WO2021087673A1 - Nr-u中drs窗口确定方法、装置及终端 - Google Patents

Nr-u中drs窗口确定方法、装置及终端 Download PDF

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Publication number
WO2021087673A1
WO2021087673A1 PCT/CN2019/115385 CN2019115385W WO2021087673A1 WO 2021087673 A1 WO2021087673 A1 WO 2021087673A1 CN 2019115385 W CN2019115385 W CN 2019115385W WO 2021087673 A1 WO2021087673 A1 WO 2021087673A1
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Prior art keywords
window
length
drs
indication field
ssb
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PCT/CN2019/115385
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English (en)
French (fr)
Inventor
刘洋
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北京小米移动软件有限公司
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Application filed by 北京小米移动软件有限公司 filed Critical 北京小米移动软件有限公司
Priority to CN201980002919.5A priority Critical patent/CN110945942B/zh
Priority to PCT/CN2019/115385 priority patent/WO2021087673A1/zh
Publication of WO2021087673A1 publication Critical patent/WO2021087673A1/zh

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/04Wireless resource allocation
    • H04W72/044Wireless resource allocation based on the type of the allocated resource
    • H04W72/0446Resources in time domain, e.g. slots or frames
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/003Arrangements for allocating sub-channels of the transmission path
    • H04L5/0048Allocation of pilot signals, i.e. of signals known to the receiver
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/0091Signaling for the administration of the divided path
    • H04L5/0094Indication of how sub-channels of the path are allocated

Definitions

  • This application relates to the field of mobile communications, and in particular to a method, device and terminal for determining a DRS window in NR-U.
  • 5G farth generation mobile communication system
  • 5G unlicensed spectrum independent networking New Radio Unlicense, NR-U
  • the first step is to consider the design of synchronous broadcast blocks (SS/PBCH BLOCK, SSB).
  • SSB synchronous broadcast blocks
  • the LBT listen before talk
  • the base station needs to transmit the SSB to the terminal, under the LBT principle, it may not be possible to transmit the SSB in the fixed position of the system because the time-frequency resources are occupied. At this time, it may try to send the SSB again at the alternate shifting transmission position (SSB shifting) allowed by the system, so that the user equipment (UE) can synchronize with the network side in time.
  • SSB shifting alternate shifting transmission position
  • the DRS window is a window used to send the SSB.
  • the DRS window is defined as 5 ms in the related art, that is, in a scenario where the subcarrier interval is 30 kHz, the maximum number of SSBs that can be sent is 20. However, if only 1 or 2 SSBs are sent, other candidate sending positions in the DRS window will be lost when the rate is matched, which wastes system resources.
  • the embodiment of the application provides a method, device, terminal, and storage medium for determining the DRS window in NR-U, which can be used to solve the problem that if only 1 or 2 SSBs are sent, other candidate sending positions in the DRS window are in rate matching. Will be lost, which is a waste of system resources.
  • the technical solution is as follows:
  • a method for determining a discovery reference signal (Discover Reference Symbol, DRS) window in NR-U includes:
  • window hint information where the window hint information is used to implicitly indicate the window length of the DRS window
  • the DRS window corresponds to at least two candidate window lengths.
  • a method for determining a DRS window in NR-U includes:
  • window hint information where the window hint information is used to implicitly indicate the window length of the DRS window
  • the SSB is sent in the DRS window with the window length.
  • a device for determining a DRS window in NR-U includes:
  • the receiving module is configured to receive window hint information, where the window hint information is used to implicitly indicate the window length of the DRS window for the reference signal discovery;
  • a processing module configured to receive the SSB according to the length of the window
  • the DRS window corresponds to at least two candidate window lengths.
  • a device for determining a DRS window in NR-U includes:
  • window hint information where the window hint information is used to implicitly indicate the window length of the DRS window
  • the SSB is sent in the DRS window with the window length.
  • a terminal in another aspect, includes:
  • a transceiver connected to the processor
  • a memory for storing executable instructions of the processor
  • the processor is configured to load and execute the executable instructions to implement the method for determining the DRS window in the NR-U as described above.
  • a network-side device in another aspect, includes:
  • a transceiver connected to the processor
  • a memory for storing executable instructions of the processor
  • the processor is configured to load and execute the executable instructions to implement the method for determining the DRS window in the NR-U as described above.
  • the terminal uses the window hint information to determine the window length of the DRS in this transmission, and receives the SSB in the window length. For scenarios where more SSBs are sent, a larger DRS window is used; for scenarios where fewer SSBs are sent, a smaller DRS window is used. That is, use a reasonable DRS window to send different numbers of SSBs to avoid wasting system resources.
  • Fig. 1 is a block diagram of a communication system provided by an exemplary embodiment of the present application
  • Fig. 2 is a flowchart of a method for determining a DRS window in NR-U provided by an exemplary embodiment of the present application
  • FIG. 3 is a flowchart of a method for determining a DRS window in NR-U according to another exemplary embodiment of the present application
  • Fig. 4 is a schematic structural diagram of a first indication field provided by another exemplary embodiment of the present application.
  • FIG. 5 is a schematic structural diagram of a device for determining a DRS window in NR-U according to an exemplary embodiment of the present application
  • FIG. 6 is a schematic structural diagram of a device for determining a DRS window in NR-U according to another exemplary embodiment of the present application.
  • FIG. 7 is a schematic structural diagram of a terminal provided by an exemplary embodiment of the present application.
  • FIG. 8 is a schematic structural diagram of a base station provided by another exemplary embodiment of the present application.
  • FIG. 1 shows a block diagram of a communication system provided by an exemplary embodiment of the present disclosure.
  • the communication system works in an unlicensed frequency band.
  • the communication system may include: an access network 12 and a terminal 13.
  • the access network 12 includes several access network devices 120.
  • the access network device 120 may be a base station, and the base station is a device deployed in an access network to provide a wireless communication function for a terminal.
  • the base station may include various forms of macro base stations, micro base stations, relay stations, access points, and so on.
  • the equipment with the base station function is called gNodeB or gNB.
  • base station may change.
  • the terminal 13 may include various handheld devices with wireless communication functions, vehicle-mounted devices, wearable devices, computing devices or other processing devices connected to wireless modems, as well as various forms of user equipment, mobile stations (MS), Terminal (terminal device) and so on.
  • MS mobile stations
  • Terminal terminal device
  • the access network device 120 and the terminal 13 communicate with each other through a certain air interface technology, such as a Uu interface.
  • Fig. 2 shows a flowchart of a method for determining a DRS window in NR-U provided by an exemplary embodiment of the present disclosure.
  • the method may be executed by the terminal, and the method includes:
  • Step 202 Receive window hint information, where the window hint information is used to implicitly indicate the window length of the DRS window, and the DRS window corresponds to at least two candidate window lengths;
  • the DRS window is a time domain window used to transmit DRS signals.
  • the DRS signal includes SSB.
  • the DRS window includes two candidate window lengths.
  • one type of window has a length of 5 ms
  • another type of window has a length of 2.5 ms.
  • one type of window has a length of 5 ms
  • another type of window has a length of 2 ms.
  • the DRS window includes more than three candidate window lengths.
  • the maximum window length is 5ms, and other candidate window lengths are less than 5ms and are multiples of 0.5ms.
  • the candidate window length includes: 5ms, 2.5ms, 2ms, 1.5ms, 1ms, or 0.5ms.
  • the terminal receives the window hint information sent by the access network device, and learns the window length of the DRS window according to the window hint information.
  • the window hint information is implicitly indicated by the transmission position indication information of the SSB; in another example, the window hint information is implicitly indicated by the transmission position indication information of the SSB and the QCL in cooperation.
  • Step 204 Receive the SSB according to the window length.
  • the SSB is received in the DRS window having the window length.
  • the terminal receives 4n or 8n SSBs in a DRS window with a window length of 5 ms; and receives 1n or 2n SSBs in a DRS window with a window length of less than 5 ms.
  • n is the number of SSBs sent in a single beam, n is a positive integer, for example, n is 1.
  • the method provided in this embodiment provides at least two window lengths of the DRS window, and the terminal uses window hint information to determine the window length of the DRS in this transmission, and receives the SSB in the window length. For scenarios where more SSBs are sent, a larger DRS window is used; for scenarios where fewer SSBs are sent, a smaller DRS window is used. That is, use a reasonable DRS window to send different numbers of SSBs to avoid wasting system resources.
  • the above-mentioned window indication information includes transmission position indication information of the SSB, and the transmission position indication information includes a first indication field and a second indication field.
  • the second indication field is missing, It is determined that the window length of the DRS window is the first length, and the first length is the maximum value of the at least two candidate window lengths.
  • the sending position indication information of the SSB is the SSB-PositionInBurst information element (Information Element, IE) carried in the minimum system remaining information ((Remaining Minimum System Information, RMSI).
  • Information Element, IE Information Element
  • RMSI Replacement Minimum System Information
  • SEQUENCE represents the sequence structure, inOneGroup is the first indicator field, and the first indicator field is a bit string occupying 8 bits; groupPresence is the second indicator field, and the second indicator field is a bit string occupying 8 bits. That is, the first indication field is the first 8 bits in the position indication information of the SSB, and the second indication field is the last 8 bits in the position indication information of the SSB. Among them, the second indication field is an optional information field.
  • Radio Resource Control Radio Resource Control
  • shortBitmap represents a short bitmap that occupies 4 bits
  • mediumBitmap represents a medium bitmap that occupies 8 bits
  • longBitmap represents a long bitmap that occupies 64 bits.
  • the above-mentioned window indication information includes: SSB transmission position indication information and Quasi-Co-Location (Quasi-Co-Location, QCL), and the transmission position indication information of the SSB includes the first Indicating domain and second indicating domain.
  • the window length of the DRS window is the second length, and the second length is 2.5 ms or 2 ms.
  • the window length of the DRS window is more than three types:
  • the foregoing window indication information includes: SSB transmission position indication information, and the SSB transmission position indication information includes a first indication field and a second indication field.
  • the window length of the DRS window is determined to be the third length according to the value of the second indicator field, which is the length of the at least two candidate window lengths other than the first length, and at least two candidates
  • the length of the window except the first length is less than 5ms and is a multiple of 0.5ms.
  • Table 1 shows the corresponding relationship between the value of the second indication field and the window length of the DRS window.
  • the value of the second indication field (groupPresence)
  • the window length of the DRS window 00000001 4ms 00000010 2.5ms 00000011 2ms 00000100 1ms
  • Fig. 3 shows a flowchart of a method for determining a DRS window in NR-U provided by an exemplary embodiment of the present disclosure.
  • the method may be executed by a base station, and the method includes:
  • Step 302 Generate window hint information, which is used to implicitly indicate the window length of the DRS window;
  • the DRS window is a time domain window used to transmit DRS signals.
  • the DRS signal includes SSB.
  • the DRS window includes two candidate window lengths.
  • one type of window has a length of 5 ms
  • another type of window has a length of 2.5 ms.
  • one type of window has a length of 5 ms
  • another type of window has a length of 2 ms.
  • the DRS window includes more than three candidate window lengths.
  • the maximum window length is 5ms, and other candidate window lengths are less than 5ms and are multiples of 0.5ms.
  • the candidate window length includes: 5ms, 2.5ms, 2ms, 1.5ms, 1ms, or 0.5ms.
  • the window hint information is implicitly indicated by the transmission position indication information of the SSB; in another example, the window hint information is implicitly indicated by the transmission position indication information of the SSB and the QCL in cooperation.
  • Step 304 Send window hint information
  • Step 306 Send the SSB in a DRS window with a window length
  • the SSB is sent in the DRS window having the window length.
  • the base station sends 4n or 8n SSBs in a DRS window with a window length of 5 ms; and sends 1n or 2n SSBs in a DRS window with a window length of less than 5 ms.
  • n is the number of SSBs sent in a single beam, n is a positive integer, for example, n is 1.
  • the method provided in this embodiment provides at least two window lengths of the DRS window, and the terminal uses the window hint information to determine the window length of the DRS in this transmission, and receives the SSB in the window length. For scenarios where more SSBs are sent, a larger DRS window is used; for scenarios where fewer SSBs are sent, a smaller DRS window is used. That is, use a reasonable DRS window to send different numbers of SSBs to avoid wasting system resources.
  • the window hint information includes: SSB transmission position indication information, the transmission position indication information includes a first indication field and a second indication field, and the second indication field is missing;
  • the second indication field is used to implicitly indicate that the window length of the DRS window is the first length, and the first length is the maximum value of the at least two candidate window lengths.
  • the first indication field is the first 8 bits in the position indication information of the SSB
  • the second indication field is the last 8 bits in the position indication information of the SSB.
  • the window hint information includes: SSB transmission position indication information and quasi co-location information QCL, and the transmission position indication information includes a first indication field and a second indication field.
  • the second indication field and QCL are used to implicitly indicate that the window length of the DRS window is the second length.
  • the first length is 5 ms
  • the second length is 2.5 ms or 2 ms.
  • the window length of the DRS window is more than three types:
  • the window hint information includes: sending position indication information of the SSB, and the sending position indication information includes a first indication field and a second indication field;
  • the value of the second indication field is used to implicitly indicate that the window length of the DRS window is the third length.
  • different values of the second indicator field correspond to different third lengths
  • the third length is a length other than the first length among the at least two candidate window lengths.
  • the first length is 5 ms
  • the length of the at least two candidate window lengths other than the first length is less than 5 ms and is a multiple of 0.5 ms.
  • one bit in the first indication field in the transmission position indication information of the SSB may also be used to indicate that the window length of the DRS window is a variable length (or a fixed length).
  • This 1 bit is the bit corresponding to the current SSB in the first indication field.
  • the current SSB is the SSB received by the terminal and carrying the above-mentioned SSB-PositionInBurst.
  • the first line is the first indication field
  • the second line is the second indication field.
  • a square represents 1-bit indication information and also represents the time-frequency resource corresponding to a synchronous broadcast block (hereinafter referred to as time slot block). ).
  • the number 1 indicates that there is a synchronous broadcast block transmission on the time-frequency resource, and the shading indicates the synchronous broadcast block currently received. That is, the current SSB is SSB5.
  • the bit value of the shaded square shown in Figure 4 can be used to implicitly indicate other information. For example, when the bit value is 0, it means that the DRS window supports variable length. When it is 1, it means that the DRS window has a fixed length.
  • Fig. 5 shows a block diagram of a device for determining a DRS window in an NR-U provided by an exemplary embodiment of the present application.
  • the device includes:
  • the receiving module 520 is configured to receive window hint information, where the window hint information is used to implicitly indicate the window length of the DRS window for the reference signal discovery;
  • the processing module 540 is configured to receive the synchronization signal block SSB according to the length of the window;
  • the DRS corresponds to at least two candidate window lengths.
  • the receiving module 520 is configured to receive transmission position indication information of the SSB, where the transmission position indication information includes a first indication field and a second indication field;
  • the processing module 540 is configured to determine that the window length of the DRS window is a first length when the second indication field is missing; the first length is one of the at least two candidate window lengths Maximum value.
  • the window length of the DRS window is two,
  • the receiving module 520 is also configured to receive a quasi co-located QCL
  • the processing module 540 is further configured to determine that the window length of the DRS window is the second length when the second indication field is present and the value of the QCL is 1 or 2.
  • the first length is 5 ms
  • the second length is 2.5ms or 2ms.
  • the window length of the DRS window is more than three;
  • the processing module 540 is further configured to determine that the window length of the DRS window is a third length according to the value of the second indicator field when the second indicator field is present;
  • different values of the second indication field correspond to different third lengths
  • the third length is a length other than the first length among the at least two candidate window lengths.
  • the first length is 5 ms
  • the length of the at least two candidate window lengths other than the first length is less than 5 ms and is a multiple of 0.5 ms.
  • the first indication field is the first 8 bits in the position indication information of the SSB
  • the second indication field is the last 8 bits in the position indication information of the SSB.
  • Fig. 6 shows a block diagram of a device for determining a DRS window in an NR-U provided by an exemplary embodiment of the present application.
  • the device includes:
  • the generating module 620 is configured to generate window hint information, where the window hint information is used to implicitly indicate the window length of the DRS window;
  • the sending module 640 is configured to send the window hint information
  • the sending module 640 is configured to send the SSB in the DRS window having the window length.
  • the window hint information includes:
  • Sending location indication information of the SSB where the sending location indication information includes a first indication field and a second indication field, and the second indication field is missing;
  • the second indication field is used to implicitly indicate that the window length of the DRS window is a first length, and the first length is the maximum value of the at least two candidate window lengths.
  • the window hint information includes:
  • the sending position indication information includes a first indication field and a second indication field, and the value of the QCL is 1 or 2;
  • the second indication field and the QCL are used to implicitly indicate that the window length of the DRS window is the second length.
  • the first length is 5 ms
  • the second length is 2.5 ms or 2 ms.
  • the window length of the DRS window is more than three, and the window hint information includes:
  • Sending location indication information of the SSB where the sending location indication information includes a first indication field and a second indication field;
  • the value of the second indication field is used to implicitly indicate that the window length of the DRS window is the third length
  • different values of the second indication field correspond to different third lengths
  • the third length is a length other than the first length among the at least two candidate window lengths.
  • the first length is 5 ms
  • the length of the at least two candidate window lengths other than the first length is less than 5 ms and is a multiple of 0.5 ms.
  • the first indication field is the first 8 bits in the position indication information of the SSB
  • the second indication field is the last 8 bits in the position indication information of the SSB.
  • FIG. 7 shows a schematic structural diagram of a terminal provided by an exemplary embodiment of the present application.
  • the terminal includes: a processor 701, a receiver 702, a transmitter 703, a memory 704, and a bus 705.
  • the processor 701 includes one or more processing cores, and the processor 701 executes various functional applications and information processing by running software programs and modules.
  • the receiver 702 and the transmitter 703 may be implemented as a communication component, and the communication component may be a communication chip.
  • the memory 704 is connected to the processor 701 through a bus 705.
  • the memory 704 may be used to store at least one instruction, and the processor 701 is used to execute the at least one instruction to implement each step in the foregoing method embodiment.
  • the memory 704 can be implemented by any type of volatile or non-volatile storage device or a combination thereof.
  • the volatile or non-volatile storage device includes, but is not limited to: magnetic disks or optical disks, electrically erasable and programmable Read-only memory (EEPROM), erasable programmable read-only memory (EPROM), static anytime access memory (SRAM), read-only memory (ROM), magnetic memory, flash memory, programmable read-only memory (PROM) .
  • a computer-readable storage medium stores at least one instruction, at least one program, code set, or instruction set, and the at least one instruction, the At least one program, the code set, or the instruction set is loaded and executed by the processor to implement the steps performed by the terminal in the method for determining the DRS window in the NR-U provided by the foregoing method embodiments.
  • FIG. 8 shows a schematic structural diagram of a base station provided by an exemplary embodiment of the present application.
  • the base station includes: a processor 801, a receiver 802, a transmitter 803, a memory 804, and a bus 805.
  • the processor 801 includes one or more processing cores, and the processor 801 executes various functional applications and information processing by running software programs and modules.
  • the receiver 802 and the transmitter 803 may be implemented as a communication component, and the communication component may be a communication chip.
  • the memory 804 is connected to the processor 801 through a bus 805.
  • the memory 804 may be used to store at least one instruction, and the processor 801 is used to execute the at least one instruction to implement the steps performed by the base station in the method for determining the DRS window in the NR-U in the foregoing method embodiment.
  • the memory 804 can be implemented by any type of volatile or non-volatile storage device or a combination thereof.
  • the volatile or non-volatile storage device includes, but is not limited to: magnetic disks or optical disks, electrically erasable and programmable Read-only memory (EEPROM), erasable programmable read-only memory (EPROM), static anytime access memory (SRAM), read-only memory (ROM), magnetic memory, flash memory, programmable read-only memory (PROM) .
  • a computer-readable storage medium stores at least one instruction, at least one program, code set, or instruction set, and the at least one instruction, the At least one program, the code set, or the instruction set is loaded and executed by the processor to implement the method for determining the DRS window in the NR-U performed by the base station provided by the foregoing method embodiments.
  • the program can be stored in a computer-readable storage medium.
  • the storage medium mentioned can be a read-only memory, a magnetic disk or an optical disk, etc.

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Abstract

本公开提供了一种NR-U中DRS窗口确定方法、装置及终端,所述方法包括:接收窗口暗示信息,所述窗口暗示信息用于隐式指示DRS窗口的窗口长度;根据所述窗口长度接收SSB;其中,所述DRS窗口对应有至少两种候选的窗口长度。

Description

NR-U中DRS窗口确定方法、装置及终端 技术领域
本申请涉及移动通信领域,特别涉及一种NR-U中DRS窗口确定方法、装置及终端。
背景技术
5G(第5代移动通信系统)对非授权频谱进行了立项研究,提出支持5G非授权小区单独组网的方案。在5G非授权频谱独立组网(New Radio Unlicense,NR-U)设计上,第一步就是要考虑关于同步广播块(SS/PBCH BLOCK,SSB)的设计。对于非授权频谱,需要遵守LBT(listen before talk,先听后发)原则。在基站需要向终端传输SSB时,在LBT原则下,可能因为时频资源被占用而无法在系统固定配置的位置传输SSB。此时,可能在系统允许的备选偏移传输位置(SSB shifting)再次尝试发送SSB,以便用户设备(UE)及时的与网络侧同步。
DRS窗口是用于发送SSB的窗口,相关技术中定义DRS窗口为5ms,也即在子载波间隔为30kHZ的场景下,可以发送的SSB最大数量是20个。但是如果只发送1或2个SSB时,DRS窗口中的其他候选发送位置在速率匹配时会被丢失掉,较为浪费系统资源。
发明内容
本申请实施例提供了一种NR-U中DRS窗口确定方法、装置、终端及存储介质,可以用于解决如果只发送1或2个SSB时,DRS窗口中的其他候选发送位置在速率匹配时会被丢失掉,较为浪费系统资源的问题。所述技术方案如下:
一个方面,提供了一种NR-U中发现参考信号(Discover Reference Symbol,DRS)窗口确定方法,所述方法包括:
接收窗口暗示信息,所述窗口暗示信息用于隐式指示DRS窗口的窗口长度;
根据所述窗口长度接收SSB;
其中,所述DRS窗口对应有至少两种候选的窗口长度。
另一个方面,提供了一种NR-U中DRS窗口确定方法,所述方法包括:
生成窗口暗示信息,所述窗口暗示信息用于隐式指示DRS窗口的窗口长度;
发送所述窗口暗示信息;
在具有所述窗口长度的DRS窗口中发送SSB。
另一个方面,提供了一种NR-U中DRS窗口确定装置,所述装置包括:
接收模块,被配置为接收窗口暗示信息,所述窗口暗示信息用于隐式指示发现参考信号DRS窗口的窗口长度;
处理模块,用于根据所述窗口长度接收SSB;
其中,所述DRS窗口对应有至少两种候选的窗口长度。
另一个方面,提供了一种NR-U中DRS窗口确定装置,所述装置包括:
生成窗口暗示信息,所述窗口暗示信息用于隐式指示DRS窗口的窗口长度;
发送所述窗口暗示信息;
在具有所述窗口长度的DRS窗口中发送SSB。
另一个方面,提供了一种终端,所述终端包括:
处理器;
与所述处理器相连的收发器;
用于存储所述处理器的可执行指令的存储器;
其中,所述处理器被配置为加载并执行所述可执行指令以实现如上所述的NR-U中DRS窗口确定方法。
另一个方面,提供了一种网络侧设备,所述网络侧设备包括:
处理器;
与所述处理器相连的收发器;
用于存储所述处理器的可执行指令的存储器;
其中,所述处理器被配置为加载并执行所述可执行指令以实现如上所述的NR-U中DRS窗口确定方法。
本申请实施例提供的技术方案带来的有益效果至少包括:
通过提供至少两种DRS窗口的窗口长度,终端利用窗口暗示信息确定DRS在本次传输中的窗口长度,在该窗口长度中接收SSB。对于发送较多SSB的场景下,使用较大的DRS窗口;对于发送较少SSB的场景下,使用较小的DRS窗口。也即使用合理的DRS窗口发送不同数量的SSB,避免浪费系统资源。
附图说明
为了更清楚地说明本申请实施例中的技术方案,下面将对实施例描述中所需要使用的附图作简单地介绍,显而易见地,下面描述中的附图仅仅是本申请的一些实施例,对于本领域普通技术人员来讲,在不付出创造性劳动的前提下,还可以根据这些附图获得其他的附图。
图1是本申请一个示例性实施例提供的通信系统的框图;
图2是本申请一个示例性实施例提供的NR-U中DRS窗口确定方法的流程图;
图3是本申请另一个示例性实施例提供的NR-U中DRS窗口确定方法的流程图;
图4是本申请另一个示例性实施例提供的第一指示域的结构示意图;
图5是本申请一个示例性实施例提供的NR-U中DRS窗口确定装置的结构示意图;
图6是本申请另一个示例性实施例提供的NR-U中DRS窗口确定装置的结构示意图;
图7是本申请一个示例性实施例提供的终端的结构示意图;
图8是本申请另一个示例性实施例提供基站的结构示意图。
具体实施方式
为使本申请的目的、技术方案和优点更加清楚,下面将结合附图对本申请实施方式作进一步地详细描述。
图1示出了本公开一个示例性实施例提供的通信系统的框图,该通信系统工作在免授权频段上,该通信系统可以包括:接入网12和终端13。
接入网12中包括若干个接入网设备120。接入网设备120可以是基站,所述基站是一种部署在接入网中用以为终端提供无线通信功能的装置。基站可以包括各种形式的宏基站,微基站,中继站,接入点等等。在5G NR-U系统中,具备基站功能的设备称为gNodeB或者gNB。随着通信技术的演进,“基站”这一描述可能会变化。
终端13可以包括各种具有无线通信功能的手持设备、车载设备、可穿戴设备、计算设备或连接到无线调制解调器的其他处理设备,以及各种形式的用户 设备,移动台(Mobile Station,MS),终端(terminal device)等等。为方便描述,上面提到的设备统称为终端。接入网设备120与终端13之间通过某种空口技术互相通信,例如Uu接口。
需要说明的是,下面本公开示例性实施例仅以终端接入接入网设备为例进行举例说明,本领域技术人员在了解本公开的技术方案后,将很容易想到将本公开提供的物理随机接入信道的配置方法为后续演进的其他物理随机接入信道的配置方法,以及应用于其他终端接入其他接入网设备的情况,但应当将这些扩展方案纳入本公开的保护范围。
图2示出了本公开一个示例性实施例提供的NR-U中DRS窗口确定方法的流程图。该方法可以由终端来执行,该方法包括:
步骤202,接收窗口暗示信息,窗口暗示信息用于隐式指示DRS窗口的窗口长度,DRS窗口对应有至少两种候选的窗口长度;
DRS窗口是用于发送DRS信号的时域窗口。DRS信号包括SSB。
在一个示例中,DRS窗口包括两种候选的窗口长度。例如,一种窗口长度为5ms,另一种窗口长度为2.5ms。又例如,一种窗口长度为5ms,另一种窗口长度为2ms。
在一个示例中,DRS窗口包括三种以上候选的窗口长度。最大的窗口长度为5ms,其它的候选窗口长度均小于5ms且为0.5ms的倍数。例如,候选的窗口长度包括:5ms、2.5ms、2ms、1.5ms、1ms或0.5ms。
终端接收接入网设备发送的窗口暗示信息,根据该窗口暗示信息来获知DRS窗口的窗口长度。
在一个示例中,窗口暗示信息是由SSB的发送位置指示信息来隐式指示的;在另一个示例中,窗口暗示信息是由SSB的发送位置指示信息和QCL来协同隐式指示的。
步骤204,根据窗口长度接收SSB。
在确定DRS窗口的窗口长度后,在具有该窗口长度的DRS窗口中接收SSB。
在一个示例中,终端在窗口长度为5ms的DRS窗口中接收4n个或8n个SSB;在窗口长度为小于5ms的DRS窗口中接收1n个或2n个SSB。n为单个波束中发送的SSB数量,n为正整数,比如n为1。
综上所述,本实施例提供的方法,通过提供至少两种DRS窗口的窗口长度, 终端利用窗口暗示信息确定DRS在本次传输中的窗口长度,在该窗口长度中接收SSB。对于发送较多SSB的场景下,使用较大的DRS窗口;对于发送较少SSB的场景下,使用较小的DRS窗口。也即使用合理的DRS窗口发送不同数量的SSB,避免浪费系统资源。
在基于图2的一个可选的实施例中,上述窗口指示信息包括SSB的发送位置指示信息,该发送位置指示信息包括第一指示域和第二指示域,当第二指示域为缺失时,确定DRS窗口的窗口长度为第一长度,第一长度是至少两种候选的窗口长度中的最大值。
示例性的,SSB的发送位置指示信息是携带在最小系统剩余信息((Remaining Minimum System Information,RMSI)中的SSB-PositionInBurst信息单元(Information Element,IE)。SSB-PositionInBurst IE的定义如下
Figure PCTCN2019115385-appb-000001
其中,SEQUENCE代表序列结构,inOneGroup为第一指示域,第一指示域为占用8个比特的位串;groupPresence为第二指示域,第二指示域为占用8个比特的位串。也即第一指示域是SSB的位置指示信息中的前8个比特,第二指示域是SSB的位置指示信息中的后8个比特。其中,第二指示域为可选信息域。
上述SSB-PositionInBurst信息单元在无线资源控制(Radio Resource Control,RRC)中的结构与上述结构略有不同(仅比特位数不同),但是同理。
Figure PCTCN2019115385-appb-000002
Figure PCTCN2019115385-appb-000003
其中,shortBitmap代表占用4个比特的短位图,mediumBitmap代表占用8个比特的中位图,longBitmap代表占用64个比特的长位图。
针对DRS窗口的窗口长度为两种长度的情形:
在基于图2的另一个可选的实施例中,上述窗口指示信息包括:SSB的发送位置指示信息和准共址(Quasi-Co-Location,QCL),该SSB的发送位置指示信息包括第一指示域和第二指示域。
当第二指示域为存在且QCL为1或2时,确定DRS窗口的窗口长度为第二长度,第二长度为2.5ms或2ms。
针对DRS窗口的窗口长度为三种以上的情形:
在基于图2的另一个可选的实施例中,上述窗口指示信息包括:SSB的发送位置指示信息,该SSB的发送位置指示信息包括第一指示域和第二指示域。
当第二指示域为存在时,根据第二指示域的取值确定DRS窗口的窗口长度为第三长度,是至少两种候选的窗口长度中除第一长度之外的长度,至少两种候选的窗口长度中除第一长度之外的长度均小于5ms且为0.5ms的倍数。
在一个示意性的例子中,表一示出了第二指示域的取值和DRS窗口的窗口长度的对应关系。
表一
第二指示域(groupPresence)的取值 DRS窗口的窗口长度
00000001 4ms
00000010 2.5ms
00000011 2ms
00000100 1ms
上述表一仅为示例性说明,本申请对第二指示域的取值和DRS窗口的窗口长度之间的对应关系不加以限定。
图3示出了本公开一个示例性实施例提供的NR-U中DRS窗口确定方法的流程图。该方法可以由基站来执行,该方法包括:
步骤302,生成窗口暗示信息,窗口暗示信息用于隐式指示DRS窗口的窗 口长度;
DRS窗口是用于发送DRS信号的时域窗口。DRS信号包括SSB。
在一个示例中,DRS窗口包括两种候选的窗口长度。例如,一种窗口长度为5ms,另一种窗口长度为2.5ms。又例如,一种窗口长度为5ms,另一种窗口长度为2ms。
在一个示例中,DRS窗口包括三种以上候选的窗口长度。最大的窗口长度为5ms,其它的候选窗口长度均小于5ms且为0.5ms的倍数。例如,候选的窗口长度包括:5ms、2.5ms、2ms、1.5ms、1ms或0.5ms。
在一个示例中,窗口暗示信息是由SSB的发送位置指示信息来隐式指示的;在另一个示例中,窗口暗示信息是由SSB的发送位置指示信息和QCL来协同隐式指示的。
步骤304,发送窗口暗示信息;
步骤306,在具有窗口长度的DRS窗口中发送SSB;
在确定DRS窗口的窗口长度后,在具有该窗口长度的DRS窗口中发送SSB。
在一个示例中,基站在窗口长度为5ms的DRS窗口中发送4n个或8n个SSB;在窗口长度为小于5ms的DRS窗口中发送1n个或2n个SSB。n为单个波束中发送的SSB数量,n为正整数,比如n为1。
综上所述,本实施例提供的方法,通过提供至少两种DRS窗口的窗口长度,终端利用窗口暗示信息确定DRS在本次传输中的窗口长度,在该窗口长度中接收SSB。对于发送较多SSB的场景下,使用较大的DRS窗口;对于发送较少SSB的场景下,使用较小的DRS窗口。也即使用合理的DRS窗口发送不同数量的SSB,避免浪费系统资源。
在基于图3的一个可选实施例中,窗口暗示信息包括:SSB的发送位置指示信息,发送位置指示信息包括第一指示域和第二指示域,第二指示域为缺失;
第二指示域,用于隐式指示DRS窗口的窗口长度为第一长度,第一长度是至少两种候选的窗口长度中的最大值。
第一指示域是SSB的位置指示信息中的前8个比特,第二指示域是SSB的位置指示信息中的后8个比特。
针对DRS窗口的窗口长度为两种长度的情形:
在基于图3的一个可选实施例中,窗口暗示信息包括:SSB的发送位置指示信息和准共址信息QCL,发送位置指示信息包括第一指示域和第二指示域。其中,第二指示域和QCL,用于隐式指示DRS窗口的窗口长度为第二长度。
示例性的,第一长度为5ms,第二长度为2.5ms或2ms。
针对DRS窗口的窗口长度为三种以上的情形:
在基于图3的一个可选实施例中,窗口暗示信息包括:SSB的发送位置指示信息,发送位置指示信息包括第一指示域和第二指示域;
第二指示域的取值,用于隐式指示DRS窗口的窗口长度为第三长度。其中,第二指示域的不同取值对应不同的第三长度,第三长度是至少两种候选的窗口长度中除第一长度之外的长度。
例如,第一长度为5ms,至少两种候选的窗口长度中除第一长度之外的长度均小于5ms且为0.5ms的倍数。
需要说明的是,在一种可能的实施例中,还可以使用SSB的发送位置指示信息中的第一指示域中的1个比特来指示DRS窗口的窗口长度为可变长度(或固定长度)。该1个比特是当前SSB在第一指示域中对应的比特。其中,当前SSB是终端接收到的携带有上述SSB-PositionInBurst的SSB。
如图4所示,第一行为第一指示域,第二行为第二指示域,一个方块表示1比特位指示信息,同时也代表着一个同步广播块对应的时频资源(以下称时隙块)。数字1表示该时频资源上有同步广播块传输,阴影表示当前接收到的同步广播块。也即,当前SSB是SSB5。
由于当前SSB是UE肯定被接收到的,因此图4所示的阴影方块的比特值可以用于隐式指示其它信息,比如该比特值为0时,代表DRS窗口支持可变长度,该比特值为1时,代表DRS窗口为固定长度。
图5示出了本申请一个示例性实施例提供的一种NR-U中DRS窗口确定装置的框图。所述装置包括:
接收模块520,被配置为接收窗口暗示信息,所述窗口暗示信息用于隐式指示发现参考信号DRS窗口的窗口长度;
处理模块540,用于根据所述窗口长度接收同步信号块SSB;
其中,所述DRS对应有至少两种候选的窗口长度。
在一个可选的实施例中,所述接收模块520,被配置为接收所述SSB的发送位置指示信息,所述发送位置指示信息包括第一指示域和第二指示域;
所述处理模块540,被配置为当所述第二指示域为缺失时,确定所述DRS窗口的窗口长度为第一长度;所述第一长度是所述至少两种候选的窗口长度中的最大值。
在一个可选的实施例中,所述DRS窗口的窗口长度为两个,
所述接收模块520,还被配置为接收准共址QCL;
所述处理模块540,还被配置为当所述第二指示域为存在且所述QCL的取值为1或2时,确定所述DRS窗口的窗口长度为第二长度。
在一个可选的实施例中,所述第一长度为5ms,
所述第二长度为2.5ms或2ms。
在一个可选的实施例中,所述DRS窗口的窗口长度为三个以上;
所述处理模块540,还被配置为当所述第二指示域为存在时,根据所述第二指示域的取值,确定所述DRS窗口的窗口长度为第三长度;
其中,所述第二指示域的不同取值对应不同的所述第三长度,所述第三长度是所述至少两种候选的窗口长度中除所述第一长度之外的长度。
在一个可选的实施例中,所述第一长度为5ms,所述至少两种候选的窗口长度中除所述第一长度之外的长度均小于5ms且为0.5ms的倍数。
在一个可选的实施例中,所述第一指示域是所述SSB的位置指示信息中的前8个比特,所述第二指示域是所述SSB的位置指示信息中的后8个比特。
图6示出了本申请一个示例性实施例提供的一种NR-U中DRS窗口确定装置的框图。所述装置包括:
生成模块620,被配置为生成窗口暗示信息,所述窗口暗示信息用于隐式指示DRS窗口的窗口长度;
发送模块640,被配置为发送所述窗口暗示信息;
所述发送模块640,被配置为在具有所述窗口长度的DRS窗口中发送SSB。
在一个可选的实施例中,所述窗口暗示信息包括:
所述SSB的发送位置指示信息,所述发送位置指示信息包括第一指示域和第二指示域,所述第二指示域为缺失;
所述第二指示域,用于隐式指示所述DRS窗口的窗口长度为第一长度,所 述第一长度是所述至少两种候选的窗口长度中的最大值。
在一个可选的实施例中,所述窗口暗示信息包括:
所述SSB的发送位置指示信息和准共址信息QCL,所述发送位置指示信息包括第一指示域和第二指示域,所述QCL的取值为1或2;
所述第二指示域和所述QCL,用于隐式指示所述DRS窗口的窗口长度为第二长度。
在一个可选的实施例中,所述第一长度为5ms,所述第二长度为2.5ms或2ms。
在一个可选的实施例中,所述DRS窗口的窗口长度为三个以上,所述窗口暗示信息包括:
所述SSB的发送位置指示信息,所述发送位置指示信息包括第一指示域和第二指示域;
所述第二指示域的取值,用于隐式指示所述DRS窗口的窗口长度为第三长度;
其中,所述第二指示域的不同取值对应不同的所述第三长度,所述第三长度是所述至少两种候选的窗口长度中除所述第一长度之外的长度。
在一个可选的实施例中,所述第一长度为5ms,所述至少两种候选的窗口长度中除所述第一长度之外的长度均小于5ms且为0.5ms的倍数。
在一个可选的实施例中,所述第一指示域是所述SSB的位置指示信息中的前8个比特,所述第二指示域是所述SSB的位置指示信息中的后8个比特。
图7示出了本申请一个示例性实施例提供的终端的结构示意图,该终端包括:处理器701、接收器702、发射器703、存储器704和总线705。
处理器701包括一个或者一个以上处理核心,处理器701通过运行软件程序以及模块,从而执行各种功能应用以及信息处理。
接收器702和发射器703可以实现为一个通信组件,该通信组件可以是一块通信芯片。
存储器704通过总线705与处理器701相连。
存储器704可用于存储至少一个指令,处理器701用于执行该至少一个指令,以实现上述方法实施例中的各个步骤。
此外,存储器704可以由任何类型的易失性或非易失性存储设备或者它们 的组合实现,易失性或非易失性存储设备包括但不限于:磁盘或光盘,电可擦除可编程只读存储器(EEPROM),可擦除可编程只读存储器(EPROM),静态随时存取存储器(SRAM),只读存储器(ROM),磁存储器,快闪存储器,可编程只读存储器(PROM)。
在示例性实施例中,还提供了一种计算机可读存储介质,所述计算机可读存储介质中存储有至少一条指令、至少一段程序、代码集或指令集,所述至少一条指令、所述至少一段程序、所述代码集或指令集由所述处理器加载并执行以实现上述各个方法实施例提供的NR-U中DRS窗口确定方法中由终端执行的的各个步骤。
图8示出了本申请一个示例性实施例提供的基站的结构示意图,该基站包括:处理器801、接收器802、发射器803、存储器804和总线805。
处理器801包括一个或者一个以上处理核心,处理器801通过运行软件程序以及模块,从而执行各种功能应用以及信息处理。
接收器802和发射器803可以实现为一个通信组件,该通信组件可以是一块通信芯片。
存储器804通过总线805与处理器801相连。
存储器804可用于存储至少一个指令,处理器801用于执行该至少一个指令,以实现上述方法实施例中NR-U中DRS窗口确定方法中由基站执行的的各个步骤。
此外,存储器804可以由任何类型的易失性或非易失性存储设备或者它们的组合实现,易失性或非易失性存储设备包括但不限于:磁盘或光盘,电可擦除可编程只读存储器(EEPROM),可擦除可编程只读存储器(EPROM),静态随时存取存储器(SRAM),只读存储器(ROM),磁存储器,快闪存储器,可编程只读存储器(PROM)。
在示例性实施例中,还提供了一种计算机可读存储介质,所述计算机可读存储介质中存储有至少一条指令、至少一段程序、代码集或指令集,所述至少一条指令、所述至少一段程序、所述代码集或指令集由所述处理器加载并执行以实现上述各个方法实施例提供的由基站执行的NR-U中DRS窗口确定方法。
本领域普通技术人员可以理解实现上述实施例的全部或部分步骤可以通过 硬件来完成,也可以通过程序来指令相关的硬件完成,所述的程序可以存储于一种计算机可读存储介质中,上述提到的存储介质可以是只读存储器,磁盘或光盘等。
以上所述仅为本申请的可选实施例,并不用以限制本申请,凡在本申请的精神和原则之内,所作的任何修改、等同替换、改进等,均应包含在本申请的保护范围之内。

Claims (30)

  1. 一种NR-U中发现参考信号DRS窗口确定方法,其特征在于,所述方法包括:
    接收窗口暗示信息,所述窗口暗示信息用于隐式指示DRS窗口的窗口长度;
    根据所述窗口长度接收同步信号块SSB;
    其中,所述DRS窗口对应有至少两种候选的窗口长度。
  2. 根据权利要求1所述的方法,其特征在于,所述接收窗口暗示信息,包括:
    接收所述SSB的发送位置指示信息,所述发送位置指示信息包括第一指示域和第二指示域;
    当所述第二指示域为缺失时,确定所述DRS窗口的窗口长度为第一长度;所述第一长度是所述至少两种候选的窗口长度中的最大值。
  3. 根据权利要求2所述的方法,其特征在于,所述DRS窗口的窗口长度为两个,所述方法还包括:
    接收准共址QCL;
    当所述第二指示域为存在且所述QCL的取值为1或2时,确定所述DRS窗口的窗口长度为第二长度。
  4. 根据权利要求3所述的方法,其特征在于,所述第一长度为5ms,所述第二长度为2.5ms或2ms。
  5. 根据权利要求2所述的方法,其特征在于,所述DRS窗口的窗口长度为三个以上,所述方法还包括:
    当所述第二指示域为存在时,根据所述第二指示域的取值,确定所述DRS窗口的窗口长度为第三长度;
    其中,所述第二指示域的不同取值对应不同的所述第三长度,所述第三长度是所述至少两种候选的窗口长度中除所述第一长度之外的长度。
  6. 根据权利要求5所述的方法,其特征在于,所述第一长度为5ms,所述至少两种候选的窗口长度中除所述第一长度之外的长度均小于5ms且为0.5ms的倍数。
  7. 根据权利要求2至6任一所述的方法,其特征在于,
    所述第一指示域是所述SSB的位置指示信息中的前8个比特,所述第二指示域是所述SSB的位置指示信息中的后8个比特。
  8. 一种NR-U中DRS窗口确定方法,其特征在于,所述方法包括:
    生成窗口暗示信息,所述窗口暗示信息用于隐式指示DRS窗口的窗口长度;
    发送所述窗口暗示信息;
    在具有所述窗口长度的DRS窗口中发送同步信号块SSB。
  9. 根据权利要求8所述的方法,其特征在于,所述窗口暗示信息包括:
    所述SSB的发送位置指示信息,所述发送位置指示信息包括第一指示域和第二指示域,所述第二指示域为缺失;
    所述第二指示域,用于隐式指示所述DRS窗口的窗口长度为第一长度,所述第一长度是所述至少两种候选的窗口长度中的最大值。
  10. 根据权利要求9所述的方法,其特征在于,所述窗口暗示信息包括:
    所述SSB的发送位置指示信息和准共址信息QCL,所述发送位置指示信息包括第一指示域和第二指示域,所述QCL的取值为1或2;
    所述第二指示域和所述QCL,用于隐式指示所述DRS窗口的窗口长度为第二长度。
  11. 根据权利要求10所述的方法,其特征在于,所述第一长度为5ms,所述第二长度为2.5ms或2ms。
  12. 根据权利要求9所述的方法,其特征在于,所述DRS窗口的窗口长度为三个以上,所述窗口暗示信息包括:
    所述SSB的发送位置指示信息,所述发送位置指示信息包括第一指示域和第二指示域;
    所述第二指示域的取值,用于隐式指示所述DRS窗口的窗口长度为第三长度;
    其中,所述第二指示域的不同取值对应不同的所述第三长度,所述第三长度是所述至少两种候选的窗口长度中除所述第一长度之外的长度。
  13. 根据权利要求12所述的方法,其特征在于,所述第一长度为5ms,所述至少两种候选的窗口长度中除所述第一长度之外的长度均小于5ms且为0.5ms的倍数。
  14. 根据权利要求8至13任一所述的方法,其特征在于,
    所述第一指示域是所述SSB的位置指示信息中的前8个比特,所述第二指示域是所述SSB的位置指示信息中的后8个比特。
  15. 一种NR-U中DRS窗口确定装置,其特征在于,所述装置包括:
    接收模块,被配置为接收窗口暗示信息,所述窗口暗示信息用于隐式指示发现参考信号DRS窗口的窗口长度;
    处理模块,用于根据所述窗口长度接收同步信号块SSB;
    其中,所述DRS对应有至少两种候选的窗口长度。
  16. 根据权利要求15所述的装置,其特征在于,
    所述接收模块,被配置为接收所述SSB的发送位置指示信息,所述发送位置指示信息包括第一指示域和第二指示域;
    所述处理模块,被配置为当所述第二指示域为缺失时,确定所述DRS窗口的窗口长度为第一长度;所述第一长度是所述至少两种候选的窗口长度中的最大值。
  17. 根据权利要求16所述的装置,其特征在于,所述DRS窗口的窗口长度为两个,
    所述接收模块,还被配置为接收准共址QCL;
    所述处理模块,还被配置为当所述第二指示域为存在且所述QCL的取值为1或2时,确定所述DRS窗口的窗口长度为第二长度。
  18. 根据权利要求17所述的装置,其特征在于,所述第一长度为5ms,
    所述第二长度为2.5ms或2ms。
  19. 根据权利要求15所述的装置,其特征在于,所述DRS窗口的窗口长度为三个以上;
    所述处理模块,还被配置为当所述第二指示域为存在时,根据所述第二指示域的取值,确定所述DRS窗口的窗口长度为第三长度;
    其中,所述第二指示域的不同取值对应不同的所述第三长度,所述第三长度是所述至少两种候选的窗口长度中除所述第一长度之外的长度。
  20. 根据权利要求19所述的装置,其特征在于,所述第一长度为5ms,所述至少两种候选的窗口长度中除所述第一长度之外的长度均小于5ms且为0.5ms的倍数。
  21. 根据权利要求15至20任一所述的装置,其特征在于,
    所述第一指示域是所述SSB的位置指示信息中的前8个比特,所述第二指示域是所述SSB的位置指示信息中的后8个比特。
  22. 一种NR-U中DRS窗口确定装置,其特征在于,所述装置包括:
    生成模块,被配置为生成窗口暗示信息,所述窗口暗示信息用于隐式指示DRS窗口的窗口长度;
    发送模块,被配置为发送所述窗口暗示信息;
    所述发送模块,还被配置为在具有所述窗口长度的DRS窗口中发送同步信号块SSB。
  23. 根据权利要求22所述的装置,其特征在于,所述窗口暗示信息包括:
    所述SSB的发送位置指示信息,所述发送位置指示信息包括第一指示域和第二指示域,所述第二指示域为缺失;
    所述第二指示域,用于隐式指示所述DRS窗口的窗口长度为第一长度,所述第一长度是所述至少两种候选的窗口长度中的最大值。
  24. 根据权利要求23所述的装置,其特征在于,所述窗口暗示信息包括:
    所述SSB的发送位置指示信息和准共址信息QCL,所述发送位置指示信息包括第一指示域和第二指示域,所述QCL的取值为1或2;
    所述第二指示域和所述QCL,用于隐式指示所述DRS窗口的窗口长度为第二长度。
  25. 根据权利要求24所述的装置,其特征在于,所述第一长度为5ms,所述第二长度为2.5ms或2ms。
  26. 根据权利要求23所述的装置,其特征在于,所述DRS窗口的窗口长度为三个以上,所述窗口暗示信息包括:
    所述SSB的发送位置指示信息,所述发送位置指示信息包括第一指示域和第二指示域;
    所述第二指示域的取值,用于隐式指示所述DRS窗口的窗口长度为第三长度;
    其中,所述第二指示域的不同取值对应不同的所述第三长度,所述第三长度是所述至少两种候选的窗口长度中除所述第一长度之外的长度。
  27. 根据权利要求26所述的装置,其特征在于,所述第一长度为5ms,所述至少两种候选的窗口长度中除所述第一长度之外的长度均小于5ms且为0.5ms的倍数。
  28. 根据权利要求22至27任一所述的装置,其特征在于,
    所述第一指示域是所述SSB的位置指示信息中的前8个比特,所述第二指示域是所述SSB的位置指示信息中的后8个比特。
  29. 一种终端,其特征在于,所述终端包括:
    处理器;
    与所述处理器相连的收发器;
    用于存储所述处理器的可执行指令的存储器;
    其中,所述处理器被配置为加载并执行所述可执行指令以实现如权利要求1至7任一所述的NR-U中DRS窗口确定方法。
  30. 一种网络侧设备,其特征在于,所述网络侧设备包括:
    处理器;
    与所述处理器相连的收发器;
    用于存储所述处理器的可执行指令的存储器;
    其中,所述处理器被配置为加载并执行所述可执行指令以实现如权利要求8至14任一所述的NR-U中DRS窗口确定方法。
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