart grid A wireless terminal in a wireless terminal, a wireless terminal in a transportation safety, a wireless terminal in a smart city, a wireless terminal in a smart home, or the like.
- AR Augmented reality
- FIG. 2 is a simplified flow chart of a method for configuring a channel resource by a network device in a wireless communication process.
- the network device divides the channel to determine at least two channels, wherein a spacing between two central frequency points of the determined at least two channels is a positive integer multiple of the subcarrier spacing or a positive integer multiple of the RB interval .
- the network device performs a process of cell establishment or reconfiguration. According to the determined at least two channels, the network device selects a corresponding frequency band, and determines a synchronization signal, a broadcast signal, a system message, etc., to configure a cell covered by the cell.
- the network device may send a synchronization signal, and the terminal device searches for and receives the synchronization signal, synchronizes, and communicates with the network device.
- FIG. 3 is a schematic flowchart diagram of a channel resource configuration method according to an embodiment of the present application.
- Step 301 The network device determines at least two channels, where the spacing of the center frequency points of the adjacent two channels of the at least two channels is a positive integer multiple of the subcarrier spacing or a positive integer multiple of the resource block RB interval.
- the center frequency refers to the center of the spectrum resource corresponding to the channel, and may also be referred to as the center frequency.
- the center frequency of the channel is an integer multiple of the channel raster, and the channel grid is channel-divided. Minimum granularity.
- the center frequency of the channel has a different value.
- the spacing of the center frequency points of two adjacent channels is an integer multiple of the subcarrier spacing.
- the center frequency of the spacing of the center frequency points of two adjacent channels is an integer multiple of the resource block (RB) interval.
- the center frequency of the above channel has been defined in a standard protocol, or the configuration of the channel is directly defined in the standard.
- the manner in which the network device determines the at least two channels is that the network device can determine the division of the channel according to the definition in the standard protocol when the cell is initialized or reconfigured, or directly adopt the channel configuration defined in the standard, and the channel configuration follows at least two channels.
- the spacing of the center frequency points of two adjacent channels is a positive integer multiple of the subcarrier spacing or a positive integer multiple of the RB spacing.
- the center frequency points of the above channels may be embodied in the form of a set, which will be explained in detail below.
- the network device determines that at least two channel modes are network channels that can be divided by the network device to dynamically allocate frequency bands, center frequency points, and the like occupied by the respective channels.
- the network device may select a center frequency point from a predefined center frequency point, for example, a set of center frequency points to be described below, and perform channel division, and the division of the channel follows the center frequency point of two adjacent channels among the two channels.
- the spacing is a positive integer multiple of the subcarrier spacing or a positive integer multiple of the RB spacing.
- Step 302 The network device sends a signal by performing communication by using at least one of the determined at least two channels.
- the network device may select at least one of the determined at least two channels, that is, the network device may select one of the determined at least two channels, or the network device may determine at least one of the determined channels Multiple channels are selected from the two channels.
- the network device transmits a signal, such as a synchronization signal.
- the network device may determine one or more channels for one terminal device, or may determine one or more channels for each of the plurality of terminals.
- step 303 the terminal device searches for a synchronization signal from the network device to perform random access.
- Step 304 When accessing the network device, the terminal device communicates with the network device on at least one channel, where a center frequency of each channel of the at least one channel is adjacent to the network device configuration One channel is a positive integer multiple of the subcarrier spacing or a positive integer multiple of the resource block RB.
- the spacing between the center frequency points of two adjacent channels determined by the network device is an integer multiple of the subcarrier spacing, and the spacing between the center frequencies of two adjacent channels determined by the network device is used as an example. (Nominal channel spacing) meets:
- the BW channel (1) and the BW channel (2) respectively represent the bandwidth of two adjacent channels
- the SCS represents the subchannel spacing
- the BW CR represents the channel grid
- the LCM (BW CR , SCS) represents the minimum of the BW CR and the SCS. common multiple.
- the spacing between the center frequencies of two adjacent channels also satisfies:
- the spacing between two adjacent channel center frequency points determined by the network device satisfies the formula 1 as an example. It can be understood that the network device determines the distance between two adjacent channel center frequencies.
- the application method of the spacing satisfying the formula 2 is similar to that of the formula 1, and will not be described again.
- the center frequency point corresponding to the maximum bandwidth supported by the system is used as the center. For other channels, their corresponding transmission bandwidth is determined by the respective center frequency.
- the spacing between the center frequencies of two adjacent channels determined by the network device satisfies the following:
- the flexible bandwidth transmission with a system subcarrier spacing of 15 kHz and supporting 20 MHz or 40 MHz is taken as an example for description. It can be seen that the maximum bandwidth supported by the system is 40MHz. In some embodiments, the partitioning of RBs is based on the maximum system bandwidth supported by the system. Referring to FIG. 4, in one example, a channel with a bandwidth of 40 MHz may correspond to about 222 RBs. After the guard interval is configured, a transmission bandwidth corresponding to a bandwidth of 40 MHz is 216 RBs. The 216 RBs are symmetrically distributed on both sides of the channel center frequency point M, and the guard intervals are distributed at both ends of the system bandwidth.
- the number of RBs is represented by N_RB, and the above 216 RBs are numbered as RB0 to RB215. It can be understood that, in the embodiments provided in this application, the division and numbering of RBs are all illustratively illustrated. When the necessary guard interval is configured, the position of the RB for transmitting the bandwidth may be offset from the example. It is not limited to the configuration in the example.
- the center frequency spacing of the adjacent two channels is 19.8 MHz, which satisfies Equation 3.
- the corresponding transmission bandwidth of each channel is 106 RBs, which are RB#0-RB#105 and RB#110 ⁇ #215, respectively.
- the maximum bandwidth supported by the system is 100 MHz.
- the bandwidth is 100 MHz.
- the transmission bandwidth can be 273 RBs.
- the 273 RBs are symmetrically distributed on both sides of the center frequency of the channel, the guard intervals are distributed on both sides of the system bandwidth, and the center frequency is located on RB#136.
- the system can support flexible bandwidth transmission of 20MHz, 40MHz, 60MHz, 80MHz or 100MHz.
- the network device can determine that the five bandwidths are 20 MHz channels. Referring to FIG. 5, the five bandwidths are 20 MHz channels. After configuring the necessary guard interval, the transmission bandwidth of each channel is 52 RBs, where the middle is located. The center frequency of channel 3 coincides with the center frequency of the system with a maximum bandwidth of 100 MHz. The spacing between the adjacent two channel center frequencies is 19.8 MHz, which satisfies the requirements of Equation 3 above. Illustratively, the transmission bandwidth of channel 1 is RB#0-RB#51, the transmission bandwidth of channel 2 is RB#55-RB#106, and the transmission bandwidth of channel 3 is RB#110.
- the transmission bandwidth of channel 4 is RB#165 to RB#216
- the transmission bandwidth of channel 5 is RB#220 to RB#271.
- RB#52 to RB#54, RB#107 to RB#109, RB#161 to RB#164, and RB#217 to RB#219 are guard intervals.
- the network device can determine a channel with a bandwidth of 20 MHz and two channels with a bandwidth of 40 MHz.
- reference may be made to the center frequency of the 20 MHz channel, and a channel 6 and phase with a bandwidth of 40 MHz.
- the center-frequency point spacing of channel 1 with a bandwidth of 20 MHz is 30 MHz, and the distance between the center frequency points of channel 6 and channel 7 of two bandwidths is 40 MHz, which is 39.3 MHz, which satisfies the requirements of Equation 3 above.
- the transmission bandwidth of channel 1 is RB#0-RB#51
- the transmission bandwidth of channel 6 is RB#56-RB#161
- the channel is centered on the respective center frequency points.
- the transmission bandwidth of 7 is #166 to RB#271.
- the network device can determine a channel with a bandwidth of 20 MHz and a channel with a bandwidth of 80 MHz.
- the system can also determine channel combinations of other bandwidths, for example, the system can support a channel with a bandwidth of 40 MHz and a channel with a bandwidth of 60 MHz. Under various channel combinations, the spacing of the center frequency points of two adjacent channels conforms to Equation 3. In addition, in other embodiments, after satisfying the requirement of the necessary guard interval, the center frequency of each of the above channels may be offset with respect to the center frequency, and accordingly, the position of the transmission bandwidth may also be offset.
- the spacing between the two adjacent channel heart rate points determined by the network device satisfies the following:
- the system supports 20MHz, 40MHz, 60MHz, 80MHz or 100MHz flexible bandwidth transmission as an example for description.
- resource allocation is performed, the center frequency point corresponding to the maximum carrier bandwidth supported by the system is divided. For smaller carriers, their corresponding transmission bandwidths are determined after the respective center frequency points are determined.
- the network device can determine five channels with a bandwidth of 20 MHz, and the spacing between the center frequencies of the adjacent two channels is 19.98 MHz, which satisfies the requirements of Equation 4.
- the five channels with a bandwidth of 20 MHz can be determined after the necessary guard interval is configured, and the RB corresponding to each channel transmission bandwidth can be determined.
- the spacing between the center frequency points of adjacent two channels is 20.16 MHz.
- the network device can determine a channel with a bandwidth of 20 MHz and two channels with a bandwidth of 40 MHz.
- the channel with a bandwidth of 20 MHz and the adjacent 40 MHz channel have a center-frequency spacing of 29.88 MHz, and two adjacent 40 MHz.
- the spacing between the center frequencies of the channels is 39.96 MHz, which satisfies the requirements of Equation 4.
- the center-frequency point spacing of the channel with a bandwidth of 20 MHz and the adjacent 40 MHz channel is 30.06 MHz
- the spacing between the center frequency points of two adjacent 40 MHz channels is 40.14MHz.
- the network device can determine a channel with a bandwidth of 20 MHz and a channel with a bandwidth of 80 MHz, and the center frequency of the two is 49.86 MHz, which satisfies the requirements of Equation 4.
- a channel having a bandwidth of 20 MHz and a channel center frequency point of an adjacent bandwidth of 80 MHz are 50.04 MHz.
- the system bandwidth of 100MHz can also adopt other division modes. Please refer to Table 4 to illustrate the other division modes under flexible bandwidth.
- the resource configuration method proposed by the present application can also be applied to a high frequency scenario.
- the center frequency spacing of carriers of two adjacent channels is satisfied.
- different subcarrier spacings will be described using Equation 2 as an example.
- the spacing between the center frequency points of the adjacent two channels determined by the network device satisfies the following:
- the spacing between the center frequency points of the adjacent two channels determined by the network device satisfies the following:
- the spacing between the center frequency points of the adjacent two channels determined by the network device satisfies the following:
- the transmission bandwidth is 1.9008 GHz.
- the network device determines five channels with a bandwidth of 400 MHz.
- the transmission bandwidth of 1.008 GHz corresponds to 330 RBs
- each RB of the channel of 400 MHz corresponds to 66 RBs.
- the transmission bandwidth corresponding to each channel with a bandwidth of 400 MHz is less than 66 RBs.
- the transmission bandwidth used for data transmission may be, for example, 65 RBs, 64 RBs, or 60 RBs and so on.
- the distance between the center frequency points of the two adjacent channels determined by the network device is 380.16 MHz, which satisfies the requirement of Equation 6.
- the spacing between the center frequency points of adjacent two channels is 381.6 MHz.
- the spacing between the center frequency points of the two channels determined by the network device is taken as an example of an integer multiple of the RB interval (or can be understood as the RB bandwidth).
- the spacing between the center frequency points of two adjacent channels determined by the network device satisfies:
- the BW channel (1) and the BW channel (2) respectively represent the bandwidth of the two carriers
- the BW CR represents the channel grid
- the BW RB represents the RB interval
- the LCM (BW CR , BW RB ) represents the minimum of the BW CR and the BW RB . common multiple.
- the spacing between two adjacent channel center frequency points determined by the network device satisfies the formula 1 as an example. It can be understood that the network device determines the distance between two adjacent channel center frequencies.
- the application method of the spacing satisfying the formula 2 is similar to that of the formula 1, and will not be described again.
- the spacing between the center frequency points of the adjacent two channels determined by the network device Satisfied as follows:
- the spacing between the center frequency points of the adjacent two channels determined by the network device Satisfied as follows:
- the spacing between the center frequency points of the adjacent two channels determined by the network device Satisfied as follows:
- the flexible carrier bandwidth of 20 MHz, 40 MHz, 60 MHz, 80 MHz, or 100 MHz is supported as an example.
- the channel with a bandwidth of 20 MHz corresponds to 52 RBs
- the channel with a bandwidth of 40 MHz corresponds to 106 RBs
- the channel with a bandwidth of 60 MHz corresponds to 162 RBs
- the channel with a bandwidth of 80 MHz corresponds to 217 RBs.
- the channel with a bandwidth of 100 MHz corresponds to 273 RBs.
- 273 RBs are numbered as RB#0 to RB#272, and the center frequency of the channel having a bandwidth of 100 MHz is located in RB#136.
- the network device can determine that the five bandwidths are 20 MHz channels. Referring to FIG. 7, the five bandwidths are 20 MHz channels. After configuring the necessary guard interval, the transmission bandwidth of each channel is 52 RBs, where the middle is located. The center frequency of the channel coincides with the center frequency of the system's maximum bandwidth of 100 MHz. The spacing between the center frequencies of the adjacent two channels is 19.8 MHz, which satisfies the requirements of Equation 10 above. Exemplarily, with the respective center frequency points as the center, after configuring the guard interval, the transmission bandwidths of the five channels are respectively:
- the spacing between center frequency points of adjacent two channels is 21.6 MHz.
- the network device can determine a channel with a bandwidth of 20 MHz and two channels with a bandwidth of 40 MHz.
- the channel with a bandwidth of 20 MHz and the adjacent 40 MHz channel have a center-frequency spacing of 29.7 MHz, and two adjacent 40 MHz.
- the spacing between the center frequencies of the channels is 39.6 MHz, which satisfies the requirements of Equation 10.
- the transmission bandwidths of the three channels are respectively: RB#0 to RB#51, RB#55 to RB#160, and RB#165 to RB#. 270.
- the center frequency spacing between the channel having a bandwidth of 20 MHz and the adjacent 40 MHz channel is 31.5 MHz
- the center frequency of two adjacent 40 MHz channels is between The spacing is 41.4MHz.
- the network device can determine a channel with a bandwidth of 20 MHz and a channel with a bandwidth of 80 MHz, and the center frequency of the two is 49.5 MHz, which satisfies the requirements of Equation 10.
- the transmission bandwidths of the two channels are: RB#0-RB#51, RB#55-RB#271, respectively, centering on the respective center frequency points.
- the spacing between channels having a bandwidth of 20 MHz and adjacent channels having a bandwidth of 80 MHz is 51.3 MHz.
- 100MHz can also be divided into multiple ways. Please refer to Table 2 for an exemplary illustration of other types of channel combinations under flexible bandwidth. For the configuration of RBs under each channel combination, refer to the foregoing method. No longer.
- the set of the center frequency of the channel bandwidth is exemplarily illustrated, and the relative position of the value in the set satisfies the foregoing formula.
- the following set of central frequency points are predefined in the standard protocol, and the network device can communicate at the central frequency point in the set, wherein the center frequency of the uplink and downlink channels meets the following requirements:
- F DL F DL_low +0.1(N DL –N Offs-DL )
- N DL represents the evolved universal terrestrial radio access network (E-UTRA) absolute radio frequency channel number (E-UTRA absolute radio) Frequency channel number, EARFCN)
- E-UTRA evolved universal terrestrial radio access network
- EARFCN Frequency channel number
- the channel center frequency is selected from any one of the following sets or combinations of sets.
- the subcarrier spacing is any one of 15 KHz, 30 KHz, or 60 KHz.
- the set of selectable channel center frequencies includes at least:
- n 47190 as an example, the value of n can be offset by ⁇ 2. For example, it can be n-2, n-1, n+1, n+2.
- more values can be obtained in the set, the center frequency set with a channel bandwidth of 40 MHz, and the center frequency set of the other channel bandwidths below;
- BW channel(2) 40MHz
- BW CR 100KHz
- SCS 15KHz, 30KHz or 60KHz
- the carrier spacing of two adjacent channels is:
- the center frequency of another channel 40 MHz is obtained to be 5229.9 MHz.
- a similar approach, and different values in the following sets, can be used to obtain the configuration of the channel.
- n 53040
- the channel center frequency set may be at least one of the above-mentioned sets 1 to 4 when the channel bandwidth is 40 MHz, or may be a plurality of the above-mentioned sets 1 to 4.
- the set of selectable carrier center frequencies includes at least:
- n 47090
- n 47490
- n 52940
- n 53340
- the channel center frequency set may be at least one of the foregoing sets 5 to 10 when the channel bandwidth is 60 MHz, or may be a plurality of the above sets 5-10.
- the set of optional carrier center frequencies includes at least:
- n 47390
- n 47590
- n 47790
- the channel center frequency set may be at least one of the foregoing sets 11-18 when the channel bandwidth is 80 MHz, or may be a plurality of the foregoing sets 11-18.
- the optional carrier center frequency set includes at least:
- n 47490
- n 47690
- n 53940
- the channel center frequency set may be at least one of the foregoing sets 19-28 when the channel bandwidth is 100 MHz, or may be a plurality of the above sets 19-28.
- the set of selectable carrier center frequencies is at least one of the following sets or a combination of multiple sets in the following set:
- n 47790(5250MHz), 50990(5570MHz) ⁇ ;
- n 47590 (5230MHz), 47990(5270MHz), 50790(5550MHz), 51190(5590MHz), 51390( 5610MHz), 51590 (5630MHz), 51790 (5650MHz) ⁇ ;
- n 53640(5835MHz) ⁇ ;
- n 53440 (5815 MHz) ⁇ .
- the bandwidth utilization needs to meet the channel bandwidth (OCB) requirement.
- OCB channel bandwidth
- a non-even interlace based structure may be employed, that is, an interlace interval between internal two adjacent RBs (called interlace spacing) is fixed, but in different interlace The number of RBs included may not be equal.
- a resource interleave consists of a plurality of resource blocks spaced apart on the system bandwidth. For example, if the system bandwidth is 106 RBs and the interlace structure with interlace spacing of 10 RB is used, 6 interlaces are composed of 11 RBs, and the remaining 4 interlaces are composed of 10 RBs.
- the value of the interlace spacing can be selected according to the following table.
- [a, b] in the table indicates all positive integer values between closed intervals a to b, and N.A indicates that the scenario is not supported.
- the values in the table satisfy the following calculations:
- N RB is the number of RBs corresponding to the system transmission bandwidth
- interlace_spacing indicates the interlace interval
- RB bandwidth is the bandwidth of one RB
- p OCB is the proportion of the claimed bandwidth required by the OCB regulations for the actual transmission bandwidth.
- BW is the system bandwidth.
- BW 20 MHz
- the value of the interlace spacing that satisfies the above formula is 1, 2, 3, 4, 5, 6 , 7, 8, 9, 10, 11, 13, 15.
- an appropriate one or more values can be selected from the range of values.
- the range of values of the corresponding interlace spacing can be obtained from the above table, and then one or more values are selected from the range of values.
- different system bandwidths eg, 20M, 40M, 60M, 80M, 100M, 160MHz, etc.
- different system bandwidths eg 20M, 40M, 60M, 80M, 100M, 160MHz, etc.
- interlace spacing 5 interlace structure
- different system bandwidth eg 20M, 40M, 60M, 80M, 100M, 160MHz, etc.
- interlace spacing 2 interlace structure
- 120kHz subcarrier spacing 20M, 40M, 60M, 80M, 100M, 160MHz, etc.
- Table 4 High-frequency resource staggered spacing value table
- a structure of a network device includes a processor (or controller) and a transceiver.
- a communication unit may also be included in the structure of the network device. The communication unit is used to support communication with other network side devices, such as communication with core network nodes.
- the structure of the network device may further include a memory coupled to the processor for storing necessary program instructions and data of the network device.
- FIG. 8 illustrates a possible simplified schematic diagram of a network device involved in the above embodiment.
- the structure of the network device involved in the present application includes a transceiver 801, a processor 802, a memory 803, and a communication unit 804.
- the transceiver 801, the processor 802, the memory 803, and the communication unit 804 pass Bus connection.
- transceiver 801 On the downlink, data or signaling to be transmitted (including the downlink control information described above) is adjusted by the transceiver 801 to output samples and generate a downlink signal, which is transmitted via an antenna to the above-described embodiment. Terminal Equipment.
- the antenna receives the uplink signal transmitted by the terminal device in the above embodiment, and the transceiver 802 adjusts the signal received from the antenna and provides input samples.
- service data and signaling messages are processed, such as modulation of data to be transmitted, SC-FDMA symbol generation, and the like. These units are processed according to the radio access technologies employed by the radio access network (e.g., access technologies for LTE, 5G, and other evolved systems).
- transceiver 802 is integrated by a transmitter and a receiver. In other embodiments, the transmitter and receiver may also be independent of one another.
- the processor 802 is further configured to perform control management on the actions of the network device, for performing processing performed by the network device in the foregoing embodiment, for example, for controlling the network device to process the channel configuration and/or performing the description in the present application. Other processes of technology.
- the processor 802 is configured to support the network device to perform the processing related to the network device in FIGS. 2-7, such as steps 301 and 302.
- the processor 802 performs channel sensing and competes for channel occupancy time.
- processor 802 performs channel sensing based on signals received by transceiver 802 from the antenna and controls the transceiver to transmit signals from the antenna to occupy the channel.
- the processor 802 may include one or more processors, for example, including one or more central processing units (CPUs), which may be integrated in the chip, or may be the chip itself. .
- CPUs central processing units
- the memory 803 is used to store related instructions and data, as well as program codes and data of the network device.
- the memory 603 includes, but is not limited to, a random access memory (RAM), a read-only memory (ROM), and an erasable programmable read-only memory (Erasable Programmable Read). Only Memory, EPROM), or Compact Disc Read-Only Memory (CD-ROM).
- Figure 8 only shows a simplified design of the network device.
- the network device may include any number of transmitters, receivers, processors, memories, etc., and all network devices that can implement the present application are within the scope of the present application.
- the structure of the terminal device includes a processor (or controller), a transceiver, and a modem processor.
- the structure of the network device may further include a memory coupled to the processor for storing necessary program instructions and data of the network device.
- Fig. 9 is a simplified schematic diagram showing one possible design structure of the terminal device involved in the above embodiment.
- the terminal device includes a transceiver 901, a processor 902, a memory 903 and a modem processor 904, a transceiver 901, a processor 902, a memory 903, and a modem processor 904 connected by a bus.
- the transceiver 901 conditions (e.g., analog conversion, filtering, amplifying, upconverting, etc.) output samples and generates an uplink signal that is transmitted via an antenna to the network device described in the above embodiments.
- the antenna receives the downlink signal transmitted by the base station in the above embodiment.
- Transceiver 90 conditions (eg, filters, amplifies, downconverts, digitizes, etc.) the signals received from the antenna and provides input samples.
- encoder 9041 receives traffic data and signaling messages to be transmitted on the uplink and processes the traffic data and signaling messages (eg, formatting, encoding, and Interwoven).
- Modulator 9042 further processes (e.g., symbol maps and modulates) the encoded traffic data and signaling messages and provides output samples.
- Demodulator 9043 processes (e.g., demodulates) the input samples and provides symbol estimates.
- the decoder 9044 processes (e.g., deinterleaves and decodes) the symbol estimate and provides decoded data and signaling messages that are sent to the terminal device.
- Encoder 9041, modulator 9042, demodulator 9043, and decoder 9044 may be implemented by a composite modem processor 704. These units are processed according to the radio access technologies employed by the radio access network (e.g., access technologies for LTE, 5G, and other evolved systems).
- the transceiver 901 is integrated by a transmitter and a receiver. In other embodiments, the transmitter and receiver may also be independent of one another.
- the processor 902 controls and manages the actions of the terminal device for performing the processing performed by the terminal device in the above embodiment. For example, it is used to control other processes in which the terminal device performs processing according to the received paging indication information and/or the techniques described in the present invention.
- the processor 902 is configured to support the terminal device to perform the processing procedure involving the terminal device in FIGS. 2-7.
- the transceiver 901 is configured to receive downlink control information sent by the network device by using an antenna, and the processor 902 is configured to control, according to the downlink control information, the transceiver to search for and receive the synchronization signal by using an antenna.
- processor 902 can include one or more processors, including, for example, one or more CPUs, which can be integrated into a chip or can be the chip itself.
- the memory 903 is used to store related instructions and data, as well as program codes and data of the terminal device.
- the memory 903 includes, but is not limited to, a random access memory (RAM), a read-only memory (ROM), and an erasable programmable read-only memory (Erasable Programmable Read). Only Memory, EPROM), or Compact Disc Read-Only Memory (CD-ROM).
- RAM random access memory
- ROM read-only memory
- EPROM erasable programmable read-only memory
- CD-ROM Compact Disc Read-Only Memory
- Figure 9 only shows a simplified design of the terminal device.
- the terminal device may include any number of transmitters, receivers, processors, memories, etc., and all terminal devices that can implement the present application are within the scope of the present application.
- the above embodiments it may be implemented in whole or in part by software, hardware, firmware, or any combination thereof.
- software it may be implemented in whole or in part in the form of a computer program product.
- the computer program product includes one or more computer instructions.
- the computer program instructions When the computer program instructions are loaded and executed on a computer, the processes or functions described in accordance with embodiments of the present invention are generated in whole or in part.
- the computer can be a general purpose computer, a special purpose computer, a computer network, or other programmable device.
- the computer instructions can be stored in a computer readable storage medium or transferred from one computer readable storage medium to another computer readable storage medium, for example, the computer instructions can be from a website site, computer, server or data center Transfer to another website site, computer, server, or data center by wire (eg, coaxial cable, fiber optic, digital subscriber line (DSL), or wireless (eg, infrared, wireless, microwave, etc.).
- the computer readable storage medium can be any available media that can be accessed by a computer or a data storage device such as a server, data center, or the like that includes one or more available media.
- the usable medium may be a magnetic medium (eg, a floppy disk, a hard disk, a magnetic tape), an optical medium (eg, a DVD), or a semiconductor medium (such as a solid state disk (SSD)).
- the functions described herein can be implemented in hardware, software, firmware, or any combination thereof.
- the functions may be stored in a computer readable medium or transmitted as one or more instructions or code on a computer readable medium.
- Computer readable media includes both computer storage media and communication media including any medium that facilitates transfer of a computer program from one location to another.
- a storage medium may be any available media that can be accessed by a general purpose or special purpose computer.
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Abstract
Description
Claims (20)
- 一种通讯方法,其特征在于,包括:网络设备确定至少两个信道,所述至少两个信道中相邻两个信道的中心频点的间距是子载波间隔的正整数倍或者是资源块RB间隔的正整数倍;所述网络设备通过所述至少两个信道中的至少一个信道进行通信。
- 如权利要求2所述的通讯方法,所述相邻的两个信道的中心频点之间的间距符合如实施方式中公式3至公式7中的任一个。
- 如权利要求4所述的通讯方法,其特征在于,所述相邻的两个信道的中心频点之间的间距符合如实施方式中公式10至公式12中的任一个。
- 一种通讯方法,其特征在于,包括:终端设备搜索来自网络设备的同步信号以进行随机接入;当接入所述网络设备时,所述终端设备在至少一个信道上进行通讯,所述至少一个信道中的每个信道的中心频点与所述网络设备配置的相邻的另一信道是子载波间隔的正整数倍或者资源块RB的正整数倍。
- 如权利要求7所述的通讯方法,所述相邻的两个信道的中心频点之间的间距符合如实施方式中公式3至公式7中的任一个。
- 如权利要求9所述的通讯方法,其特征在于,所述相邻的两个信道的中心频点之间的间距符合如实施方式中公式10至公式12中的任一个。
- 一种网络设备,其特征在于,包括:处理器,用于确定至少两个信道,所述至少两个信道中相邻两个信道的中心频点的间距是子载波间隔的正整数倍或者是资源块RB间隔的正整数倍;收发器,用于通过所述至少两个信道中的至少一个信道进行通信。
- 如权利要求12所述的网络设备,其特征在于,所述相邻的两个信道的中心频点之间的间距符合如实施方式中公式3至公式7中的任一个。
- 如权利要求14所述的网络设备,其特征在于,所述相邻的两个信道的中心频点之间的间距符合如实施方式中公式10至公式12中的任一个。
- 一种终端设备,其特征在于,包括收发器和处理器:所述收发器,用于搜索来自网络设备的同步信号以进行随机接入;当接入所述网络设备时,所述处理器用于控制所述收发器在至少一个信道上进行通讯,所述至少一个信道中的每个信道的中心频点与所述网络设备配置的相邻的另一信道是子载波间隔的正整数倍或者资源块RB的正整数倍。
- 如权利要求17所述的终端设备,所述相邻的两个信道的中心频点之间的间距符合如实施方式中公式3至公式7中的任一个。
- 如权利要求19所述的终端设备,其特征在于,所述相邻的两个信道的中心频点之间的间距符合如实施方式中公式10至公式12中的任一个。
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EP18879049.7A EP3694277A4 (en) | 2017-11-17 | 2018-10-18 | COMMUNICATION PROCEDURE, NETWORK DEVICE AND TERMINAL DEVICE |
JP2020527089A JP7063993B2 (ja) | 2017-11-17 | 2018-10-18 | 通信方式、ネットワーク装置、および端末装置 |
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