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WO2019047192A1 - 一种同步信号块的位置指示方法、网络设备及终端设备 - Google Patents

一种同步信号块的位置指示方法、网络设备及终端设备 Download PDF

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Publication number
WO2019047192A1
WO2019047192A1 PCT/CN2017/101143 CN2017101143W WO2019047192A1 WO 2019047192 A1 WO2019047192 A1 WO 2019047192A1 CN 2017101143 W CN2017101143 W CN 2017101143W WO 2019047192 A1 WO2019047192 A1 WO 2019047192A1
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WIPO (PCT)
Prior art keywords
cell
type
network device
synchronization signal
bitmap
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/CN2017/101143
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English (en)
French (fr)
Inventor
张治�
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Guangdong Oppo Mobile Telecommunications Corp Ltd
Original Assignee
Guangdong Oppo Mobile Telecommunications Corp Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority to CA3075196A priority Critical patent/CA3075196C/en
Priority to EP17924389.4A priority patent/EP3648516A4/en
Priority to RU2020113015A priority patent/RU2750613C1/ru
Priority to CN201780082849.XA priority patent/CN110169150A/zh
Priority to SG11202002073VA priority patent/SG11202002073VA/en
Priority to AU2017430541A priority patent/AU2017430541A1/en
Priority to MX2020002632A priority patent/MX2020002632A/es
Priority to JP2020513598A priority patent/JP7337779B2/ja
Priority to CN201911303144.3A priority patent/CN111010730B/zh
Priority to KR1020207006954A priority patent/KR102358904B1/ko
Priority to PCT/CN2017/101143 priority patent/WO2019047192A1/zh
Priority to BR112020004462-8A priority patent/BR112020004462A2/pt
Application filed by Guangdong Oppo Mobile Telecommunications Corp Ltd filed Critical Guangdong Oppo Mobile Telecommunications Corp Ltd
Priority to TW107131638A priority patent/TWI729311B/zh
Publication of WO2019047192A1 publication Critical patent/WO2019047192A1/zh
Priority to US16/791,685 priority patent/US10966169B2/en
Priority to IL273053A priority patent/IL273053A/en
Priority to PH12020500453A priority patent/PH12020500453A1/en
Anticipated expiration legal-status Critical
Priority to US17/166,719 priority patent/US11553444B2/en
Ceased legal-status Critical Current

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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W56/00Synchronisation arrangements
    • H04W56/001Synchronization between nodes
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received
    • H04L1/12Arrangements for detecting or preventing errors in the information received by using return channel
    • H04L1/16Arrangements 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
    • H04L1/1607Details of the supervisory signal
    • H04L1/1614Details of the supervisory signal using bitmaps
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04JMULTIPLEX COMMUNICATION
    • H04J11/00Orthogonal multiplex systems, e.g. using WALSH codes
    • H04J11/0069Cell search, i.e. determining cell identity [cell-ID]
    • 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
    • H04L5/0053Allocation of signalling, i.e. of overhead other than pilot signals
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W24/00Supervisory, monitoring or testing arrangements
    • H04W24/10Scheduling measurement reports ; Arrangements for measurement reports
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W48/00Access restriction; Network selection; Access point selection
    • H04W48/08Access restriction or access information delivery, e.g. discovery data delivery
    • H04W48/10Access restriction or access information delivery, e.g. discovery data delivery using broadcasted information
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W56/00Synchronisation arrangements
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/12Wireless traffic scheduling
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/20Control channels or signalling for resource management
    • H04W72/23Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W92/00Interfaces specially adapted for wireless communication networks
    • H04W92/04Interfaces between hierarchically different network devices
    • H04W92/10Interfaces between hierarchically different network devices between terminal device and access point, i.e. wireless air interface
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02DCLIMATE CHANGE MITIGATION TECHNOLOGIES IN INFORMATION AND COMMUNICATION TECHNOLOGIES [ICT], I.E. INFORMATION AND COMMUNICATION TECHNOLOGIES AIMING AT THE REDUCTION OF THEIR OWN ENERGY USE
    • Y02D30/00Reducing energy consumption in communication networks
    • Y02D30/70Reducing energy consumption in communication networks in wireless communication networks

Definitions

  • the present invention relates to the field of information processing technologies, and in particular, to a method for indicating a location of a synchronization signal block, a network device, a terminal device, and a computer storage medium.
  • the intermediate synchronization channel of the LTE system is a PSS and an SSS signal
  • the reference signal for the terminal to perform RRM measurement is a CRS or a CSI-RS signal.
  • 3GPP has reached a conclusion that the network device sends an SS burst set containing a plurality of SS blcoks to the terminal, and each SS block includes PSS, SSS, and PBCH. Based on the implementation of the base station, each SS block can correspond to a downlink beam.
  • the terminal searches the SS block within the system bandwidth for time-frequency synchronization, acquires PBCH information, and performs RRM measurement based on the SSS and the DMRS of the PBCH.
  • the 3GPP has also concluded that the SS block location of the actual transmission in an SS burst set can be notified to the terminal through the broadcast signaling RMSI by the serving cell of the terminal.
  • an embodiment of the present invention provides a method for indicating a location of a synchronization signal block, a network device, a terminal device, and a computer storage medium.
  • the method for indicating a position of a synchronization signal block provided by the embodiment of the present invention is applied to a network device, and includes:
  • the embodiment of the invention provides a method for indicating a position of a synchronization signal block, which is applied to a terminal device, and the method includes:
  • the embodiment of the invention provides a network device, including:
  • a processing unit configured to determine a transmission location of the synchronization signal block of the at least one first type of cell; and control to transmit a transmission location of the synchronization signal block of the at least one first type of cell to the terminal device by signaling;
  • the terminal device is located in a second type of cell managed by the network device;
  • a communication unit configured to send signaling to the terminal device.
  • the embodiment of the invention provides a terminal device, including:
  • An information receiving unit configured to receive a transmission location of a synchronization signal block of at least one first type of cell sent by the network device by using signaling;
  • a measuring unit configured to measure the synchronization signal block of the at least one first type of cell based on a transmission position of the synchronization signal block of the at least one first type of cell.
  • Embodiments of the present invention provide a network device, including: a processor and a memory for storing a computer program capable of running on a processor,
  • processor is configured to perform the steps of the foregoing method when the computer program is run.
  • An embodiment of the present invention provides a terminal device, including: a processor and a memory for storing a computer program capable of running on a processor,
  • processor is configured to perform the steps of the foregoing method when the computer program is run.
  • the computer storage medium provided by the embodiment of the present invention stores computer executable instructions, and when the computer executable instructions are executed, the steps of the foregoing method are performed.
  • the transmission location of the synchronization signal block of the first type of cell is sent to the terminal device, so as to ensure that the terminal device can directly correspond to the time corresponding to the transmission position of the synchronization signal block of the notified first type of cell.
  • the cell performs measurements and does not perform measurements at other locations, thereby saving terminal measurement time and power consumption overhead.
  • FIG. 1 is a schematic flowchart 1 of a method for indicating a position of a synchronization signal block according to an embodiment of the present invention
  • FIG. 2 is a schematic diagram 1 of a scenario of an embodiment of the present invention.
  • FIG. 3 is a schematic diagram 2 of a scenario according to an embodiment of the present invention.
  • FIG. 4 is a schematic flowchart 2 of a method for indicating a position of a synchronization signal block according to an embodiment of the present invention
  • FIG. 5 is a schematic structural diagram of a network device according to an embodiment of the present invention.
  • FIG. 6 is a schematic structural diagram of a terminal device according to an embodiment of the present invention.
  • FIG. 7 is a schematic diagram of a hardware architecture according to an embodiment of the present invention.
  • the embodiment provides a method for indicating a position of a synchronization signal block. As shown in FIG. 1 , the method includes:
  • Step 101 Determine a transmission location of a synchronization signal block of at least one first type of cell.
  • Step 102 Send the transmission location of the synchronization signal block of the at least one first type of cell to the terminal device by using signaling; where the terminal device is located in the second management of the network device Within the class of the class.
  • the network device may be a base station, for example, may be an eNB, a gNB, or the like, and may be other network devices as long as the terminal device can provide a function of accessing the mobile communication network.
  • the first type of cell refers to a cell adjacent to the cell where the terminal device is located, and may be a neighboring cell.
  • the terminal device in the cell managed by the network device, the terminal device may be located in one of the multiple cells managed by the network device.
  • the cell in which the terminal device is located may be referred to as a second type of cell, and the second type of cell may also be referred to as a serving cell of the terminal device;
  • the class cell and the first type of cell may be multiple cells managed by the same network device, and may also be cells managed by different network devices.
  • a P cell ie, a primary cell, a primary cell
  • a second type of cell a P cell in a cell in which the terminal device is located
  • other cells than the foregoing P cell (including a S cell including the terminal device)
  • the secondary cells are all divided into the first type of cells.
  • the second type of cell and the first type of cell (that is, the neighboring cell) in the scenario may be multiple cells managed by the same network device, and may be cells managed by different network devices.
  • the manner in which the network device determines the transmission location of the actual synchronization signal block (SS block) of other cells adjacent to the network device may include the following:
  • the transmission position of the synchronization signal block of the at least one first type of cell is acquired through an X2 interface or an S1 interface.
  • This embodiment uses the first type of cell as a neighboring cell as an example for subsequent description
  • the network device can query the base station device of the other cell adjacent to the S1 interface through the X2 interface, and the base station device of the other cell notifies the network device of the actual SS block of the other cell by using the X2 interface and the S1 interface. Transmission location.
  • the above inquiry and notification process can be performed periodically.
  • the period needs to be smaller than the period in which the base station device updates the transmission location of the actual SS block.
  • a second manner acquiring a broadcast message sent by a network device corresponding to at least one cell of the first type
  • the network device obtains a transmission location of an actual SS block of the other cell adjacent to the network device by receiving and reading a broadcast message of another cell adjacent to the network device.
  • the network device since the network device notifies the transmission location of the actual SS block of the local cell by using the broadcast message RMSI, the network device may periodically read the broadcast message of other cells adjacent to the network device to obtain the neighboring cell. The actual SS block transmission location.
  • the sending, by the signaling, the transmission location of the synchronization signal block of the at least one first type of cell to the terminal device includes:
  • the method for sending the bitmap to the terminal device may be: the network device notifies, by using broadcast signaling, the transmission location of the actual SS block of the other cell by the terminal;
  • the network device notifies the terminal of the actual SS block transmission location of the other cell by using RRC dedicated signaling.
  • Generating a bitmap based on the transmission location of the synchronization signal block of the at least one first type of cell, and transmitting the bitmap to the terminal device by signaling including:
  • a bitmap containing the transmission locations of the synchronization signal blocks of all the first type of cells is transmitted to the terminal device by signaling.
  • the network device aggregates the transmission positions of the synchronization signal blocks of all neighboring cells into one bitmap, and notifies the transmission position of the actual SS block of other cells in the form of a bitmap. That is, the bitmap contains the complete set of actual SS block locations of all other cells that need to be notified.
  • a network device and a terminal operate in a frequency band of 3-6 GHz, and an SS burst set can transmit up to eight SS blocks.
  • the number of SS blocks transmitted by different base station devices is as shown in Figure 2:
  • cell 1, 2, 3, and 4 are mutually adjacent cells, and the SS block position actually transmitted by cell 1 is the first position of 8 candidate SS block positions, and cell 2 corresponds to the first and second positions; cell 2 Corresponding to the second and third positions; cell 2 corresponds to the first and third positions;
  • cell 1 For cell 1, cell 2, 3, and 4 are neighbor cells, and cells 2, 3, and 4 use the SS block positions 1, 2, 3, and 4, and cell 1 uses the bitmap to notify the UE served by cell1.
  • the bitmap is: "11110000". Where “1” indicates that the SS block is transmitted at the candidate position, and "0" indicates that the SS block is not transmitted at the candidate position.
  • cells 1, 2, and 4 are neighbor cells, and cells 1, 2, and 4 use the first cell. 2. If the location of the SS block is 3, the cell 3 uses the bitmap to notify the cell of the neighboring cell of the UE served by the cell 3 that the actual SS block is transmitted. The bitmap is: "11100000". Where “1" indicates that the SS block is transmitted at the candidate position, and "0" indicates that the SS block is not transmitted at the candidate position.
  • cell 1 2, and 3 are neighboring cells, and cell 1, 2, and 3 use the SS block positions of the first, second, and fourth, and cell 4 uses the bitmap to notify the UE that the cell 4 serves the neighbor.
  • the bitmap is: "11010000". Where "1" indicates that the SS block is transmitted at the candidate position, and "0" indicates that the SS block is not transmitted at the candidate position.
  • the network device notifies the transmission location of the actual SS block of each cell in the other cells to be measured through a bitmap.
  • the method further includes: sending, to the terminal device, a synchronization relationship between the at least one first type of cell and a cell managed by the network device;
  • the synchronization relationship includes: a synchronization state between the first type of cell and a cell managed by the network device; or a synchronization deviation between the first type of cell and a cell managed by the network device .
  • the network device While the network device notifies the terminal by transmitting the actual SS block transmission location of the other cell, the network device synchronizes the synchronization relationship between the other cell and the local cell corresponding to the network device, that is, the synchronization state or The synchronization deviation informs the terminal.
  • the synchronization state includes the network device notifying that the local cell corresponding to the terminal network device is in a synchronized state with other neighboring cells.
  • the terminal when the terminal performs measurement, if the current cell and the neighboring cell are synchronized, the terminal may determine the actual location of the SS block transmitted by the neighboring cell. The terminal directly obtains the actual location of the SS block of the neighboring cell based on the timing of the current cell.
  • Synchronizing between the at least one first type of cell and the cell managed by the network device Transmitting, the synchronization deviation between the at least one neighboring cell and the cell managed by the network device is sent to the terminal device;
  • the network device notifies the terminal of the synchronization deviation between the other cells and the local cell corresponding to the network device.
  • the terminal may determine the actual location of the SS block transmitted by the neighboring cell based on the notification information and the deviation between the timings between the cells.
  • the terminal directly obtains the actual location of the SS block of the neighboring cell to be measured based on the timing of the current cell and the timing offset of the neighboring cell to be measured.
  • cell 1 and cell 3 are synchronized, and cell 2 is offset backward by 0.5 ms with respect to cells 1 and 3.
  • the first candidate SS block position of cell 2 corresponds to the second candidate SS block position of cell 1.
  • cell4 is offset backward by 1 ms from cell 1,3, then the first candidate SS block position of cell4 corresponds to the third candidate SS block position of cell 1.
  • cell 1 notifies the terminal of the time deviation of cell 2, 3, 4 and cell 1, respectively, and the terminal combines the actual SS blcok transmission position of each cell of cells 2, 3, and 4 in 2.4, that is, it can be determined that each The receiving time of a cell actually transmitting SS blcok.
  • this embodiment may also provide a processing manner in a scenario in which a part of a neighboring cell is synchronized with the local cell and another part of the neighboring cell is not synchronized with the local cell:
  • the cells managed by the device are in a synchronized state; wherein the first part of the first type of cell is different from the second part of the first type of cell, and the first part of the first type of cell and the second part of the first part
  • the cell constitutes all neighboring cells
  • a bitmap of the transmission position of the synchronization signal block is transmitted to the terminal device by signaling.
  • the synchronization relationship between the neighboring cells 1, 2 and the current cell is synchronization, and the neighboring cells 3 and 4 are deviated; then the transmission position of the synchronization signal block of the adjacent cells 1 and 2 is All are set to be transmitted to the terminal device in the bitmap; the synchronization deviation of the adjacent cells 3, 4, and the bitmap of the transmission position of the synchronization signal block of the adjacent cell 3, and the transmission position of the synchronization signal block of the adjacent cell 4
  • the bitmap is sent to the terminal device.
  • the synchronization offset of the neighboring cell synchronized with the local cell is 0.
  • the synchronization deviation of a certain neighboring cell and the bitmap corresponding to a certain neighboring cell are transmitted, and the two pieces of information may be sent simultaneously or sequentially.
  • the synchronization message of the neighboring cell can be sent to the terminal device.
  • the transmission position of the block thereby ensuring that the terminal device can directly measure the neighboring cell at the time corresponding to the transmission position of the synchronization signal block of the notified first type of cell, and does not perform measurement at other locations, thereby saving terminal measurement time and Power consumption overhead.
  • the embodiment provides a method for indicating a position of a synchronization signal block, which is applied to a terminal device, as shown in FIG. 4, and includes:
  • Step 401 Receive a transmission location of a synchronization signal block of at least one first type of cell sent by the network device by using signaling.
  • Step 402 Measure a synchronization signal block of the at least one first type of cell based on a transmission position of the synchronization signal block of the at least one first type of cell.
  • the network device may be a base station, for example, may be an eNB, a gNB, or the like, and may be other network devices as long as the terminal device can provide a function of accessing the mobile communication network.
  • the cell in which the terminal device is located may be referred to as a second type of cell, and the second type of cell may also be referred to as a serving cell of the terminal device;
  • the class cell and the first type of cell may be multiple cells managed by the same network device, and may also be cells managed by different network devices.
  • a P cell ie, a primary cell, a primary cell
  • a second type of cell a P cell in a cell in which the terminal device is located
  • other cells than the foregoing P cell (including a S cell including the terminal device)
  • the secondary cells are all divided into the first type of cells.
  • the second type of cell and the first type of cell (that is, the neighboring cell) in the scenario may be multiple cells managed by the same network device, and may be cells managed by different network devices.
  • the transmission location of the synchronization signal block of the at least one first type of cell sent by the receiving network device by using the signaling includes:
  • the method for sending the bitmap to the terminal device may be: the network device notifies, by using broadcast signaling, the transmission location of the actual SS block of the other cell by the terminal;
  • the network device notifies the terminal of the actual SS block transmission location of the other cell by using RRC dedicated signaling.
  • the method further includes:
  • the synchronization relationship includes: a synchronization state between the first type of cell and a cell managed by the network device; or a synchronization deviation between the first type of cell and a cell managed by the network device .
  • the transmission position of the synchronization signal block of all the first type of cells is obtained from the bitmap.
  • the network device aggregates the transmission positions of the synchronization signal blocks of all neighboring cells into one bitmap, and notifies the transmission position of the actual SS block of other cells in the form of a bitmap. That is, the bitmap contains the complete set of actual SS block locations of all other cells that need to be notified.
  • a network device and a terminal operate in a frequency band of 3-6 GHz, and an SS burst set can transmit up to eight SS blocks.
  • the number of SS blocks transmitted by different base station devices is as shown in Figure 2:
  • cell 1, 2, 3, and 4 are cells adjacent to each other, and the SS block position actually transmitted by cell 1 is the first position of 8 candidate SS block positions, and cell 2 corresponds to the first and second positions; Cell 2 corresponds to the second and third positions; cell 2 corresponds to the first and third positions;
  • cell 1 For cell 1, cell 2, 3, and 4 are neighbor cells, and cells 2, 3, and 4 use the SS block positions 1, 2, 3, and 4, and cell 1 uses the bitmap to notify the UE served by cell1.
  • the bitmap is: "11110000". Where “1” indicates that the SS block is transmitted at the candidate position, and "0" indicates that the SS block is not transmitted at the candidate position.
  • cell 1, 2, and 4 are neighboring cells, and cells 1, 2, and 4 use the SS block positions of the first, second, and third numbers, and cell 3 uses the bitmap to notify the neighbors of the UE served by cell3.
  • the bitmap is: "11100000”. Where “1” indicates that the SS block is transmitted at the candidate position, and "0" indicates that the SS block is not transmitted at the candidate position.
  • cell 1 2, and 3 are neighboring cells, and cell 1, 2, and 3 use the SS block positions of the first, second, and fourth, and cell 4 uses the bitmap to notify the UE that the cell 4 serves the neighbor.
  • the bitmap is: "11010000". Where "1" indicates that the SS block is transmitted at the candidate position, and "0" indicates that the SS block is not transmitted at the candidate position.
  • the network device notifies the transmission location of the actual SS block of each cell in the other cells to be measured through a bitmap.
  • the terminal When the terminal performs measurement, if the current cell and the neighboring cell are synchronized, the terminal may determine the actual location of the SS block transmitted by the neighboring cell. The terminal directly obtains the actual location of the SS block of the neighboring cell based on the timing of the current cell.
  • the network device notifies the terminal of the synchronization deviation between the other cells and the own cell corresponding to the network device.
  • the terminal may determine the actual location of the SS block transmitted by the neighboring cell based on the notification information and the deviation between the timings between the cells.
  • the terminal directly obtains the actual location of the SS block of the neighboring cell to be measured based on the timing of the current cell and the timing offset of the neighboring cell to be measured.
  • cell 1 and cell 3 are synchronized, and cell 2 is offset backward by 0.5 ms with respect to cells 1 and 3.
  • the first candidate SS block position of cell 2 corresponds to the second candidate SS block position of cell 1.
  • cell4 is offset backward by 1 ms from cell 1,3, then the first candidate SS block position of cell4 corresponds to the third candidate SS block position of cell 1.
  • cell 1 notifies the terminal of the time deviation of cell 2, 3, 4 and cell 1, respectively, and the terminal combines the actual SS blcok transmission position of each cell of cells 2, 3, and 4 in 2.4, that is, it can be determined that each The receiving time of a cell actually transmitting SS blcok.
  • this embodiment may also provide a processing manner in a scenario in which a part of a neighboring cell is synchronized with the local cell and another part of the neighboring cell is not synchronized with the local cell:
  • the cells managed by the device are in a synchronized state; wherein the first part of the first type of cell is different from the second part of the first type of cell, and the first part of the first type of cell and the second part of the first part
  • the cells form all the first type of cells
  • the synchronization relationship between the neighboring cells 1, 2 and the current cell is synchronization, and the neighboring cells 3 and 4 are deviated; then the transmission position of the synchronization signal block of the adjacent cells 1 and 2 is All are set to be transmitted to the terminal device in the bitmap; the synchronization deviation of the adjacent cells 3, 4, and the bitmap of the transmission position of the synchronization signal block of the adjacent cell 3, and the transmission position of the synchronization signal block of the adjacent cell 4
  • the bitmap is sent to the terminal device.
  • the terminal device performs measurement of the neighboring cells 1 and 2 based on the bitmap including the transmission position of the synchronization signal block of the neighboring cells 1, 2; and then according to the synchronization deviation of the adjacent cells 3 and 4, and respectively
  • the bitmap performs measurement at the transmission position of the synchronization signal block of the adjacent cells 3, 4, respectively.
  • the synchronization offset of the neighboring cell synchronized with the local cell is 0.
  • the synchronization deviation of a certain neighboring cell and the bitmap corresponding to a certain neighboring cell are transmitted, and the two pieces of information may be sent simultaneously or sequentially.
  • the transmission position of the synchronization signal block of the neighboring cell can be transmitted to the terminal device, thereby ensuring that the terminal device can directly correspond to the time corresponding to the transmission position of the synchronization signal block of the notified first type of cell.
  • the cell performs measurements and does not perform measurements at other locations, thereby saving terminal measurement time and power consumption overhead.
  • This embodiment provides a network device, as shown in FIG. 5, including:
  • the processing unit 51 is configured to determine a transmission location of the synchronization signal block of the at least one first type of cell, and control to transmit the transmission location of the synchronization signal block of the at least one first type of cell to the terminal device by using signaling;
  • the terminal device is located in a second type of cell managed by the network device;
  • the communication unit 52 is configured to send signaling to the terminal device.
  • the network device may be a base station, for example, may be an eNB, a gNB, or the like, and may be other network devices as long as the terminal device can provide a function of accessing the mobile communication network.
  • the first type of cell refers to a cell adjacent to the cell where the terminal device is located, and may be a neighboring cell.
  • the terminal device in the cell managed by the network device, the terminal device may be located in one of the multiple cells managed by the network device.
  • the cell in which the terminal device is located may be referred to as a second type of cell, and the second type of cell may also be referred to as a serving cell of the terminal device;
  • the class cell and the first type of cell may be multiple cells managed by the same network device, and may also be cells managed by different network devices.
  • a P cell ie, a primary cell, a primary cell
  • a second type of cell a P cell in a cell in which the terminal device is located
  • other cells than the foregoing P cell (including a S cell including the terminal device)
  • the secondary cells are all divided into the first type of cells.
  • the second type of cell and the first type of cell (that is, the neighboring cell) in the scenario may be multiple cells managed by the same network device, and may be cells managed by different network devices.
  • the manner in which the network device determines the transmission location of the actual synchronization signal block (SS block) of other cells adjacent to the network device may include the following:
  • the first mode the processing unit 51 is configured to acquire, by using an X2 interface or an S1 interface, a transmission location of the synchronization signal block of the at least one first type of cell. (This embodiment uses the first type of cell as an adjacent small The area is followed by an example)
  • the network device can query the base station device of the other cell adjacent to the S1 interface through the X2 interface, and the base station device of the other cell notifies the network device of the actual SS block of the other cell by using the X2 interface and the S1 interface. Transmission location.
  • the above inquiry and notification process can be performed periodically.
  • the period needs to be smaller than the period in which the base station device updates the transmission location of the actual SS block.
  • the second mode the processing unit 51 is configured to acquire a broadcast message sent by the network device corresponding to the at least one cell of the first type;
  • the network device obtains a transmission location of an actual SS block of the other cell adjacent to the network device by receiving and reading a broadcast message of another cell adjacent to the network device.
  • the network device since the network device notifies the transmission location of the actual SS block of the local cell by using the broadcast message RMSI, the network device may periodically read the broadcast message of other cells adjacent to the network device to obtain the neighboring cell. The actual SS block transmission location.
  • the processing unit 51 is configured to generate a bitmap according to a transmission location of the synchronization signal block of the at least one first type of cell, and send the bitmap to the terminal device by signaling.
  • the method for sending the bitmap to the terminal device may be: the network device notifies, by using broadcast signaling, the transmission location of the actual SS block of the other cell by the terminal;
  • the network device notifies the terminal of the actual SS block transmission location of the other cell by using RRC dedicated signaling.
  • the processing unit 51 is configured to: when the at least one first type of cell and the cell managed by the network device are in a synchronization state, generate, according to a transmission position of the synchronization signal block of all the first type of cells, a bitmap of the transmission location of the synchronization signal block of the first type of cell;
  • a bitmap containing the transmission locations of the synchronization signal blocks of all the first type of cells is transmitted to the terminal device by signaling.
  • the network device aggregates the transmission positions of the synchronization signal blocks of all neighboring cells into one bitmap, and notifies the transmission position of the actual SS block of other cells in the form of a bitmap. That is, the bitmap contains the complete set of actual SS block locations of all other cells that need to be notified.
  • a network device and a terminal operate in a frequency band of 3-6 GHz, and an SS burst set can transmit up to eight SS blocks.
  • the number of SS blocks transmitted by different base station devices is as shown in Figure 2:
  • cell 1, 2, 3, and 4 are mutually adjacent cells, and the SS block position actually transmitted by cell 1 is the first position of 8 candidate SS block positions, and cell 2 corresponds to the first and second positions; cell 2 Corresponding to the second and third positions; cell 2 corresponds to the first and third positions;
  • cell 1 For cell 1, cell 2, 3, and 4 are neighbor cells, and cells 2, 3, and 4 use the SS block positions 1, 2, 3, and 4, and cell 1 uses the bitmap to notify the UE served by cell1.
  • the bitmap is: "11110000". Where “1” indicates that the SS block is transmitted at the candidate position, and "0" indicates that the SS block is not transmitted at the candidate position.
  • cells 1, 2, and 4 are neighbor cells, and cells 1, 2, and 4 use the first cell. 2. If the location of the SS block is 3, the cell 3 uses the bitmap to notify the cell of the neighboring cell of the UE served by the cell 3 that the actual SS block is transmitted. The bitmap is: "11100000". Where “1" indicates that the SS block is transmitted at the candidate position, and "0" indicates that the SS block is not transmitted at the candidate position.
  • cell 1 2, and 3 are neighboring cells, and cell 1, 2, and 3 use the SS block positions of the first, second, and fourth, and cell 4 uses the bitmap to notify the UE that the cell 4 serves the neighbor.
  • the bitmap is: "11010000". Where "1" indicates that the SS block is transmitted at the candidate position, and "0" indicates that the SS block is not transmitted at the candidate position.
  • the network device notifies the transmission location of the actual SS block of each cell in the other cells to be measured through a bitmap.
  • the method further includes: sending, to the terminal device, a synchronization relationship between the at least one first type of cell and a cell managed by the network device;
  • the synchronization relationship includes: a synchronization state between the first type of cell and a cell managed by the network device; or a synchronization deviation between the first type of cell and a cell managed by the network device .
  • the network device While the network device notifies the terminal by transmitting the actual SS block transmission location of the other cell, the network device synchronizes the synchronization relationship between the other cell and the local cell corresponding to the network device, that is, the synchronization state or The synchronization deviation informs the terminal.
  • the synchronization state includes the network device notifying that the local cell corresponding to the terminal network device is in a synchronized state with other neighboring cells.
  • the terminal when the terminal performs measurement, if the current cell and the neighboring cell are synchronized, the terminal may determine the actual location of the SS block transmitted by the neighboring cell. The terminal directly obtains the actual location of the SS block of the neighboring cell based on the timing of the current cell.
  • the processing unit 51 is configured to, when the at least one first type of cell is managed by the network device When there is a synchronization deviation between the cells, the synchronization deviation between the at least one cell of the first type and the cell managed by the network device is sent to the terminal device;
  • the network device notifies the terminal of the synchronization deviation between the other cells and the own cell corresponding to the network device.
  • the terminal may determine the actual location of the SS block transmitted by the neighboring cell based on the notification information and the deviation between the timings between the cells.
  • the terminal directly obtains the actual location of the SS block of the neighboring cell to be measured based on the timing of the current cell and the timing offset of the neighboring cell to be measured.
  • cell 1 and cell 3 are synchronized, and cell 2 is offset backward by 0.5 ms with respect to cells 1 and 3.
  • the first candidate SS block position of cell 2 corresponds to the second candidate SS block position of cell 1.
  • cell4 is offset backward by 1 ms from cell 1,3, then the first candidate SS block position of cell4 corresponds to the third candidate SS block position of cell 1.
  • cell 1 notifies the terminal of the time deviation of cell 2, 3, 4 and cell 1, respectively, and the terminal combines the actual SS blcok transmission position of each cell of cells 2, 3, and 4 in 2.4, that is, it can be determined that each The receiving time of a cell actually transmitting SS blcok.
  • this embodiment may also provide a processing manner in a scenario in which a part of a neighboring cell is synchronized with the local cell and another part of the neighboring cell is not synchronized with the local cell:
  • the cells managed by the device are in a synchronized state; wherein the first part of the first type of cell is different from the second part of the first type of cell, and the first part of the first type of cell and the second part of the first part
  • the cells form all the first type of cells
  • a bitmap of the transmission position of the synchronization signal block is transmitted to the terminal device by signaling.
  • the synchronization relationship between the neighboring cells 1, 2 and the current cell is synchronization, and the neighboring cells 3 and 4 are deviated; then the transmission position of the synchronization signal block of the adjacent cells 1 and 2 is All are set to be transmitted to the terminal device in the bitmap; the synchronization deviation of the adjacent cells 3, 4, and the bitmap of the transmission position of the synchronization signal block of the adjacent cell 3, and the transmission position of the synchronization signal block of the adjacent cell 4
  • the bitmap is sent to the terminal device.
  • the processing unit 51 is configured to send a synchronization deviation between each of the at least one first type of cell and the cell managed by the network device to the terminal device;
  • the synchronization offset of the neighboring cell synchronized with the local cell is 0.
  • the synchronization deviation of a certain neighboring cell and the bitmap corresponding to a certain neighboring cell are transmitted, and the two pieces of information may be sent simultaneously or sequentially.
  • the synchronization message of the neighboring cell can be sent to the terminal device.
  • the transmission position of the block thereby ensuring that the terminal device can directly measure the neighboring cell at the time corresponding to the transmission position of the synchronization signal block of the notified first type of cell, and does not perform measurement at other locations, thereby saving terminal measurement time and Power consumption overhead.
  • This embodiment provides a terminal device, as shown in FIG. 6, including:
  • the information receiving unit 61 is configured to receive a transmission location of the synchronization signal block of the at least one first type of cell that is sent by the network device by using the signaling;
  • the measuring unit 62 is configured to measure the synchronization signal block of the at least one first type of cell based on a transmission position of the synchronization signal block of the at least one first type of cell.
  • the network device may be a base station, for example, may be an eNB, a gNB, or the like, and may be other network devices as long as the terminal device can provide a function of accessing the mobile communication network.
  • the cell in which the terminal device is located may be referred to as a second type of cell, and the second type of cell may also be referred to as a serving cell of the terminal device;
  • the class cell and the first type of cell may be multiple cells managed by the same network device, and may also be cells managed by different network devices.
  • a P cell ie, a primary cell, a primary cell
  • a second type of cell a P cell in a cell in which the terminal device is located
  • other cells than the foregoing P cell including a S cell including the terminal device) (Secondary cell, secondary cell)
  • the second type of cell and the first type of cell (that is, the neighboring cell) in the scenario may be multiple cells managed by the same network device, and may be cells managed by different network devices.
  • the information receiving unit is configured to receive signaling sent by the network device
  • the measuring unit is configured to obtain a bitmap from the signaling, and acquire, by using the bitmap, a transmission position of a synchronization signal block of at least one first type of cell.
  • the method for sending the bitmap to the terminal device may be: the network device notifies, by using broadcast signaling, the transmission location of the actual SS block of the other cell by the terminal;
  • the network device notifies the terminal of the actual SS block transmission location of the other cell by using RRC dedicated signaling.
  • the information receiving unit 61 is configured to receive a synchronization relationship between the at least one first type of cell sent by the network device and a cell managed by the network device;
  • the synchronization relationship includes: a synchronization state between the first type of cell and a cell managed by the network device; or a synchronization deviation between the first type of cell and a cell managed by the network device .
  • the measuring unit 62 is configured to obtain, when the at least one first type of cell and the cell managed by the network device are in a synchronized state, obtain a transmission location of the synchronization signal block of all the first type of cells from the bitmap. .
  • the network device aggregates the transmission positions of the synchronization signal blocks of all neighboring cells into one bitmap, and notifies the transmission position of the actual SS block of other cells in the form of a bitmap. That is, the bitmap contains the complete set of actual SS block locations of all other cells that need to be notified.
  • a network device and a terminal operate in a frequency band of 3-6 GHz, and an SS burst set can transmit up to eight SS blocks.
  • the number of SS blocks transmitted by different base station devices is as shown in Figure 2:
  • cell 1, 2, 3, and 4 are mutually adjacent cells, and the SS block position actually transmitted by cell 1 is the first position of 8 candidate SS block positions, and cell 2 corresponds to the first and second positions; cell 2 Corresponding to the second and third positions; cell 2 corresponds to the first and third positions;
  • cell 1 For cell 1, cell 2, 3, and 4 are neighbor cells, and cells 2, 3, and 4 use the SS block positions 1, 2, 3, and 4, and cell 1 uses the bitmap to notify the UE served by cell1.
  • the bitmap is: "11110000". Where "1” Indicates that the SS block is transmitted at the candidate location, and "0" indicates that the SS block is not transmitted at the candidate location.
  • cell 1, 2, and 4 are neighboring cells, and cells 1, 2, and 4 use the SS block positions of the first, second, and third numbers, and cell 3 uses the bitmap to notify the neighbors of the UE served by cell3.
  • the bitmap is: "11100000”. Where “1” indicates that the SS block is transmitted at the candidate position, and "0" indicates that the SS block is not transmitted at the candidate position.
  • cell 1 2, and 3 are neighboring cells, and cell 1, 2, and 3 use the SS block positions of the first, second, and fourth, and cell 4 uses the bitmap to notify the UE that the cell 4 serves the neighbor.
  • the bitmap is: "11010000". Where "1" indicates that the SS block is transmitted at the candidate position, and "0" indicates that the SS block is not transmitted at the candidate position.
  • the network device notifies the transmission location of the actual SS block of each cell in the other cells to be measured through a bitmap.
  • the terminal When the terminal performs measurement, if the current cell and the neighboring cell are synchronized, the terminal may determine the actual location of the SS block transmitted by the neighboring cell. The terminal directly obtains the actual location of the SS block of the neighboring cell based on the timing of the current cell.
  • the measuring unit 62 is configured to: when there is a synchronization deviation between the at least one first type of cell and the cell managed by the network device,
  • the network device notifies the terminal of the synchronization deviation between the other cells and the own cell corresponding to the network device.
  • the terminal may determine the actual location of the SS block transmitted by the neighboring cell based on the notification information and the deviation between the timings between the cells.
  • the terminal directly obtains the actual location of the SS block of the neighboring cell to be measured based on the timing of the current cell and the timing offset of the neighboring cell to be measured.
  • cell 1 and cell 3 are synchronized, and cell 2 is offset backward by 0.5 ms with respect to cells 1 and 3.
  • the first candidate SS block position of cell 2 corresponds to the second candidate SS block position of cell 1.
  • cell4 is offset backward by 1 ms from cell 1,3, then the first candidate SS block position of cell4 corresponds to the third candidate SS block position of cell 1.
  • cell 1 notifies the terminal of the time deviation of cell 2, 3, 4 and cell 1, respectively, and the terminal combines the actual SS blcok transmission position of each cell of cells 2, 3, and 4 in 2.4, that is, it can be determined that each The receiving time of a cell actually transmitting SS blcok.
  • this embodiment may also provide a processing manner in a scenario in which a part of a neighboring cell is synchronized with the local cell and another part of the neighboring cell is not synchronized with the local cell:
  • the cells managed by the device are in a synchronized state; wherein the first part of the first type of cell is different from the second part of the first type of cell, and the first part of the first type of cell and the second part of the first part
  • the cells form all the first type of cells
  • the synchronization relationship between the neighboring cells 1, 2 and the current cell is synchronization, and the neighboring cells 3 and 4 are deviated; then the transmission position of the synchronization signal block of the adjacent cells 1 and 2 is All are set to be transmitted to the terminal device in the bitmap; the synchronization deviation of the adjacent cells 3, 4, and the bitmap of the transmission position of the synchronization signal block of the adjacent cell 3, and the synchronization signal of the adjacent cell 4 Bitmaps of the transmission locations of the blocks are sent to the terminal device.
  • the terminal device performs measurement of the neighboring cells 1 and 2 based on the bitmap including the transmission position of the synchronization signal block of the neighboring cells 1, 2; and then according to the synchronization deviation of the adjacent cells 3 and 4, and respectively
  • the bitmap performs measurement at the transmission position of the synchronization signal block of the adjacent cells 3, 4, respectively.
  • the measuring unit 62 is configured to acquire a synchronization deviation between each of the at least one first type of cell and the cell managed by the network device;
  • the synchronization offset of the neighboring cell synchronized with the local cell is 0.
  • the synchronization deviation of a certain neighboring cell and the bitmap corresponding to a certain neighboring cell are transmitted, and the two pieces of information may be sent simultaneously or sequentially.
  • the transmission position of the synchronization signal block of the neighboring cell can be transmitted to the terminal device, thereby ensuring that the terminal device can directly correspond to the time corresponding to the transmission position of the synchronization signal block of the notified first type of cell.
  • the cell performs measurements and does not perform measurements at other locations, thereby saving terminal measurement time and power consumption overhead.
  • the embodiment of the present invention further provides a hardware component architecture of the network device.
  • the method includes at least one processor 71, a memory 72, and at least one network interface 73.
  • the various components are coupled together by a bus system 74.
  • bus system 74 is used to implement connection communication between these components.
  • bus system 84 includes a power bus, a control bus, and a status signal bus.
  • various buses are labeled as bus system 74 in FIG.
  • the memory 72 in the embodiments of the present invention may be a volatile memory or a non-volatile memory, or may include both volatile and non-volatile memory.
  • memory 72 stores elements, executable modules or data structures, or a subset thereof, or their extension set:
  • the processor 71 is configured to: determine a transmission location of the synchronization signal block of the at least one first type of cell; and send the transmission location of the synchronization signal block of the at least one first type of cell to the terminal device by using signaling;
  • the terminal device is located in a second type of cell managed by the network device. Further, the processor 71 can perform the method steps of the foregoing Embodiment 1, and details are not described herein.
  • a terminal device in an embodiment of the present invention includes: a processor and a memory for storing a computer program capable of running on the processor,
  • Embodiment 2 The method steps of the foregoing Embodiment 2 are performed when the processor is used to run the computer program, and details are not described herein.
  • the architecture of the terminal device can be the same as that of FIG. 7, and thus the description will not be repeated.
  • a computer storage medium is provided by the embodiment of the present invention.
  • the computer storage medium stores computer executable instructions. When the computer executable instructions are executed, the method steps of the first embodiment or the second embodiment are implemented.
  • Embodiments of the Invention may be stored in a computer readable storage medium if it is implemented in the form of a software function module and sold or used as a standalone product. Based on such understanding, the technical solution of the embodiments of the present invention may be embodied in the form of a software product in essence or in the form of a software product stored in a storage medium, including a plurality of instructions.
  • a computer device (which may be a personal computer, server, or network device, etc.) is caused to perform all or part of the methods described in various embodiments of the present invention.
  • the foregoing storage medium includes various media that can store program codes, such as a USB flash drive, a mobile hard disk, a read only memory (ROM), a magnetic disk, or an optical disk.
  • embodiments of the invention are not limited to any specific combination of hardware and software.
  • an embodiment of the present invention further provides a computer storage medium, wherein a computer program is configured, and the computer program is configured to execute a data scheduling method according to an embodiment of the present invention.

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Abstract

本发明公开了一种同步信号块的位置指示方法、网络设备、终端设备及计算机存储介质,所述方法包括:确定至少一个第一类小区的同步信号块的传输位置;将所述至少一个第一类小区的同步信号块的传输位置,通过信令发送至终端设备;其中,所述终端设备位于所述网络设备管理的第二类小区范围内。

Description

一种同步信号块的位置指示方法、网络设备及终端设备 技术领域
本发明涉及信息处理技术领域,尤其涉及一种同步信号块的位置指示方法、网络设备、终端设备及计算机存储介质。
背景技术
LTE系统的中同步信道为PSS、SSS信号,终端进行RRM测量的参考信号为CRS或CSI-RS信号。5G NR系统设计中,3GPP已经达成结论,网络设备向终端发送包含多个SS blcok的SS burst set,每一个SS block内包含PSS、SSS、PBCH。基于基站的实现,每一个SS block可以对应于一个下行beam。终端在系统带宽内搜索SS block获取时频同步、获取PBCH信息、并基于SSS以及PBCH的DMRS进行RRM测量。
目前3GPP也已经达成结论,一个SS burst set中的实际传输的SS block位置可以通过由终端的服务小区通过广播信令RMSI通过bitmap方式通知给终端。
但是,上述现有技术的处理方式仅针对当前小区获取同步信号,因此并无法更进一步的保证减少终端设备的节省终端测量时间与功耗开销。
发明内容
为解决上述技术问题,本发明实施例提供了一种同步信号块的位置指示方法、网络设备、终端设备及计算机存储介质。
本发明实施例提供的同步信号块的位置指示方法,应用于网络设备,包括:
确定至少一个第一类小区的同步信号块的传输位置;
将所述至少一个第一类小区的同步信号块的传输位置,通过信令发送至终端设备;其中,所述终端设备位于所述网络设备管理的第二类小区范围内。
本发明实施例提供一种同步信号块的位置指示方法,应用于终端设备,所述方法包括:
接收网络设备通过信令发来的至少一个第一类小区的同步信号块的传输位置;
基于所述至少一个第一类小区的同步信号块的传输位置,对所述至少一个第一类小区的同步信号块进行测量。
本发明实施例提供一种网络设备,包括:
处理单元,配置为确定至少一个第一类小区的同步信号块的传输位置;以及控制将所述至少一个第一类小区的同步信号块的传输位置,通过信令发送至终端设备;其中,所述终端设备位于所述网络设备管理的第二类小区范围内;
通信单元,配置为将信令发送至终端设备。
本发明实施例提供一种终端设备,包括:
信息接收单元,配置为接收网络设备通过信令发来的至少一个第一类小区的同步信号块的传输位置;
测量单元,配置为基于所述至少一个第一类小区的同步信号块的传输位置,对所述至少一个第一类小区的同步信号块进行测量。
本发明实施例提供一种网络设备,包括:处理器和用于存储能够在处理器上运行的计算机程序的存储器,
其中,所述处理器用于运行所述计算机程序时,执行前述方法的步骤。
本发明实施例提供一种终端设备,包括:处理器和用于存储能够在处理器上运行的计算机程序的存储器,
其中,所述处理器用于运行所述计算机程序时,执行前述方法的步骤。
本发明实施例提供的计算机存储介质中存储有计算机可执行指令,所述计算机可执行指令被执行时执行前述方法的步骤。
本发明实施例的技术方案,向终端设备发送第一类小区的同步信号块的传输位置,从而保证终端设备可以直接在通知的第一类小区的同步信号块的传输位置对应的时间上对邻小区进行测量,在其他位置上不执行测量,从而节省终端测量时间与功耗开销。
附图说明
图1为本发明实施例的同步信号块的位置指示方法的流程示意图1;
图2为本发明实施例场景示意图1;
图3为本发明实施例场景示意图2;
图4为本发明实施例的同步信号块的位置指示方法的流程示意图2;
图5为本发明实施例的网络设备组成结构示意图;
图6为本发明实施例的终端设备组成结构示意图;
图7为本发明实施例的一种硬件架构示意图。
具体实施方式
为了能够更加详尽地了解本发明实施例的特点与技术内容,下面结合附图对本发明实施例的实现进行详细阐述,所附附图仅供参考说明之用,并非用来限定本发明实施例。
实施例一、
本实施例提供了一种同步信号块的位置指示方法,如图1所示,包括:
步骤101:确定至少一个第一类小区的同步信号块的传输位置;
步骤102:将所述至少一个第一类小区的同步信号块的传输位置,通过信令发送至终端设备;其中,所述终端设备位于所述网络设备管理的第二 类小区范围内。
这里,所述网络设备可以为基站,比如,可以为eNB、gNB等等设备,当然还可以为其他网络设备,只要能够为终端设备提供接入移动通信网络的功能即可。
进一步需要说明的是,第一类小区指的是与终端设备所在小区所相邻的小区,可以为相邻小区。
另外,还可以理解的是,终端设备在网络设备管理的小区内,可以为终端设备位于网络设备所管理的多个小区中的一个小区内。
对于非CA(载波聚合)场景,终端设备所在的小区可以称之为第二类小区,该第二类小区也可称之为所述终端设备的服务小区;本实施例中终端所在的第二类小区、与第一类小区(也就是相邻小区),可以是相同网络设备管理的多个小区,当然,也可以为不同网络设备管理的小区。
对于CA场景,终端设备所在的小区中的P小区(即主小区,Primary小区)可以称之为第二类小区;除前述P小区之外的其他小区(包括有所述终端设备的S小区即辅小区)均划分为第一类小区。本场景中终端所在的第二类小区、与第一类小区(也就是相邻小区),可以是相同网络设备管理的多个小区,当然,也可以为不同网络设备管理的小区。
上述步骤101中,网络设备确定与所述网络设备相邻的其他小区的实际的同步信号块(SS block)的传输位置的方式,可以包括以下几种:
第一方式、通过X2接口或者S1接口,获取至少一个第一类小区的同步信号块的传输位置。(本实施例以第一类小区为相邻小区为例进行后续说明)
具体来说,网络设备可以通过X2接口与S1接口询问与其相邻的其他小区的基站设备,其他小区的基站设备通过X2接口与S1接口向所述网络设备通知所述其他小区的实际的SS block的传输位置。
上述询问以及通知过程可以周期性的进行。所述周期需要小于基站设备更新实际的SS block的传输位置的周期。
需要指出的是,本方式中,更优的适用于第一类小区以及终端设备所在小区分别由不同的网络设备管理的场景下。
第二方式、获取至少一个第一类小区所对应的网络设备发送的广播消息;
从所述广播消息中,获取至少一个第一类小区的同步信号块的传输位置同步信号块的传输位置。
网络设备通过接收并读取与所述网络设备相邻的其他小区的广播消息获得与所述与网络设备相邻的其他小区的实际的SS block的传输位置。
具体来说,由于网络设备会通过广播消息RMSI通知本小区实际的SS block的传输位置,网络设备也可以周期性的读取与所述网络设备相邻的其他小区的广播消息,获得邻小区的实际的SS block的传输位置。
需要指出的是,本方式中,更优的适用于第一类小区以及终端设备所在小区分别由不同的网络设备管理的场景下。
除去上述两种方式外,针对终端设备所处的小区以及第一类小区(也就是相邻小区)均由同一个网络设备管理的场景中,获取相邻小区的同步信号块的传输位置的方法,可以直接从网络设备的小区管理信息中获取,这里不再进行赘述。
上述步骤102中,所述将所述至少一个第一类小区的同步信号块的传输位置,通过信令发送至终端设备,包括:
基于所述至少一个第一类小区的同步信号块的传输位置生成位图,通过信令发送所述位图至终端设备。
其中,发送所述位图至终端设备的方法,可以为:网络设备通过广播信令通知终端所述其他小区的实际的SS block的传输位置;
或者,网络设备通过RRC专用信令通知终端所述其他小区的实际的SS block的传输位置。
所述基于所述至少一个第一类小区的同步信号块的传输位置生成位图,通过信令发送所述位图至终端设备,包括:
当至少一个第一类小区与所述网络设备管理的小区之间为同步状态时,基于全部所述第一类小区的同步信号块的传输位置,生成包含有全部相邻小区的同步信号块的传输位置的位图;
将包含有全部第一类小区的同步信号块的传输位置的位图,通过信令发送至终端设备。
也就是说,网络设备将全部相邻小区的同步信号块的传输位置汇总到一个位图中,通过一个位图(bitmap)的形式通知其他小区的实际的SS block的传输位置。即该bitmap包含了所有其他需要通知的小区实际的SS block位置的全集。
比如,参见图2,例如网络设备与终端工作在3-6GHz的频带,一个SS burst set中最多可以传输8个SS block。基于网络的实际部署需求以及具体实现,不同的基站设备传输的SS block的数目如下图2所示:
例如:cell 1、2、3、4为相互邻近的小区,cell 1实际传输的SS block位置为8个候选SS block位置的第一个位置,cell 2对应第1、2两个位置;cell 2对应第2、3两个位置;cell 2对应第1、3两个位置;
对于cell 1而言,cell 2、3、4为其相邻小区,cell 2、3、4使用了第1、2、3、4号SS block位置,则cell 1使用bitmap通知cell1所服务的UE cell1邻小区的实际SS block的传输位置时,bitmap为:“11110000”。其中“1”表示该候选位置上传输了SS block,“0”表示该候选位置上未传输SS block。
对于cell 3而言,cell 1、2、4为其相邻小区,cell 1、2、4使用了第1、 2、3号SS block位置,则cell 3使用bitmap通知cell3所服务的UE其邻小区的实际SS block的传输位置时,bitmap为:“11100000”。其中“1”表示该候选位置上传输了SS block,“0”表示该候选位置上未传输SS block。
对于cell 4而言,cell 1、2、3为其相邻小区,cell 1、2、3使用了第1、2、4号SS block位置,则cell 4使用bitmap通知cell4所服务的UE其邻小区的实际SS block的传输位置时,bitmap为:“11010000”。其中“1”表示该候选位置上传输了SS block,“0”表示该候选位置上未传输SS block。
网络设备通过一个bitmap的形式通知其他待测量的小区中的每小区的实际的SS block的传输位置。
在前述方案的基础上,还可包括:将所述至少一个第一类小区、与所述网络设备所管理小区之间的同步关系发送至所述终端设备;
其中,所述同步关系包括有:所述第一类小区与所述网络设备管理的小区之间为同步状态;或者,所述第一类小区与所述网络设备管理的小区之间存在同步偏差。
也就是说,在网络设备将所述其他小区的实际的SS block的传输位置通过信令通知终端的同时,网络设备将其他小区与网络设备对应的本小区之间的同步关系,即同步状态或者同步偏差通知终端。
所述同步状态包括,网络设备通知终端网络设备对应的本小区与其他邻小区是同步状态。
相应的,终端实施测量时,如果本小区与邻小区之间是同步的,则终端可以确定出邻小区传输的SS block的实际位置。终端直接基于本小区的定时得到邻小区的SS block的实际位置。
与前述同步情况不同的就是当本小区与相邻小区均存在同步偏差的时候,可以采用以下方式进行处理:
当所述至少一个第一类小区与所述网络设备管理的小区之间存在同步 偏差时,发送所述至少一个相邻小区与所述网络设备管理的小区之间的同步偏差至终端设备;
基于所述至少一个第一类小区的同步信号块的传输位置,生成每一个相邻小区所对应的位图;
将所述每一个第一类小区所对应的位图,通过信令发送至终端设备。
网络设备将其他小区与网络设备对应的本小区之间的同步偏差通知终端。相应的,终端实施测量时,如果本小区与邻小区之间是不同步的,则终端可以基于通知信息以及小区之间的定时之间的偏差,确定出邻小区传输的SS block的实际位置。终端直接基于本小区的定时加上待测量邻小区的定时偏差得到所述待测量邻小区的SS block的实际位置。
比如,如图3所示,cell 1与cell3是同步的,cell2相对cell 1、3向后偏移了0.5ms,则cell2第一个候选SS block位置对应cell 1的第二个候选SS block位置;cell4相对cell 1、3向后偏移了1 ms,则cell4第一个候选SS block位置对应cell 1的第3个候选SS block位置.
例如:cell 1将cell 2、3、4与cell 1的时间偏差分别通知给终端,终端结合2.4中的cell 2、3、4中每一个小区的实际的SS blcok传输位置,即可以判定出每一个小区实际传输SS blcok的接收时间。
另外,本实施例还可以提供针对部分相邻小区与本小区同步、另一部分相邻小区与本小区不同步的场景下的处理方式:
若所述至少一个第一类小区中存在第一部分第一类小区与所述网络设备管理的小区之间存在同步偏差、且所述第一类小区中第二部分第一类小区与所述网络设备管理的小区之间为同步状态;其中,所述第一部分第一类小区与所述第二部分第一类小区不同、且所述第一部分第一类小区与所述第二部分第一类小区组成全部相邻小区;
则发送所述第一部分第一类小区与所述网络设备管理的小区之间的同 步偏差至终端设备;基于所述第一部分第一类小区的同步信号块的传输位置,生成所述第一部分第一类小区中每一个第一类小区所对应的位图;将所述第一部分第一类小区中每一个第一类小区所对应的位图通过信令发送至终端设备;
并且,基于第二部分第一类小区的同步信号块的传输位置,生成包含有第二部分第一类小区的同步信号块的传输位置的位图;将包含有第二部分第一类小区的同步信号块的传输位置的位图,通过信令发送至终端设备。
比如,当4个相邻小区中,相邻小区1、2跟本小区的同步关系为同步,相邻小区3、4为存在偏差;那么将相邻小区1、2的同步信号块的传输位置全部设置到位图中发送给终端设备;将相邻小区3、4的同步偏差、以及相邻小区3的同步信号块的传输位置的位图、以及相邻小区4的同步信号块的传输位置的位图均发送给终端设备。
本实施例还存在一种处理方式,就是无论相邻小区与本小区之间是否存在同步偏差,均向终端设备发送相邻小区的同步偏差、以及相邻小区的同步信号块的传输位置的位图。
即:发送所述至少一个第一类小区中每一个第一类小区与所述网络设备管理的小区之间的同步偏差至终端设备;
基于所述第一类小区的同步信号块的传输位置,生成所述每一个第一类小区所对应的位图;
将所述每一个第一类小区所对应的位图通过信令发送至终端设备
这种场景下,与本小区同步的相邻小区的同步偏差=0。
最后,需要说明的是,本实施例中传输某一个相邻小区的同步偏差、以及传输某一个相邻小区对应的位图这里两个信息,可以同时发送,也可以先后发送,这里不进行限定。
可见,通过采用上述方案,就能够向终端设备发送相邻小区的同步信 号块的传输位置,从而保证终端设备可以直接在通知的第一类小区的同步信号块的传输位置对应的时间上对邻小区进行测量,在其他位置上不执行测量,从而节省终端测量时间与功耗开销。
实施例二、
本实施例提供了一种同步信号块的位置指示方法,应用于终端设备,如图4所示,包括:
步骤401:接收网络设备通过信令发来的至少一个第一类小区的同步信号块的传输位置;
步骤402:基于所述至少一个第一类小区的同步信号块的传输位置,对所述至少一个第一类小区的同步信号块进行测量。
这里,所述网络设备可以为基站,比如,可以为eNB、gNB等等设备,当然还可以为其他网络设备,只要能够为终端设备提供接入移动通信网络的功能即可。
对于非CA(载波聚合)场景,终端设备所在的小区可以称之为第二类小区,该第二类小区也可称之为所述终端设备的服务小区;本实施例中终端所在的第二类小区、与第一类小区(也就是相邻小区),可以是相同网络设备管理的多个小区,当然,也可以为不同网络设备管理的小区。
对于CA场景,终端设备所在的小区中的P小区(即主小区,Primary小区)可以称之为第二类小区;除前述P小区之外的其他小区(包括有所述终端设备的S小区即辅小区)均划分为第一类小区。本场景中终端所在的第二类小区、与第一类小区(也就是相邻小区),可以是相同网络设备管理的多个小区,当然,也可以为不同网络设备管理的小区。
所述接收网络设备通过信令发来的至少一个第一类小区的同步信号块的传输位置,包括:
接收网络设备发来的信令;
从所述信令中获取位图,通过所述位图获取至少一个第一类小区的同步信号块的传输位置。
其中,发送所述位图至终端设备的方法,可以为:网络设备通过广播信令通知终端所述其他小区的实际的SS block的传输位置;
或者,网络设备通过RRC专用信令通知终端所述其他小区的实际的SS block的传输位置。
所述所述方法还包括:
接收所述网络设备发来的所述至少一个第一类小区、与所述网络设备所管理小区之间的同步关系;
其中,所述同步关系包括有:所述第一类小区与所述网络设备管理的小区之间为同步状态;或者,所述第一类小区与所述网络设备管理的小区之间存在同步偏差。
所述从所述信令中获取位图,通过所述位图获取至少一个第一类小区的同步信号块的传输位置,包括:
当至少一个第一类小区与所述网络设备管理的小区之间为同步状态时,从所述位图中获取到全部第一类小区的同步信号块的传输位置。
也就是说,网络设备将全部相邻小区的同步信号块的传输位置汇总到一个位图中,通过一个位图(bitmap)的形式通知其他小区的实际的SS block的传输位置。即该bitmap包含了所有其他需要通知的小区实际的SS block位置的全集。
比如,参见图2,例如网络设备与终端工作在3-6GHz的频带,一个SS burst set中最多可以传输8个SS block。基于网络的实际部署需求以及具体实现,不同的基站设备传输的SS block的数目如下图2所示:
例如:cell 1、2、3、4为相互邻近的小区,cell 1实际传输的SS block位置为8个候选SS block位置的第一个位置,cell 2对应第1、2两个位置; cell 2对应第2、3两个位置;cell 2对应第1、3两个位置;
对于cell 1而言,cell 2、3、4为其相邻小区,cell 2、3、4使用了第1、2、3、4号SS block位置,则cell 1使用bitmap通知cell1所服务的UE cell1邻小区的实际SS block的传输位置时,bitmap为:“11110000”。其中“1”表示该候选位置上传输了SS block,“0”表示该候选位置上未传输SS block。
对于cell 3而言,cell 1、2、4为其相邻小区,cell 1、2、4使用了第1、2、3号SS block位置,则cell 3使用bitmap通知cell3所服务的UE其邻小区的实际SS block的传输位置时,bitmap为:“11100000”。其中“1”表示该候选位置上传输了SS block,“0”表示该候选位置上未传输SS block。
对于cell 4而言,cell 1、2、3为其相邻小区,cell 1、2、3使用了第1、2、4号SS block位置,则cell 4使用bitmap通知cell4所服务的UE其邻小区的实际SS block的传输位置时,bitmap为:“11010000”。其中“1”表示该候选位置上传输了SS block,“0”表示该候选位置上未传输SS block。
网络设备通过一个bitmap的形式通知其他待测量的小区中的每小区的实际的SS block的传输位置。
终端实施测量时,如果本小区与邻小区之间是同步的,则终端可以确定出邻小区传输的SS block的实际位置。终端直接基于本小区的定时得到邻小区的SS block的实际位置。
与前述同步情况不同的就是当本小区与相邻小区均存在同步偏差的时候,可以采用以下方式进行处理:
当所述至少一个第一类小区与所述网络设备管理的小区之间存在同步偏差时,
获取所述至少一个第一类小区与所述网络设备管理的小区之间的同步偏差;
获取每一个第一类小区所对应的位图,基于所述位图获取到每一个第一类小区的同步信号块的传输位置。
首先,网络设备将其他小区与网络设备对应的本小区之间的同步偏差通知终端。相应的,终端实施测量时,如果本小区与邻小区之间是不同步的,则终端可以基于通知信息以及小区之间的定时之间的偏差,确定出邻小区传输的SS block的实际位置。终端直接基于本小区的定时加上待测量邻小区的定时偏差得到所述待测量邻小区的SS block的实际位置。
比如,如图3所示,cell 1与cell3是同步的,cell2相对cell 1、3向后偏移了0.5ms,则cell2第一个候选SS block位置对应cell 1的第二个候选SS block位置;cell4相对cell 1、3向后偏移了1 ms,则cell4第一个候选SS block位置对应cell 1的第3个候选SS block位置.
例如:cell 1将cell 2、3、4与cell 1的时间偏差分别通知给终端,终端结合2.4中的cell 2、3、4中每一个小区的实际的SS blcok传输位置,即可以判定出每一个小区实际传输SS blcok的接收时间。
另外,本实施例还可以提供针对部分相邻小区与本小区同步、另一部分相邻小区与本小区不同步的场景下的处理方式:
若所述至少一个第一类小区中存在第一部分第一类小区与所述网络设备管理的小区之间存在同步偏差、且所述第一类小区中第二部分第一类小区与所述网络设备管理的小区之间为同步状态;其中,所述第一部分第一类小区与所述第二部分第一类小区不同、且所述第一部分第一类小区与所述第二部分第一类小区组成全部第一类小区;
则基于第一部分第一类小区中每一个第一类小区的位图获取到第一部分第一类小区的同步信号快的传输位置;
并且,基于第二部分第一类小区的位图获取到第二部分第一类小区的同步信号块的传输位置。
比如,当4个相邻小区中,相邻小区1、2跟本小区的同步关系为同步,相邻小区3、4为存在偏差;那么将相邻小区1、2的同步信号块的传输位置全部设置到位图中发送给终端设备;将相邻小区3、4的同步偏差、以及相邻小区3的同步信号块的传输位置的位图、以及相邻小区4的同步信号块的传输位置的位图均发送给终端设备。相应的,终端设备基于包含有相邻小区1、2的同步信号块的传输位置的位图,进行相邻小区1、2的测量;再根据相邻小区3、4的同步偏差、以及分别的位图,分别进行相邻小区3、4的同步信号块的传输位置处的测量。
本实施例还存在一种处理方式,就是无论相邻小区与本小区之间是否存在同步偏差,均向终端设备发送相邻小区的同步偏差、以及相邻小区的同步信号块的传输位置的位图。
即:获取所述至少一个第一类小区中每一个第一类小区与所述网络设备管理的小区之间的同步偏差;
获取每一个第一类小区对应的位图,从所述位图中获取每一个第一类小区的同步信号块的传输位置。
这种场景下,与本小区同步的相邻小区的同步偏差=0。
最后,需要说明的是,本实施例中传输某一个相邻小区的同步偏差、以及传输某一个相邻小区对应的位图这里两个信息,可以同时发送,也可以先后发送,这里不进行限定。
可见,通过采用上述方案,就能够向终端设备发送相邻小区的同步信号块的传输位置,从而保证终端设备可以直接在通知的第一类小区的同步信号块的传输位置对应的时间上对邻小区进行测量,在其他位置上不执行测量,从而节省终端测量时间与功耗开销。
实施例三、
本实施例提供了一种网络设备,如图5所示,包括:
处理单元51,用于确定至少一个第一类小区的同步信号块的传输位置;以及控制将所述至少一个第一类小区的同步信号块的传输位置,通过信令发送至终端设备;其中,所述终端设备位于所述网络设备管理的第二类小区范围内;
通信单元52,用于将信令发送至终端设备。
这里,所述网络设备可以为基站,比如,可以为eNB、gNB等等设备,当然还可以为其他网络设备,只要能够为终端设备提供接入移动通信网络的功能即可。
进一步需要说明的是,第一类小区指的是与终端设备所在小区所相邻的小区,可以为相邻小区。
另外,还可以理解的是,终端设备在网络设备管理的小区内,可以为终端设备位于网络设备所管理的多个小区中的一个小区内。
对于非CA(载波聚合)场景,终端设备所在的小区可以称之为第二类小区,该第二类小区也可称之为所述终端设备的服务小区;本实施例中终端所在的第二类小区、与第一类小区(也就是相邻小区),可以是相同网络设备管理的多个小区,当然,也可以为不同网络设备管理的小区。
对于CA场景,终端设备所在的小区中的P小区(即主小区,Primary小区)可以称之为第二类小区;除前述P小区之外的其他小区(包括有所述终端设备的S小区即辅小区)均划分为第一类小区。本场景中终端所在的第二类小区、与第一类小区(也就是相邻小区),可以是相同网络设备管理的多个小区,当然,也可以为不同网络设备管理的小区。
网络设备确定与所述网络设备相邻的其他小区的实际的同步信号块(SS block)的传输位置的方式,可以包括以下几种:
第一方式、处理单元51,用于通过X2接口或者S1接口,获取至少一个第一类小区的同步信号块的传输位置。(本实施例以第一类小区为相邻小 区为例进行后续说明)
具体来说,网络设备可以通过X2接口与S1接口询问与其相邻的其他小区的基站设备,其他小区的基站设备通过X2接口与S1接口向所述网络设备通知所述其他小区的实际的SS block的传输位置。
上述询问以及通知过程可以周期性的进行。所述周期需要小于基站设备更新实际的SS block的传输位置的周期。
需要指出的是,本方式中,更优的适用于第一类小区以及终端设备所在小区分别由不同的网络设备管理的场景下。
第二方式、处理单元51,用于获取至少一个第一类小区所对应的网络设备发送的广播消息;
从所述广播消息中,获取至少一个第一类小区的同步信号块的传输位置同步信号块的传输位置。
网络设备通过接收并读取与所述网络设备相邻的其他小区的广播消息获得与所述与网络设备相邻的其他小区的实际的SS block的传输位置。
具体来说,由于网络设备会通过广播消息RMSI通知本小区实际的SS block的传输位置,网络设备也可以周期性的读取与所述网络设备相邻的其他小区的广播消息,获得邻小区的实际的SS block的传输位置。
需要指出的是,本方式中,更优的适用于第一类小区以及终端设备所在小区分别由不同的网络设备管理的场景下。
除去上述两种方式外,针对终端设备所处的小区以及第一类小区(也就是相邻小区)均由同一个网络设备管理的场景中,获取相邻小区的同步信号块的传输位置的方法,可以直接从网络设备的小区管理信息中获取,这里不再进行赘述。
所述处理单元51,用于基于所述至少一个第一类小区的同步信号块的传输位置生成位图,通过信令发送所述位图至终端设备。
其中,发送所述位图至终端设备的方法,可以为:网络设备通过广播信令通知终端所述其他小区的实际的SS block的传输位置;
或者,网络设备通过RRC专用信令通知终端所述其他小区的实际的SS block的传输位置。
所述处理单元51,用于当至少一个第一类小区与所述网络设备管理的小区之间为同步状态时,基于全部所述第一类小区的同步信号块的传输位置,生成包含有全部第一类小区的同步信号块的传输位置的位图;
将包含有全部第一类小区的同步信号块的传输位置的位图,通过信令发送至终端设备。
也就是说,网络设备将全部相邻小区的同步信号块的传输位置汇总到一个位图中,通过一个位图(bitmap)的形式通知其他小区的实际的SS block的传输位置。即该bitmap包含了所有其他需要通知的小区实际的SS block位置的全集。
比如,参见图2,例如网络设备与终端工作在3-6GHz的频带,一个SS burst set中最多可以传输8个SS block。基于网络的实际部署需求以及具体实现,不同的基站设备传输的SS block的数目如下图2所示:
例如:cell 1、2、3、4为相互邻近的小区,cell 1实际传输的SS block位置为8个候选SS block位置的第一个位置,cell 2对应第1、2两个位置;cell 2对应第2、3两个位置;cell 2对应第1、3两个位置;
对于cell 1而言,cell 2、3、4为其相邻小区,cell 2、3、4使用了第1、2、3、4号SS block位置,则cell 1使用bitmap通知cell1所服务的UE cell1邻小区的实际SS block的传输位置时,bitmap为:“11110000”。其中“1”表示该候选位置上传输了SS block,“0”表示该候选位置上未传输SS block。
对于cell 3而言,cell 1、2、4为其相邻小区,cell 1、2、4使用了第1、 2、3号SS block位置,则cell 3使用bitmap通知cell3所服务的UE其邻小区的实际SS block的传输位置时,bitmap为:“11100000”。其中“1”表示该候选位置上传输了SS block,“0”表示该候选位置上未传输SS block。
对于cell 4而言,cell 1、2、3为其相邻小区,cell 1、2、3使用了第1、2、4号SS block位置,则cell 4使用bitmap通知cell4所服务的UE其邻小区的实际SS block的传输位置时,bitmap为:“11010000”。其中“1”表示该候选位置上传输了SS block,“0”表示该候选位置上未传输SS block。
网络设备通过一个bitmap的形式通知其他待测量的小区中的每小区的实际的SS block的传输位置。
在前述方案的基础上,还可包括:将所述至少一个第一类小区、与所述网络设备所管理小区之间的同步关系发送至所述终端设备;
其中,所述同步关系包括有:所述第一类小区与所述网络设备管理的小区之间为同步状态;或者,所述第一类小区与所述网络设备管理的小区之间存在同步偏差。
也就是说,在网络设备将所述其他小区的实际的SS block的传输位置通过信令通知终端的同时,网络设备将其他小区与网络设备对应的本小区之间的同步关系,即同步状态或者同步偏差通知终端。
所述同步状态包括,网络设备通知终端网络设备对应的本小区与其他邻小区是同步状态。
相应的,终端实施测量时,如果本小区与邻小区之间是同步的,则终端可以确定出邻小区传输的SS block的实际位置。终端直接基于本小区的定时得到邻小区的SS block的实际位置。
与前述同步情况不同的就是当本小区与相邻小区均存在同步偏差的时候,可以采用以下方式进行处理:
处理单元51,用于当所述至少一个第一类小区与所述网络设备管理的 小区之间存在同步偏差时,发送所述至少一个第一类小区与所述网络设备管理的小区之间的同步偏差至终端设备;
基于所述至少一个第一类小区的同步信号块的传输位置,生成每一个第一类小区所对应的位图;
将所述每一个第一类小区所对应的位图,通过信令发送至终端设备。
首先,网络设备将其他小区与网络设备对应的本小区之间的同步偏差通知终端。相应的,终端实施测量时,如果本小区与邻小区之间是不同步的,则终端可以基于通知信息以及小区之间的定时之间的偏差,确定出邻小区传输的SS block的实际位置。终端直接基于本小区的定时加上待测量邻小区的定时偏差得到所述待测量邻小区的SS block的实际位置。
比如,如图3所示,cell 1与cell3是同步的,cell2相对cell 1、3向后偏移了0.5ms,则cell2第一个候选SS block位置对应cell 1的第二个候选SS block位置;cell4相对cell 1、3向后偏移了1 ms,则cell4第一个候选SS block位置对应cell 1的第3个候选SS block位置.
例如:cell 1将cell 2、3、4与cell 1的时间偏差分别通知给终端,终端结合2.4中的cell 2、3、4中每一个小区的实际的SS blcok传输位置,即可以判定出每一个小区实际传输SS blcok的接收时间。
另外,本实施例还可以提供针对部分相邻小区与本小区同步、另一部分相邻小区与本小区不同步的场景下的处理方式:
若所述至少一个第一类小区中存在第一部分第一类小区与所述网络设备管理的小区之间存在同步偏差、且所述第一类小区中第二部分第一类小区与所述网络设备管理的小区之间为同步状态;其中,所述第一部分第一类小区与所述第二部分第一类小区不同、且所述第一部分第一类小区与所述第二部分第一类小区组成全部第一类小区;
则发送所述第一部分第一类小区与所述网络设备管理的小区之间的同 步偏差至终端设备;基于所述第一部分第一类小区的同步信号块的传输位置,生成所述第一部分第一类小区中每一个第一类小区所对应的位图;将所述第一部分第一类小区中每一个第一类小区所对应的位图通过信令发送至终端设备;
并且,基于第二部分第一类小区的同步信号块的传输位置,生成包含有第二部分第一类小区的同步信号块的传输位置的位图;将包含有第二部分第一类小区的同步信号块的传输位置的位图,通过信令发送至终端设备。
比如,当4个相邻小区中,相邻小区1、2跟本小区的同步关系为同步,相邻小区3、4为存在偏差;那么将相邻小区1、2的同步信号块的传输位置全部设置到位图中发送给终端设备;将相邻小区3、4的同步偏差、以及相邻小区3的同步信号块的传输位置的位图、以及相邻小区4的同步信号块的传输位置的位图均发送给终端设备。
本实施例还存在一种处理方式,就是无论相邻小区与本小区之间是否存在同步偏差,均向终端设备发送相邻小区的同步偏差、以及相邻小区的同步信号块的传输位置的位图。
即:处理单元51,用于发送所述至少一个第一类小区中每一个第一类小区与所述网络设备管理的小区之间的同步偏差至终端设备;
基于所述第一类小区的同步信号块的传输位置,生成所述每一个第一类小区所对应的位图;
将所述每一个第一类小区所对应的位图通过信令发送至终端设备
这种场景下,与本小区同步的相邻小区的同步偏差=0。
最后,需要说明的是,本实施例中传输某一个相邻小区的同步偏差、以及传输某一个相邻小区对应的位图这里两个信息,可以同时发送,也可以先后发送,这里不进行限定。
可见,通过采用上述方案,就能够向终端设备发送相邻小区的同步信 号块的传输位置,从而保证终端设备可以直接在通知的第一类小区的同步信号块的传输位置对应的时间上对邻小区进行测量,在其他位置上不执行测量,从而节省终端测量时间与功耗开销。
实施例四、
本实施例提供了一种终端设备,如图6所示,包括:
信息接收单元61,用于接收网络设备通过信令发来的至少一个第一类小区的同步信号块的传输位置;
测量单元62,用于基于所述至少一个第一类小区的同步信号块的传输位置,对所述至少一个第一类小区的同步信号块进行测量。
这里,所述网络设备可以为基站,比如,可以为eNB、gNB等等设备,当然还可以为其他网络设备,只要能够为终端设备提供接入移动通信网络的功能即可。
对于非CA(载波聚合)场景,终端设备所在的小区可以称之为第二类小区,该第二类小区也可称之为所述终端设备的服务小区;本实施例中终端所在的第二类小区、与第一类小区(也就是相邻小区),可以是相同网络设备管理的多个小区,当然,也可以为不同网络设备管理的小区。
对于CA场景,终端设备所在的小区中的P小区(即主小区,Primary小区)可以称之为第二类小区;除前述P小区之外的其他小区(包括有所述终端设备的S小区即(Secondary小区,辅小区))均划分为第一类小区。本场景中终端所在的第二类小区、与第一类小区(也就是相邻小区),可以是相同网络设备管理的多个小区,当然,也可以为不同网络设备管理的小区。
所述信息接收单元,用于接收网络设备发来的信令;
相应的,所述测量单元,用于从所述信令中获取位图,通过所述位图获取至少一个第一类小区的同步信号块的传输位置。
其中,发送所述位图至终端设备的方法,可以为:网络设备通过广播信令通知终端所述其他小区的实际的SS block的传输位置;
或者,网络设备通过RRC专用信令通知终端所述其他小区的实际的SS block的传输位置。
所述信息接收单元61,用于接收所述网络设备发来的所述至少一个第一类小区、与所述网络设备所管理小区之间的同步关系;
其中,所述同步关系包括有:所述第一类小区与所述网络设备管理的小区之间为同步状态;或者,所述第一类小区与所述网络设备管理的小区之间存在同步偏差。
所述测量单元62,用于当至少一个第一类小区与所述网络设备管理的小区之间为同步状态时,从所述位图中获取到全部第一类小区的同步信号块的传输位置。
也就是说,网络设备将全部相邻小区的同步信号块的传输位置汇总到一个位图中,通过一个位图(bitmap)的形式通知其他小区的实际的SS block的传输位置。即该bitmap包含了所有其他需要通知的小区实际的SS block位置的全集。
比如,参见图2,例如网络设备与终端工作在3-6GHz的频带,一个SS burst set中最多可以传输8个SS block。基于网络的实际部署需求以及具体实现,不同的基站设备传输的SS block的数目如下图2所示:
例如:cell 1、2、3、4为相互邻近的小区,cell 1实际传输的SS block位置为8个候选SS block位置的第一个位置,cell 2对应第1、2两个位置;cell 2对应第2、3两个位置;cell 2对应第1、3两个位置;
对于cell 1而言,cell 2、3、4为其相邻小区,cell 2、3、4使用了第1、2、3、4号SS block位置,则cell 1使用bitmap通知cell1所服务的UE cell1邻小区的实际SS block的传输位置时,bitmap为:“11110000”。其中“1” 表示该候选位置上传输了SS block,“0”表示该候选位置上未传输SS block。
对于cell 3而言,cell 1、2、4为其相邻小区,cell 1、2、4使用了第1、2、3号SS block位置,则cell 3使用bitmap通知cell3所服务的UE其邻小区的实际SS block的传输位置时,bitmap为:“11100000”。其中“1”表示该候选位置上传输了SS block,“0”表示该候选位置上未传输SS block。
对于cell 4而言,cell 1、2、3为其相邻小区,cell 1、2、3使用了第1、2、4号SS block位置,则cell 4使用bitmap通知cell4所服务的UE其邻小区的实际SS block的传输位置时,bitmap为:“11010000”。其中“1”表示该候选位置上传输了SS block,“0”表示该候选位置上未传输SS block。
网络设备通过一个bitmap的形式通知其他待测量的小区中的每小区的实际的SS block的传输位置。
终端实施测量时,如果本小区与邻小区之间是同步的,则终端可以确定出邻小区传输的SS block的实际位置。终端直接基于本小区的定时得到邻小区的SS block的实际位置。
与前述同步情况不同的就是当本小区与相邻小区均存在同步偏差的时候,可以采用以下方式进行处理:
测量单元62,用于当所述至少一个第一类小区与所述网络设备管理的小区之间存在同步偏差时,
获取所述至少一个第一类小区与所述网络设备管理的小区之间的同步偏差;
获取每一个第一类小区所对应的位图,基于所述位图获取到每一个第一类小区的同步信号块的传输位置。
首先,网络设备将其他小区与网络设备对应的本小区之间的同步偏差通知终端。相应的,终端实施测量时,如果本小区与邻小区之间是不同步 的,则终端可以基于通知信息以及小区之间的定时之间的偏差,确定出邻小区传输的SS block的实际位置。终端直接基于本小区的定时加上待测量邻小区的定时偏差得到所述待测量邻小区的SS block的实际位置。
比如,如图3所示,cell 1与cell3是同步的,cell2相对cell 1、3向后偏移了0.5ms,则cell2第一个候选SS block位置对应cell 1的第二个候选SS block位置;cell4相对cell 1、3向后偏移了1 ms,则cell4第一个候选SS block位置对应cell 1的第3个候选SS block位置.
例如:cell 1将cell 2、3、4与cell 1的时间偏差分别通知给终端,终端结合2.4中的cell 2、3、4中每一个小区的实际的SS blcok传输位置,即可以判定出每一个小区实际传输SS blcok的接收时间。
另外,本实施例还可以提供针对部分相邻小区与本小区同步、另一部分相邻小区与本小区不同步的场景下的处理方式:
若所述至少一个第一类小区中存在第一部分第一类小区与所述网络设备管理的小区之间存在同步偏差、且所述第一类小区中第二部分第一类小区与所述网络设备管理的小区之间为同步状态;其中,所述第一部分第一类小区与所述第二部分第一类小区不同、且所述第一部分第一类小区与所述第二部分第一类小区组成全部第一类小区;
则基于第一部分第一类小区中每一个第一类小区的位图获取到第一部分第一类小区的同步信号快的传输位置;
并且,基于第二部分第一类小区的位图获取到第二部分第一类小区的同步信号块的传输位置。
比如,当4个相邻小区中,相邻小区1、2跟本小区的同步关系为同步,相邻小区3、4为存在偏差;那么将相邻小区1、2的同步信号块的传输位置全部设置到位图中发送给终端设备;将相邻小区3、4的同步偏差、以及相邻小区3的同步信号块的传输位置的位图、以及相邻小区4的同步信号 块的传输位置的位图均发送给终端设备。相应的,终端设备基于包含有相邻小区1、2的同步信号块的传输位置的位图,进行相邻小区1、2的测量;再根据相邻小区3、4的同步偏差、以及分别的位图,分别进行相邻小区3、4的同步信号块的传输位置处的测量。
本实施例还存在一种处理方式,就是无论相邻小区与本小区之间是否存在同步偏差,均向终端设备发送相邻小区的同步偏差、以及相邻小区的同步信号块的传输位置的位图。
即:测量单元62,用于获取所述至少一个第一类小区中每一个第一类小区与所述网络设备管理的小区之间的同步偏差;
获取每一个第一类小区对应的位图,从所述位图中获取每一个第一类小区的同步信号块的传输位置。
这种场景下,与本小区同步的相邻小区的同步偏差=0。
最后,需要说明的是,本实施例中传输某一个相邻小区的同步偏差、以及传输某一个相邻小区对应的位图这里两个信息,可以同时发送,也可以先后发送,这里不进行限定。
可见,通过采用上述方案,就能够向终端设备发送相邻小区的同步信号块的传输位置,从而保证终端设备可以直接在通知的第一类小区的同步信号块的传输位置对应的时间上对邻小区进行测量,在其他位置上不执行测量,从而节省终端测量时间与功耗开销。
本发明实施例还提供了一种网络设备的硬件组成架构,如图7所示,包括:至少一个处理器71、存储器72、至少一个网络接口73。各个组件通过总线系统74耦合在一起。可理解,总线系统74用于实现这些组件之间的连接通信。总线系统84除包括数据总线之外,还包括电源总线、控制总线和状态信号总线。但是为了清楚说明起见,在图7中将各种总线都标为总线系统74。
可以理解,本发明实施例中的存储器72可以是易失性存储器或非易失性存储器,或可包括易失性和非易失性存储器两者。
在一些实施方式中,存储器72存储了如下的元素,可执行模块或者数据结构,或者他们的子集,或者他们的扩展集:
操作系统721和应用程序722。
其中,所述处理器71配置为:确定至少一个第一类小区的同步信号块的传输位置;将所述至少一个第一类小区的同步信号块的传输位置,通过信令发送至终端设备;其中,所述终端设备位于所述网络设备管理的第二类小区范围内。进一步地,所述处理器71能够执行前述实施例一的方法步骤,这里也不再进行赘述。
本发明实施例中一种终端设备,包括:处理器和用于存储能够在处理器上运行的计算机程序的存储器,
其中,所述处理器用于运行所述计算机程序时,执行前述实施例二的方法步骤,这里不再进行赘述。终端设备的架构可以与图7相同,因此不再进行重复描述。
本发明实施例提供的一种计算机存储介质,所述计算机存储介质存储有计算机可执行指令,所述计算机可执行指令被执行时实施前述实施例一或二的方法步骤。
本发明实施例上述装置如果以软件功能模块的形式实现并作为独立的产品销售或使用时,也可以存储在一个计算机可读取存储介质中。基于这样的理解,本发明实施例的技术方案本质上或者说对现有技术做出贡献的部分可以以软件产品的形式体现出来,该计算机软件产品存储在一个存储介质中,包括若干指令用以使得一台计算机设备(可以是个人计算机、服务器、或者网络设备等)执行本发明各个实施例所述方法的全部或部分。 而前述的存储介质包括:U盘、移动硬盘、只读存储器(ROM,Read Only Memory)、磁碟或者光盘等各种可以存储程序代码的介质。这样,本发明实施例不限制于任何特定的硬件和软件结合。
相应地,本发明实施例还提供一种计算机存储介质,其中存储有计算机程序,该计算机程序配置为执行本发明实施例的数据调度方法。
尽管为示例目的,已经公开了本发明的优选实施例,本领域的技术人员将意识到各种改进、增加和取代也是可能的,因此,本发明的范围应当不限于上述实施例。

Claims (38)

  1. 一种同步信号块的位置指示方法,应用于网络设备,包括:
    确定至少一个第一类小区的同步信号块的传输位置;
    将所述至少一个第一类小区的同步信号块的传输位置,通过信令发送至终端设备;其中,所述终端设备位于所述网络设备管理的第二类小区范围内。
  2. 根据权利要求1所述的方法,其中,所述将所述至少一个第一类小区的同步信号块的传输位置,通过信令发送至终端设备,包括:
    基于所述至少一个第一类小区的同步信号块的传输位置生成位图,通过信令发送所述位图至终端设备。
  3. 根据权利要求2所述的方法,其中,所述所述方法还包括:
    将所述至少一个第一类小区、与所述网络设备所管理小区之间的同步关系发送至所述终端设备;
    其中,所述同步关系包括有:所述第一类小区与所述网络设备管理的小区之间为同步状态;或者,所述第一类小区与所述网络设备管理的小区之间存在同步偏差。
  4. 根据权利要求2所述的方法,其中,所述基于所述至少一个第一类小区的同步信号块的传输位置生成位图,通过信令发送所述位图至终端设备,包括:
    当至少一个第一类小区与所述网络设备管理的小区之间为同步状态时,基于全部所述第一类小区的同步信号块的传输位置,生成包含有全部第一类小区的同步信号块的传输位置的位图;
    将包含有全部第一类小区的同步信号块的传输位置的位图,通过信令发送至终端设备。
  5. 根据权利要求2所述的方法,其中,所述基于所述至少一个第一类 小区的同步信号块的传输位置生成位图,通过信令发送所述位图至终端设备,包括:
    当所述至少一个第一类小区与所述网络设备管理的小区之间存在同步偏差时,发送所述至少一个第一类小区与所述网络设备管理的小区之间的同步偏差至终端设备;
    基于所述至少一个第一类小区的同步信号块的传输位置,生成每一个第一类小区所对应的位图;
    将所述每一个第一类小区所对应的位图,通过信令发送至终端设备。
  6. 根据权利要求2所述的方法,其中,所述基于所述至少一个第一类小区的同步信号块的传输位置生成位图,通过信令发送所述位图至终端设备,包括:
    若所述至少一个第一类小区中存在第一部分第一类小区与所述网络设备管理的小区之间存在同步偏差、且所述第一类小区中第二部分第一类小区与所述网络设备管理的小区之间为同步状态;其中,所述第一部分第一类小区与所述第二部分第一类小区不同、且所述第一部分第一类小区与所述第二部分第一类小区组成全部第一类小区;
    则发送所述第一部分第一类小区与所述网络设备管理的小区之间的同步偏差至终端设备;基于所述第一部分第一类小区的同步信号块的传输位置,生成所述第一部分第一类小区中每一个第一类小区所对应的位图;将所述第一部分第一类小区中每一个第一类小区所对应的位图通过信令发送至终端设备;
    并且,基于第二部分第一类小区的同步信号块的传输位置,生成包含有第二部分第一类小区的同步信号块的传输位置的位图;将包含有第二部分第一类小区的同步信号块的传输位置的位图,通过信令发送至终端设备。
  7. 根据权利要求2所述的方法,其中,所述基于所述至少一个第一类 小区的同步信号块的传输位置生成位图,通过信令发送所述位图至终端设备,包括:
    发送所述至少一个第一类小区中每一个第一类小区与所述网络设备管理的小区之间的同步偏差至终端设备;
    基于所述第一类小区的同步信号块的传输位置,生成所述每一个第一类小区所对应的位图;
    将所述每一个第一类小区所对应的位图通过信令发送至终端设备。
  8. 根据权利要求1所述的方法,其中,所述确定至少一个第一类小区的同步信号块的传输位置,包括:
    通过X2接口或者S1接口,获取至少一个第一类小区的同步信号块的传输位置。
  9. 根据权利要求8所述的方法,其中,所述通过X2接口或者S1接口,获取至少一个第一类小区的同步信号块的传输位置,包括:
    通过X2接口或者S2接口,向至少一个第一类小区所对应的网络设备发送同步信号块的询问信息;
    通过X2接口或者S2接口,接收所述至少一个第一类小区所对应的网络设备反馈的第一类小区的同步信号块的传输位置。
  10. 根据权利要求1所述的方法,其中,所述确定至少一个第一类小区的同步信号块的传输位置,包括:
    获取至少一个第一类小区所对应的网络设备发送的广播消息;
    从所述广播消息中,获取至少一个第一类小区的同步信号块的传输位置同步信号块的传输位置。
  11. 一种同步信号块的位置指示方法,应用于终端设备,所述方法包括:
    接收网络设备通过信令发来的至少一个第一类小区的同步信号块的传 输位置;
    基于所述至少一个第一类小区的同步信号块的传输位置,对所述至少一个第一类小区的同步信号块进行测量。
  12. 根据权利要求11所述的方法,其中,所述接收网络设备通过信令发来的至少一个第一类小区的同步信号块的传输位置,包括:
    接收网络设备发来的信令;
    从所述信令中获取位图,通过所述位图获取至少一个第一类小区的同步信号块的传输位置。
  13. 根据权利要求12所述的方法,其中,所述所述方法还包括:
    接收所述网络设备发来的所述至少一个第一类小区、与所述网络设备所管理小区之间的同步关系;
    其中,所述同步关系包括有:所述第一类小区与所述网络设备管理的小区之间为同步状态;或者,所述第一类小区与所述网络设备管理的小区之间存在同步偏差。
  14. 根据权利要求13所述的方法,其中,所述从所述信令中获取位图,通过所述位图获取至少一个第一类小区的同步信号块的传输位置,包括:
    当至少一个第一类小区与所述网络设备管理的小区之间为同步状态时,从所述位图中获取到全部第一类小区的同步信号块的传输位置。
  15. 根据权利要求13所述的方法,其中,所述从所述信令中获取位图,通过所述位图获取至少一个第一类小区的同步信号块的传输位置,包括:
    当所述至少一个第一类小区与所述网络设备管理的小区之间存在同步偏差时,
    获取所述至少一个第一类小区与所述网络设备管理的小区之间的同步偏差;
    获取每一个第一类小区所对应的位图,基于所述位图获取到每一个第 一类小区的同步信号块的传输位置。
  16. 根据权利要求13所述的方法,其中,所述从所述信令中获取位图,通过所述位图获取至少一个第一类小区的同步信号块的传输位置,包括:
    若所述至少一个第一类小区中存在第一部分第一类小区与所述网络设备管理的小区之间存在同步偏差、且所述第一类小区中第二部分第一类小区与所述网络设备管理的小区之间为同步状态;其中,所述第一部分第一类小区与所述第二部分第一类小区不同、且所述第一部分第一类小区与所述第二部分第一类小区组成全部第一类小区;
    则基于第一部分第一类小区中每一个第一类小区的位图获取到第一部分第一类小区的同步信号快的传输位置;
    并且,基于第二部分第一类小区的位图获取到第二部分第一类小区的同步信号块的传输位置。
  17. 根据权利要求12所述的方法,其中,所述从所述信令中获取位图,通过所述位图获取至少一个第一类小区的同步信号块的传输位置,包括:
    获取所述至少一个第一类小区中每一个第一类小区与所述网络设备管理的小区之间的同步偏差;
    获取每一个第一类小区对应的位图,从所述位图中获取每一个第一类小区的同步信号块的传输位置。
  18. 一种网络设备,包括:
    处理单元,配置为确定至少一个第一类小区的同步信号块的传输位置;以及控制将所述至少一个第一类小区的同步信号块的传输位置,通过信令发送至终端设备;其中,所述终端设备位于所述网络设备管理的第二类小区范围内;
    通信单元,配置为将信令发送至终端设备。
  19. 根据权利要求18所述的网络设备,其中,所述处理单元,配置为 基于所述至少一个第一类小区的同步信号块的传输位置生成位图,控制通信单元通过信令发送所述位图至终端设备。
  20. 根据权利要求19所述的网络设备,其中,所述通信单元,配置为将所述至少一个第一类小区、与所述网络设备所管理小区之间的同步关系发送至所述终端设备;
    其中,所述同步关系包括有:所述第一类小区与所述网络设备管理的小区之间为同步状态;或者,所述第一类小区与所述网络设备管理的小区之间存在同步偏差。
  21. 根据权利要求19所述的网络设备,其中,所述处理单元,配置为当至少一个第一类小区与所述网络设备管理的小区之间为同步状态时,基于全部所述第一类小区的同步信号块的传输位置,生成包含有全部第一类小区的同步信号块的传输位置的位图;将包含有全部第一类小区的同步信号块的传输位置的位图,控制通信单元通过信令发送至终端设备。
  22. 根据权利要求19所述的网络设备,其中,所述处理单元,配置为当所述至少一个第一类小区与所述网络设备管理的小区之间存在同步偏差时,发送所述至少一个第一类小区与所述网络设备管理的小区之间的同步偏差至终端设备;基于所述至少一个第一类小区的同步信号块的传输位置,生成每一个第一类小区所对应的位图;控制通信单元将所述每一个第一类小区所对应的位图,通过信令发送至终端设备。
  23. 根据权利要求19所述的网络设备,其中,所述处理单元,配置为若所述至少一个第一类小区中存在第一部分第一类小区与所述网络设备管理的小区之间存在同步偏差、且所述第一类小区中第二部分第一类小区与所述网络设备管理的小区之间为同步状态;其中,所述第一部分第一类小区与所述第二部分第一类小区不同、且所述第一部分第一类小区与所述第二部分第一类小区组成全部第一类小区;
    则发送所述第一部分第一类小区与所述网络设备管理的小区之间的同步偏差至终端设备;基于所述第一部分第一类小区的同步信号块的传输位置,生成所述第一部分第一类小区中每一个第一类小区所对应的位图;控制通信单元将所述第一部分第一类小区中每一个第一类小区所对应的位图通过信令发送至终端设备;
    并且,基于第二部分第一类小区的同步信号块的传输位置,生成包含有第二部分第一类小区的同步信号块的传输位置的位图;控制通信单元将包含有第二部分第一类小区的同步信号块的传输位置的位图,通过信令发送至终端设备。
  24. 根据权利要求19所述的网络设备,其中,所述处理单元,配置为发送所述至少一个第一类小区中每一个第一类小区与所述网络设备管理的小区之间的同步偏差至终端设备;基于所述第一类小区的同步信号块的传输位置,生成所述每一个第一类小区所对应的位图;控制通信单元将所述每一个第一类小区所对应的位图通过信令发送至终端设备。
  25. 根据权利要求18所述的网络设备,其中,所述处理单元,配置为通过X2接口或者S1接口,获取至少一个第一类小区的同步信号块的传输位置。
  26. 根据权利要求25所述的网络设备,其中,所述处理单元,配置为通过X2接口或者S2接口,向至少一个第一类小区所对应的网络设备发送同步信号块的询问信息;通过X2接口或者S2接口,接收所述至少一个第一类小区所对应的网络设备反馈的第一类小区的同步信号块的传输位置。
  27. 根据权利要求18所述的网络设备,其中,所述处理单元,配置为通过通信单元获取至少一个第一类小区所对应的网络设备发送的广播消息;从所述广播消息中,获取至少一个第一类小区的同步信号块的传输位置同步信号块的传输位置。
  28. 一种终端设备,包括:
    信息接收单元,配置为接收网络设备通过信令发来的至少一个第一类小区的同步信号块的传输位置;
    测量单元,配置为基于所述至少一个第一类小区的同步信号块的传输位置,对所述至少一个第一类小区的同步信号块进行测量。
  29. 根据权利要求28所述的终端设备,其中,所述信息接收单元,配置为接收网络设备发来的信令;
    相应的,所述测量单元,配置为从所述信令中获取位图,通过所述位图获取至少一个第一类小区的同步信号块的传输位置。
  30. 根据权利要求29所述的终端设备,其中,所述信息接收单元,配置为接收所述网络设备发来的所述至少一个第一类小区、与所述网络设备所管理小区之间的同步关系;
    其中,所述同步关系包括有:所述第一类小区与所述网络设备管理的小区之间为同步状态;或者,所述第一类小区与所述网络设备管理的小区之间存在同步偏差。
  31. 根据权利要求30所述的终端设备,其中,所述测量单元,配置为当至少一个第一类小区与所述网络设备管理的小区之间为同步状态时,从所述位图中获取到全部第一类小区的同步信号块的传输位置。
  32. 根据权利要求30所述的终端设备,其中,所述测量单元,配置为当所述至少一个第一类小区与所述网络设备管理的小区之间存在同步偏差时,获取所述至少一个第一类小区与所述网络设备管理的小区之间的同步偏差;获取每一个第一类小区所对应的位图,基于所述位图获取到每一个第一类小区的同步信号块的传输位置。
  33. 根据权利要求30所述的终端设备,其中,所述测量单元,配置为若所述至少一个第一类小区中存在第一部分第一类小区与所述网络设备管 理的小区之间存在同步偏差、且所述第一类小区中第二部分第一类小区与所述网络设备管理的小区之间为同步状态;其中,所述第一部分第一类小区与所述第二部分第一类小区不同、且所述第一部分第一类小区与所述第二部分第一类小区组成全部第一类小区;
    则基于第一部分第一类小区中每一个第一类小区的位图获取到第一部分第一类小区的同步信号快的传输位置;
    并且,基于第二部分第一类小区的位图获取到第二部分第一类小区的同步信号块的传输位置。
  34. 根据权利要求30所述的终端设备,其中,所述测量单元,配置为获取所述至少一个第一类小区中每一个第一类小区与所述网络设备管理的小区之间的同步偏差;
    获取每一个第一类小区对应的位图,从所述位图中获取每一个第一类小区的同步信号块的传输位置。
  35. 一种网络设备,包括:处理器和用于存储能够在处理器上运行的计算机程序的存储器,
    其中,所述处理器用于运行所述计算机程序时,执行权利要求1-10任一项所述方法的步骤。
  36. 一种终端设备,包括:处理器和用于存储能够在处理器上运行的计算机程序的存储器,
    其中,所述处理器用于运行所述计算机程序时,执行权利要求11-17任一项所述方法的步骤。
  37. 一种计算机存储介质,所述计算机存储介质存储有计算机可执行指令,所述计算机可执行指令被执行时实现权利要求1-10任一项所述的方法步骤。
  38. 一种计算机存储介质,所述计算机存储介质存储有计算机可执 行指令,所述计算机可执行指令被执行时实现权利要求11-17任一项所述的方法步骤。
PCT/CN2017/101143 2017-09-08 2017-09-08 一种同步信号块的位置指示方法、网络设备及终端设备 Ceased WO2019047192A1 (zh)

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MX2020002632A MX2020002632A (es) 2017-09-08 2017-09-08 Metodo, aparato de red y aparato terminal para indicar la posicion de bloque de se?al de sincronizacion.
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KR1020207006954A KR102358904B1 (ko) 2017-09-08 2017-09-08 동기 신호 블록의 위치 지시 방법, 네트워크 디바이스 및 단말기 디바이스
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BR112020004462-8A BR112020004462A2 (pt) 2017-09-08 2017-09-08 método para indicar uma posição de um bloco de sinal síncrono aplicado a um aparelho de rede, aparelho de rede e aparelho de terminal
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